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Enhancement of performance and stability of MPS mesh-free particle method for multiphase flows characterized by high density ratios

机译:具有高密度比的多相流MPS无网格颗粒方法的性能和稳定性的增强

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The paper presents an enhanced stabilized MPS (Moving Particle Semi-implicit) method for simulation of multiphase flows characterized by high density ratios. The developed method benefits from four previously developed schemes [1] as well as a novel one proposed for accurate, consistent modeling of density at the phase interface. The new scheme can be considered as an extended version of a commonly applied density smoothening scheme and is shown to keep the sharpness of spatial density variations while enhancing the stability and performance of simulations. Further, the paper highlights the importance of applying a Taylor series consistent scheme for calculation of pressure gradient in multiphase MPS-based simulations. By presenting a simple perturbation analysis, it is shown that some commonly applied MPS-based pressure gradient models are prone to increase the level of unphysical perturbations at the phase interface leading to numerical instabilities. The original MPS gradient model with a Gradient Correction [1] is shown to provide stable and accurate results even in case of violent multiphase flows characterized by high density ratios.
机译:本文提出了一种增强的稳定MPS(运动粒子半隐式)方法,用于模拟以高密度比为特征的多相流。所开发的方法得益于四种先前开发的方案[1]以及为在相界面处精确,一致地建模密度而提出的一种新颖方案。新方案可以被认为是常用的密度平滑方案的扩展版本,并被证明在保持空间密度变化的清晰度的同时增强了仿真的稳定性和性能。此外,本文强调了在基于多相MPS的模拟中应用泰勒级数一致方案来计算压力梯度的重要性。通过提出一个简单的扰动分析,表明一些常用的基于MPS的压力梯度模型易于增加相界面处的非物理扰动水平,从而导致数值不稳定。原始的具有梯度校正的MPS梯度模型[1]被显示为即使在以高密度比为特征的剧烈多相流动的情况下也可以提供稳定且准确的结果。

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