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On the meshfree particle methods for fluid-structure interaction problems

机译:关于流体结构相互作用问题的网紫外颗粒方法

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摘要

This paper presents a review of recent progress made towards the applications of the meshfree particle methods (MPMs) for solving coupled fluid-structure interaction (FSI) problems. Meshfree methods are categorized based on their mathematical formulation and treatment of computational data points. The advantages and limitations of these methods, particularly related to FSI applications, have been identified. A detailed account of salient work related to the FSI problems involving complex geometries, viscous flows, and large structural deformations has been presented and the benchmark solutions are identified for future research. Compared to their mesh-based counterparts, MPMs are found better suited in negotiating moving boundaries and complex geometries, features that are the hallmark of FSI problems. However, the biggest challenge to their wider acceptability is their implementation and programming complexity, higher computational cost, and lack of commercial software packages. So far, meshfree methods have mostly been limited to applications, where conventional methods show limited performance. Owing to its promising growth potential, partitioned FSI is the prime emphasis of this paper. Various aspects of partitioned FSI have been identified and classified for meshfree FSI problems, which include problem formulation strategies, domains discretization approaches, solver coupling methodology, interface treatment, benchmark problems, computational load, and availability of commercial software. Furthermore, various challenges involved in employing MPMs for FSI have also been identified and discussed along with the state-of-the-art techniques used in meshfree methods and FSI applications, and a future way forward has been proposed. In essence, this paper is an effort to identify and classify key aspects of MPM applications for FSI and suggest potential avenues to explore the full potential of MPM capabilities for the solution of coupled problems.
机译:本文介绍了迄今为止朝向耦合的流体结构相互作用(FSI)问题的耦合流体结构相互作用(FSI)问题的应用的近期进展。基于其数学制定和对计算数据点的处理来分类网格综合方法。已经确定了这些方法,特别是与FSI应用相关的方法的优点和局限。已经提出了与涉及复杂几何形状,粘性流动和大结构变形的FSI问题相关的突出工作的详细描述,并确定了用于将来研究的基准解决方案。与基于网格的对应物相比,发现MPMS更适合谈判移动边界和复杂的几何形状,是FSI问题标志的功能。然而,对其更广泛的可接受性的最大挑战是他们的实施和编程复杂性,更高的计算成本和缺乏商业软件包。到目前为止,MeshFree方法主要受应用,传统方法显示出有限的性能。由于其有希望的增长潜力,分区FSI是本文的主要重点。已经确定了分区FSI的各个方面,并为网格FSI问题进行了分类,包括问题配方策略,域分散化方法,求解器耦合方法,界面处理,基准问题,计算负载和商业软件的可用性。此外,还已经确定并讨论了采用MPMS用于FSI的MPMS参与的各种挑战以及Meshfree方法和FSI应用中使用的最先进的技术,并提出了未来前进的方式。从本质上讲,这篇论文是努力识别和分类FSI的MPM应用的关键方面,并建议潜在的途径来探索耦合问题解决方案的全部潜力。

著录项

  • 来源
    《Engineering analysis with boundary elements 》 |2021年第3期| 14-40| 共27页
  • 作者单位

    Department of Aerospace Engineering College of Aeronautical Engineering National University of Sciences and Technology (NUST) Pakistan;

    Department of Aerospace Engineering College of Aeronautical Engineering National University of Sciences and Technology (NUST) Pakistan;

    Applied Mechanics Department of Engineering and Physical Sciences University of Southampton UK;

    Department of Aerospace Engineering College of Aeronautical Engineering National University of Sciences and Technology (NUST) Pakistan;

    Department of Aerospace Engineering College of Aeronautical Engineering National University of Sciences and Technology (NUST) Pakistan;

    Department of Computational Engineering Research Centre for Modelling and Simulation National University of Sciences and Technology (NUST) Pakistan;

    Department of Aerospace Engineering College of Aeronautical Engineering National University of Sciences and Technology (NUST) Pakistan;

    Department of Aerospace Engineering College of Aeronautical Engineering National University of Sciences and Technology (NUST) Pakistan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Meshfree particle methods; Meshless methods; Fluid-solid interaction; Fluid-structure interface; FSI coupling; Immersed and body-conforming meshes;

    机译:网紫外颗粒方法;无丝毫的方法;流体固体相互作用;流体结构界面;FSI耦合;浸没和身体符合网格;

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