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DUAL-PATH METHOD AND REVISED RADIATIVE MODEL FOR RETRIEVING CLOUD PARAMETERS FROM PAIRS OF AVHRR IMAGES

机译:从AVHRR图像对中检索云参数的双路径方法和修订的辐射模型

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An examination of AVHRR images obtained from the current triplet of nearly simultaneous NOAA polar orbiting satellites (namely, NOAA-9, -10, -12) revealed significant variances in the infrared radiation of opaque clouds observed from a satellite at different angles. To account for the effect of cloud temperature changes with depth, causing the essential part of these angular differences, the current cloud radiative model was revised following the principles of radiative transfer. Based on this model a dual-path method exploiting these differences to derive the cloud-top temperature and either the optical depth (of semitransparent clouds) or the ratio of opaque lapse rate to volume absorption coefficient (of opaque clouds) was proposed The derived cloud-top temperature and optical depth of semitransparent cirrus clouds were verified by the analysis of cloud shadows and albedos using visible technique. Comparison of the results obtained to the coincident retrieval by the split-window method demonstrates the advantages of the dual-path method. Also discussed are promising combinations of the proposed method with multichannel infrared and microwave methods. (C)Elsevier Science Inc., 1997. [References: 27]
机译:从目前几乎同时发生的NOAA极地轨道卫星(即NOAA-9,-10,-12)的三重态获得的AVHRR图像的检查显示,从卫星以不同角度观察到的不透明云的红外辐射存在明显差异。为了解决云温度随深度变化而造成这些角度差异的必要部分的影响,目前的云辐射模型是根据辐射传递原理进行修订的。在此模型的基础上,提出了一种利用这些差异得出云顶温度和(半透明云的)光学深度或(不透明云的不透光率与体积吸收系数之比的)双路径方法。通过使用可见技术分析云影和反照率,验证了半透明卷云的最高温度和光学深度。通过拆分窗口方法将结果与同时检索的结果进行比较,证明了双路径方法的优势。还讨论了所提出的方法与多通道红外和微波方法的有希望的组合。 (C)Elsevier Science Inc.,1997年。[参考:27]

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