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Conservative Split-Explicit Time Integration Methods for the Compressible Nonhydrostatic Equations

机译:可压缩非静力学方程的守恒拆分显式时间积分方法

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Historically, time-split schemes for numerically integrating the nonhydrostatic compressible equations of motion have not formally conserved mass and other first-order flux quantities. In this paper, split-explicit integration techniques are developed that numerically conserve these properties by integrating prognostic equations for conserved quantities represented in flux form. These procedures are presented for both terrain-following height and hydrostatic pressure (mass) vertical coordinates, two potentially attractive frameworks for which the equation sets and integration techniques differ significantly. For each set of equations, the linear dispersion equation for acoustic/gravity waves is derived and analyzed to determine which terms must be solved in the small (acoustic) time steps and how these terms are represented in the time integration to achieve stability. Efficient techniques for including numerical filters for acoustic and external modes are also presented. Simulations for several idealized test cases in both the height and mass coordinates are presented to demonstrate that these integration techniques appear robust over a wide range of scales, from subcloud to synoptic.
机译:从历史上看,用于对非静压可压缩运动方程进行数值积分的时间分割方案没有形式上守恒的质量和其他一阶通量。在本文中,发展了分裂-显式积分技术,该技术通过集成以通量形式表示的守恒量的预测方程式,在数值上保留这些属性。这些程序针对地形跟随高度和静水压力(质量)垂直坐标进行了介绍,这两个潜在有吸引力的框架的方程组和积分技术都存在显着差异。对于每组方程,都导出并分析了声波/重力波的线性弥散方程,以确定必须在小的(声学)时间步长中求解哪些项,以及如何在时间积分中表示这些项以实现稳定性。还提出了包括用于声学和外部模式的数字滤波器的有效技术。在高度和质量坐标上对几个理想的测试用例进行了仿真,以证明这些集成技术在从子云到天气的大范围尺度上都表现出强大的鲁棒性。

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