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  • Data  (603)
  • ALTITUDE; AWIPEV; AWIPEV_based; Baseline Surface Radiation Network; BSRN; DATE/TIME; Dew/frost point; Monitoring station; MONS; NYA; Ny-Ålesund; Ny-Ålesund, Spitsbergen; Ozone, partial pressure; Pressure, at given altitude; Radiosonde, Vaisala, DigiCora; Temperature, air; Wind direction; Wind speed  (293)
  • ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed  (237)
  • Lithosphere
  • Monitoring system
  • PANGAEA  (530)
  • GFZ Data Services  (72)
  • The ScanArray consortium  (1)
Collection
  • Data  (603)
Keywords
Publisher
  • 1
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 9747 data points
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  • 2
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11888 data points
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  • 3
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11873 data points
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  • 4
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11939 data points
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  • 5
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11700 data points
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  • 6
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12018 data points
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  • 7
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 13076 data points
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  • 8
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11659 data points
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  • 9
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 6966 data points
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  • 10
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 7106 data points
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  • 11
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11637 data points
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  • 12
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 10521 data points
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  • 13
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 10796 data points
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  • 14
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12166 data points
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  • 15
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 10612 data points
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  • 16
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 10562 data points
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  • 17
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12514 data points
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  • 18
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 13131 data points
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  • 19
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11401 data points
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  • 20
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12353 data points
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  • 21
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11644 data points
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  • 22
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12227 data points
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  • 23
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 6806 data points
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  • 24
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 5396 data points
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  • 25
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 7416 data points
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  • 26
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 7370 data points
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  • 27
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 6541 data points
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  • 28
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 6371 data points
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  • 29
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11381 data points
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  • 30
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 6387 data points
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  • 31
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 7444 data points
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  • 32
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 7161 data points
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  • 33
    Publication Date: 2023-07-12
    Description: Abstract
    Description: From June to August 2021 the DEEPEN project deployed a dense seismic nodal network across the Hengill geothermal area in southwest Iceland to image and characterize faults and high-temperature zones at high resolution. The nodal network comprised 498 geophone nodes spread across the northern Nesjavellir and southern Hverahlíð geothermal fields and was complemented by an existing permanent and temporary backbone seismic network of a total of 44 short-period and broadband stations. In addition, two fiber optic telecommunication cables near the Nesjavellir geothermal power plant were interrogated with commercial DAS-interrogators. During the time of deployment, a vibroseis survey took place around the Nesjavellir power plant. The here published dataset contains a subset of the downsampled DAS-recordings from the eastern fiber optic array. To save storage space, only every fourth trace was made available. The original data were downsampled from 1000Hz to 250 Hz using the das-convert tool (https://doi.org/10.5880/GFZ.2.1.2021.005). Further traces or the original data can be obtained upon request. Waveform data are available from the GEOFON data centre, under network code ZH.
    Keywords: DAS ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~110G
    Format: .mseed
    Format: XML
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  • 34
    Publication Date: 2024-02-23
    Description: Abstract
    Description: Deployment of 10 seismometers for monitoring the induced seismicity of the Lacq gas field, France. This project focus on the analysis of the seismicity induced by anthropogenic activities (gas extraction and wastewater injection) related to the gas field, located in Lacq, France. We aim to answer the following questions: which part of the Lacq induced seismicity is generated by wastewater injection? by the mechanical evolution of the reservoir depletion? Is the seismicity confined to the (minor) faults of the reservoir or can regional tectonic faults be activated, generating large earthquakes? What scenarios of ground shaking and damages could be expected in case of a major event in the area? What is the associated seismic hazard and risk?
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; induced seismicity ; Lacq gas field ; waste water injection ; temporary seismological network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 EARTHQUAKES ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~300G
    Format: .mseed
    Format: XML
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  • 35
    Publication Date: 2024-02-23
    Description: Abstract
    Description: The network consists of a vertical borehole array equipped with 3C sensors (geophones) for the analysis of swarm earthquakes in the Western Bohemia / Vogtland area located in the German/Czech border region. A surface array is completing the 3D observation of the wave field with 3C sensors (geophones). Waveform data is available from the GEOFON data centre, under network code 6A, and is embargoed until FEB 2035.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; Germany ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 EARTHQUAKES ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~15T
    Format: .mseed
    Format: XML
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  • 36
    Publication Date: 2024-05-21
    Description: Abstract
    Description: The STRATEGy network was a temporary seismic network in the NW Argentinean Andean Foreland. It run for about 15 months between June 2016 and August 2017 and consisted of 13 stations for the most parts. Each station contains a Lennartz LE3D/5s seismometer, an Omnirecs DataCube³ext digitizer (100 Hz sampling rate) with external GPS antenna and internal flash memory. Station 14A consisted of a Mark L-4C-3D short-period sensor. The power was supplied through an external batteries that were recharged during the day via a solar panel. The sensors were oriented to magnetic north. The header of the waveform files (NSLC-IDs) still remained in its prior form (network code ST) and haven’t been adapted to the FDSN given code. Station codes (double digits) were assigned from North to South. The last digit of the station code is either A (for their initial position of a station site) or B (the station has been moved during the networks operation time due to low quality recordings at the respective initial site). Each site was chosen on 3 criteria: (1) minimizing the depth to bedrock, (2) maximizing remoteness, and (3) maximizing security, preferentially located within sight of nearby settlements. However, one station (02A) was lost due to theft and many others experienced recording gaps due to animals chewing on cables, malfunctions of electrical parts and mainly flooding of the stations during the austral summer monsoon. The overall network geometry evolved partially due to accessibility of remote locations, maintaining similar interstation distances and focusing around the epicenter of the Mw 5.7 El Galpón earthquake 9 months prior to the network’s starttime. The smallest depths to bedrock were achieved by concentrating the sites around two major bedrock ranges and their piedmont, Cerro Colorado and Sierra de la Candelaria. Waveform data are available from the GEOFON data centre, under network code 2S.
    Keywords: Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED
    Type: Dataset , Seismic Network
    Format: 111GB
    Format: .mseed
    Format: XML
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  • 37
    Publication Date: 2022-07-27
    Description: Abstract
    Description: The data set consists of dispersion curves and the corresponding 2D phase velocity maps based on earthquake generated Rayleigh surface waves and ambient noise, as well as the resultant shear-wave velocity model for entire Scandinavia (Norway, Sweden and Finland). We resolved the crust and mantle to 250 km depth to provide new insight into the maintenance of the Paleozoic Scandes mountain range and the lithospheric architecture of the Precambrian Baltic Shield (Mauerberger et al., in review). For this study, we use the virtual ScanArray network which consists of more than 220 seismic stations of the following contributing networks: The ScanArray Core (1G network, Thybo et al., 2012) consists of 72 broadband instruments which were operated by the ScanArray consortium (Thybo et al., 2021) between 2013-2017. We also used 28 stations from the NEONOR2 (2D network), 20 stations from the SCANLIPS3D (ZR network; England et al., 2015), 72 permanent stations from the Swedish National Seismic Network (SNSN; UP network; SNSN 1904) as well as further 35 permanent stations from the Finnish (HE and FN networks), Danish (DK network), Norwegian (NO network (NORSAR, 1971); NS (University of Bergen, 1982)) and international IU network (ALS/USGS, 1988). Since the exact operation times of the different temporary networks differ, we analyse data between 2014 and 2016, when most of the stations were operational. The pre-processing of the data involved the removal of a linear trend, application of a band-pass filter between 0.5 s and 200 s, downsampling to 5 Hz and deconvolution of the instrument response to obtain velocity seismograms. We also corrected for the misorientations stated in Grund et al., 2017.
