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  • 1
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    PANGAEA
    In:  Supplement to: Paton-Walsh, Clare; Guérette, Elise-Andrée; Kubistin, Dagmar; Humphries, Ruhi S; Wilson, Stephen R; Dominick, Doreena; Galbally, Ian; Buchholz, Rebecca R; Bhujel, Mahendra; Chambers, Scott D; Cheng, Min; Cope, Martin; Davy, Perry; Emmerson, Kathryn M; Griffith, David W T; Griffiths, Alan D; Keywood, Melita D; Lawson, Sarah; Molloy, Suzie; Rea, Geraldine; Selleck, Paul; Shi, Xue; Simmons, Jack B; Velazco, Voltaire (2017): The MUMBA Campaign: Measurements of Urban, Marine and Biogenic Air. Earth System Science Data, 9(1), 349-362, https://doi.org/10.5194/essd-9-349-2017
    Publication Date: 2023-01-13
    Description: The Measurements of Urban, Marine and Biogenic Air (MUMBA) campaign took place in Wollongong, New South Wales (a small coastal city approximately 80 km south of Sydney, Australia), from 21st December 2012 to 15th February 2013. Instruments were deployed during MUMBA to measure the gaseous and aerosol composition of the atmosphere with the aim of providing a detailed characterisation of the complex environment of the ocean/forest/urban interface that could be used to test the skill of atmospheric models. Gases measured included ozone, oxides of nitrogen, carbon monoxide, carbon dioxide, methane and many of the most abundant volatile organic compounds. Aerosol characterisation included total particle counts above 3 nm, total cloud condensation nuclei counts; mass concentration of PM2.5, number concentration size distribution, aerosol chemical analyses and elemental analysis. Meteorological measurements and LIDAR measurements were also performed. The campaign captured varied meteorological conditions, including two extreme heat events, providing a potentially valuable test for models of future air quality in a warmer climate. There was also an episode when the site sampled clean marine air for many hours, providing a useful additional measure of background concentrations of these trace gases within this poorly sampled region of the globe. Here we present the observations recorded at the MUMBA site during the campaign, as well as radon and air quality data from nearby sites. These records can be used for testing chemical transport models.
    Type: Dataset
    Format: application/zip, 17 datasets
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  • 2
    Publication Date: 2023-01-13
    Keywords: Australia; Boundary layer height, primary layer; Boundary layer height, secondary layer; Cloud base height; Confidence; DATE/TIME; Monitoring station; MONS; see further details; STRAT algorithm; Wollongong_MUMBA
    Type: Dataset
    Format: text/tab-separated-values, 16213 data points
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  • 3
    Publication Date: 2023-06-10
    Description: Measurements of volatile organic compounds (VOCs) were collected using an Ionicon 4000 Proton Transfer Reaction Time of Flight Mass Spectrometer (PTR-ToF-MS). Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29S 150°49'24.97E) from an inlet 10 m above ground level as part of the Characterizing Organics and Aerosol Loading over Australia (COALA-2020) campaign. The campaign ran from mid-January to mid-March, 2020, with the instrument running from early February. Data presented here corresponds to data used in paper by Mouat et al. (2021a) which spans from 2-6 Feb. 2020. These species are in addition to directly calibrated species archived by Mouat et al. (2021b) in a seperate PANGAEA record. Sample air was drawn down a 20 m PTFE inlet line with a bypass pump (flow rate 1.5 – 3 Lmin-1). Concentrations for compounds presented in this dataset were calculated using methodology proposed in Sekimoto et al. (2017).
