A Numerical Framework for Fast Transient Compressible Flows Using Lattice Boltzmann and Immersed Boundary Methods

IF 2.7 3区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
Hippolyte Lerogeron, Pierre Boivin, Vincent Faucher, Julien Favier
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Abstract

This article is dedicated to the development of a model to simulate fast transient compressible flows on solid structures using immersed boundary method (IBM) and a lattice Boltzmann solver. Ultimately, the proposed model aims at providing an efficient algorithm to simulate strongly-coupled fluid-structure interactions (FSI). Within this goal, it is necessary to propose a precise and robust numerical framework and validate it on stationary solid cases first, which is the scope of the present study. Classical FSI methods, such as body-fitted approaches, are facing challenges with moving or complex geometries in realistic conditions, requiring computationally expensive re-meshing operations. IBM offers an alternative by treating the solid structure geometry independently from the fluid mesh. This study focuses on the extension of the IBM to compressible flows, and a particular attention is given to the enforcement of various thermal boundary conditions. A hybrid approach, combining diffuse forcing for Dirichlet-type boundary conditions and ghost-nodes forcing for Neumann-type boundary conditions is introduced. Finally, a simplified model, relying only on diffuse IBM forcing, is investigated to treat specific cases where the fluid solid interface is considered as adiabatic. The accuracy of the method is validated through various test cases of increasing complexity.

Abstract Image

基于晶格玻尔兹曼和浸入边界法的快速瞬态可压缩流动数值框架
本文致力于利用浸入边界法和晶格玻尔兹曼解算器建立一个模型来模拟固体结构上的快速瞬态可压缩流动。最终,该模型旨在提供一种有效的算法来模拟强耦合流固耦合(FSI)。在此目标范围内,有必要提出一个精确而稳健的数值框架,并首先在固定固体情况下验证它,这是本研究的范围。经典的FSI方法,如体拟合方法,面临着现实条件下移动或复杂几何形状的挑战,需要计算昂贵的重新网格操作。IBM提供了一种替代方案,即独立于流体网格处理实体几何结构。本研究的重点是将IBM扩展到可压缩流,并特别关注各种热边界条件的执行。提出了一种结合dirichlet型边界条件的扩散强迫和neumann型边界条件的鬼节点强迫的混合方法。最后,研究了一个简化模型,仅依赖于扩散IBM强迫,以处理流体-固体界面被认为是绝热的特定情况。通过各种复杂的测试用例验证了该方法的准确性。
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来源期刊
CiteScore
5.70
自引率
6.90%
发文量
276
审稿时长
5.3 months
期刊介绍: The International Journal for Numerical Methods in Engineering publishes original papers describing significant, novel developments in numerical methods that are applicable to engineering problems. The Journal is known for welcoming contributions in a wide range of areas in computational engineering, including computational issues in model reduction, uncertainty quantification, verification and validation, inverse analysis and stochastic methods, optimisation, element technology, solution techniques and parallel computing, damage and fracture, mechanics at micro and nano-scales, low-speed fluid dynamics, fluid-structure interaction, electromagnetics, coupled diffusion phenomena, and error estimation and mesh generation. It is emphasized that this is by no means an exhaustive list, and particularly papers on multi-scale, multi-physics or multi-disciplinary problems, and on new, emerging topics are welcome.
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