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  • Biochemistry and Biotechnology  (7,913)
  • Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
  • 2010-2014  (71)
  • 1995-1999  (3,415)
  • 1985-1989  (2,788)
  • 1980-1984  (1,710)
  • 1940-1944
Collection
Keywords
Publisher
Years
Year
  • 1
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 407657 data points
    Location Call Number Expected Availability
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  • 2
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    Unknown
    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 647126 data points
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  • 3
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 514097 data points
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  • 4
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    Unknown
    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 526629 data points
    Location Call Number Expected Availability
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  • 5
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 768580 data points
    Location Call Number Expected Availability
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  • 6
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 813540 data points
    Location Call Number Expected Availability
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  • 7
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 634027 data points
    Location Call Number Expected Availability
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  • 8
    facet.materialart.
    Unknown
    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 717012 data points
    Location Call Number Expected Availability
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  • 9
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    Unknown
    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 778412 data points
    Location Call Number Expected Availability
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  • 10
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    Unknown
    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 761596 data points
    Location Call Number Expected Availability
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  • 11
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    Unknown
    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 601788 data points
    Location Call Number Expected Availability
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  • 12
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 671409 data points
    Location Call Number Expected Availability
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  • 13
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 492280 data points
    Location Call Number Expected Availability
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  • 14
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 656104 data points
    Location Call Number Expected Availability
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  • 15
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 766080 data points
    Location Call Number Expected Availability
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  • 16
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 547200 data points
    Location Call Number Expected Availability
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  • 17
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 738516 data points
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  • 18
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 465120 data points
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  • 19
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 786107 data points
    Location Call Number Expected Availability
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  • 20
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 518145 data points
    Location Call Number Expected Availability
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  • 21
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 683864 data points
    Location Call Number Expected Availability
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  • 22
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 437444 data points
    Location Call Number Expected Availability
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  • 23
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 383040 data points
    Location Call Number Expected Availability
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  • 24
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 547180 data points
    Location Call Number Expected Availability
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  • 25
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 711316 data points
    Location Call Number Expected Availability
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  • 26
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 273548 data points
    Location Call Number Expected Availability
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  • 27
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 519689 data points
    Location Call Number Expected Availability
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  • 28
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 382748 data points
    Location Call Number Expected Availability
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  • 29
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 683964 data points
    Location Call Number Expected Availability
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  • 30
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 651945 data points
    Location Call Number Expected Availability
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  • 31
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 622784 data points
    Location Call Number Expected Availability
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  • 32
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 800445 data points
    Location Call Number Expected Availability
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  • 33
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 674655 data points
    Location Call Number Expected Availability
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  • 34
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 743954 data points
    Location Call Number Expected Availability
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  • 35
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 813288 data points
    Location Call Number Expected Availability
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  • 36
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 751248 data points
    Location Call Number Expected Availability
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  • 37
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 416080 data points
    Location Call Number Expected Availability
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  • 38
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 744416 data points
    Location Call Number Expected Availability
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  • 39
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 751472 data points
    Location Call Number Expected Availability
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  • 40
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 640788 data points
    Location Call Number Expected Availability
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  • 41
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 492436 data points
    Location Call Number Expected Availability
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  • 42
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 657736 data points
    Location Call Number Expected Availability
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  • 43
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 575376 data points
    Location Call Number Expected Availability
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  • 44
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 744144 data points
    Location Call Number Expected Availability
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  • 45
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 751648 data points
    Location Call Number Expected Availability
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  • 46
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 674928 data points
    Location Call Number Expected Availability
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  • 47
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 733760 data points
    Location Call Number Expected Availability
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  • 48
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 192719 data points
    Location Call Number Expected Availability
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  • 49
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 640800 data points
    Location Call Number Expected Availability
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  • 50
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 755981 data points
    Location Call Number Expected Availability
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  • 51
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 355636 data points
    Location Call Number Expected Availability
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  • 52
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 410400 data points
    Location Call Number Expected Availability
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  • 53
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 601878 data points
    Location Call Number Expected Availability
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  • 54
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 801872 data points
    Location Call Number Expected Availability
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  • 55
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 637368 data points
    Location Call Number Expected Availability
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  • 56
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 671400 data points
    Location Call Number Expected Availability