    Keywords: 1-Butene; 2-(3H)Furanone + cis-2-butenediol; 2-Furanmethanol; 2-Furfural; 2-Hydroxy-3-methyl-2-cyclopenten-1-one; 5-Methyl furfural + catechol; Acetic acid; Appin, Australia; Australia; Benzaldehyde; Biogenic VOC; biomass burning; C3-Furan; Calculated, according to Sekimoto et al. (2017); Cataract_scout_park; Characterizing Organics and Aerosol Loading over Australia; COALA; COALA-2020; Creosol; Cyclopentanone + HCO1; DATE/TIME; Formamide; Formic acid; Furan; Guaiacol; Hydrocarbons, assorted; Maleic anhydride; Methyl acetate; Methylglyoxal; Methyl methacrylate; Methyl propanoate; MULT; Multiple investigations; Nitromethane; Phenol; Propene; PTR-ToF-MS; Styrene; volatile organic compounds
    Type: Dataset
    Format: text/tab-separated-values, 26975 data points
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  • 4
    Publication Date: 2023-07-18
    Description: Measurements of volatile organic compounds (VOCs) were collected using an Ionicon 4000 Proton Transfer Reaction Time of Flight Mass Spectrometer (PTR-ToF-MS). Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29"S 150°49'24.97"E) from an inlet 10 m above ground level as part of the Characterizing Organics and Aerosol Loading over Australia (COALA-2020) campaign. The campaign ran from mid-January to mid-March, 2020, with the instrument running from early February. Sample air was drawn down a 20 m PTFE inlet line with a bypass pump (flow rate 1.5 - 3 L min-1). Calibration occurred in situ using standard cylinders for the compounds reported below. Calibration uncertainty is ±20%. Additional compounds may be available on request. Measurements were processed using the Ionicon PTR-MS Viewer software. Measurements from February 2 - February 7 have been corrected to account for an identified inlet leak. A flat subtraction was applied, and resulting compound offsets are provided in the parameter comments. Data from February 7 – February 16 have been removed due to identified leak requiring greater corrections.
    Keywords: Acetaldehyde; Acetone; Acetonitrile; Appin, Australia; Australia; Benzene; Biogenic VOC; biomass burning; Butan-2-one; Cataract_scout_park; Characterizing Organics and Aerosol Loading over Australia; COALA; COALA-2020; DATE/TIME; HEIGHT above ground; Isoprene; Methacrolein + methyl vinyl ketone; Methanol; Monoterpenes; MULT; Multiple investigations; Precision; Prop-2-enal; Proton Transfer Reaction Time of Flight Mass Spectrometer, Ionicon 4000; PTR-ToF-MS, Ionicon 4000; Sum C8H10; Sum C9H12; Toluene; volatile organic compounds
    Type: Dataset
    Format: text/tab-separated-values, 885045 data points
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  • 5
    Publication Date: 2023-07-11
    Description: Measurements of radon-222 (222Rn) concentration were collected using a 1500 L dual-flow loop radon detector, designed and built by the Australian Nuclear Science and Technology Organisation (ANSTO; Lucas Heights, NSW, Australia) (Chambers et al., 2011; Whittlestone and Zahorowski, 1998). Sampling occurred at 65-75 L min^-1. Calibration occurred during the campaign from a Pylon (Ottawa, ON, Canada) source. Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29"S 150°49'24.97"E) from an inlet 3.94 m above ground level as part of the Characterizing Organics and Aerosol Loading over Australia (COALA-2020) campaign. The campaign ran from mid-January to mid-March, 2020. Reported measurements are at 30-minute time resolution. Concentrations have not been corrected for the response time of the detector but can be on the request of users. See Griffiths et al. (2016) for details.
    Keywords: aerosol; Appin, Australia; boundary layer; Cataract_scout_park; Characterizing Organics and Aerosol Loading over Australia; COALA; COALA-2020; DATE/TIME; Dual-flow loop radon detector, Australian Nuclear Science and Technology Organisation (ANSTO), Australia; HEIGHT above ground; MULT; Multiple investigations; radon; Radon-222 activity; Radon-222 activity uncertainty fraction; stability; tracer
    Type: Dataset
    Format: text/tab-separated-values, 5928 data points
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  • 6
    Publication Date: 2023-07-11
    Description: Measurements of aerosol size distribution between 14 and 661 nm diameter were measured using a TSI Scanning Mobility Particle Sizer (consisting of 3080 DMA, 3772 CPC and x-ray aerosol neutraliser, TSI Incorporated, Shoreview, MN, USA). Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29"S 150°49'24.97"E) from an inlet 5.13 m above ground level as part of the Characterising Organics and Aerosol Loading over Australia (COALA-2020) campaign. Zero and flow checks logged have been removed from the published measurements, presented at 1-minute temporal resolution. 1-minute data are spline interpolations of the 5-minute scan measurements output by the instrument. Measurements span from January 29 2020 until March 15 2020. Please note that the instrument was run with leaky impactor until February 18 2020. Measurements in this period should be treated with caution. Measurements made during February 18-20 were disrupted due to impactor testing and have been removed. Following February 20, measurements were made without an impactor. Measurements were not made between February 25 and February 29.
