Expanding Grids for Efficient Cloud Dynamics Simulations Across Scales

David H. Marsico, S. Stechmann
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引用次数: 4

Abstract

Abstract With large eddy simulations (LES) and/or cloud-resolving models (CRMs), it is now possible to simultaneously simulate shallow and deep convection. However, using traditional methods, the computational expense is typically very large, due to the small grid spacings needed to resolve shallow clouds. Here, the main purpose is to present a method that is computationally less expensive by a factor of roughly 10 to 50. Unlike traditional grid stretching of only the vertical z grid spacing, the present method involves expansion of the grid spacing in all coordinate directions (x,y,z) and time t. A ˝ne grid spacing of O(10)-O(100) m can be used near the surface to resolve boundary layer turbulence, and the grid spacing expands to be O(1000) m at higher altitudes, which reduces computational cost while still resolving deep convection. Example simulations are conducted with a simpli˝ed LES/CRM in 2D to verify the theoretical cost savings.
扩展网格的有效云动力学模拟跨尺度
利用大涡模拟(LES)和/或云分辨模型(crm),现在可以同时模拟浅对流和深对流。然而,使用传统方法,由于解析浅云所需的网格间距很小,计算费用通常非常大。在这里,主要目的是提供一种计算成本降低大约10到50倍的方法。与传统的仅垂直z网格间距的网格拉伸不同,该方法涉及在所有坐标方向(x,y,z)和时间t上扩展网格间距。近地面可以使用0 (10)- 0 (100)m的新网格间距来解决边界层湍流,在更高高度网格间距扩展到O(1000) m,在解决深层对流的同时减少了计算成本。利用简化的二维LES/CRM进行了实例仿真,以验证理论上的成本节约。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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