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Modeling concept and numerical simulation of ultrasonic wave propagation in a moving fluid-structure domain based on a monolithic approach

机译:基于整体方法的超声在运动流固相中传播的建模概念和数值模拟

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摘要

In the present study, we propose a novel multiphysics model that merges two time-dependent problems - the Fluid-Structure Interaction (FSI) and the ultrasonic wave propagation in a fluid-structure domain with a one directional coupling from the FSI problem to the ultrasonic wave propagation problem. This model is referred to as the "eXtended fluid-structure interaction (eXFSI)" problem. This model comprises isothermal, incompressible Navier-Stokes equations with nonlinear elastodynamics using the Saint-Venant Kirchhoff solid model. The ultrasonic wave propagation problem comprises monolithically coupled acoustic and elastic wave equations. To ensure that the fluid and structure domains are conforming, we use the ALE technique. The solution principle for the coupled problem is to first solve the FSI problem and then to solve the wave propagation problem. Accordingly, the boundary conditions for the wave propagation problem are automatically adopted from the FSI problem at each time step. The overall problem is highly nonlinear, which is tackled via a Newton-like method. The model is verified using several alternative domain configurations. To ensure the credibility of the modeling approach, the numerical solution is contrasted against experimental data. (C) 2019 Elsevier Inc. All rights reserved.
机译:在本研究中,我们提出了一个新颖的多物理场模型,该模型合并了两个时间相关的问题-流固耦合(FSI)和超声波在流体结构域中的传播,并具有从FSI问题到超声的单向耦合波传播问题。此模型称为“扩展的流固耦合(eXFSI)”问题。该模型包括使用Saint-Venant Kirchhoff固体模型的具有非线性弹性动力学的等温不可压缩Navier-Stokes方程。超声波传播问题包括整体耦合的声波方程和弹性波方程。为了确保流体域和结构域一致,我们使用ALE技术。耦合问题的解决原理是首先解决FSI问题,然后解决波传播问题。因此,波传播问题的边界条件是在每个时间步从FSI问题自动采用的。总体问题是高度非线性的,这可以通过类似牛顿的方法来解决。使用多种备用域配置验证了该模型。为了确保建模方法的可靠性,将数值解与实验数据进行了对比。 (C)2019 Elsevier Inc.保留所有权利。

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