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Differential Column Measurements Using Compact Solar-Tracking Spectrometers

DOI:10.5194/acp-2015-1058 期刊:Atmospheric Chemistry and Physics Discussions 出版年份:2016 更新时间:2025-09-23 15:21:21
摘要: We demonstrate the use of compact solar-tracking Fourier transform spectrometers (Bruker EM27/SUN) for differential measurements of the column-averaged dry-air mole fractions of CH4 and CO2 within urban areas. Using Allan variance analysis, we show that the differential column measurement has a precision of 0.1% for XCO2 and XCH4 using an optimum integration time of 10 min, which corresponds to standard deviations of 0.04 ppm, and 0.2 ppb, respectively. The sensor system is very stable over time and after relocation across the continent. We report tests of the differential column measurement, and its sensitivity to emission sources, by measuring the downwind minus upwind column gradient ?XCH4 across dairy farms in the Chino California area and using the data to verify emissions reported in the literature. Spatial column gradient ratios ?XCH4/?XCO2 were observed across Pasadena within the Los Angeles basin, indicating values consistent with regional emission ratios from the literature. Our precise, rapid measurements allow us to determine significant short-term variations (5-10 minutes) of XCO2 and XCH4, and to show that they represent atmospheric phenomena. Overall, this study helps establish a range of new applications for compact solar-viewing Fourier transform spectrometers. By accurately measuring the small differences in integrated column amounts across local and regional sources, we directly observe the mass loading of the atmosphere due to the influence of emissions in the intervening locale. The inference of the source strength is much more direct than inversion modeling using only surface concentrations, and less subject to errors associated with small-scale transport phenomena.
作者: Jia Chen,Camille Viatte,Jacob K. Hedelius,Taylor Jones,Jonathan E. Franklin,Harrison Parker,Elaine W. Gottlieb,Paul O. Wennberg,Manvendra K. Dubey,Steven C. Wofsy
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To demonstrate the use of compact solar-tracking Fourier transform spectrometers for differential measurements of the column-averaged dry-air mole fractions of CH4 and CO2 within urban areas, and to test the sensitivity of these measurements to emission sources.

The study demonstrates the capability of compact solar-tracking Fourier transform spectrometers for precise differential column measurements of CH4 and CO2 in urban areas. These measurements can directly observe the mass loading of the atmosphere due to local and regional emissions, providing a more direct method for source strength inference than inversion modeling using surface concentrations. The technique is less sensitive to errors associated with small-scale transport phenomena and opens up new applications for monitoring urban and regional emissions.

The study is limited by the uncertainty in transport (wind speed and direction) which dominates the emission estimates. The precision of differential column measurements is also affected by atmospheric turbulence and instrument drift over long integration times.

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