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Space-based near-infrared CO_2 measurements: Testing the Orbiting Carbon Observatory retrieval algorithm and validation concept using SCIAMACHY observations over Park Falls, Wisconsin

机译:天基近红外CO_2测量:使用威斯康星州帕克福尔斯的SCIAMACHY观测值测试轨道碳观测站的检索算法和验证概念

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摘要

Space-based measurements of reflected sunlight in the near-infrared (NIR) region promise to yield accurate and precise observations of the global distribution of atmospheric CO_2. The Orbiting Carbon Observatory (OCO) is a future NASA mission, which will use this technique to measure the column-averaged dry air mole fraction of CO_2 (X_(CO)_2) with the precision and accuracy needed to quantify CO_2 sources and sinks on regional scales (∼1000 × 1000 km^2) and to characterize their variability on seasonal timescales. Here, we have used the OCO retrieval algorithm to retrieve (X_(CO)_2) and surface pressure from space-based Scanning Imaging Absorption Spectrometer for Atmospheric Chartography (SCIAMACHY) measurements and from coincident ground-based Fourier transform spectrometer (FTS) measurements of the O_2 A band at 0.76 μm and the 1.58 μm CO_2 band for Park Falls, Wisconsin. Even after accounting for a systematic error in our representation of the O_2 absorption cross sections, we still obtained a positive bias between SCIAMACHY and FTS (X_(CO)_2) retrievals of ∼3.5%. Additionally, the retrieved surface pressures from SCIAMACHY systematically underestimate measurements of a calibrated pressure sensor at the FTS site. These findings lead us to speculate about inadequacies in the forward model of our retrieval algorithm. By assuming a 1% intensity offset in the O_2 A band region for the SCIAMACHY (X_(CO)_2) retrieval, we significantly improved the spectral fit and achieved better consistency between SCIAMACHY and FTS (X_(CO)_2) retrievals. We compared the seasonal cycle of (X_(CO)_2)at Park Falls from SCIAMACHY and FTS retrievals with calculations of the Model of Atmospheric Transport and Chemistry/Carnegie-Ames-Stanford Approach (MATCH/CASA) and found a good qualitative agreement but with MATCH/CASA underestimating the measured seasonal amplitude. Furthermore, since SCIAMACHY observations are similar in viewing geometry and spectral range to those of OCO, this study represents an important test of the OCO retrieval algorithm and validation concept using NIR spectra measured from space. Finally, we argue that significant improvements in precision and accuracy could be obtained from a dedicated CO_2 instrument such as OCO, which has much higher spectral and spatial resolutions than SCIAMACHY. These measurements would then provide critical data for improving our understanding of the carbon cycle and carbon sources and sinks.
机译:对近红外(NIR)区域中反射的太阳光进行空基测量有望对大气CO_2的全球分布产生准确而精确的观测结果。轨道碳观测站(OCO)是NASA的一项未来任务,它将使用这项技术来测量CO_2(X_(CO)_2)的列平均干空气摩尔分数,并以量化CO_2源和汇的所需精度和准确性。区域尺度(〜1000×1000 km ^ 2)并表征其在季节性时标上的变化。在这里,我们已使用OCO检索算法从大气扫描图的天基扫描成像吸收光谱仪(SCIAMACHY)和地面的傅里叶变换光谱仪(FTS)的同时测量中检索(X_(CO)_2)和表面压力威斯康星州帕克福尔斯的O_2 A带为0.76μm,CO_2带为1.58μm。即使在考虑了O_2吸收截面表示中的系统误差之后,我们仍然在SCIAMACHY和FTS(X_(CO)_2)取回之间获得了约3.5%的正偏差。另外,从SCIAMACHY检索到的表面压力系统地低估了FTS站点上校准压力传感器的测量值。这些发现使我们推测检索算法的正向模型中的不足之处。通过假设SCIAMACHY(X_(CO)_2)检索的O_2 A波段区域中的强度偏移为1%,我们显着改善了光谱拟合,并在SCIAMACHY和FTS(X_(CO)_2)检索之间实现了更好的一致性。我们将SCIAMACHY和FTS取回的公园瀑布(X_(CO)_2)的季节性周期与大气运输和化学模型/卡内基-埃姆斯-斯坦福方法(MATCH / CASA)的计算结果进行了比较,发现了很好的定性协议,但是MATCH / CASA会低估测得的季节性振幅。此外,由于SCIAMACHY观测在观察几何和光谱范围方面与OCO相似,因此该研究代表了OCO检索算法和使用从太空测量的NIR光谱的验证概念的重要测试。最后,我们认为,可以通过专用的CO_2仪器(如OCO)获得显着提高的精度和准确性,该仪器的光谱和空间分辨率比SCIAMACHY高得多。这些测量结果将提供关键数据,以增进我们对碳循环以及碳源和汇的理解。

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