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Performance of Adaptive Unstructured Mesh Modelling in Idealized Advection Cases over Steep Terrains

机译:陡峭地形理想平流情况下自适应非结构​​网格建模的性能

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摘要

Advection errors are common in basic terrain-following (TF) coordinates. Numerous methods, including the hybrid TF coordinate and smoothing vertical layers, have been proposed to reduce the advection errors. Advection errors are affected by the directions of velocity fields and the complexity of the terrain. In this study, an unstructured adaptive mesh together with the discontinuous Galerkin finite element method is employed to reduce advection errors over steep terrains. To test the capability of adaptive meshes, five two-dimensional (2D) idealized tests are conducted. Then, the results of adaptive meshes are compared with those of cut-cell and TF meshes. The results show that using adaptive meshes reduces the advection errors by one to two orders of magnitude compared to the cut-cell and TF meshes regardless of variations in velocity directions or terrain complexity. Furthermore, adaptive meshes can reduce the advection errors when the tracer moves tangentially along the terrain surface and allows the terrain to be represented without incurring in severe dispersion. Finally, the computational cost is analyzed. To achieve a given tagging criterion level, the adaptive mesh requires fewer nodes, smaller minimum mesh sizes, less runtime and lower proportion between the node numbers used for resolving the tracer and each wavelength than cut-cell and TF meshes, thus reducing the computational costs.
机译:对流误差在基本地形跟踪(TF)坐标中很常见。已经提出了许多方法,包括混合TF坐标和平滑垂直层,以减少对流误差。对流误差受速度场方向和地形复杂性的影响。在这项研究中,采用非结构化自适应网格以及不连续的Galerkin有限元方法来减少陡峭地形上的对流误差。为了测试自适应网格的功能,进行了五个二维(2D)理想化测试。然后,将自适应网格的结果与cut-cell和TF网格的结果进行比较。结果表明,与剪切单元和TF网格相比,使用自适应网格可以将对流误差降低一到两个数量级,而不管速度方向或地形复杂性如何变化。此外,当示踪剂沿地形切线移动时,自适应网格可以减少对流误差,并可以在不引起严重分散的情况下表示地形。最后,分析了计算成本。为了达到给定的标记标准级别,自适应网格比切割单元和TF网格需要更少的节点,更小的最小网格尺寸,更少的运行时间以及用于解析示踪剂和每个波长的节点数量之间的比例更低,从而降低了计算成本。

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