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Solving steady-state lid-driven square cavity flows at high Reynolds numbers via a coupled improved element-free Galerkin-reduced integration penalty method

机译:求解稳态盖驱动的方腔,通过耦合改进的无元素的Galerkin减少的集成罚分方法在高雷诺数时流动

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Steady-state two-dimensional lid-driven square cavity flows at high Reynolds numbers are solved in this communication using a velocity-based formulation developed in the context of the improved element-free Galerkin-reduced integration penalty method (IEFG-RIPM). The analyses based on the IEFG-RIPM are performed under a standard Galerkin weak-formulation, i.e. without the need of introducing streamline-upwind or pressure stabilizing terms in order to suppress the appearance of non-physical oscillations. Solutions in a wide range of high Reynolds numbers are successfully achieved, and the results obtained have exhibited an excellent agreement with mesh-based solutions reported in the literature. The numerical performance of the proposed IEFG-RIPM in the solution of such benchmark problem has been analysed in terms of velocity distribution, streamline patterns, vorticity and pressure contours, and also in terms of the properties of primary and secondary vortices. The outcomes of this study demonstrate the potential of the IEFG-RIPM as a feasible and reliable numerical technique for the analysis of lid-driven square cavity flows at high Reynolds numbers, allowing the fulfilment of accuracy and stability numerical requirements demanded in the solution of this benchmark problem in a remarkably simple manner.
机译:使用基于速度的制剂在改进的无元素Galerkin减少的集成罚分别(IEFG-RIPM)的背景下,在这种通信中解决了高雷诺数的稳态二维盖驱动的方腔流动。基于IEFG-RIPM的分析是在标准的Galerkin弱制剂下进行的,即,不需要引入流线 - 上风或压力稳定术语以抑制非物理振荡的外观。成功实现了各种高雷诺数的溶液,所获得的结果表明,与文献中报道的基于网状的解决方案表现出很好的一致性。在速度分布,流线式图案,涡流和压力轮廓方面分析了在这种基准问题解决方案中提出的IEFG-RIPM的数值性能,以及初级和次级涡流的性质方面已经分析。本研究的结果证明了IEFG-RIPM作为一种可行且可靠的数值技术,用于分析高雷诺数的盖子驱动的方腔流动,允许满足于解决方案中所需的精度和稳定性数值要求基准问题以一种非常简单的方式。

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