    Keywords: Scandinavia ; Baltic Shield ; Lithosphere ; Topography ; Isostasy ; EARTH SCIENCE 〉 SOLID EARTH ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 EARTHQUAKES 〉 SEISMIC PROFILE 〉 SEISMIC SURFACE WAVES ; EARTH SCIENCE SERVICES 〉 MODELS
    Type: Model , Model
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  • 38
    Publication Date: 2024-02-23
    Description: Abstract
    Description: Geophysical section of Dublin institute for Advanced studies is a publicly funded (government) academic research organization that develop new methods for studying the earth. In this project we are trying to develop new environmentally friendly ways to monitoring ground integrity. The idea is to use ground vibrations from natural and man-made sources, that already exist in everyday life for monitoring ground integrity. Here we would like to see if ground vibrations made by passing trains can be used to determine the integrity of the ground beneath the train track itself. This project involves the recording and analysis in detail the seismic vibrations generated by trains in order to better understand the proprieties of the waves propagating from the railway trough the shallow underground. Waveform data are available from the GEOFON data centre.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~8GB
    Format: .mseed
    Format: XML
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  • 39
    facet.materialart.
    Unknown
    GFZ Data Services
    Publication Date: 2024-02-23
    Description: Abstract
    Description: The goal of Inter-Wind is to investigate and predict the induced seismic signals of wind turbines at different locations in Southern Germany. The experiments involve various sensor types and data loggers.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; passive seismology ; Monitoring system ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~39GB
    Format: .mseed
    Format: XML
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  • 40
    facet.materialart.
    Unknown
    GFZ Data Services
    Publication Date: 2024-02-23
    Description: Abstract
    Description: Ireland Array is an array of 20 broadband seismometers that was operated by the Dublin Institute for Advanced Studies across the Republic of Ireland. The array comprised up to 20 stations running simultaneously, all equipped with Trillium 120PA seismometers and Taurus data loggers. The 20 stations were installed in 2010–2012. Some of the stations were moved to new locations in Ireland in the course of the operation of the array, either in order to enhance the data sampling of the island or when the old deployment sites became unsuitable. Ireland Array dramatically increased the seismic data sampling of Ireland and enabled advances and discoveries in the studies of the structure and evolution of Ireland’s crust and lithosphere, seismicity of Ireland, and mechanisms of the Paleogene intraplate volcanism in Ireland and surroundings.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~2.4TB
    Format: .mseed
    Format: XML
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  • 41
    Publication Date: 2024-02-22
    Description: Abstract
    Description: This field campaign aimed at densifying the station coverage on the Armutlu Peninsula in the eastern Sea of Marmara. The Armutlu peninsula is directly crossed by the Armutlu fault, located roughly ~50 km away from the Istanbul metropolitan region. The main objective of this experiment is to characterize the seismic and aseismic deformation of this region. Waveform data are available from the GEOFON data centre, under network code 9P.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~600G
    Format: .mseed
    Format: XML
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  • 42
    Publication Date: 2024-04-11
    Description: Abstract
    Description: Understanding physical processes prior and during eruptions remains challenging, due to uncertainties about subsurface structures and undetected processes within the volcano. Here, the authors use a dedicated fibre-optic cable to obtain strain data and identify volcanic events and image hidden near-surface volcanic structural features at Etna volcano, Italy. In the paper Jousset et al. (2022), we detect and characterize strain signals associated with explosions, and we find evidences for non-linear grain interactions in a scoria layer of spatially variable thickness. We also demonstrate that wavefield separation allows us to incrementally investigate the ground response to various excitation mechanisms, and we identify very small volcanic events, which we relate to fluid migration and degassing. We recorded seismic signals from natural and man-made sources with 2-m spacing along a 1.5-km-long fibre-optic cable layout near the summit of actives craters of Etna volcano, Italy. Those results provide the basis for improved volcano monitoring and hazard assessment using DAS. This data publication contains the full data set used for the analysis. This data set comprises strain-rate data from 1 iDAS interrogator (~750 traces), velocity data from 15 geophones and 4 broadband seismometers, and infrasonic pressure data from infrasound sensors. For further explanation of the data and related processing steps, please refer to Jousset et al. (2022). Waveform data are available from the GEOFON data centre, under network code 9N.
    Keywords: fibre optics ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; Passive seismic ; Local network ; Temporary ; Volcano ; Velocity ; DAS ; MiniSEED
    Type: Dataset , Seismic Network
    Format: ~600G
    Format: .mseed
    Format: XML
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  • 43
    Publication Date: 2024-05-21
    Description: Abstract
    Description: Project SWEAP (Southwest Indian Ridge Earthquakes and Plumes), a collaborative effort led by the Alfred-Wegener-Institute, installed a network of 10 broad-band ocean bottom seismometers (OBS) along the ultraslow-spreading Oblique Supersegment of the Southwest Indian Ridge. The presented data set covers the continuous records of 8 stations of the network provided by the DEPAS instrument pool. One station of the original network could not be recovered, another one did not return data. The instruments were spaced at roughly 15 km intervals in a triangular shape network to either side of the rift axis covering about 60 km along axis between 13°E and 13.8°E and 60 km across axis between 52°S and 52.6°S. The determination of the OBS positions is described by Schmid et al. (2016). The network design was optimized for detecting and locating deep seismicity in the area. The rift valley was filled with soft silica ooze, producing considerable delay of S-phases at selected stations. Instrument deployment started during RV Polarstern cruise ANT-XXIX/2 on December 05 2012. Instrument recovery was completed during RV Polarstern cruise ANT-XXIX/8 on November 26 2013. 5 Refraction seismic lines were acquired by RV Polarstern cruise ANT-XXIX/8 from November 17 to 19 in 2013. All OBS could be synchronized with the GPS clock upon recovery such that skew values describing the clock drift are available for all stations. The non-linear clock drift of station SWE05 was determined by means of noise cross-correlations and applied to the data set. All other stations show a linear drift, which was corrected.
    Keywords: Monitoring system ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED ; DEPAS ; OBS
    Type: Dataset , Seismic Network
    Format: 161GB
    Format: .mseed
    Format: XML
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  • 44
    facet.materialart.
    Unknown
    GFZ Data Services
    Publication Date: 2024-05-21
    Description: Abstract
    Description: This dataset includes five stations of an Ocean Bottom Seismometer (OBS) experiment conducted at the southern end of the Fonualei Rift and Spreading Center in the Lau Basin, southwestern Pacific. The OBS recorded continuously for 32-days on 4 components, including a hydrophone and a 3-component 4.5 Hz geophone. The experiment was conducted during RV Sonne cruise SO267, project ARCHIMEDES I.