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  • 57
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 502969 data points
    Location Call Number Expected Availability
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  • 58
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 778308 data points
    Location Call Number Expected Availability
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  • 59
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 571328 data points
    Location Call Number Expected Availability
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  • 60
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 416144 data points
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 679912 data points
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  • 62
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 743938 data points
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  • 63
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 691952 data points
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  • 64
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 612620 data points
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  • 65
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 660892 data points
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  • 66
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 617729 data points
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  • 67
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-23
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 647924 data points
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  • 68
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-24
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 403097 data points
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  • 69
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-24
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 803508 data points
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  • 70
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    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-24
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 632386 data points
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  • 71
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    PANGAEA
    In:  Instituto Nacional de Pesquisas Espaciais, Brasilia
    Publication Date: 2024-01-24
    Keywords: Air temperature at 2 m height; BARO; Barometer; Baseline Surface Radiation Network; Brazil; BSRN; DATE/TIME; Diffuse radiation; Diffuse radiation, maximum; Diffuse radiation, minimum; Diffuse radiation, standard deviation; Direct radiation; Direct radiation, maximum; Direct radiation, minimum; Direct radiation, standard deviation; HEIGHT above ground; Humidity, relative; HYGRO; Hygrometer; Long-wave downward radiation; Long-wave downward radiation, maximum; Long-wave downward radiation, minimum; Long-wave downward radiation, standard deviation; Monitoring station; MONS; Petrolina; PTR; Pyranometer, Kipp & Zonen, CM21, SN 021051, WRMC No. 72001; Pyranometer, Kipp & Zonen, CM22, SN 020070, WRMC No. 72003; Pyrgeometer, Eppley, PIR, SN 33493F3, WRMC No. 72004; Pyrheliometer, Eppley, NIP, SN 33544E6, WRMC No. 72002; Short-wave downward (GLOBAL) radiation; Short-wave downward (GLOBAL) radiation, maximum; Short-wave downward (GLOBAL) radiation, minimum; Short-wave downward (GLOBAL) radiation, standard deviation; Station pressure; Thermometer
    Type: Dataset
    Format: text/tab-separated-values, 480720 data points
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  • 72
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 57 (1998), S. 590-599 
    ISSN: 0006-3592
    Keywords: protein refolding ; hollow-fibre membrane ; dialysis ; carbonic anhydrase ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: We have used a cellulose acetate, hollow-fibre (HF) ultrafiltration membrane to refold bovine carbonic anhydrase, loaded into the lumen space, by removing the denaturant through controlled dialysis via the shell side space. When challenged with GdnHCl-denatured carbonic anhydrase, 70% of the loaded protein reptated through the membrane into the circulating dialysis buffer. Reptation occurred because the protein, in its fully unfolded configuration, was able to pass through the pores. The loss of carbonic anhydrase through the membrane was controlled by the dialysis conditions. Dialysis against 0.05 M Tris-HCl for 30 min reduced the denaturant around the protein to a concentration that allowed the return of secondary structure, increasing the hydrodynamic radius, thus preventing protein transmission. Under these conditions a maximum of 42% of carbonic anhydrase was recovered (from a starting concentration of 5 mg/mL) with 94% activity. This is an improvement over refolding carbonic anhydrase by simple batch dilution, which gave a maximum reactivation of 85% with 35% soluble protein yield. The batch refolding of carbonic anhydrase is very sensitive to temperature; however, during HF refolding between 0 and 25°C the temperature sensitivity was considerably reduced. In order to reduce the convection forces that give rise to aggregation and promote refolding the dialyzate was slowly heated from 4 to 25°C. This slow, temperature-controlled refolding gave an improved soluble protein recovery of 55% with a reactivation yield of 90%. The effect of a number of additives on the refolding system performance were tested: the presence of PEG improved both the protein recovery and the recovered activity from the membrane, while the detergents Tween 20 and IGEPAL CA-630 increased only the refolding yield. ©1998 John Wiley & Sons, Inc. Biotechnol Bioeng 57: 590-599, 1998.
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  • 73
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 119-120 
    ISSN: 0006-3592
    Keywords: Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: No abstract.
    Type of Medium: Electronic Resource
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  • 74
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 658-662 
    ISSN: 0006-3592
    Keywords: T4 lysozyme ; silica nanoparticles ; synthetic enzyme variants ; surface-induced conformational change ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Maintaining a specific molecular conformation is essential for the proper functioning of an enzyme. A substantial loss of catalytic activity can occur from the displacement caused by even a single amino acid substitution. Activity may also be lost as an enzyme undergoes a conformational change during adsorption. In this study, we investigated the effect of thermostability on the activities of three T4 lysozyme variants after adsorption to 9 nm colloidal silica particles. Less-stable T4 lysozyme variants lost more activity after adsorption than did more stable variants, apparently because they experienced more extensive structural alteration. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58: 658-662, 1998.
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  • 75
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 139-148 
    ISSN: 0006-3592
    Keywords: metabolic engineering ; pathway analysis ; metabolic and energetic model ; physiological state ; Saccharomyces cerevisiae ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: In this work, an integrated modeling approach based on a metabolic signal flow diagram and cellular energetics was used to model the metabolic pathway analysis for the cultivation of yeast on glucose. This approach enables us to make a clear analysis of the flow direction of the carbon fluxes in the metabolic pathways as well as of the degree of activation of a particular pathway for the synthesis of biomaterials for cell growth. The analyses demonstrate that the main metabolic pathways of Saccharomyces cerevisiae change significantly during batch culture. Carbon flow direction is toward glycolysis to satisfy the increase of requirement for precursors and energy. The enzymatic activation of TCA cycle seems to always be at normal level, which may result in the overflow of ethanol due to its limited capacity. The advantage of this approach is that it adopts both virtues of the metabolic signal flow diagram and the simple network analysis method, focusing on the investigation of the flow directions of carbon fluxes and the degree of activation of a particular pathway or reaction loop. All of the variables used in the model equations were determined on-line; the information obtained from the calculated metabolic coefficients may result in a better understanding of cell physiology and help to evaluate the state of the cell culture process. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58:139-148, 1998.
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  • 76
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 149-153 
    ISSN: 0006-3592
    Keywords: Metabolic Control Analysis ; flux control coefficients ; top down MCA ; metabolic engineering ; Corynebacterium glutamicum ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Grouping of reactions around key metabolite branch points can facilitate the study of metabolic control of complex metabolic networks. This top-down Metabolic Control Analysis is exemplified through the introduction of group (flux, as well as concentration) control coefficients whose magnitudes provide a measure of the relative impact of each reaction group on the overall network flux, as well as on the overall network stability, following enzymatic amplification. In this article, we demonstrate the application of previously developed theory to the determination of group flux control coefficients. Experimental data for the changes in metabolic fluxes obtained in response to the introduction of six different environmental perturbations are used to determine the group flux control coefficients for three reaction groups formed around the phosphoenolpyruvate/pyruvate branch point. The consistency of the obtained group flux control coefficient estimates is systematically analyzed to ensure that all necessary conditions are satisfied. The magnitudes of the determined control coefficients suggest that the control of lysine production flux in Corynebacterium glutamicum cells at a growth base state resides within the lysine biosynthetic pathway that begins with the PEP/PYR carboxylation anaplorotic pathway. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58:149-153, 1998.
