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Multiphase Particle-Based Simulation of Poro-Elasto-Capillary Effects

  • Ruolan Li*
  • , Yanrui Xu*
  • , Yalan Zhang
  • , Jiri Kosinka
  • , Alexandru C. Telea
  • , Jian Chang
  • , Jian Jun Zhang
  • , Xiaojuan Ban
  • , Xiaokun Wang*
  • *Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingConference contributionAcademicpeer-review

Abstract

Simulating the interactions between fluids and porous media has attracted significant attention in computer graphics. A key challenge in this domain is modeling the Poro-Elasto-Capillary (PEC) coupling effect which describes the intricate interplay of three physical phenomena in soft porous materials: pore-structure evolution, elastic deformation, and wetting driven by capillary pressure. These phenomena collectively govern dynamic behavior such as the softening and fracturing of biscuits upon water absorption or the swelling of cellulose sponges due to liquid infiltration. Most existing simulation methods model porous media either as static grids or as solid particles with augmented water content attributes, failing to capture the full spectrum of PEC-driven effects due to the lack of physical modeling for elasticity, dynamic porosity changes, and capillary interactions. We propose a multiphase particle-based framework to holistically simulate PEC coupling effects with porous media. We develop a physics-driven model that captures elasticity and dynamic pore-structure evolution under capillary action, enabling realistic simulation of softening and swelling. We derive a saturation-aware pressure Poisson equation to enforce fluid incompressibility within and around the porous medium, ensuring accurate capillary-driven flow while preserving mass and momentum. Finally, we propose a representative elementary volume-based formulation to unify the modeling of homogeneous macro-porous media and cavity-embedded structures, enhancing the representation of pore-scale PEC effects. Comparisons with prior work and real footage show the advantages of our approach in achieving visually realistic fluid-porous media interactions.

Original languageEnglish
Title of host publicationProceedings - SIGGRAPH Asia 2025 Conference Papers, SA 2025
EditorsStephen N. Spencer, Taku Komura, Michael Wimmer, Hongbo Fu
PublisherAssociation for Computing Machinery
ISBN (Electronic)9798400721373
DOIs
Publication statusPublished - 14 Dec 2025
Event2025 SIGGRAPH Asia 2025 Conference Papers, SA 2025 - Hong Kong, Hong Kong
Duration: 15 Dec 202518 Dec 2025

Publication series

NameProceedings - SIGGRAPH Asia 2025 Conference Papers, SA 2025

Conference

Conference2025 SIGGRAPH Asia 2025 Conference Papers, SA 2025
Country/TerritoryHong Kong
CityHong Kong
Period15/12/2518/12/25

Bibliographical note

Publisher Copyright:
© 2025 Copyright is held by the owner/author(s). Publication rights licensed to ACM.

Keywords

  • capillarity
  • incompressible fluid
  • multiphase flow
  • physically-based animation
  • porous media

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