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Sensitivity Study of Cloud-Resolving Convective Simulations with WRF Using Two Bulk Microphysical Parameterizations: Ice-Phase Microphysics versus Sedimentation Effects

机译:利用两个大的微观物理参数化对WRF进行的云解对流模拟的敏感性研究:冰相微观物理与沉积作用

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This study examines the relative importance of ice-phase microphysics and sedimentation velocity for hydrometeors in bulk microphysics schemes. The two bulk microphysics schemes having the same number of prognostic water substances, the Weather Research and Forecasting (WRF) Single-Moment 6-Class Microphysics Scheme (WSM6) and the Purdue-Lin scheme (PLIN), are evaluated for a 2D idealized storm case and for a 3D heavy rainfall event over Korea. The relative importance of microphysics and sedimentation velocity for ice particles is illuminated by the additional experiments that exchange the sedimentation velocity formula for graupel in the two schemes. In a 2D idealized storm simulation test bed, it is found that, relative to the PLIN scheme, the WSM6 scheme develops the storm late with weakened intensity because of a slower sedimentation velocity for graupel. Such a weakened intensity of precipitation also appears in a 3D model framework when the WSM6 scheme is used, in conjunction with the overalldistribution of the precipitation band southward toward what was observed. The major reason is found to be the ice-phase microphysics of the WSM6 and related ice-cloud-radiation feedback, rather than the smaller terminal velocity for graupel in the WSM6 than in the PLIN scheme.
机译:这项研究探讨了在大体积微观物理学方案中,冰相微观物理学和沉降速度对水凝物的相对重要性。对2种理想风暴评估了两种具有相同预后水物质数量的大体积微观物理方案,即天气研究和预报(WRF)单矩6级微观物理方案(WSM6)和普渡-林方案(PLIN)。以及在韩国进行的3D强降雨事件。两种方案交换了up的沉降速度公式的其他实验阐明了冰粒的微观物理学和沉降速度的相对重要性。在2D理想化的风暴模拟测试台中,发现相对于PLIN方案,WSM6方案由于gra的沉降速度较慢而以较弱的强度发展了风暴。当使用WSM6方案时,这种降水强度减弱也出现在3D模型框架中,并伴随着降水带向南向观测到的总体分布。发现主要原因是WSM6的冰期微观物理学和相关的冰云辐射反馈,而不是WSM6中gra的终端速度比PLIN方案小。

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