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A new high-order spectral difference method for simulating viscous flows on unstructured grids with mixed-element meshes

机译:一种新的高阶光谱差分方法,用于用混合元件模拟非结构化网格上的粘性流动

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In the present study, a spectral difference (SD) method is developed for viscous flows on meshes with a mixture of triangular and quadrilateral elements. The standard SD method for triangular elements, which employs Lagrangian interpolating functions for fluxes, is not stable when the designed accuracy of spatial discretization is third order or higher. Unlike the standard SD method, the method examined here uses vector interpolating functions in the Raviart-Thomas (RT) spaces to construct continuous flux functions on reference elements. The spectral-difference Raviart-Thomas (SDRT) method was originally proposed by Balan et al. [1] and implemented on triangular-element meshes for invisid flow only. Our present results demonstrated that the SDRT method is stable and high-order accurate in two dimensions (2D) for a number of test problems by using triangular-, quadrilateral-, and mixed-element meshes for both inviscid and viscous flows. A stability analysis is also performed for mixed elements. We found our current SDRT scheme is stable for fourth-order accurate spatial discretizations. However, a stable fifth-order SDRT scheme remains to be identified. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在本研究中,开发了一种光谱差(SD)方法,用于粘性流动啮合,其与三角形和四边形元素的混合物。当空间离散化的设计精度为三阶或更高时,三角形元件的标准SD方法是使用Lagrangian内插功能的三角形元件。与标准SD方法不同,此处检查的方法在RACIART-THOMAS(RT)空间中使用矢量插值功能,以构建参考元件上的连续通量函数。 Palan等人最初提出了光谱差异raviart-Thomas(SDRT)方法。 [1]并仅在三角形元素网上实现,仅用于venisID流。我们的目前的结果表明,SDRT方法在两个维度(2D)中是稳定的,高阶精确,用于使用三角形,四边形 - 和粘性流动的混合元件网格。还对混合元件进行稳定性分析。我们发现我们目前的SDRT方案对于四阶准确的空间离散化是稳定的。但是,仍有稳定的第五阶SDRT方案仍有待识别。 (c)2019年elestvier有限公司保留所有权利。

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