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  • 77
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 154-161 
    ISSN: 0006-3592
    Keywords: central carbon pathways ; metabolic optimization ; ethanol production ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Many attempts to engineer cellular metabolism have failed due to the complexity of cellular functions. Mathematical and computational methods are needed that can organize the available experimental information, and provide insight and guidance for successful metabolic engineering. Two such methods are reviewed here. Both methods employ a (log)linear kinetic model of metabolism that is constructed based on enzyme kinetics characteristics. The first method allows the description of the dynamic responses of metabolic systems subject to spatiotemporal variations in their parameters. The second method considers the product-oriented, constrained optimization of metabolic reaction networks using mixed-integer linear programming methods. The optimization framework is used in order to identify the combinations of the metabolic characteristics of the glycolytic enzymes from yeast and bacteria that will maximize ethanol production. The methods are also applied to the design of microbial ethanol production metabolism. The results of the calculations are in qualitative agreement with experimental data presented here. Experiments and calculations suggest that, in resting Escherichia coli cells, ethanol production and glucose uptake rates can be increased by 30% and 20%, respectively, by overexpression of a deregulated pyruvate kinase, while increase in phosphofructokinase expression levels has no effect on ethanol production and glucose uptake rates. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58:154-161, 1998.
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  • 78
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 170-174 
    ISSN: 0006-3592
    Keywords: catabolite repression ; phosphotransferase system ; inducer exclusion ; inducer expulsion ; protein kinase ; transcriptional regulation ; transport regulation ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Catabolite repression is a universal phenomenon, found in virtually all living organisms. These organisms range from the simplest bacteria to higher fungi, plants, and animals. A mechanism involving cyclic AMP and its receptor protein (CRP) in Escherichia coli was established years ago, and this mechanism has been assumed by many to serve as the prototype for catabolite repression in all organisms. However, recent studies have shown that this mechanism is restricted to enteric bacteria and their close relatives. Cyclic AMP-independent mechanisms of catabolite repression occur in other bacteria, yeast, plants, and even E. coli. In fact, single-celled organisms such as E. coli, Bacillus subtilis, and Saccharomyces cerevisiae exhibit multiple mechanisms of catabolite repression, and most of these are cyclic AMP-independent. The mechanistic features of the best of such characterized processes are briefly reviewed, and references are provided that will allow the reader to delve more deeply into these subjects. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58:170-174, 1998.
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  • 79
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 162-169 
    ISSN: 0006-3592
    Keywords: bioinformatics ; metabolic engineering ; genetic engineering ; mathematical analysis ; stoichiometry ; enzyme kinetics ; modal analysis ; genetic circuits ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Ten microbial genomes have been fully sequenced to date, and the sequencing of many more genomes is expected to be completed before the end of the century. The assignment of function to open reading frames (ORFs) is progressing, and for some genomes over 70% of functional assignments have been made. The majority of the assigned ORFs relate to metabolic functions. Thus, the complete genetic and biochemical functions of a number of microbial cells may be soon available. From a metabolic engineering standpoint, these developments open a new realm of possibilities. Metabolic analysis and engineering strategies can now be built on a sound genomic basis. An important question that now arises; how should these tasks be approached? Flux-balance analysis (FBA) has the potential to play an important role. It is based on the fundamental principle of mass conservation. It requires only the stoichiometric matrix, the metabolic demands, and some strain specific parameters. Importantly, no enzymatic kinetic data is required. In this article, we show how the genomically defined microbial metabolic genotypes can be analyzed by FBA. Fundamental concepts of metabolic genotype, metabolic phenotype, metabolic redundancy and robustness are defined and examples of their use given. We discuss the advantage of this approach, and how FBA is expected to find uses in the near future. FBA is likely to become an important analysis tool for genomically based approaches to metabolic engineering, strain design, and development. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58:162-169, 1998.
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  • 80
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 58 (1998), S. 191-195 
    ISSN: 0006-3592
    Keywords: control analysis ; Lactococcus lactis ; gene expression ; flux ; oligonucleotide ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: In this article, we review some of the expression systems that are available for Metabolic Control Analysis and Metabolic Engineering, and examine their advantages and disadvantages in different contexts. In a recent approach, artificial promoters for modulating gene expression in micro-organisms were constructed using synthetic degenerated oligonucleotides. From this work, a promoter library was obtained for Lactococcus lactis, containing numerous individual promoters and covering a wide range of promoter activities. Importantly, the range of promoter activities was covered in small steps of activity change. Promoter libraries generated by this approach allow for optimization of gene expression and for experimental control analysis in a wide range of biological systems by choosing from the promoter library promoters giving, e.g., 25%, 50%, 200%, and 400% of the normal expression level of the gene in question. If the relevant variable (e.g., the flux or yield) is then measured with each of these constructs, then one can calculate the control coefficient and determine the optimal expression level. One advantage of the method is that the construct which is found to have the optimal expression level is then, in principle, ready for use in the industrial fermentation process; another advantage is that the system can be used to optimize the expression of different enzymes within the same cell. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58:191-195, 1998.
