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A smoothed particle element method (SPEM) for modeling fluid-structure interaction problems with large fluid deformations

机译:用于对大流体变形的流固耦合问题建模的平滑粒子元方法(SPEM)

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Fluid-structure interaction (FSI) problems with large fluid deformations can be a great challenge for numerical simulations using conventional methods. In this paper, we propose a novel hybrid approach of an improved Smoothed Particle hydrodynamics and smoothed finite Element Method (SPEM) for modeling FSI problems. In SPEM, the edge-based smoothed finite element method (S-FEM) is developed in Lagrangian frame and is used for the first time to model both elastic structures and incompressible flows. For fluid regions with large deformations, the associated finite elements are adaptively converted into particles and the corresponding regions are subsequently modeled using the decoupled finite particle method (DFPM), which is an improved smoothed particle hydrodynamics (SPH) method suitable for modeling incompressible flows with free surfaces. A ghost particle-based interface algorithm to couple existing S-FEM elements and DFPM particles is developed in SPEM to implement the modeling of FSI problems. As the smoothed FEM and decoupled FPM are enhanced FEM and SPH respectively and DFPM is only used for local fluid regions with large deformations, it is expected that SPEM is more accurate and more efficient than the existing coupling approaches of conventional FEM and SPH. Five numerical examples are tested using the proposed SPEM and the comparative studies with results from other sources reveal that SPEM is an effective approach for modeling FSI problems with large fluid deformations. (C) 2019 Elsevier B.V. All rights reserved.
机译:对于使用常规方法进行的数值模拟,具有较大流体变形的流体-结构相互作用(FSI)问题可能是一个巨大挑战。在本文中,我们提出了一种改进的平滑粒子流体动力学和平滑有限元方法(SPEM)的新颖混合方法来建模FSI问题。在SPEM中,基于拉格朗日框架开发了基于边缘的平滑有限元方法(S-FEM),该方法首次用于对弹性结构和不可压缩流进行建模。对于具有大变形的流体区域,相关的有限元被自适应地转换为粒子,随后使用解耦有限粒子方法(DFPM)对相应区域进行建模,这是一种改进的平滑粒子流体动力学(SPH)方法,适用于使用自由表面。在SPEM中开发了一种基于幻影粒子的接口算法来耦合现有的S-FEM元素和DFPM粒子,以实现FSI问题的建模。由于平滑的FEM和解耦的FPM分别是增强的FEM和SPH,而DFPM仅用于变形较大的局部流体区域,因此期望SPEM比常规FEM和SPH的现有耦合方法更加准确和高效。使用提议的SPEM对五个数值示例进行了测试,并与其他来源进行了比较研究,结果表明SPEM是建模流体变形较大的FSI问题的有效方法。 (C)2019 Elsevier B.V.保留所有权利。

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