光滑粒子流体力学及其在流固耦合中的应用

IF 3.4 3区 工程技术 Q1 MECHANICS
A-man Zhang (张阿漫) , Peng-nan Sun (孙鹏楠) , Fu-ren Ming (明付仁) , A. Colagrossi
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引用次数: 149

摘要

在海洋工程中,这些应用通常与自由表面有关,它会带来许多有趣的物理现象(例如水波,冲击,飞溅射流等)。对于大多数在欧拉框架下工作的计算流体动力学(CFD)求解者来说,对这些复杂的自由表面流动进行建模是一项艰巨而具有挑战性的任务。光滑粒子流体力学(SPH)作为一种拉格朗日无网格方法,可以方便地跟踪不同的复杂边界,并且可以直接满足不同的边界条件。因此,SPH在模拟以自由表面边界、多相界面或材料不连续为特征的复杂水动力问题方面具有鲁棒性。随着SPH理论、相关数值技术和高性能计算技术的迅速发展,SPH不仅受到学术界的重视,而且在工业界也逐渐得到了广泛的应用。本文综述了SPH方法的最新进展及其在海洋工程流固耦合中的典型应用。介绍了提高数值精度、满足不同边界条件、提高计算效率、抑制压力波动和防止拉伸失稳等不同的数值技术。在数值结果中,对海洋工程中各种典型的流固耦合问题或多相问题进行了描述、建模和验证。并对SPH在海洋工程中的应用前景进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Smoothed particle hydrodynamics and its applications in fluid-structure interactions

In ocean engineering, the applications are usually related to a free surface which brings so many interesting physical phenomena (e.g. water waves, impacts, splashing jets, etc.). To model these complex free surface flows is a tough and challenging task for most computational fluid dynamics (CFD) solvers which work in the Eulerian framework. As a Lagrangian and meshless method, smoothed particle hydrodynamics (SPH) offers a convenient tracking for different complex boundaries and a straightforward satisfaction for different boundary conditions. Therefore SPH is robust in modeling complex hydrodynamic problems characterized by free surface boundaries, multiphase interfaces or material discontinuities. Along with the rapid development of the SPH theory, related numerical techniques and high-performance computing technologies, SPH has not only attracted much attention in the academic community, but also gradually gained wide applications in industrial circles. This paper is dedicated to a review of the recent developments of SPH method and its typical applications in fluid-structure interactions in ocean engineering. Different numerical techniques for improving numerical accuracy, satisfying different boundary conditions, improving computational efficiency, suppressing pressure fluctuations and preventing the tensile instability, etc., are introduced. In the numerical results, various typical fluid-structure interaction problems or multiphase problems in ocean engineering are described, modeled and validated. The prospective developments of SPH in ocean engineering are also discussed.

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CiteScore
5.90
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