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  • 81
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    Biotechnology and Bioengineering 58 (1998), S. 175-190 
    ISSN: 0006-3592
    Keywords: protein-based polymers ; inverse temperature transitions ; hydrophobic-induced pKa shifts ; waters of hydrophobic hydration ; five axioms for protein engineering; microwave dielectric relaxation ; a universal mechanism for biological energy conversion ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Metabolism is the conversion of available energy sources to those energy forms required for sustaining and propagating living organisms; this is simply biological energy conversion. Proteins are the machines of metabolism; they are the engines of motility and the other machines that interconvert energy forms not involving motion. Accordingly, metabolic engineering becomes the use of natural protein-based machines for the good of society. In addition, metabolic engineering can utilize the principles, whereby proteins function, to design new protein-based machines to fulfill roles for society that proteins have never been called upon throughout evolution to fulfill.This article presents arguments for a universal mechanism whereby proteins perform their diverse energy conversions; it begins with background information, and then asserts a set of five axioms for protein folding, assembly, and function and for protein engineering. The key process is the hydrophobic folding and assembly transition exhibited by properly balanced amphiphilic protein sequences. The fundamental molecular process is the competition for hydration between hydrophobic and polar, e.g., charged, residues. This competition determines Tt, the onset temperature for the hydrophobic folding and assembly transition, Nhh, the numbers of waters of hydrophobic hydration, and the pKa of ionizable functions.Reported acid-base titrations and pH dependence of microwave dielectric relaxation data simultaneously demonstrate the interdependence of Tt, Nhh and the pKa using a series of microbially prepared protein-based poly(30mers) with one glutamic acid residue per 30mer and with an increasing number of more hydrophobic phenylalanine residues replacing valine residues. Also, reduction of nicotinamides and flavins is shown to lower Tt, i.e., to increase hydrophobicity.Furthermore, the argument is presented, and related to an extended Henderson-Hasselbalch equation, wherein reduction of nicotinamides represents an increase in hydrophobicity and resulting hydrophobic-induced pKa shifts become the basis for understanding a primary energy conversion (proton transport) process of mitochondria. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 58:175-190, 1998.
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  • 82
    ISSN: 0006-3592
    Keywords: Escherichia coli ; Chloramphenicol Acetyltransferase (CAT) ; Culture Redox Potential (CRP) ; Dithiothreitol (DTT) ; reducing agents ; molecular chaperones ; proteases ; heat shock ; stress response ; protein folding ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
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    Notes: The independent control of culture redox potential (CRP) by the regulated addition of a reducing agent, dithiothreitol (DTT) was demonstrated in aerated recombinant Escherichia coli fermentations. Moderate levels of DTT addition resulted in minimal changes to specific oxygen uptake, growth rate, and dissolved oxygen. Excessive levels of DTT addition were toxic to the cells resulting in cessation of growth. Chloramphenicol acetyltransferase (CAT) activity (nmoles/μg total protein min.) decreased in batch fermentation experiments with respect to increasing levels of DTT addition. To further investigate the mechanisms affecting CAT activity, experiments were performed to assay heat shock protein expression and specific CAT activity (nmoles/μg CAT min.). Expression of such molecular chaperones as GroEL and DnaK were found to increase after addition of DTT. Additionally, sigma factor 32 (σ32) and several proteases were seen to increase dramatically during addition of DTT. Specific CAT activity (nmoles/μg CAT min.) varied greatly as DTT was added, however, a minimum in activity was found at the highest level of DTT addition in E. coli strains RR1 [pBR329] and JM105 [pROEX-CAT]. In conjunction, cellular stress was found to reach a maximum at the same levels of DTT. Although DTT addition has the potential for directly affecting intracellular protein folding, the effects felt from the increased stress within the cell are likely the dominant effector. That the effects of DTT were measured within the cytoplasm of the cell suggests that the periplasmic redox potential was also altered. The changes in specific CAT activity, molecular chaperones, and other heat shock proteins, in the presence of minimal growth rate and oxygen uptake alterations, suggest that the ex vivo control of redox potential provides a new process for affecting the yield and conformation of heterologous proteins in aerated E. coli fermentations. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59: 248-259, 1998.
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  • 83
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    Biotechnology and Bioengineering 59 (1998), S. 261-272 
    ISSN: 0006-3592
    Keywords: effective diffusive permeability ; diffusion coefficient ; biofilm ; cell density ; review ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Experimental measurements of effective diffusive permeabilities and effective diffusion coefficients in biofilms are reviewed. Effective diffusive permeabilities, the parameter appropriate to the analysis of reaction-diffusion interactions, depend on solute type and biofilm density. Three categories of solute physical chemistry with distinct diffusive properties were distinguished by the present analysis. In order of descending mean relative effective diffusive permeability (De/Daq) these were inorganic anions or cations (0.56), nonpolar solutes with molecular weights of 44 or less (0.43), and organic solutes of molecular weight greater than 44 (0.29). Effective diffusive permeabilities decrease sharply with increasing biomass volume fraction suggesting a serial resistance model of diffusion in biofilms as proposed by Hinson and Kocher (1996). A conceptual model of biofilm structure is proposed in which each cell is surrounded by a restricted permeability envelope. Effective diffusion coefficients, which are appropriate to the analysis of transient penetration of nonreactive solutes, are generally similar to effective diffusive permeabilities in biofilms of similar composition. In three studies that examine diffusion of very large molecular weight solutes ( 〉 5000) in biofilms, the average ratio of the relative effective diffusion coefficient of the large solute to the relative effective diffusion coefficient of either sucrose or fluorescein was 0.64, 0.61, and 0.36. It is proposed that large solutes are effectively excluded from microbial cells, that small solutes partition into and diffuse within cells, and that ionic solutes are excluded from cells but exhibit increased diffusive permeability (but decreased effective diffusion coefficients) due to sorption to the biofilm matrix. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:261-272, 1998.
