不可压缩 SPH 流体的双粒子方法

IF 7.8 1区 计算机科学 Q1 COMPUTER SCIENCE, SOFTWARE ENGINEERING
Shusen Liu, Xiaowei He, Yuzhong Guo, Yue Chang, Wencheng Wang
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引用次数: 0

摘要

拉伸不稳定性是粒子方法在流体模拟中的主要障碍之一,它会导致粒子在拉伸作用下成对聚集,使流体模拟无法产生小尺度薄特征。为了解决这个问题,以往的粒子方法要么使用背景压力,要么使用有限差分方案来缓解粒子成团的假象,但仍然无法在自由表面流中生成小尺度薄特征。在本文中,我们提出了一种模拟不可压缩流体的双粒子方法。我们的方法包括加入旨在捕捉和存储颗粒压力的辅助虚拟颗粒。这些压力样本在每个时间步进行系统的重新分配,并以流体粒子的初始位置为基础。通过这种方法,我们有效地减少了标准 SPH 中的拉伸不稳定性,缩小了经历拉伸应力的粒子的不稳定区域。因此,我们可以精确地模拟自由表面流体,其具有丰富的小尺度薄特征,如液滴、流线和薄片,实验结果也证明了这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Dual-Particle Approach for Incompressible SPH Fluids

Tensile instability is one of the major obstacles to particle methods in fluid simulation, which would cause particles to clump in pairs under tension and prevent fluid simulation to generate small-scale thin features. To address this issue, previous particle methods either use a background pressure or a finite difference scheme to alleviate the particle clustering artifacts, yet still fail to produce small-scale thin features in free-surface flows. In this paper, we propose a dual-particle approach for simulating incompressible fluids. Our approach involves incorporating supplementary virtual particles designed to capture and store particle pressures. These pressure samples undergo systematic redistribution at each time step, grounded in the initial positions of the fluid particles. By doing so, we effectively reduce tensile instability in standard SPH by narrowing down the unstable regions for particles experiencing tensile stress. As a result, we can accurately simulate free-surface flows with rich small-scale thin features, such as droplets, streamlines, and sheets, as demonstrated by experimental results.

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来源期刊
ACM Transactions on Graphics
ACM Transactions on Graphics 工程技术-计算机:软件工程
CiteScore
14.30
自引率
25.80%
发文量
193
审稿时长
12 months
期刊介绍: ACM Transactions on Graphics (TOG) is a peer-reviewed scientific journal that aims to disseminate the latest findings of note in the field of computer graphics. It has been published since 1982 by the Association for Computing Machinery. Starting in 2003, all papers accepted for presentation at the annual SIGGRAPH conference are printed in a special summer issue of the journal.
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