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Evaluating Layer Precipitable Water and Lifted Index from SEVIRI

机译:从SEVIRI评估层中的可沉淀水和提升指数

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The Spinning Enhanced Visible and Infrared Imager (SEVIRI) instrument, onboard the Meteosat Second Generation (MSG) is a radiometer with 8 infrared (IR) spectral bands. IR retrievals of Layer Precipitable Water (LPW) and Lifted Index (LI) allow to identify potential severe weather when the system is still in a preconvective state. Statistical retrieval is computationally fast and it is a requirement for the SAFNWC PGEs. The study presented here, is part of an attempt to improve the algorithm developed in the SAFNWC framework to calculate Layer Precipitable Water and Stability Analysis Imagery (SAI) from SEVIRI radiances. The first codified algorithms (in the SAFNWC version 0.1 package) are a statistical retrieval where neural networks were trained with the available data (simulated radiances using numerical profiles from 60L-SD and RTTOV-7). These statistical retrievals have been evaluated against co-located products obtained from numerical weather analysis and radiosonde profiles, as well as MODIS products obtained in the areas scanned at the same time. The availability of real SEVIRI radiances allows us to compare real SEVIRI radiances with simulated radiances and to detect systematic bias among both datasets. In this study, first the retrieved LPW and LI will be evaluated, and the error sources will be identified. And later, the method for correcting the detected bias, between real and simulated radiances, will be analysed, and the improvements will be compared to calculated ("clear") values from the nearest (in space and time) ECMWF profiles and similar MODIS products.
机译:Meteosat第二代(MSG)上的旋转增强型可见光和红外成像仪(SEVIRI)仪器是具有8个红外(IR)光谱带的辐射计。当系统仍处于对流状态时,IR层可降水量(LPW)和升力指数(LI)的检索可以识别潜在的恶劣天气。统计检索的计算速度很快,这是SAFNWC PGE的要求。此处提出的研究是尝试改进SAFNWC框架中开发的算法的一部分,该算法可根据SEVIRI辐射率计算层可沉淀水和稳定性分析图像(SAI)。最早的编码算法(在SAFNWC版本0.1软件包中)是一种统计检索,其中使用可用数据(使用来自60L-SD和RTTOV-7的数值轮廓模拟的辐射率)训练了神经网络。根据从数值天气预报和探空仪剖面图获得的同位产品,以及在同时扫描区域获得的MODIS产品,对这些统计检索结果进行了评估。实际SEVIRI辐射的可用性使我们能够将实际SEVIRI辐射与模拟辐射进行比较,并检测两个数据集之间的系统偏差。在这项研究中,首先将对检索到的LPW和LI进行评估,并确定错误源。然后,将分析校正实际和模拟辐射之间的偏差的方法,并将改进结果与最近(在空间和时间上)ECMWF分布图和类似的MODIS产品的计算(“清晰”)值进行比较。 。

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