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Efficient Fluid Dynamic Design Optimization Using Cartesian Grids

机译:使用笛卡尔网格的高效流体动力学设计优化

摘要

This report is subdivided in three parts. The first one reviews a new approach to the computation of inviscid flows using Cartesian grid methods. The crux of the method is the curvature-corrected symmetry technique (CCST) developed by the present authors for body-fitted grids. The method introduces ghost cells near the boundaries whose values are developed from an assumed flow-field model in vicinity of the wall consisting of a vortex flow, which satisfies the normal momentum equation and the non-penetration condition. The CCST boundary condition was shown to be substantially more accurate than traditional boundary condition approaches. This improved boundary condition is adapted to a Cartesian mesh formulation, which we call the Ghost Body-Cell Method (GBCM). In this approach, all cell centers exterior to the body are computed with fluxes at the four surrounding cell edges. There is no need for special treatment corresponding to cut cells which complicate other Cartesian mesh methods.
机译:该报告分为三个部分。第一个回顾了一种使用笛卡尔网格方法计算无粘性流的新方法。该方法的症结是本作者针对车身网格开发的曲率校正对称技术(CCST)。该方法在边界附近引入了幻影单元,其值是从假定的流场模型在由涡流组成的壁附近获得的,该涡流满足法向动量方程式和非穿透条件。结果表明,CCST边界条件比传统边界条件方法要准确得多。这种改进的边界条件适用于笛卡尔网格公式,我们称其为“鬼体细胞方法”(GBCM)。在这种方法中,使用四个周围细胞边缘的通量来计算体外的所有细胞中心。不需要与使其他笛卡尔网格方法复杂化的剪切单元相对应的特殊处理。

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