    Keywords: Monitoring system ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED ; OBS
    Type: Dataset , Seismic Network
    Format: 61GB
    Format: .mseed
    Format: XML
    Location Call Number Expected Availability
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  • 45
    Publication Date: 2024-05-21
    Description: Abstract
    Description: Geophysical section of Dublin institute for Advanced studies is a publicly funded (government) academic research organization that develop new methods for studying the earth. In this project we are trying to develop new environmentally friendly ways to monitoring ground integrity. The idea is to use ground vibrations from natural and man-made sources, that already exist in everyday life for monitoring ground integrity. Here we would like to see if ground vibrations made by passing trains can be used to determine the integrity of the ground beneath the train track itself. This project involves the recording and analysis in detail the seismic vibrations generated by trains in order to better understand the proprieties of the waves propagating from the railway trough the shallow underground. Waveform data are available from the GEOFON data centre.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED
    Type: Dataset , Seismic Network
    Format: 8.3GB
    Format: .mseed
    Format: XML
    Location Call Number Expected Availability
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  • 46
    Publication Date: 2022-01-05
    Description: Abstract
    Description: The southern Central Andes (SCA, 29°S-39°S) are characterized by the subduction of the oceanic Nazca Plate beneath the continental South American Plate. One striking feature of this area is the change of the subduction angle of the Nazca Plate between 33°S and 35°S from the Chilean-Pampean flat-slab zone (〈 5° dip) in the north to a steeper sector in the south (~30° dip). Subduction geometry, tectonic deformation, and seismicity at this plate boundary are closely related to the lithospheric strength in the upper plate. Despite recent research focused on the compositional and thermal characteristics of the SCA lithosphere, the lithospheric strength distribution remains largely unknown. Here we calculated the long-term lithospheric strength on the basis of an existing 3D model describing the variation of thickness, density and temperature of geological units forming the lithosphere of the SCA. The model consists of a continental plate with sediments, a two-layer crust and the lithospheric mantle being subducted by an oceanic plate. The model extension covers an area of 700 km x 1100 km, including the orogen (i.e. magmatic arc, main orogenic wedge), the forearc and the foreland, and it extents down to 200 km depth.
    Description: Methods
    Description: To compute the lithospheric strength distribution in the SCA, we used the geometries and densities of the units forming the 3D lithospheric scale model of Rodriguez Piceda et al. (2020a,b). The units considered for the rheological calculations are (1) oceanic and continental sediments; (3) upper continental crystalline crust; (4) lower continental crystalline crust; (5) continental lithospheric mantle (6) shallow oceanic crust; (7) deep oceanic crust; (8) oceanic lithospheric mantle; and (9) oceanic sub-lithospheric mantle. The thermal field was derived from a temperature model of the SCA (Rodriguez Piceda et al. under review) covering the same region as the structural model of Rodriguez Piceda et al. (2020a). To calculate the temperature distribution in the SCA, the model volume was split into two domains: (1) a shallow domain, including the crust and uppermost mantle to a depth of ~50 km below mean sea level (bmsl), where the steady-state conductive thermal field was calculated using as input the 3D structural and density model of the area of Rodriguez Piceda et al. (2020b, a) and the finite element method implemented in GOLEM (Cacace and Jacquey 2017); (2) a deep domain between a depth of ~50 and 200 km bmsl, where temperatures were converted from S wave seismic velocities using the approach by Goes et al. (2000) as implemented in the python tool VelocityConversion (Meeßen 2017). Velocities from two alternative seismic tomography models were converted to temperatures (Assumpção et al. 2013; Gao et al. 2021). A detailed description of the method can be found in Rodriguez Piceda et al. (under review). The yield strength of the lithosphere (i.e. maximum differential stress prior to permanent deformation) was calculated using the approach by Cacace and Scheck-Wenderoth (2016). We assumed brittle-like deformation as decribed by Byerlee’s law (Byerlee 1968) and steady state creep as the dominant form of viscous deformation. Low-temperature plasticity (Peierls creep) at differential stresses greater than 200 MPa was also included (Goetze et al. 1978; Katayama and Karato 2008). In addition, effective viscosities were computed from a thermally activated power-law (Burov 2011) We assigned rheological properties to each unit of the model on the basis of laboratory measurements (Goetze and Evans 1979; Ranalli and Murphy 1987; Wilks and Carter 1990; Gleason and Tullis 1995; Hirth and Kohlstedt 1996; Afonso and Ranalli 2004). These properties were chosen, in turn, based on the dominant lithology of each layer derived from seismic velocities and gravity-constrained densities. More methodological details and a table with the rheological properties are depicted in Rodriguez Piceda et al. (under review). The rheological results using the thermal model derived from the seismic tomography of Assumpção et al. (2013) and Gao et al. (2021) can be found in Rodriguez Piceda et al. (under review, under review), respectively
    Description: Other
    Description: Two comma-separated files can be found with the calculated lithospheric temperature, strength and effective viscosity for all the points in the model (2,274,757). These points are located at the top surface of each model unit. Therefore, the vertical resolution of the model is variable and depends on the thickness and refinement of the structural modelled units. SCA_RheologicalModel_V01.csv corresponds to the results using the mantle thermal field from the tomography by Assumpção et al. (2013) and presented in Rodriguez Piceda et al. (under review). SCA_RheologicalModel_V02.csv includes the results using the mantle thermal field of Gao et al. (2021) and presented in Rodriguez Piceda et al. (under review). Each of these files contains the following columns: -Northing as " X COORD (m [UTM Zone 19S]) " -Easting as " Y COORD (m [UTM Zone 19S]) " -Depth to the top surface as " Z COORD (m.a.s.l.)" -Temperature in degree Celsius as " TEMP (deg. C) " -Yield strength in MPa as “STRENGTH (MPa)” -Effective viscosity in base-10 logarithm of Pa*s as “EFF VISCOSITY (log10(Pa*s))” The dimensions of the model is 700 km x 1100 km x 200 km. The horizontal resolution is 5 km, while the vertical resolution depends on the thickness of the structural units.