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  • 84
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    Biotechnology and Bioengineering 59 (1998), S. 281-285 
    ISSN: 0006-3592
    Keywords: protein aggregation ; RNase A ; protein formulation ; protein additives ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: In the previous study (part I), heat-denatured RNase A aggregation was shown to depend on the solution pH. Interestingly, at pH 3.0, the protein did not aggregate even when exposed to 75°C for 24 h. In this study, electrostatic repulsion was shown to be responsible for the absence of aggregates at that pH. While RNase A aggregation was prevented at the extremely acidic pH, this is not an environment conducive to maintaining protein function in general. Therefore, attempts were made to confer electrostatic repulsion near neutral pH. In this study, heat-denatured RNase A was mixed with charged polymers at pH 7.8 in an attempt to provide the protein with excess surface cations or anions. At 75°C, SDS and dextran sulfate were successful in preventing RNase A aggregation, whereas their cationic, nonionic, and zwitterionic analogs did not do so. We believe that the SO3- groups present in both additives transformed the protein into polyanionic species, and this may have provided a sufficient level of electrostatic repulsion at pH 7.8 and 75°C to prevent aggregation from proceeding. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:281-285, 1998.
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  • 85
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    Biotechnology and Bioengineering 59 (1998), S. 328-343 
    ISSN: 0006-3592
    Keywords: biotrickling filters ; biotrickling filter modeling ; mono-chlorobenzene ; biodegradation kinetics of mono-chlorobenzene ; chlorinated VOC emissions ; biofiltration ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Removal of mono-chlorobenzene (m-CB) vapor from airstreams was studied in a biotrickling filter (BTF) operating under counter-current flow of the air and liquid streams. Experiments were performed under various values of inlet m-CB concentration, air and/or liquid volumetric flow rates, and pH of the recirculating liquid. Conversion of m-CB was never below 70% and at low concentrations exceeded 90%. A maximum removal rate of about 60 gm-3-reactor h-1 was observed. Conversion of m-CB was found to increase as the values of liquid and air flow rate increase and decrease, respectively. The effects of pH and frequency of medium replenishment on BTF performance were also investigated. The process was successfully described with a detailed mathematical model, which accounts for mass transfer and kinetic effects based on m-CB and oxygen availability. Solution of the model equations yielded m-CB and oxygen concentration profiles in all three phases (airstream, liquid, biofilm). It is predicted that oxygen has a controling effect on the process at high inlet m-CB concentrations. From independent, suspended culture, experiments it was found that m-CB biodegradation follows Andrews inhibitory kinetics. The kinetic constants were found to remain practically unchanged after the culture was used in BTF experiments for 8 months. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:328-343, 1998.
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  • 86
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    Biotechnology and Bioengineering 59 (1998), S. 344-350 
    ISSN: 0006-3592
    Keywords: electrodialysis ; citric acid ; pH ; temperature ; Faraday efficiency ; solute recovery efficiency ; specific energy consumption ; solute flux ; water flux ; feed solute concentration ; electric current density ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: The effect of pH and temperature (θ) on the overall performance indicators (i.e., solute recovery, ρ, and Faraday, η, efficiencies; specific energy consumption, ε, solute, JS, and water, JW, fluxes) of batch electrodialytic recovery of citric acid from model solutions was assessed at different values of feed solute concentration (cSf) and electric current density (j). Regardless of the initial feed concentration used, ρ and JS were found to be independent of θ; η and JW exhibited a positive trend with respect to θ, while ε a negative one. At the maximum temperature tested (33°C), as the pH of the feed solution was varied from 3 to 7, ρ increased from 0.90 ± 0.08 to 0.97 ± 0.02, η grew from 0.09 ± 0.02 to 0.50 ± 0.01, JS practically doubled, ε reduced about 8 times, but JW increased from 3 to 4 times. So, the optimal conditions for this technique are to be determined by balancing the savings in the investment and maintenance costs against the energy costs. © John Wiley & Sons, Inc. Biotechnol Bioeng 59:344-350, 1998.
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  • 87
    ISSN: 0006-3592
    Keywords: chymotrypsin ; enzyme stability ; reversed micelles ; interface ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: The stability of α-chymotrypsin and δ-chymotrypsin was studied in reversed micelles of sodium bis(2-ethylhexyl)sulfosuccinate (AOT) in isooctane. α-Chymotrypsin is inactivated at the interface and at the water pool, while δ-chymotrypsin is inactivated only at the water pool. The mechanism of inactivation at the interface is related to the interaction of N-terminal group alanine 149 (absent in δ-chymotrypsin) with the negative interface. The dependence of enzyme activity on water content of these two enzymes in reversed micelles of AOT is also related with the interface interaction, since δ-chymotrypsin does not have a bell-shaped curve as observed for α-chymotrypsin. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:360-363, 1998.
