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Local uniform stencil (LUST) boundary condition for arbitrary 3-D boundaries in parallel smoothed particle hydrodynamics (SPH) models

机译:局部均匀的模板(欲望)边界条件,用于并行平滑粒子流体动力学(SPH)模型中的任意三维边界

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This paper presents the development of a new boundary treatment for free-surface hydrodynamics using the smoothed particle hydrodynamics (SPH) method accelerated with a graphics processing unit (GPU). The new solid boundary formulation uses a local uniform stencil (LUST) of fictitious particles that surround and move with each fluid particle and are only activated when they are located inside a boundary. This addresses the issues currently affecting boundary conditions in SPH, namely the accuracy, robustness and applicability while being amenable to easy parallelization such as on a GPU. In 3-D, the methodology uses triangles to represent the geometry with a ray tracing procedure to identify when the LUST particles are activated. A new correction is proposed to the popular density diffusion term treatment to correct for pressure errors at the boundary. The methodology is applicable to complex arbitrary geometries without the need of special treatments for corners and curvature is presented. The paper presents the results from 2-D and 3-D Poiseuille flows showing convergence rates typical for weakly compressible SPH. Still water in a complex 3-D geometry with a pyramid demonstrates the robustness of the technique with excellent agreement for the pressure distributions. The method is finally applied to the SPHERIC benchmark of a dry-bed dam-break impacting an obstacle showing satisfactory agreement and convergence for a violent flow. (C) 2019 The Authors. Published by Elsevier Ltd.
机译:本文介绍了使用平滑粒子动力学(SPH)方法的自由表面流体动力学的新界处理的开发,加速了图形处理单元(GPU)。新的固体边界制剂使用局部均匀的模板(LUST)的虚拟颗粒,其围绕和移动每个流体颗粒,并且仅当它们位于边界内时被激活。这解决了当前在SPH中影响边界条件的问题,即准确性,稳健性和适用性,同时可以轻松地平行化,例如GPU。在3-D中,该方法使用三角形表示具有射线跟踪过程的几何形状,以识别欲望颗粒被激活。对流行的密度扩散术语处理提出了一种新的校正,以校正边界处的压力误差。该方法适用于复杂的任意几何形状,而不需要特殊治疗的角落和曲率。本文介绍了2-D和3-D Poiseuille流量的结果,显示典型的弱可压缩SPH的收敛速率。仍有金字塔的复杂3-D几何中的水分展示了该技术的稳健性,具有良好的压力分布一致。该方法最终应用于干床坝断裂的球形基准,影响令人满意的协议和剧烈流动的收敛性。 (c)2019年作者。 elsevier有限公司出版

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