    Keywords: Lithosphere ; Rheology ; Subduction ; Andes ; EARTH SCIENCE ; EARTH SCIENCE 〉 SOLID EARTH ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOMORPHIC LANDFORMS/PROCESSES 〉 TECTONIC LANDFORMS 〉 MOUNTAINS ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOMORPHIC LANDFORMS/PROCESSES 〉 TECTONIC PROCESSES 〉 SUBDUCTION ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 PLATE TECTONICS 〉 STRESS
    Type: Dataset , Dataset
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  • 47
    Publication Date: 2022-01-05
    Description: Abstract
    Description: The Central Andean orogen formed as a result of the subduction of the oceanic Nazca plate beneath the continental South-American plate. In the southern segment of the Central Andes (SCA, 29°S-39°S), the oceanic plate subducts beneath the continental plate with distinct dip angles from north to south. Subduction geometry, tectonic deformation, and seismicity at this plate boundary are closely related to lithospheric temperature distribution in the upper plate. Previous studies provided insights into the present-day thermal field with focus on the surface heat flow distribution in the orogen or through modelling of the seismic velocity distribution in restricted regions of the SCA as indirect proxy of the deep thermal field. Despite these recent advances, the information on the temperature distribution at depth of the SCA lithosphere remains scarcely constrained. To gain insight into the present-day thermal state of the lithosphere in the region, we derived the 3D lithospheric temperature distribution from inversion of S-wave velocity to temperature and calculations of the steady state thermal field. The configuration of the region – concerning both, the heterogeneity of the lithosphere and the slab dip – was accounted for by incorporating a 3D data-constrained structural and density model of the SCA into the workflow (Rodriguez Piceda et al. 2020a-b). The model consists on a continental plate with sediments, a two-layer crust and the lithospheric mantle being subducted by an oceanic plate. The model extension covers an area of 700 km x 1100 km, including the orogen (i.e. magmatic arc, main orogenic wedge), the forearc and the foreland, and it extents down to 200 km depth.
    Description: Methods
    Description: To predict the temperature distribution in the SCA, the model volume was subdivided into two domains: (1) a shallow domain, including the crust and uppermost mantle to a depth of ~50 km below mean sea level (bmsl), where the steady-state conductive thermal field was calculated using as input the 3D structural and density model of the area (Rodriguez Piceda et al., 2020a-b); (2) a deep domain between a depth of ~50 and 200 km bmsl, where temperatures were converted from S wave seismic velocities (Assumpção et al., 2013) using the approach by Goes et al. (2000) as implemented in the python tool VelocityConversion (Meeßen 2017). The 3D model of Rodriguez Piceda et al. (2020) consists of the following layers: (1) water; (2) oceanic sediments; (3) continental sediments; (4) upper continental crystalline crust; (5) lower continental crystalline crust; (6) continental lithospheric mantle (7) shallow oceanic crust; (8) deep oceanic crust; (9) oceanic lithospheric mantle; and (10) oceanic sub-lithospheric mantle. For the computation of temperatures in the shallow domain, three main modifications were made to the 3D model of Rodriguez Piceda et al. (2020a-b). First, we removed the water layer thus considering the topography/bathymetry as the top of the model. Second, the horizontal resolution was increased to 5 km and, third, the layers were vertically refined by a factor of 3 to 32. We assigned constant thermal properties (bulk conductivity λ and radiogenic heat production S) to each layer of the model according to each lithology (Alvarado et al. 2007, 2009; Ammirati et al. 2013, 2015, 2018; Araneda et al., 2003; Brocher, 2005; Čermák and Rybach, 1982; Contreras-Reyes et al., 2008; Christensen & Mooney, 1995; Gilbert et al., 2006; Hasterok & Chapman, 2011; He et al., 2008; Marot et al., 2014, Pesicek et al., 2012; Rodriguez Piceda et al., 2020; Scarfi & Barbieri, 2019; Vilà et al.,2010; Wagner et al., 2005; Xu et al., 2004). The steady-state conductive thermal field in the shallow domain was calculated applying the Finite Element Method as implemented in the software GOLEM (Cacace & Jacquey, 2017; Jacquey & Cacace, 2017). For the computation, we assigned fixed temperatures along the top and base of the model as thermal boundary conditions. The upper boundary condition was set at the topography/bathymetry and it is the temperature distribution from the ERA-5 land data base (Muñoz Sabater, 2019). The lower boundary condition was set at a constant depth of 50 km bmsl for areas where the Moho is shallower than 50 km bmsl and at the Moho depth proper where this interface is deeper than the abovementioned threshold. The temperature distribution at this boundary condition was calculated from the conversion of S-wave velocities to temperatures (Assumpção et al., 2013).
    Keywords: Lithosphere ; Andes ; Subduction ; Thermal Model ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOMORPHIC LANDFORMS/PROCESSES 〉 TECTONIC LANDFORMS 〉 MOUNTAINS ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOMORPHIC LANDFORMS/PROCESSES 〉 TECTONIC PROCESSES 〉 SUBDUCTION ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOTHERMAL DYNAMICS 〉 GEOTHERMAL TEMPERATURE ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOTHERMAL DYNAMICS 〉 GEOTHERMAL TEMPERATURE 〉 TEMPERATURE PROFILES ; EARTH SCIENCE 〉 SOLID EARTH 〉 ROCKS/MINERALS/CRYSTALS 〉 SEDIMENTS ; EARTH SCIENCE SERVICES 〉 MODELS 〉 GEOLOGIC/TECTONIC/PALEOCLIMATE MODELS
    Type: Dataset , Dataset
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  • 48
    Publication Date: 2024-02-06
    Description: Abstract
    Description: The project DARE proposes an integrated study of seismic site effects on the deep and elongated Messinian Rhône Canyon (French Rhône Valley). Lithological information from boreholes reaching the bedrock and preliminary geophysical campaigns indicate that the canyon can reach locally 〉500 m and may be deeply incised. The strong material contrast between the sedimentary filling and the substratum, as well as its expected confined geometry make this canyon a good candidate for generating various kinds of multi-dimensional site effects. Waveform data are available from the GEOFON data centre, under network code Y7.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~1T
    Format: .mseed
    Format: XML
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  • 49
    Publication Date: 2024-02-23
    Description: Abstract
    Description: The main aim of this project is to investigate the crustal and mantle structure beneath the Longmenshan fault zone in China, based on a very dense passive seismology profile. The Longmenshan fault zone hosted the Wenchuan earthquake of May 2008 with a magnitude (Mw) of 7.9 and the Lushan earthquake of June 2013 with a magnitude (Mw) of 6.6. It is planned to mainly use the receiver-function method, to investigate the crustal and mantle structure beneath the Longmenshan fault zone. Waveform data are available from the GEOFON data center, under network code 4O, and are embargoed until February 2024.
