A Dynamic Parallel Meshless Method for the Problems with Large-Scale Movable and Deformable Boundary

This paper puts forward a dynamic parallel meshless computing algorithm that efficiently solves flow fields with largescale motions of movable and deformable boundaries. The partition boundary is updated, as the moving boundary moves across the material interface. Meanwhile, the point clouds near th...

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Veröffentlicht in:Journal of Information Science and Engineering 2021-01, Vol.37 (1), p.79-92
Hauptverfasser: 王亮(LIANG WANG), 薛锐(RUI XUE), 蔡宁(NING CAI), 陈磐(PAN CHEN), 崔晓波(XIAOBO CUI), 吴伟(WEI WU), 牛淼淼(MIAOMIAO NIU), 张东亮(DONGLIANG ZHANG), 张钊(ZHAO ZHANG), 张小松(XIAOSONG ZHANG)
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Sprache:eng
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Zusammenfassung:This paper puts forward a dynamic parallel meshless computing algorithm that efficiently solves flow fields with largescale motions of movable and deformable boundaries. The partition boundary is updated, as the moving boundary moves across the material interface. Meanwhile, the point clouds near the moving boundary are reconstructed. Our algorithm also solves the workload balance between nodes and information exchange in each region of the computational field, using the governing equations in the arbitrary Lagrangian-Eulerian (ALE) form. The AUFS scheme is extended to calculate the numerical convective flux. Take the interaction between a helium bubble and a shockwave as an example. Our algorithm is applied to compute the flow field with different numbers of discrete points (33,044 and 66,089) and partitions (2 and 4). The results show that our algorithm achieves an efficiency of over 80%, and captures the interaction between shockwaves and the bubble accurately. Hence, our parallel algorithm is suitable for solving problems with largescale motions of deformation boundaries. The research results shed new light on the calculation speed for similar problems.
ISSN:1016-2364
DOI:10.6688/JISE.202101_37(1).0006