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Reconciling Differences Between Large-Eddy Simulations and Doppler Lidar Observations of Continental Shallow Cumulus Cloud-Base Vertical Velocity

机译:调和大陆浅层云云基垂直速度大的大涡模拟与多普勒激光雷达观测的差异

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摘要

We investigate a significant model-observation difference found between cloud-base vertical velocity for continental shallow cumulus simulated using large-eddy simulations (LES) and observed by Doppler lidar measurements over the U.S. Southern Great Plains Atmospheric Radiation Measurement Facility. The LES cloud-base vertical velocity is dominated by updrafts that are consistent with a general picture for convective clouds but is inconsistent with Doppler lidar observations that also show the presence of considerable downdrafts. The underestimation of simulated downdrafts is found to be a robust feature, being insensitive to various numerical, physical, or dynamical choices. We find that simulations can more closely reproduce observations only after improving the model physics to use size-resolved microphysics and horizontal longwave radiation, both of which modify the cloud buoyancy and velocity structure near cloud side edges. The results suggest that treatments that capture these structures are needed for the proper simulation and subsequent parameterization development of shallow cumulus vertical transport.
机译:我们研究了使用大涡模拟(LES)模拟的欧式浅层积云之间的云基垂直速度之间发现的显着模型观察差异,并通过通过美国南方大型平原大气辐射测量设施的多普勒利达测量观察。 LES云基垂直速度由上升器主导,上升流与对流云的一般图片一致,但与多普勒LIDAR观察结果不一致,也显示出相当大的下降的存在。发现模拟的下游的低估是一种稳健的特征,对各种数值,物理或动态选择不敏感。我们发现,只有在改善模型物理学中使用尺寸分辨的微物质和水平长波辐射后,仿真才能更加密切地再现观察,这两者都在云侧边缘附近修改云浮力和速度结构。结果表明,捕获这些结构的处理是适当仿真和随后的浅层垂直传输的参数化开发所需的处理。

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