    Keywords: Broadband seismic waveforms ; Seismology ; temporary local seismic experiment ; Earthquake ; Receiver functions ; Crustal and mantle structure ; China ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~1T
    Format: .mseed
    Format: XML
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  • 50
    Publication Date: 2024-02-23
    Description: Abstract
    Description: The temporary seismic array of MySCOLAR in northern Myanmar consists of 30 broadband stations. The overall scientific goals are to understand the transition from continental collision to oceanic subduction, to quantify the partitioning of deformation in the accretionary prism, in the Burma Plate and along the strike-slip Sagaing fault system and to image the subducting Indian Plate beneath Myanmar and southwest China. The seismological analysis methods applied to this dataset will include location of local earthquakes and determining their focal mechanisms, surface wave tomography from ambient noise and earthquake data, body wave tomography from local and teleseismic earthquakes, full waveform inversion for Earth structure, receiver functions, and shear wave splitting. A subset of the stations was transmitting data in real time, and these stations contributed to real-time earthquake analysis by the Department of Meteorology and Hydrology (DMH) in Myanmar and the GEOFON earthquake monitoring service. Waveform data are available from the GEOFON data centre, under network code 6C.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~1T
    Format: .mseed
    Format: XML
    Location Call Number Expected Availability
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  • 51
    Publication Date: 2024-05-21
    Description: Abstract
    Description: Continuous passive seismic monitoring is carried out between September 2017 and December 2021 around the Theistareykir geothermal area located at the intersection between the active Northern Rift Zone and the active Tjörnes Fracture Zone in NE Iceland. This experiment, in addition to an extensive gravimetric monitoring survey, was conducted in the framework of the MicroGraviMoTiS project for a better understanding of the structures and behavior of the local geothermal system under exploitation and for further development of local and regional geothermal resources. 14 broadband stations (Trillium C-120s) recording at 200 Hz comprise the temporary network, that is installed to complement stations of the national seismological network of IMO and stations of Landsvirkjun, the National Power Company of Iceland. The stations were placed in and around the producing zone to primarily retrieve local natural and/or induced seismicity associated to the injection and production operations. The retrieved seismic data is also used for obtaining a representative 1D velocity model of the region, for computing a seismic ambient noise tomography, and for monitoring the system using coda wave interferometry techniques. Funding for this project is provided by the German Federal Ministry for Education and Research (MicroGraviMoTiS , BMBF, grant: 03G0858A), the Helmholtz Centre Potsdam GFZ German Research Centre for Geosciences and Landsvirkjun. Waveform data are available from the GEOFON data center, under network code 3P, and are embargoed until December 2025.
    Keywords: Broadband seismic waveforms ; Seismology ; temporary local seismic experiment ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED ; GIPP ; MESI ; Volcano
    Type: Dataset , Seismic Network
    Format: 783GB
    Format: .mseed
    Format: XML
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  • 52
    facet.materialart.
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11868 data points
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  • 53
    facet.materialart.
    Unknown
    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11113 data points
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  • 54
    facet.materialart.
    Unknown
    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12290 data points
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  • 55
    facet.materialart.
    Unknown
    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11454 data points
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  • 56
    facet.materialart.
    Unknown
    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12641 data points
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  • 57
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12256 data points
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  • 58
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12554 data points
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  • 59
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12494 data points
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  • 60
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12471 data points
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  • 61
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12115 data points
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  • 62
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12309 data points
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  • 63
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12977 data points
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  • 64
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11800 data points
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  • 65
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12275 data points
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  • 66
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12521 data points
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  • 67
    Publication Date: 2022-01-05
    Description: Abstract
    Description: The Central Andean orogeny is caused by the subduction of the Nazca oceanic plate beneath the South-American continental plate. In Particular, the Southern Central Andes (SCA, 27°-40°S) are characterized by a strong N-S and E-W variation in the crustal deformation style and intensity. Despite being the surface geology relatively well known, the information on the deep structure of the upper plate in terms of its thickness and density configurations is still scarcely constrained. Previous seismic studies have focused on the crustal structure of the northern part of the SCA (~27°-33°S) based upon 2D cross-sections, while 3D crustal models centred on the South-American or the Nazca Plate have been published with lower resolution. To gain insight into the present-day state of the lithosphere in the area, we derived a 3D model that is consistent with both the available geological and seismic data and with the observed gravity field. The model consists on a continental plate with sediments, a two-layer crust and the lithospheric mantle being subducted by an oceanic plate. The model extension covers an area of 700 km x 1100 km, including the orogen, the forearc and the forelands.
    Description: Methods
    Description: Different data sets were integrated to derive the lithospheric features: - We used the global relief model of ETOPO1 (Amante and Eakins 2009) for the topography and bathymetry. - The sub-surface structures were defined by integrating seismically constrained models, including the South-American crustal thickness of Assumpção et al. (2013; model A; 0.5 degree resolution), the sediment thickness of CRUST1 (Laske et al. 2013) and the slab geometry of SLAB2 (Hayes et al. 2018). - Additionally, we included seismic reflection and refraction profiles performed on the Chile margin (Araneda et al. 2003; Contreras-Reyes et al. 2008, 2014, 2015; Flueh et al. 1998; Krawzyk et al. 2006; Moscoso et al. 2011; Sick et al. 2006; Von Huene et al. 1997). - Besides, we used sediment thickness maps from the intracontinental basin database ICONS (6 arc minute resolution, Heine 2007) and two oceanic sediment compilations: one along the southern trench axis (Völker et al. 2013) and another of global-scale (GlobSed; Straume et al. 2019). To build the interfaces between the main lithospheric features, we compiled and interpolated these datasets on a regular grid with a surface resolution of 25 km. For that purpose, the convergent algorithm of the software Petrel was used. We assigned constant densities within each layer, except for the lithospheric mantle. In this case, we implemented a heterogeneous distribution by converting s-wave velocities from the SL2013sv seismic tomography (Schaeffer and Lebedev 2013) to densities. The python tool VelocityConversion was used for the conversion (Meeßen 2017). To further constrain the crustal structure of the upper plate, a gravity forward modelling was carried out using IGMAS+ (Schmidt et al. 2010). The gravity anomaly from the model (calculated gravity) was compared to the free-air anomaly from the global gravity model EIGEN-6C4 (observed gravity; Förste et al 2014; Ince et al. 2019). Subsequently, the crystalline crust of the upper plate was split vertically into two layers of different densities. We inverted the residual between calculated and observed gravity to compute the depth to the interface between the two crustal layers. For the inverse modelling of the gravity residual, the Python package Fatiando a Terra was used (Uieda et al. 2013) For each layer, the depth to the top surface, thickness and density can be found as separate files. All files contain identical columns: - Northing as "X Coord (UTM zone 19S)"; - Easting as "Y Coord (UTM zone 19S)"; - depth to the top surface as "Top (m.a.s.l)" and - thickness of each layer as "Thickness (m)". The header ‘Density’ indicates the bulk density of each unit in kg/m3. For the oceanic and continental mantle units, a separate file is provided with a regular grid of the density distribution with a lateral resolution of 8 km x 9 km and a vertical resolution of 5 km. The containing columns are: Northing as "X Coord (UTM zone 19S)"; Easting as "Y Coord (UTM zone 19S)"; depth as "Depth (m.a.s.l)" and density as "Density (kg/m3)"