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  • 88
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    Biotechnology and Bioengineering 59 (1998), S. 351-359 
    ISSN: 0006-3592
    Keywords: bioreactor ; high density ; insect cells ; perfusion ; Sf9 ; ultrasonic filter ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: The baculovirus/insect cell expression system has provided a vital tool to produce a high level of active proteins for many applications. We have developed a very high-density insect cell perfusion process with an ultrasonic filter as a cell retention device. The separation efficiency of the filter was studied under various operating conditions. A cell density of over 30 million cells/mL was achieved in a controlled perfusion bioreactor and cell viability remained greater than 90%. Sf9 cells from a high-density culture and a spinner culture were infected with two recombinant baculoviruses expressing genes for the production of human chitinase and monocyte-colony inhibition factor. The protein yield on a cell basis from infecting high-density Sf9 cells was the same as or higher than that from the spinner Sf9 culture. Virus production from the high-density culture was similar to that from the spinner culture. The results show that the ultrasonic filter did not affect insect cells' ability to support protein expression and virus production following infection with baculovirus. The potential applications of the high-density perfusion culture for large-scale protein expression from Sf9 cells are also highlighted. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:351-359, 1998.
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  • 89
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    Biotechnology and Bioengineering 59 (1998), S. 374-378 
    ISSN: 0006-3592
    Keywords: conductive paint electrode ; prevention of marine biofouling ; fishing net ; alternating potential ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Conductive paint electrode was used for marine biofouling on fishing nets by electrochemical disinfection. When a potential of 1.2 V vs. a saturated calomel electrode (SCE) was applied to the conductive paint electrode, Vibrio alginolyticus cells attached on the electrode were completely killed. By applying a negative potential, the attached cells were removed from the surface of the electrode. Changes in pH and chlorine concentration were not observed at potentials in the range -0.6 ∼1.2 V vs. SCE. In a field experiment, accumulation of the bacterial cells and formation of biofilms on the electrode were prevented by application of an alternating potential, and 94% of attachment of the biofouling organisms was inhibited electrically on yarn used for fishing net coated with conductive paint. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:374-378, 1998.
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  • 90
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    Biotechnology and Bioengineering 59 (1998), S. 364-373 
    ISSN: 0006-3592
    Keywords: porous supports ; internal and external diffusion ; active site accessibility ; enzyme loading ; kinetically controlled dipeptide synthesis ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Mass transfer limitations were studied in enzyme preparations of α-chymotrypsin made by deposition on different porous support materials such as controlled pore glasses, Celite, and polyamides of different particle sizes. It is the onset of mass transfer limitations that determines the position of the activity optimum with respect to enzyme loading on each support. The evidence of various experiments indicates that internal diffusional limitations are the important mechanism for the observed mass transfer limitations. External diffusion was not found to play an important role under the conditions used, and it was also found that when immobilizing multilayers of enzyme the buried enzyme molecules are active to a large extent. An extreme situation is observed on Celite at very high loadings. Under these conditions, this support is expected to have its pores completely filled with packed enzyme molecules, and then it is the diffusion within the enzyme layer that determines the observed rate. As the enzyme loading increases, the area of contact between the deposited enzyme layers and the liquid solution inside the pores diminishes, causing a decrease on the observed rate of an intrinsically fast reaction which apparently is incongruous with the presence of more enzyme in the system. This work shows that mass transfer limitations can be an important factor when working with immobilized enzymes in organic media, and its study should be carried out in order to avoid undesired reduced enzyme activities and specificities. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:364-373, 1998.
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  • 91
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    Biotechnology and Bioengineering 59 (1998), S. 438-444 
    ISSN: 0006-3592
    Keywords: bioremediation ; plasma discharge ; dichlorophenol degradation ; perchloroethylene degradation ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Pulsed electric discharge (PED) and bioremediation were combined to create a novel two-stage system which dechlorinates the halogenated pollutants, 2,4-dichlorophenol and perchloroethylene, with repetitive (0.1-1 kHz), short pulse (∼100 ns), low voltage (40-80 kV) discharges and then mineralizes the less chlorinated products with aerobic bacteria. A 6.1 mM aqueous dichlorophenol sample was cycled through the PED reactor (60 kV of applied pulsed voltage and 300 Hz) 6 times, resulting in the release of 55% of the initial dichlorophenol chloride ions (1 mM Cl- removed each cycle). The respective average specific efficiency is 0.4-0.6 keV/(Cl- molecule). Pseudomonas mendocina KR1, which grows in minimal medium supplemented with phenol but not with dichlorophenol, increased in cell density in all cultures supplemented with the PED-treated DCP samples and yielded a maximum of two-fold additional Cl- released compared to the PED-related alone. The number of PED-treatment cycles, voltage, and frequency were also varied, showing that both cell densities and overall dichlorophenol dechlorination were highly dependent upon the number of PED-treatment cycles, rather than the tested voltages and frequencies. Using this two-stage treatment system, PED released 31% of the initial chloride ions from dichlorophenol (after three cycles at 40-45 kV and 1.2 kHz) while P. mendocina KR1 in the second stage increased dechlorination to 90%. These results were corroborated by the 35% additional chloride release found with activated sludge cultures. Perchloroethylene (0.6 mM) was similarly treated in a first-stage PED reactor (80% chloride removal after four cycles) followed by biodegradation of the dechlorinated products with a recombinant toluene o-monooxygenase-expressing Pseudomonas fluorescens strain. Gas chromatographic analysis showed that the PED reactor created less-chlorinated byproducts (i.e., trichloroethylene) that were removed (74%) upon exposure to the recombinant bacterium. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:438-444, 1998.
