首页> 外文期刊>Journal of Computational Physics >A 3D, fully Eulerian, VOF-based solver to study the interaction between two fluids and moving rigid bodies using thefictitious domain method
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A 3D, fully Eulerian, VOF-based solver to study the interaction between two fluids and moving rigid bodies using thefictitious domain method

机译:一个基于3D,基于EOFrian,基于VOF的求解器,使用虚拟域方法研究两种流体与运动的刚体之间的相互作用

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We present a three-dimensional (3D) and fully Eulerian approach to capturing the interaction between two fluids and moving rigid structures by using the fictitious domain and volume-of-fluid (VOF) methods. The solid bodies can have arbitrarily complex geometry and can pierce the fluid-fluid interface, forming contact lines. The three-phase interfaces are resolved and reconstructed by using a VOF-based methodology. Then, a consistent scheme is employed for transporting mass and momentum, allowing for simulations of three-phase flows of large density ratios. The Eulerian approach significantly simplifies numerical resolution of the kinematics of rigid bodies of complex geometry and with six degrees of freedom. The fluid-structure interaction (FSI) is computed using the fictitious domain method. The methodology was developed in a message passing interface(MPI) parallel framework accelerated with graphics processing units(GPUs). The computationally intensive solution of the pressure Poisson equation is ported to GPUs, while the remaining calculations are performed on CPUs. The performance and accuracy of the methodology areassessed using an array of test cases, focusing individually on the flow solver and the FSI in surface-piercing configurations. Finally, an application of the proposed methodology in simulations of the ocean wave energy converters is presented. (C) 2016 Elsevier Inc. All rights reserved.
机译:我们提出了一种三维(3D)和完全欧拉方法,通过使用虚拟域和流体体积(VOF)方法来捕获两种流体与移动的刚性结构之间的相互作用。固体可以具有任意复杂的几何形状,并且可以刺穿流体-流体界面,形成接触线。三相接口通过使用基于VOF的方法进行解析和重构。然后,采用一致的方案来传输质量和动量,从而可以模拟大密度比的三相流。欧拉方法大大简化了具有六个自由度的复杂几何形状的刚体运动学的数值解析。使用虚拟域方法计算流体-结构相互作用(FSI)。该方法是在通过图形处理单元(GPU)加速的消息传递接口(MPI)并行框架中开发的。压力泊松方程的计算量大的解决方案可移植到GPU,而其余计算则在CPU上执行。该方法的性能和准确性使用一系列测试案例进行了评估,并分别关注于表面穿孔配置中的流量求解器和FSI。最后,提出了所提出的方法在海浪能量转换器模拟中的应用。 (C)2016 Elsevier Inc.保留所有权利。

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