    Keywords: Lithosphere ; Gravity Modelling ; Andes ; EARTH SCIENCE ; EARTH SCIENCE 〉 LAND SURFACE 〉 TOPOGRAPHY 〉 TOPOGRAPHICAL RELIEF ; EARTH SCIENCE 〉 OCEANS 〉 BATHYMETRY/SEAFLOOR TOPOGRAPHY 〉 BATHYMETRY ; EARTH SCIENCE 〉 SOLID EARTH ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOMORPHIC LANDFORMS/PROCESSES 〉 TECTONIC LANDFORMS 〉 MOUNTAINS ; EARTH SCIENCE 〉 SOLID EARTH 〉 GEOMORPHIC LANDFORMS/PROCESSES 〉 TECTONIC PROCESSES 〉 SUBDUCTION ; EARTH SCIENCE 〉 SOLID EARTH 〉 GRAVITY/GRAVITATIONAL FIELD ; EARTH SCIENCE 〉 SOLID EARTH 〉 GRAVITY/GRAVITATIONAL FIELD 〉 GRAVITY ; EARTH SCIENCE 〉 SOLID EARTH 〉 ROCKS/MINERALS/CRYSTALS 〉 SEDIMENTS ; EARTH SCIENCE SERVICES 〉 MODELS 〉 GEOLOGIC/TECTONIC/PALEOCLIMATE MODELS
    Type: Dataset , Dataset
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  • 68
    Publication Date: 2023-02-08
    Description: Abstract
    Description: Volcanic eruptions are regularly observed on the island of Fogo, Cape Verde, with an average re-occurrence interval of ca. 20 years. However, the structure and extent of the related volcanic plumbing system are not well understood. Previous studies have investigated earthquakes related to magmatic processes connected with the Fogo volcano using conventional network configurations. Seismicity has been reported to occur mainly southwest of the island of Brava while a more recent study reports on activity focussed between Brava and Fogo. Multi-array seismology has the potential to significantly reduce the localization errors of seismic events in particular for those outside a station network and to lower the detection threshold. The subject of this study is the investigation of the local volcano-related seismicity applying multi-array methods which is a unique task amongst the research activities at German universities. The scientific aims are (a) to precisely map local events to constrain the structure of and the dynamic processes within the volcanic plumbing system, (b) to image the magma source region below the Fogo volcano using reflected and backscattered waves, and (c) to localize low-frequency volcanic tremor events. Waveform data are available from the GEOFON data centre, under network code 9J, and are embargoed until February 2022.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~1T
    Format: .mseed
    Format: XML
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  • 69
    Publication Date: 2024-02-21
    Description: Abstract
    Description: The Bransfield Strait is a seismically active extensional rift located between the Antarctic Peninsula and the South Shetland Islands. The Strait is partly located on continental crust including areas within the transition to seafloor spreading. The amphibious seismic network BRAVOSEIS is an international effort focused on the seismological research of submarine volcanoes and rift dynamics in the Bransfield Strait. This network is the onshore component of the entire network consisting of 15 broadband land stations deployed in the South Shetland Islands and Antarctic Peninsula between January 2018 and February 2020. The offshore components (network code ZX) include 9 broadband ocean bottom seismometers (OBS) across the Central Bransfield Basin and a group of 6 hydrophone moorings spanning the rift area of 200 x 100 km2, with inter-station distance of ~30 km. Additionally, a smaller offshore array consisting of 15 short-period OBSs with an aperture of 20 km and a narrow inter-station distance of ~4 km was deployed around the Orca submarine volcanic edifice south of King George Island. The data will be used to study the geodynamics of the Bransfield Strait and the evolution of the incipient rifting zone in the domain where extension has been suggested. Seismological methods will include earthquake location, source mechanism, surface wave analysis with ambient noise and earthquake data, receiver function and shear wave splitting. The results may shed light on the crustal structure and tectonic regime in the region and image the location and extent of magma accumulations related to submarine volcanic structures. Finally, the results should provide clues to assess the internal processes that occur in the submarine volcanoes of the area undergoing rifting. Waveform data are available from the GEOFON data centre, under network code 5M, and are embargoed until March 2024.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~1T
    Format: .mseed
    Format: XML
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  • 70
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    GFZ Data Services
    Publication Date: 2024-02-21
    Description: Abstract
    Description: The complete network consisted of 11 stations deployed on the island of Fogo, Cape Verde. Eight of the stations formed an arraywith an aperture of 700 m, deployed in the south of the island near the village of Achada Furna. Seven of the array stations were equipped with 3-component 4.5 Hz geophones, one with a Trillium Compact (broad-band) sensor. The remaing three stations were distributed across the island and equipped with Trillium Compact sensors. Data were recorded continuously from October 2015 to December 2016 with a sample rate of 200 Hz. Due to limited data storage, there are four recording gaps (20/12/2015-14/01/2016; 28/03/2016-04/04/2016; 17/06/2016-18/07/2016; 01/10/2016-18/10/2016). The network served as a pilot study for the more comprehensive study, FoMaPS, from 2017 to 2018 (FDSN code 9J), involving station deployments on Fogo and Brava. Waveform data are available from the GEOFON data centre, under network code 5M, and are embargoed until July 2021.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~300G
    Format: .mseed
    Format: XML
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  • 71
    Publication Date: 2024-02-23
    Description: Abstract
    Description: IMAGE is a two year seismological experiment realized at the Reykjanes Peninsula by Philippe Jousset (GFZ Potsdam) and Gylfi P. Hersir (ISOR Iceland). Reykjanes Peninsula is located at the southwestern tip of Iceland, at the emergent part of the Mid-oceanic Ridge. This area has a high seismicity and is exploited for its high geothermal potential. The deployment is performed to carry out a local seismological study with techniques such as seismic tomography (earthquake based, e.g. Jousset et al., 2016, and ambient noise e.g., Martins et al., 2020). The aim of the seismic experiment is to monitor the seismic activity associated with the rift processes (Blank et al., 2020) and/or the induced seismicity. The network comprised 30 onland stations (GIPP) and 21 Ocean Bottom Seismometers (Lobsters, DEPAS). Onland stations were deployed from April 2014 until August 2015 and comprise 20 broadband seismic stations (Nanometrics Trillium Compact 120 s), 10 short-period sensors (Mark sensors 1 Hz) and data loggers (DATA-CUBE) with acquisition frequencies of 200 Hz. Sensors were buried 30-40 cm deep in the ground in containers. Data gaps are minimal, and occurred every 3 months when the batteries were exchanged and data downloaded from the DATA-CUBEs. OBS were deployed in August 2014 and recorded for about a year. From this dataset, a catalogue of about 2000 earthquakes could be extracted. Waveform data are available from the GEOFON data centre, under network code 4L.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~3.2T
    Format: .mseed
    Format: XML
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  • 72
    Publication Date: 2024-02-23
    Description: Abstract
    Description: As part of project FUTUREVOLC, European volcanological supersite in Iceland: a monitoring system and network for the future, two 7-element seismic broadband arrays were installed outside the western margin of Vatnajökull glacier, Iceland. The goal was to study seismic tremor associated with floods originating in the eastern and western Skaftár cauldrons. A third temporary array was installed during the Bárðarbunga 2014-2015 volcanic eruption near the eruption site. The aim of the array installations was to discriminate between different seismic tremor sources, namely volcanic eruptions, lava flows, hydrothermal explosions and subglacial floods (jökulhlaups). The main aim of the two arrays installed on the western margin of Vatnajökull was to study their early-warning potential through the analysis of four subglacial floods observed during the study period. The seismic vibrations associated with these floods have an emergent start, are of long duration and are referred to as tremor or high-frequency noise. Due to the lack of clear discrete onsets they cannot be located using traditional earthquake location methods. Instead clusters of seismometers (called arrays) are employed to both locate the tremor source and determine the wave type in the tremor (surface vs. body waves). The array data recorded during the Bárðarbunga eruption were used to investigate the nature of shallow, pre-eruptive, long-duration seismic tremor activity related to shallow dyke formation. The sources of the tremor were found to locate at the eruption site and under ice cauldrons which formed on the ice surface during the first weeks of the unrest. Waveform data are available from the GEOFON data centre, under network code 5L.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~570G
