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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Impacts of subpixel cloud heterogeneity on infrared thermodynamic phase assessment
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Impacts of subpixel cloud heterogeneity on infrared thermodynamic phase assessment

机译:亚像素云异质性的影响红外热力学评估阶段

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A combination of spatially collocated Atmospheric Infrared Sounder (AIRS) radiances and Moderate Resolution Imaging Spectroradiometer (MODIS) cloud products are used to quantify the impact of cloud heterogeneity on AIRS‐based assessments of cloud thermodynamic phase. While radiative transfer simulations have demonstrated that selected AIRS channels have greater sensitivity to cloud thermodynamic phase in comparison to the relevant MODIS bands, the relative trade‐offs of spectral and spatial resolution differences that are inherent between AIRS and MODIS have not been quantified. Global distributions of AIRS field‐of‐view scale frequencies of clear sky (13–14), heterogeneous cloud (26–28), and homogeneous cloud (59–60) are quantified for a four week time period using cloud fraction, and further categorization of cloud uniformity is assessed with the variance of cloud top temperature. Homogeneous clouds with window brightness temperatures (T_b) between 250 and 265 K are shown to have larger cloud thermodynamic phase signatures than heterogeneous clouds. Clouds in this limited T_b range occur 30–50 of the time in the mid‐ and high latitude storm track regions, are generally difficult to identify as being water or ice phase, and show strong responses in forced CO_2 climate change modeling experiments. Two‐dimensional histograms of T_b differences sensitive to cloud phase (1231–960 cm~(-1)) and column water vapor (1231–1227 cm~(-1)) show distinct differences between many homogeneous and heterogeneous cloud scenes. The results suggest the potential for a quantitative approach using a combination of hyperspectral sounders with high‐spatial‐resolution imagers, and their derived geophysical products, to assess cloud thermodynamic phase estimates within increasingly complex subpixel‐scale cloud variability.
机译:结合空间集中的大气红外线探测仪(简称AIRS)光芒和温和分辨率成像光谱仪(MODIS)云产品用于量化的影响云播出还是基于异质性的评估云热力学阶段。模拟表明,转移选择播出渠道有更大的敏感性云热力学相相比有关MODIS乐队,相对贸易偏移等光谱和空间分辨率的差异固有的播出和MODIS之间没有吗量化。视图字段优先车道规模频率的晴空(13 - 14%),异构云(26 - 28%),均匀的云(59 - 60%)是一个量化四个星期时间使用云分数,和云均匀性的进一步分类评估与云顶的方差温度。亮度温度(T_b)在250年和265年之间K有更大的云热力学所示阶段签名比异构云。云在这有限的T_b发生30 - 50%的范围在中期和高纬度风暴跟踪区域,通常很难确定是水或冰阶段,并显示强烈反应气候变化迫使二氧化碳建模实验。云T_b差异的敏感阶段(1231 - 960厘米~(- 1))和列水蒸气(1231 - 1227厘米~(- 1))显示出明显的差异许多同构和异构云之间场景。使用相结合的定量方法高光谱雷霆与高空间分辨率影像,应承担和他们派生的地球物理产品,评估云在越来越多的热力学相估计复杂的亚像素检测规模云可变性。

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