Buoyancy-driven Phase Separation in the Material Point Method
Mehrnaz Ayazi, Craig A. Schroeder, Tamar Shinar
Abstract
The Material Point Method (MPM) provides a unified framework for simulating multi-material systems but struggles to allow for the separation of objects. Traditionally, multi-material simulations use a single background grid, which allows for automatic interaction between materials. Since particles of different types receive their velocities by interpolating from a common background grid, they are unable to efficiently separate. This is especially problematic when simulating immiscible fluids such as oil and water; once oil particles and water particles become mixed, they are unable to separate. A common solution is to solve different objects or materials on separate background grids, which allows particles of different materials to move with different velocities and separate. Using separate background grids loses the natural interaction between materials, since materials no longer interact through the background grid. In the case of immiscible fluids, phase separation is driven by thermodynamics and buoyancy. We present a novel method that enables natural buoyancy-driven phase separation in weakly compressible MPM. Our key observation is that compression and pressure do not depend on the type of particle. A local neighborhood of particles is compressed because particles are close together, and they exert pressure because they bump into the particles that are nearby. Correspondingly, we update the deformation gradient from a unified velocity field and use it to compute a unified pressure force. Combined with the use of separate background grids for velocity, this leads to a treatment of immiscible multiphase fluids that naturally separates due to buoyancy forces, even from a fully mixed configuration. We also propose a mixing potential that is capable of driving phase separation caused by thermodynamics even in the absence of gravity. Finally, we propose a novel algorithm for obtaining consistent per-phase level sets for rendering multiphase particle-based fluids.
Ask about this paper
Ask your agent about it.
Lune has read the top-tier papers around this one, so every answer names the papers it rests on.
Your agent calls
Lunesearch_papers
Free to start. No credit card required.
Terminal
Install the CLIlune papers get cccbb216-7510-43ed-bfdb-2ffa9ec0cb03Related papers
- A Dynamic Duo of Finite Elements and Material PointsXuan Li, Minchen Li, Xuchen Han, Huamin Wang et al.SIGGRAPH 2024 · 8 citations
- Volume-Preserving LBM-MPM Coupling for Air-Water-Sand MixturesXiaoyu Xiao, Haoxiang Wang, Xiaokang Yang, Mathieu Desbrun et al.SIGGRAPH 2026
- A momentum-conserving implicit material point method for surface tension with contact angles and spatial gradientsJingyu Chen, Victoria Kala, Alan Marquez-Razon, Elias Gueidon et al.SIGGRAPH 2021 · 24 citations
- IQ-MPM: an interface quadrature material point method for non-sticky strongly two-way coupled nonlinear solids and fluidsYu Fang, Ziyin Qu, Minchen Li, Xinxin Zhang et al.SIGGRAPH 2020 · 49 citations
- A massively parallel and scalable multi-CPU material point methodXinlei Wang, Yuxing Qiu, Stuart R. Slattery, Yu Fang et al.SIGGRAPH 2020 · 82 citations
