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A consistent multi-resolution smoothed particle hydrodynamics method

机译:一致的多分辨率平滑粒子流体动力学方法

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摘要

We seek to accelerate and increase the size of simulations for fluid-structure interactions (FSI) by using multiple resolutions in the spatial discretization of the equations governing the time evolution of systems displaying two-way fluid-solid coupling. To this end, we propose a multi-resolution smoothed particle hydrodynamics (SPH) approach in which subdomains of different resolutions are directly coupled without any overlap region. The second-order consistent discretization of spatial differential operators is employed to ensure the accuracy of the proposed method. As SPH particles advect with the flow, a dynamic SPH particle refinement/coarsening is employed via splitting/merging to maintain a predefined multi-resolution configuration. Particle regularity is enforced via a particle-shifting technique to ensure accuracy and stability of the Lagrangian particle-based method embraced. The convergence, accuracy, and efficiency attributes of the new method are assessed by simulating four different flows. In this process, the numerical results are compared to the analytical, finite element, and consistent SPH single-resolution solutions. We anticipate that the proposed multi-resolution method will enlarge the class of SPH-tractable FSI applications. (C) 2017 Elsevier B.V. All rights reserved.
机译:我们力求通过在控制显示双向流固耦合系统时间演化的方程式的空间离散化中使用多种分辨率来加快和增加流体-结构相互作用(FSI)的模拟量。为此,我们提出了一种多分辨率平滑粒子流体动力学(SPH)方法,其中不同分辨率的子域直接耦合而没有任何重叠区域。利用空间差分算子的二阶一致离散化来确保所提出方法的准确性。随着SPH粒子随流平移,通过拆分/合并采用动态SPH粒子细化/粗化以维持预定义的多分辨率配置。粒子规则性是通过粒子移动技术来强制执行的,以确保所包含的基于拉格朗日粒子方法的准确性和稳定性。通过模拟四个不同的流程来评估新方法的收敛性,准确性和效率属性。在此过程中,将数值结果与解析,有限元和一致的SPH单分辨率解决方案进行比较。我们预计,提出的多分辨率方法将扩大SPH可处理FSI应用程序的类别。 (C)2017 Elsevier B.V.保留所有权利。

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