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A consistent parallel isotropic unstructured mesh generation method based on multi-phase SPH

机译:基于多相SPH的一致平行各向同性非结构网格生成方法

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摘要

In this paper, we propose a consistent parallel unstructured mesh generator based on a multi-phase SPH method. A set of physics-motivated modeling equations are developed to achieve the targets of domain decomposition, communication volume optimization and high-quality unstructured mesh generation simultaneously. A unified density field is defined as the target function for both partitioning the geometry and distributing the mesh-vertexes. A multi-phase Smoothing Particle Hydrodynamics (SPH) method is employed to solve the governing equations. All the optimization targets are achieved implicitly and consistently by the particle relaxation procedure without constructing triangulation/tetrahedralization explicitly. The target of communication reduction is achieved by introducing a surface tension model between distinct partitioning sub-domains, which are characterized by colored SPH particles. The resulting partitioning diagram features physically localized sub-domains and optimized interface communication. The target of optimizing the mesh quality is achieved by introducing a tailored equationof-state (EOS) and a smooth isotropic kernel function. The mesh quality near the interface of neighboring sub-domains is improved by gradually removing the surface-tension force once a steady state is achieved. The proposed method is developed basing on a new parallel environment for multi-resolution SPH to exploit both coarse- and fine-grained parallelism. A set of benchmarks are conducted to verify that all the optimization targets are achieved consistently within the current framework. (C) 2020 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种基于多相SPH方法的一致的并行非结构化网格生成器。开发了一组基于物理的建模方程,以同时实现域分解,通信量优化和高质量非结构化网格生成的目标。将统一的密度字段定义为目标函数,用于划分几何图形和分布网格顶点。采用多相平滑粒子流体动力学(SPH)方法求解控制方程。通过粒子松弛程序隐式且一致地实现了所有优化目标,而无需显式构造三角剖分/四面体化。通过在不同的分区子域之间引入表面张力模型来实现通信减少的目标,这些分区子域的特征是有色SPH粒子。生成的分区图具有物理局部子域和优化的接口通信的功能。通过引入量身定制的状态方程(EOS)和平滑的各向同性核函数,可以实现优化网格质量的目标。一旦达到稳定状态,通过逐渐消除表面张力,可以改善相邻子域界面附近的网格质量。提出的方法是在新的并行环境下开发的,用于多分辨率SPH,可同时利用粗粒度和细粒度并行性。进行了一系列基准测试,以验证在当前框架内是否始终如一地实现了所有优化目标。 (C)2020 Elsevier B.V.保留所有权利。

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