Fluid-Solid Coupling in Kinetic Two-Phase Flow Simulation - Inria - Institut national de recherche en sciences et technologies du numérique Access content directly
Journal Articles ACM Transactions on Graphics Year : 2023

Fluid-Solid Coupling in Kinetic Two-Phase Flow Simulation

Abstract

Real-life flows exhibit complex and visually appealing behaviors such as bubbling, splashing, glugging and wetting that simulation techniques in graphics have attempted to capture for years. While early approaches were not capable of reproducing multiphase flow phenomena due to their excessive numerical viscosity and low accuracy, kinetic solvers based on the lattice Boltzmann method have recently demonstrated the ability to simulate water-air interaction at high Reynolds numbers in a massively-parallel fashion. However, robust and accurate handling of fluid-solid coupling has remained elusive: be it for CG or CFD solvers, as soon as the motion of immersed objects is too fast or too sudden, pressures near boundaries and interfacial forces exhibit spurious oscillations leading to blowups. Built upon a phase-field and velocity-distribution based lattice-Boltzmann solver for multiphase flows, this paper spells out a series of numerical improvements in momentum exchange, interfacial forces, and two-way coupling to drastically reduce these typical artifacts, thus significantly expanding the types of fluid-solid coupling that we can efficiently simulate. We highlight the numerical benefits of our solver through various challenging simulation results, including comparisons to previous work and real footage.
Fichier principal
Vignette du fichier
LD23.pdf (5.88 Mo) Télécharger le fichier
Vignette du fichier
waterCoupling.jpg (49.44 Ko) Télécharger le fichier
Origin : Files produced by the author(s)
Format : Figure, Image
Licence : Public Domain

Dates and versions

hal-04174289 , version 1 (31-07-2023)

Licence

Attribution

Identifiers

Cite

Wei Li, Mathieu Desbrun. Fluid-Solid Coupling in Kinetic Two-Phase Flow Simulation. ACM Transactions on Graphics, 2023, 42 (4), pp.1 - 14. ⟨10.1145/3592138⟩. ⟨hal-04174289⟩
199 View
153 Download

Altmetric

Share

Gmail Facebook X LinkedIn More