    Format: .mseed
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  • 73
    Publication Date: 2024-02-23
    Description: Abstract
    Description: Strokkur_1yr is a one year seismological experiment realized at the most active geyser on Iceland by Eva Eibl (University of Potsdam) in collaboration with Thomas R. Walter, Phillippe Jousset, Torsten Dahm, Masoud Allahbakhshi, Daniel Müller from GFZ Potsdam and Gylfi P. Hersir from ISOR Iceland. The geyser is part of the Haukadalur geothermal area in south Iceland, which contains numerous geothermal anomalies, hot springs, and basins (Walter et al., 2018). Strokkur is a pool geyser and has a silica sinter edifice with a water basin on top, which is about 12 m in diameter with a central tube of more than 20 m depth. The aim of the seismic experiment is to monitor eruptions of Strokkur geyser from June 2017 to June 2018 using four broadband seismic stations (Nanometrics Trillium Compact Posthole 20 s). Sensors were buried 30–40 cm deep in the ground at distances of 38.8 m (G4, SE), 47.3 m (G3, SW), 42.5 m (G2, N), and 95.5 m (G1, NE) from Strokkur center. Data gaps represent 15–44 % of the records as during the winter period maintenance intervals were longer and battery drainage was high. However, at any given time, at least one station recorded the eruptions. From this dataset, converted to MSEED using Pyrocko, a catalogue of 70,000 eruptions was determined and further investigated in Eibl et al. (2020) Waveform data are available from the GEOFON data centre, under network code 7L.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~100G
    Format: .mseed
    Format: XML
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  • 74
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11962 data points
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  • 75
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12105 data points
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  • 76
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12431 data points
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  • 77
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11326 data points
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  • 78
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12341 data points
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  • 79
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11284 data points
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  • 80
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12106 data points
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  • 81
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 13222 data points
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  • 82
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12428 data points
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  • 83
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11177 data points
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  • 84
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12767 data points
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  • 85
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 11969 data points
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  • 86
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12565 data points
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  • 87
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12888 data points
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  • 88
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 13096 data points
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  • 89
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12955 data points
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  • 90
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    PANGAEA
    In:  NOAA - Air Resources Laboratory, Boulder
    Publication Date: 2024-01-23
    Keywords: ALTITUDE; Baseline Surface Radiation Network; BON; Bondville; BSRN; DATE/TIME; Dew/frost point; Illinois, United States of America; Monitoring station; MONS; Pressure, at given altitude; Radiosonde, Vaisala, RS80-57H; Temperature, air; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 12608 data points
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  • 91
    Publication Date: 2023-02-08
    Description: Abstract
    Description: SMARTIE1 is a joint seismological experiment of the Karlsruhe Institute of Technology (KIT) and the Leipzig University. We installed in total 36 seismic stations as ring-like and profile-like measurements near to a single wind turbine (WT) at the Fraunhofer Institute for Chemical Technology (ICT) in Pfinztal, SW Germany, for 21 days. The main goals of this project are a better understanding of a single WT as a seismic source and the development of propagation models for the WT-induced seismic signals, depending on the geological properties. Waveform data are available from the GEOFON data centre, under network code X8 (under CC-BY 4.0 license according to GIPP-rules), and are embargoed until Jan 2020.
    Keywords: Broadband seismic waveforms ; Seismology ; temporary local seismic experiment ; induced seismic signals ; wind turbine ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: ~1T
    Format: .mseed
    Format: XML
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  • 92
    Publication Date: 2023-02-08
    Description: Abstract
    Description: Our understanding of the effects of ice on channel morphodynamics and bedload transport in northern rivers, frozen for several months, are hindered by the difficulties of ‘seeing’ through the ice. We use continuous seismic records of a small network at the Sävar River in northern Sweden to interpret processes and quantify water and sediment fluxes. We apply a seismic inversion approach to determine seasonal differences in hydraulics and bedload sediment transport under ice-covered vs. open-channel flow conditions and provide a first-order estimation of sediment flux in that Fennoscandian river. Analysis of seismic signals of ice-cracking support our visual interpretation of ice break-up timing and the main ice break-up mechanism as thermal rather than mechanical. Waveform data are available from the GEOFON data centre, under network code 8E, and are available under CC-BY 4.0 license.
    Keywords: Broadband seismic waveforms ; Seismic monitoring ; temporary local seismic network ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 EARTHQUAKES ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~100G
    Format: .mseed
    Format: XML
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  • 93
    Publication Date: 2024-02-23
    Description: Abstract
    Description: A line of 6 broadband seismometers have been deployed across a ridge in the Hualien County (Eastern Taiwan). From March 2015 to June 2016 the network has been continuously recording waves incoming from the Taiwanese regional seismicity. During that period, more than 2000 earthquakes with magnitudes Ml〉3 and distant from less than 200km were recorded. The hill is well approximated by a triangular topography of 3600m in length by 900m in height. Waveform data are open and available from the GEOFON data centre, under network code 5K.
    Keywords: Broadband seismic waveforms ; Seismology ; temporary local seismic experiment ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~240G
    Format: .mseed
    Format: XML
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  • 94
    Publication Date: 2024-02-23
    Description: Abstract
    Description: We propose to investigate the structure and evolution of the Main Pamir Thrust (MPT) with a high-density seismological array. The MPT, with its surface expression along the east-west trending Alai Valley, marks the northern boundary of the Pamir. The Alai Valley, separating the Pamir and the Tien Shan, constitutes the last vestige of a formerly continuous basin that linked the Tarim and the Tajik Basins. The MPT manifests itself as a place of high seismic activity with frequently occurred disastrous earthquakes. The array is about 50 km long, consisted of 90 three-component geophones (stations G?? and C??) and 10 Trillium-Compact seismometers (stations T??), and equipped with 100 CUBE dataloggers. We will construct a high-resolution receiver function profile to image the MPT and accurately locate the local earthquakes associated with the MPT. Funded by BMBF, within the framework of CaTeNA project – Climatic and Tectonic Natural Hazards in Central Asia. Waveform data are available from the GEOFON data centre, under network code 7A and are embargoed until Jan 2024.
