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Numerical simulation of an immersed rotating structure in fluid for hemodynamic applications

机译:血液动力学应用流体中旋转沉浸结构的数值模拟

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In this paper, numerical simulation of a hemodynamic fluid-structure interaction (FSI) problem with an immersed rotating structure is carried out. A dynamic FSI problem involving a rotational elastic solid, which is modeled by the incompressible shear stress transport (SST) k-omega turbulence model in the fluid domain and by a co-rotational linearized St. Venant-Kirchhoff model in the structure domain, is studied and applied to a type of artificial heart pump. A monolithic arbitrary Lagrangian-Eulerian mixed finite element method, which is modified to adapt to the interaction between fluid and an immersed rotating structure, is employed to discretize the coupled FSI system. The Newton's linearization and the streamline-upwind/Petrov-Galerkin (SUPG) stabilization are employed to overcome strong nonlinearity and dominant convection effects, respectively. Numerical validations are preformed and compared with a commercial CFD software. This paper is an extension to our recent conference paper [1]. (C) 2018 Elsevier B.V. All rights reserved.
机译:在本文中,对具有浸入式旋转结构的血液动力流固耦合(FSI)问题进行了数值模拟。一个动态FSI问题涉及一个旋转弹性固体,该问题通过流体域中的不可压缩剪切应力传递(SST)k-ω湍流模型和结构域中的同向旋转线性化St. Venant-Kirchhoff模型进行建模研究并应用于一种人造心脏泵。修改后的单片任意Lagrangian-Eulerian混合有限元方法适用于流体与沉浸式旋转结构之间的相互作用,以离散耦合FSI系统。牛顿线性化和流线上风/ Petrov-Galerkin(SUPG)稳定分别用于克服强非线性和主要对流效应。进行了数值验证,并与商用CFD软件进行了比较。本文是对我们最近的会议论文的扩展[1]。 (C)2018 Elsevier B.V.保留所有权利。

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