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  • 92
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    Biotechnology and Bioengineering 59 (1998), S. 445-450 
    ISSN: 0006-3592
    Keywords: CHO cells ; glycosylation engineering ; antisense ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Novel glycoproteins, inaccessible by other techniques, can be obtained by metabolic engineering of the oligosaccharide biosynthesis pathway. Furthermore, alteration of cell-surface oligosaccharides can change the properties of receptors involved in cell-cell adhesion. Sialyl Lewis X (sLex) is a cell-surface oligosaccharide determinant which is specifically expressed on granulocytes and monocytes and which interacts with selectins to influence leukocyte trafficking, thrombosis, inflammation, and cancer. Antisense technology targeting fucosyltransferase VI (Fuc-TVI), an enzyme necessary for the synthesis of the sLex in engineered Chinese hamster ovary (CHO) cells, has reduced Fuc-TVI activity, sLex synthesis, and adhesion to endothelial cells. Antisense methodology to reduce targeted activity in oligosaccharide biosynthesis or other pathways is an important addition to CHO cell metabolic engineering capabilities. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:445-450, 1998.
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  • 93
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    Biotechnology and Bioengineering 59 (1998), S. 451-460 
    ISSN: 0006-3592
    Keywords: protein fouling ; membrane transport ; ultrafiltration ; adsorption ; filtration ; composite membrane ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Protein fouling can significantly alter both the flux and retention characteristics of ultrafiltration membranes. There has, however, been considerable controversy over the nature of this fouling layer. In this study, hydraulic permeability and dextran sieving data were obtained both before and after albumin adsorption and/or filtration using polyethersulfone ultrafiltration membranes. The dextran molecular weight distributions were analyzed by gel permeation chromatography to evaluate the sieving characteristics over a broad range of solute size. Protein fouling caused a significant reduction in the dextran sieving coefficients, with very different effects seen for the diffusive and convective contributions to dextran transport. The changes in dextran sieving coefficients and diffusive permeabilities were analyzed using a two-layer membrane model in which a distinct protein layer is assumed to form on the upstream surface of the membrane. The data suggest that the protein layer formed during filtration was more tightly packed than that formed by simple static adsorption. Hydrodynamic calculations indicated that the pore size of the protein layer remained relatively constant throughout the adsorption or filtration, but the thickness of this layer increased with increasing exposure time. These results provide important insights into the nature of protein fouling during ultrafiltration and its effects on membrane transport. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:451-460, 1998.
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  • 94
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    Biotechnology and Bioengineering 59 (1998), S. 461-470 
    ISSN: 0006-3592
    Keywords: aqueous two-phase separation ; protein partitioning ; T4 lysozyme ; electrochemical partitioning ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Protein partitioning in aqueous two-phase systems based on phase-forming polymers is strongly affected by the net charge of the protein, but a thermodynamic description of the charge effects has been hindered by conflicting results. Many of the difficulties could be because of problems in isolating electrochemical effects from other interactions of phase components.We explored charge effects on protein partitioning in poly(ethylene glycol)-dextran two-phase systems by using two series of genetically engineered charge modifications of bacteriophage T4 lysozyme produced in Escherichia coli. The two series, one in the form of charged-fusion tails and the other in the form of charge-change point mutations, provided matching net charges but very different polarity. Partition coefficients of both series were obtained and interfacial potential differences of the phase systems were measured. Multi-angle laser light scattering measurements were also performed to determine second virial coefficients. A semi-empirical model accounting for the roles of both charge and non-charge effects on protein partitioning behavior is proposed, and the results predicted from the model are compared to the results from the experiments. © 1998 John Wiley & Sons, Inc. Biotechnol Bioeng 59:461-470, 1998.
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  • 95
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    Biotechnology and Bioengineering 48 (1995), S. 631-638 
    ISSN: 0006-3592
    Keywords: Saccharomyces cerevisiae ; fermentation ; on-line simulation ; state estimation ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: In order to study and control fermentation processes, indirect on-tine measurements and mathematical models can be used. In this article we present a mathematical on-line model for fermentation processes. The model is based on atom and partial mass balances as well as on equations describing the acid-base system. The model is brought into an adaptive form by including transport equations for mass transfer and unstructured expressions for the fermentation kinetics. The state of the process, i.e., the concentrations of biomass, substrate, and products, can be estimated on-line using the balance part of the model completed with measurement equations for the input and output flows of the process. Adaptivity is realized by means of on-line estimation of parameters in the transport and kinetic expressions using recursive regression analysis. These expressions can thus be used in the model as valid equations enabling prediction of the process. This makes model-based automation of the process and testing of the validity of the measurement variables possible. The model and the on-line principles are applied to a 3.5-L laboratory tormentor in which Saccharomyces cerevisiae is cultivated. The experimental results show that the model-based estimation of the state and the predictions of the process correlate closely with high-performance liquid chromatography (HPLC) analyses. © 1995 John Wiley & Sons, Inc.
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  • 96
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    Biotechnology and Bioengineering 48 (1995), S. 659-666 
    ISSN: 0006-3592
    Keywords: methanogenic activity ; ethylene ; dechlorination ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Kinetics were determined for methanogenic activity and chlorinated ethylene dehalogenation by a methanol-enriched, anaerobic sediment consortium. The culture reductively dechlorinated perchloroethylene (PCE) to trichloroethylene (TCE), 1,1-dichloroethylene (1,1-DCE), vinylchloride (VC), and ethylene and ethane. The absence : of methanol or the addition of 2-bromoethanesulfonic. acid in the presence of methanol suppressed both methanogenic activity and dechlorination. In contrast, acetate production continued in the presence of 2-bromoethanesulfonic acid. These results suggest that dechlorination was strongly linked to methane formation and not to acetate production. A kinetic model, developed to describe both methanogenesis and dechlorination, successfully predicted experimentally measured concentrations of biomass, methane, substrate, and chlorinated ethylenes. The average maximum specific dehalogenation rates for PCE, TCE, 1,1-DCE, and VC were 0.9 ± 0.6, 0.4 ± 0.1, 12 ± 0.1, and 2.5 ± 1.7 μmol contaminant/ g. DW/day, respectively. This pattern for dechlorination rates is distinctly different than that reported for transition metal cofactors, where rates drop by approximately one order of magnitude as each successive chlorine is removed. The experimental results and kinetic analysis suggest that it will be impractical to targeting methanol consuming methanogenic organisms for in situ ground-water restoration. © 1995 John Wiley & Sons, Inc.
