SPH的近似空气-流体相互作用

Christoph Gissler, Stefan Band, A. Peer, Markus Ihmsen, M. Teschner
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引用次数: 8

摘要

计算从周围空气相作用到SPH自由表面流体的力是一项挑战。对于全多相模拟,计算开销是显著的,并且由于高密度比可能出现稳定性问题。相反,空气-流体相互作用可以通过采用阻力方程有效地近似。在这里,对于可信的效果,参数化很重要,但也很有挑战性。我们提出了一种以物理激励的方式计算使用阻力方程参数的方法。我们近似粒子的变形和遮挡来确定它们的阻力系数和暴露表面积。通过与多相SPH仿真结果的比较,验证了所得到的效果。通过将该方法与不同类型的SPH求解器相结合,并模拟多个复杂场景,我们进一步展示了该方法的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Approximate Air-Fluid Interactions for SPH
Computing the forces acting from a surrounding air phase onto an SPH free-surface fluid is challenging. For full multiphase simulations the computational overhead is significant and stability issues due to the high density ratio may arise. In contrast, the air-fluid interactions can be approximated efficiently by employing a drag equation. Here, for plausible effects, the parameterization is important but challenging. We present an approach to calculate the parameters of the used drag equation in a physically motivated way. We approximate the deformation and occlusion of particles to determine their drag coefficient and exposed surface area. The resulting effects are validated by comparing them to the results of a multiphase SPH simulation. We further show the practicality of our approach by combining it with different types of SPH solvers and by simulating multiple, complex scenes.
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