    Keywords: aerosol; Aerosol size distribution; Appin, Australia; biomass burning; Cataract_scout_park; Characterizing Organics and Aerosol Loading over Australia; COALA; COALA-2020; DATE/TIME; HEIGHT above ground; Log-normal particle size distribution, normalized concentration at particle diameter 101.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 105.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 109.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 113.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 117.6 nm; Log-normal particle size distribution, normalized concentration at particle diameter 121.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 126.3 nm; Log-normal particle size distribution, normalized concentration at particle diameter 131 nm; Log-normal particle size distribution, normalized concentration at particle diameter 135.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 14.6 nm; Log-normal particle size distribution, normalized concentration at particle diameter 140.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 145.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 15.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 15.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 151.2 nm; Log-normal particle size distribution, normalized concentration at particle diameter 156.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 16.3 nm; Log-normal particle size distribution, normalized concentration at particle diameter 16.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 162.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 168.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 17.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 174.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 18.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 18.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 181.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 187.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 19.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 194.6 nm; Log-normal particle size distribution, normalized concentration at particle diameter 20.2 nm; Log-normal particle size distribution, normalized concentration at particle diameter 20.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 201.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 209.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 21.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 216.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 22.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 224.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 23.3 nm; Log-normal particle size distribution, normalized concentration at particle diameter 232.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 24.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 241.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 25.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 250.3 nm; Log-normal particle size distribution, normalized concentration at particle diameter 259.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 25 nm; Log-normal particle size distribution, normalized concentration at particle diameter 26.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 269 nm; Log-normal particle size distribution, normalized concentration at particle diameter 27.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 278.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 28.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 289 nm; Log-normal particle size distribution, normalized concentration at particle diameter 299.6 nm; Log-normal particle size distribution, normalized concentration at particle diameter 30 nm; Log-normal particle size distribution, normalized concentration at particle diameter 31.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 310.6 nm; Log-normal particle size distribution, normalized concentration at particle diameter 32.2 nm; Log-normal particle size distribution, normalized concentration at particle diameter 322 nm; Log-normal particle size distribution, normalized concentration at particle diameter 33.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 333.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 34.6 nm; Log-normal particle size distribution, normalized concentration at particle diameter 346 nm; Log-normal particle size distribution, normalized concentration at particle diameter 35.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 358.7 nm; Log-normal particle size distribution, normalized concentration at particle diameter 37.2 nm; Log-normal particle size distribution, normalized concentration at particle diameter 371.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 38.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 385.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 40 nm; Log-normal particle size distribution, normalized concentration at particle diameter 41.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 414.2 nm; Log-normal particle size distribution, normalized concentration at particle diameter 42.9 nm; Log-normal particle size distribution, normalized concentration at particle diameter 429.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 44.5 nm; Log-normal particle size distribution, normalized concentration at particle diameter 445.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 46.1 nm; Log-normal particle size distribution, normalized concentration at particle diameter 461.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 47.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 478.3 nm; Log-normal particle size distribution, normalized concentration at particle diameter 49.6 nm; Log-normal particle size distribution, normalized concentration at particle diameter 495.8 nm; Log-normal particle size distribution, normalized concentration at particle diameter 51.4 nm; Log-normal particle size distribution, normalized concentration at particle diameter 514 nm; Log-normal particle size distribution, normalized concentration at particle diameter 53.3 nm; Log-normal particle size distribution, normalized
    Type: Dataset
    Format: text/tab-separated-values, 5717224 data points
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  • 7
    Publication Date: 2023-07-11
    Description: Measurements of black carbon aerosol were collected using a multi-angle absorption photometer (MAAP 5012, Thermo Fisher Scientific, Waltham, MA, USA). Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29"S 150°49'24.97"E) from an inlet 4.8 m above ground level as part of the Characterizing Organics and Aerosol Loading over Australia (COALA-2020) campaign. The instrument was operated using a sample flow rate of 1000 L/hr (16.67 LPM). The inlet was not heated. It was fitted with a PM10 cap, restricting the measured aerosol to diameters less than 10 µm. Measurements are taken at 1-minute time resolution, as reported here. Flagged measurements have been removed, except for the "Temperature error" flag. This flag was persistent throughout the campaign and relates to the use of a non-heated inlet. Measurements below 0.0005 ug/cm3 have been removed as this is below the detection limit of the instrument. Instrumental details and calculation of aerosol absorption coefficient can be found in Petzold et al. (2002).
