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Fluid interface detection technique based on neighborhood particles centroid deviation (NPCD) for particle methods

机译:基于邻域粒子质心偏差(NPCD)的流体界面检测技术

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摘要

Particle-based CFD methods are powerful approaches to investigate free surface, multiphase flows, and fluid structure interaction problems because of their ability of tracking moving fluid interface even with huge deformations or fragmentation and merging. However, many fluid interface particle detection techniques are simple to implement but with low accuracy or provide relatively good detection results at complicated implementation cost or higher computational time. In case of incompressible flow simulation methods solving the Poisson equation of pressure, such as the moving particle semi-implicit method, boundary particles detection techniques' accuracy affects precision and stability of pressure computation and interaction between fluid phases. In the present work, a new fluid interface particle detection technique is proposed to improve the accuracy of the boundary particles detection and keep the implementation easy. Denominated as the neighborhood particles centroid deviation technique, it is a two-criteria technique based on the particle number density and the neighborhood particles weighted geometric center deviation. Compared with other techniques, the proposed neighborhood particles centroid deviation technique shows the best results by eliminating false interface particles inside the fluid domain and keeping the interface particles layer thin and regular. As a result, relatively stable pressure time histories and more consistent pressure and velocity fields are achieved. Copyright (c) 2016 John Wiley & Sons, Ltd. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:基于粒子的CFD方法是研究自由表面,多相流和流体结构相互作用问题的有力方法,因为它们具有跟踪运动的流体界面的能力,即使存在巨大的变形或破碎和合并。然而,许多流体界面颗粒检测技术易于实施,但是精度较低,或者以复杂的实施成本或较高的计算时间提供了相对较好的检测结果。如果使用不可压缩的流动模拟方法来解决泊松压力方程,例如运动粒子半隐式方法,则边界粒子检测技术的准确性会影响压力计算的精度和稳定性以及流体相之间的相互作用。在目前的工作中,提出了一种新的流体界面颗粒检测技术,以提高边界颗粒检测的准确性,并使实施容易。被称为邻域粒子质心偏差技术,它是基于粒子数密度和邻域粒子加权几何中心偏差的两种准则技术。与其他技术相比,所提出的邻域粒子质心偏移技术通过消除流域内部的错误界面粒子并保持界面粒子层薄且规则而显示出最佳效果。结果,获得了相对稳定的压力时间历史以及更一致的压力和速度场。版权所有(c)2016 John Wiley&Sons,Ltd.。版权所有(c)2016 John Wiley&Sons,Ltd.。

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