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    SPARTAN: a global network to evaluate and enhance satellite-based estimates of ground-level particulate matter for global health applications

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    SPARTAN.pdf (2.179Mb)
    Date
    2015
    Author
    Snider, G.
    Garland, R.M.
    Tripathi, S. N.
    Weagle, C.L.
    Martin, R.V.
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    Abstract
    Ground-based observations have insufficient spatial coverage to assess long-term human exposure to fine particulate matter (PM2:5/ at the global scale. Satellite remote sensing offers a promising approach to provide information on both short- and long-term exposure to PM2:5 at local-toglobal scales, but there are limitations and outstanding questions about the accuracy and precision with which groundlevel aerosol mass concentrations can be inferred from satellite remote sensing alone. A key source of uncertainty is the global distribution of the relationship between annual average PM2:5 and discontinuous satellite observations of columnar aerosol optical depth (AOD). We have initiated a global network of ground-level monitoring stations designed to evaluate and enhance satellite remote sensing estimates for application in health-effects research and risk assessment. This Surface PARTiculate mAtter Network (SPARTAN) includes a global federation of ground-level monitors of hourly PM2:5 situated primarily in highly populated regions and collocated with existing ground-based sun photometers that measure AOD. The instruments, a three-wavelength nephelometer and impaction filter sampler for both PM2:5 and PM10, are highly autonomous. Hourly PM2:5 concentrations are inferred from the combination of weighed filters and nephelometer data. Data from existing networks were used to develop and evaluate network sampling characteristics. SPARTAN filters are analyzed for mass, black carbon, watersoluble ions, and metals. These measurements provide, in a variety of regions around the world, the key data required to evaluate and enhance satellite-based PM2:5 estimates used for assessing the health effects of aerosols. Mean PM2:5 concentrations across sites vary by more than 1 order of magnitude. Our initial measurements indicate that the ratio of AOD to ground-level PM2:5 is driven temporally and spatially by the vertical profile in aerosol scattering. Spatially this ratio is also strongly influenced by the mass scattering efficiency.
    URI
    http://hdl.handle.net/10394/18785
    http://dx.doi.org/10.5194/amt-8-505-2015
    http://www.atmos-meas-tech.net/8/505/2015/
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    • Faculty of Natural and Agricultural Sciences [4855]

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