    Keywords: aerosol; Aerosol absorption coefficient; Appin, Australia; biomass burning; black carbon; Black carbon, aerosol; Cataract_scout_park; Characterizing Organics and Aerosol Loading over Australia; COALA; COALA-2020; DATE/TIME; HEIGHT above ground; MAAP 5012; MULT; Multi-angle absorption photometer 5012, Thermo Fisher Scientific; Multiple investigations
    Type: Dataset
    Format: text/tab-separated-values, 125260 data points
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  • 8
    Publication Date: 2023-07-11
    Description: Measurements of photosynthetically active radiation (PAR) were taken using an Apogee SQ-110 sensor (Apogee Instruments, Inc., Logan, UT, USA). Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29"S 150°49'24.97"E) as part of the Characterizing Organics and Aerosol Loading over Australia (COALA-2020) campaign. The sensor was placed on an exposed railing 4.35 m above ground level. Measurements were taken at 1 Hz resolution. The measurements reported here are 1-minute averages of 1 Hz measurements. Both PPFD (Photosynthetic Photon Flux Density, measured wavelength range 400-700 nm) and YPFD (Yield Photon Flux Density, measured wavelength range 360-760 nm) are reported.
    Keywords: Apogee sun calibration quantum sensor SQ-110; Appin, Australia; Biogenic VOC; Cataract_scout_park; Characterizing Organics and Aerosol Loading over Australia; COALA; COALA-2020; DATE/TIME; HEIGHT above ground; MULT; Multiple investigations; PAR; photosynthetically active radiation; Photosynthetic photon, flux density; Photosynthetic photon, flux density, maximum; Photosynthetic photon, flux density, minimum; Photosynthetic photon, flux density, standard deviation; Yield photon, flux density; Yield photon, flux density, maximum; Yield photon, flux density, minimum; Yield photon, flux density, standard deviation
    Type: Dataset
    Format: text/tab-separated-values, 529032 data points
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  • 9
    Publication Date: 2023-07-11
    Description: Cloud condensation number concentration was measured using a Cloud Condensation Nuclei Counter (CCN100, Droplet Measurement Technologies, Longmont, Colorado, USA). Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29"S 150°49'24.97"E) from an inlet 5.13 m above ground level as part of the Characterizing Organics and Aerosol Loading over Australia (COALA-2020) campaign. The instrument was operated for the majority of the campaign at either 0.2% supersaturation or 0.5% supersaturation, with occasional measurements made at 1.0% supersaturation. Periods when zero and flow checks were carried out have been removed from the published measurements, presented at 1-hour temporal resolution. Data presented are hourly averages of the 1 Hz measurements output by the instrument. Hourly standard deviations are also reported generated from time-averaging of the measurements, and data at finer temporal resolution are available on request.
    Keywords: aerosol; Appin, Australia; biomass burning; Cataract_scout_park; ccn; Characterizing Organics and Aerosol Loading over Australia; cloud condensation nuclei; Cloud condensation nuclei; Cloud condensation nuclei, standard deviation; COALA; COALA-2020; DATE/TIME; HEIGHT above ground; MULT; Multiple investigations; SMPS, TSI; Supersaturation; TSI Scanning Mobility Particle Sizer
    Type: Dataset
    Format: text/tab-separated-values, 9361 data points
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  • 10
    Publication Date: 2023-07-11
    Description: Measurements of greenhouse gases were collected using a Fourier transform infrared (FTIR) trace gas and isotope analyser (Spectronus Trace Greenhouse Gas and Isotope Analyser, Ecotech, Knoxfield, VIC, Australia; Griffith et al., 2012). Measurements were taken at Cataract Scout Park, Appin, N.S.W. (34°14'42.29"S 150°49'24.97"E) from an inlet 4.68 m above ground level in eucalypt forest as part of the Characterizing Organics and Aerosol Loading over Australia (COALA-2020) campaign. The instrument was operated with a sample flow rate into the 2.5 L cell of ~0.9 slpm. The instrument was calibrated against a suite of four reference gases traceable to WMO-GAW scales before deployment. Measurements of a target tank were performed every two days during the campaign to monitor instrument drift. Measurements are reported at one-minute time resolution.
    Keywords: Appin, Australia; biomass burning; Carbon dioxide; Carbon monoxide; Cataract_scout_park; Characterizing Organics and Aerosol Loading over Australia; CO2 isotopes; COALA; COALA-2020; DATE/TIME; Fourier Transform Infrared (FTIR) spectrometer, Echotech, Spectronus Trace Greenhouse Gas and Isotope Analyser; Greenhouse gases; HEIGHT above ground; Methane; MULT; Multiple investigations; Nitrous oxide; δ13C, carbon dioxide; δ18O, carbon dioxide
    Type: Dataset
    Format: text/tab-separated-values, 452616 data points
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