    Keywords: Broadband seismic waveforms ; Seismology ; temporary local seismic experiment ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~240G
    Format: .mseed
    Format: XML
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  • 95
    Publication Date: 2024-02-23
    Description: Abstract
    Description: Extensive passive seismic monitoring was carried out between September 2017 and September 2018 over the Los Humeros geothermal field in Mexico. This experiment, in addition to several geophysical, geological, and geochemical surveys was conducted in the framework of the European H2020 and Mexican CONACyT-SENER project GEMex for a better understanding of the structures and behavior of the local geothermal system currently under exploitation, and for investigating future development areas. 25 broadband stations (22 Trillium C-120s and 3 Trillium C-20 PH) recording at 200 Hz, and 20 short period stations (Mark L-4C-3D) recording at 100 Hz comprised the network which is sub-divided into two sub-networks. An inner and denser (~1.6-2 km inter-station distance) pseudo-rhomboidal array (27 stations) was laid out to cover the producing zone and retrieve local seismicity mainly associated to injection and production operations, and to comply with beamforming of ambient noise and time reverse imaging techniques. An outer and sparser (~5 km minimum spacing) array was placed at around 30 km radius surrounding the inner network, and was mainly dedicated to larger scale imaging techniques, such as seismic ambient noise tomography, and regional earthquakes tomography. The GEMex project is supported by the European Union’s Horizon 2020 programme for Research and Innovation under grant agreement No 727550 and the Mexican Energy Sustainability Fund CONACYT-SENER, project 2015-04-68074. Waveform data are available from the GEOFON data centre, under network code 6G and are embargoed until Jan 2023.
    Keywords: Broadband seismic waveforms ; Seismology ; temporary local seismic experiment ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS
    Type: Dataset , Seismic Network
    Format: ~1T
    Format: .mseed
    Format: XML
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  • 96
    Publication Date: 2024-05-21
    Description: Abstract
    Description: The unrest of el Hierro Islands started in 2011 with a submarine volcanic eruption. In order to better characterize unrest of El Hierro Island 9 landstations were installed on the Island of ElHierro (Figure 1) between March 2015 and June 2016. Waveform data are available from the GEOFON data centre, under network code 2L and are embargoed until Jan 2021.
    Keywords: Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED ; GIPP ; MESI
    Type: Dataset , Seismic Network
    Format: 327GB
    Format: .mseed
    Format: XML
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  • 97
    Publication Date: 2024-05-21
    Description: Abstract
    Description: The Liquiñe-Ofqui fault system (LOFS) in south-central Chile provides a natural laboratory to assess the interplay between magma/hydrothermal fluid flow and crustal deformation. Understanding these processes is of paramount importance for geothermal energy exploration and seismic hazard assessment. We deployed a dense seismic network (Sielfeld et al., 2019) at the northern termination of the LOFS in south-central Chile (~38°S) between 2014 March and 2015 June. The main aim was to better understand the significance and implications of seismic activity in relation to geological information such as the complex fault-fracture network, volcanoes, and the stress field estimated from geological data. As a result, the network was designed to monitor the northern segment of the LOFS on a more regional scale rather than concentration on the activity of one volcano. The network covered a ~200‐km‐long section of the Southern Volcanic Zone, including several Holocene stratovolcanoes (Callaqui, Copahue, Caviahue Caldera, Tolhuaca, Lonquimay, Llaima, Sierra Nevada, Sollipulli, Villarrica, Quetrupillán, Lanín (La), and Mocho‐Choshuenco). Waveform data are open and available under network code 3H from the GEOFON data centre under license CC BY 4.0.
    Keywords: LOFZ ; LOFS ; Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED ; GIPP ; MESI
    Type: Dataset , Seismic Network
    Format: 636GB
    Format: .mseed
    Format: XML
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  • 98
    Publication Date: 2024-05-21
    Description: Abstract
    Description: Cliffs line many erosional coastlines. Localized failures can cause land loss and hazard, and impact ecosystems and sediment routing. Links between cliff erosion and forcing mechanisms are poorly constrained, due to limitations of classic approaches. Combining multi-seasonal seismic and drone surveys, wave, precipitation and groundwater data we study drivers and triggers of seismically detected failures along the chalk cliffs on Germany's largest island, Rügen. The network consists of four (later five) seismic stations along the 8.6 km long chalk cliff coast. Waveform data are available from the GEOFON data centre, under network code 4K, and are embargoed until Jan 2021.
    Keywords: Monitoring system ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 EARTHQUAKES ; EARTH SCIENCE 〉 SOLID EARTH 〉 TECTONICS 〉 VOLCANIC ACTIVITY ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS 〉 SEISMOLOGICAL STATIONS ; Passive seismic ; Seismometers ; Velocity ; MiniSEED ; GIPP ; MESI
    Type: Dataset , Seismic Network
    Format: 624GB
    Format: .mseed
    Format: XML
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  • 99
    Publication Date: 2023-02-08
    Description: Abstract
    Description: Earthquake Early Warning and Rapid Response Systems (EEWRRS) should be a viable complement to other disaster risk reduction strategies, particularly in economically developing countries. The „Early Warning and Impact Forecasting“ group (GFZ, section 2.6) is actively involved in the development of novel strategies to develop scientific and technological solutions that may be efficiently applied in countries with limited resources. The proposed solution includes a risk estimation module that extracts from a portfolio of precomputed impact scenarios those matching the characterization of the event detected by an optimized real-time monitoring network. The real-time network integrates both local, on-site components based on low-cost, smart sensor platforms, as well as regional, sparse strong-motion stations. This hybrid solution allows for the optimization of the lead-time and is tailored to the seismotectonic features of the considered region. A prototype EEWRR System is being developed for the Kyrgyz Republic, with the support of the partner CAIAG and in collaboration with the Ministry of Emergency Solutions of the Government of the Kyrygz Republic (MES). Waveform data are available from the GEOFON data centre, under network code AD.
    Keywords: geophysics ; seismology ; seismic noise ; earthquakes ; seismic hazard ; broad band ; velocity ; displacement ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: 〉1T
    Format: .mseed
    Format: XML
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  • 100
    Publication Date: 2023-02-08
    Description: Abstract
    Description: Building monitoring and decentralized, on-site Earthquake Early Warning system for the Kyrgyz capital Bishkek. Several low cost sensors equipped with MEMS accelerometers have been installed in eleven buildings within the urban area of the city. The different sensing units communicate with each other via wireless links and the seismic data are streamed in real-time to data centres at GFZ and the Central Asian Institute for Applied Geoscience (CAIAG) using internet. Since each sensing unit has its own computing capabilities, software for data processing can be installed to perform decentralised actions. In particular, each sensing unit can perform event detection tasks and run software for on-site early warning. If a description for the vulnerability of the building is uploaded to the sensing unit, this can be exploited to introduce the expected probability of damage in the early-warning protocol customized for a specific structure. Waveform data are available from the GEOFON data centre, under network code KD.
    Keywords: geophysics ; seismology ; seismic noise ; earthquakes ; seismic hazard ; broad band ; velocity ; displacement ; Monitoring system ; Seismological stations ; In Situ/Laboratory Instruments 〉 Magnetic/Motion Sensors 〉 Seismometers ; In Situ Land-based Platforms 〉 GEOPHYSICAL STATIONS/NETWORKS
    Type: Dataset , Seismic Network
    Format: 〉1T
    Format: .mseed
    Format: XML
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