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首页> 外文期刊>Journal of Computational and Applied Mathematics >A dynamically optimized finite difference scheme for Large-Eddy Simulation
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A dynamically optimized finite difference scheme for Large-Eddy Simulation

机译:大涡模拟的动态优化有限差分方案

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A low-dispersive dynamic finite difference scheme for Large-Eddy Simulation is developed. The dynamic scheme is constructed by combining Taylor series expansions on two different grid resolutions. The scheme is optimized dynamically through the real-time adaption of a dynamic coefficient according to the spectral content of the flow, such that the global dispersion error is minimal. In the case of DNS-resolution, the dynamic scheme reduces to the standard Taylor-based finite difference scheme with formal asymptotic order of accuracy. When going to LES-resolution, the dynamic scheme seamlessly adapts to a dispersion-relation preserving scheme. The scheme is tested for Large-Eddy Simulation of Burgers equation. Very good results are obtained.
机译:提出了一种用于大涡模拟的低色散动态有限差分方案。通过在两个不同的网格分辨率上组合泰勒级数展开来构造动态方案。通过根据流的频谱内容实时调整动态系数来动态优化该方案,从而使全局色散误差最小。在DNS解析的情况下,动态方案简化为标准的,基于形式渐近精度的基于泰勒的有限差分方案。当达到LES分辨率时,动态方案可以无缝地适应色散关系保留方案。该方案已通过Burgers方程的大涡模拟测试。获得了非常好的结果。

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