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  • 97
    ISSN: 0006-3592
    Keywords: bovine serum albumin ; growth factor ; hollow-fiber culture ; perfusion culture ; antibody production rate ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: The effects of the high-molecular-weight growth factors, transferrin and bovine serum albumin (BSA), on antibody production were analyzed quantitatively in continuous hollow-fiber cultivation over a period of 60 days. Transferrin enhanced cell growth but had no significant effect on the specific antibody production rate, whereas BSA significantly enhanced antibody production. The antibody production rate was increased 4- and 14-fold respectively by feeding BSA at 2 and 5 g L-1 into the EC side of the system (the side connected to the cell-containing outer part of the hollow-fiber unit) compared with the production achieved without BSA. Addition of 5 g L1 BSA into the IC side of the system (the side connected to the inner part of the hollow-fiber unit) resulted in a 2.5-fold increase in the antibody production rate. The effect of BSA was also analyzed using the perfusion culture system with a separation unit. When fresh medium containing either 2 or 5 g L-1 BSA was fed into the reactor, both the specific growth rate and specific death rate increased, while the specific antibody production rate was increased 2- and 25-fold, respectively, by feeding BSA at these two concentrations compared with no addition. Comparing the two systems, the increase in the antibody production rate achieved with the hollow-fiber system was threefold greater than that in the perfusion culture system with the same concentration of BSA feeding. © 1995 John Wiley & Sons, Inc.
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    Biotechnology and Bioengineering 55 (1997), S. 252-260 
    ISSN: 0006-3592
    Keywords: lipase ; chemical modification ; stability ; esterification ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Semipurified lipase of Candida rugosa (CRSL) was subjected to chemical modification, and the activities of the modified lipase, in hydrolysis and esterification reactions, were examined. The esterification reactions were carried out in the absence and presence of isooctane. When the enzyme was modified with polyethylene glycol (PEG), two methodologies were studied. The activation of PEG with p-NO2-phenylchloroformate gives better biocatalysts than those obtained with cyanuric chloride-PEG. The chemical modification with PEG increases the stability of pure lipases in isooctane at 50°C (extreme conditions). The chemically modified enzymes are useful for biotransformations in organic solvents. In addition the nitration of tyrosines with tetranitromethane was also studied. © 1997 John Wiley & Sons, Inc. Biotechnol Bioeng 55: 252-260, 1997.
    Additional Material: 5 Ill.
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  • 99
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 49 (1996), S. 204-216 
    ISSN: 0006-3592
    Keywords: expanded bed adsorption ; bakers' yeast ; G6PDH ; STREAMLINE ion exchange adsorbents ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: The use of expanded beds of STREAMLINE ion exchange adsorbents for the direct extraction of an intracellular enzyme glucose-6-phosphate dehydrogenase (G6PDH) from unclarified yeast cell homogenates has been investigated. It has been demonstrated that such crude feedstocks can be applied to the bed without prior clarification steps. The purification of G6PDH from an unclarified yeast homogenate was chosen as a model system containing the typical features of a direct extraction technique. Optimal conditions for the purification were determined in small scale, packed bed experiments conducted with clarified homogenates. Results from these experiments were used to develop a preparative scale separation of G6PDH in a STREAMLINE 50 EBA apparatus. The use of an on-line rotameter for measuring and controlling the height of the expanded bed when operated in highly turbid feedstocks was demonstrated. STREAMLINE DEAE has been shown to be successful in achieving isolation of G6PDH from an unclarified homogenate with a purification factor of 12 and yield of 98% in a single step process. This ion exchange adsorbent is readily cleaned using simple cleaning-in-place procedures without affecting either adsorption or the bed expansion properties of the adsorbent after many cycles of operation. The ability of combining clarification, capture, and purification in a single step will greatly simplify downstream processing flowsheets and reduce the costs of protein purification. © 1996 John Wiley & Sons, Inc.
    Additional Material: 3 Ill.
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  • 100
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 49 (1996), S. 259-265 
    ISSN: 0006-3592
    Keywords: hepatocytes ; lactose-derivatized polystyrene ; polystyrene ; Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: Hepatocytes isolated from male Fisher 344VF rats were cultured on two substrates, collagen I and a lactose-derivatized polystyrene (PS-lactose), to compare morphological and functional differences. Hepatocyte morphology changed dramatically depending upon the substrate, shown through actin cytoskeletal staining and scanning electron microscopy. Functional assays performed included albumin secretion, reduced glutathione content, UDP-glucuronosyl transferase, and cytochrome P4501A1 activity. The presence of dexamethasone and dimethylsulfoxide (DMSO) in the media was required for the maintenance of several differentiated functions for cells cultured on collagen. In general, cells cultured on the PS-lactose substrate showed a much slower loss of function over the same period of time. The maintenance of differentiated function of cells on PS-lactose was enhanced with the addition of dexamethasone and DMSO. This is the first report of a culture system in which hepatocytes, cultured on a polymer substrate without additional protein coatings or media additives, have been able to maintain differentiated functions for up to 1 week. © 1996 John Wiley & Sons, Inc.
    Additional Material: 7 Ill.
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