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December 8, 2025ACM Transactions on Graphics2 citationsOpen Access

Implicit Incompressible Porous Flow using SPH

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JBJan Bender

Key Points

  • To develop an implicit porous flow solver that accurately models fluid incompressibility with SPH techniques.
  • Implemented a novel density estimation allowing fluid and solid overlap.
  • Used a linear system to solve implicit non-pressure forces.
  • Considered local porosity and extended elasticity model for fluid interactions.
  • Demonstrated stable simulation of porous flow behavior under varying conditions.
  • Successfully captured effects of drag, buoyancy, and capillary action.
  • Enabled elastic behavior changes due to local fluid saturation.

Abstract

We present a novel implicit porous flow solver using SPH, which maintains fluid incompressibility and is able to model a wide range of scenarios, driven by strongly coupled solid-fluid interaction forces. Many previous SPH porous flow methods reduce particle volumes as they transition across the solid-fluid interface, resulting in significant stability issues. We instead allow fluid and solid to overlap by deriving a new density estimation. This further allows us to extend SPH pressure solvers to take local porosity into account and results in strict enforcement of incompressibility. As a result, we can simulate porous flow using physically consistent pressure forces between fluid and solid. In contrast to previous SPH porous flow methods, which use explicit forces for internal fluid flow, we employ implicit non-pressure forces. These we solve as a linear system and strongly couple with fluid viscosity and solid elasticity. We capture the most common effects observed in porous flow, namely drag, buoyancy and capillary action due to adhesion. To achieve elastic behavior change based on local fluid saturation, such as bloating or softening, we propose an extension to the elasticity model. We demonstrate the efficacy of our model with various simulations that showcase the different aspects of porous flow behavior. To summarize, our system of strongly coupled non-pressure forces and enforced incompressibility across overlapping phases allows us to naturally model and stably simulate complex porous interactions.

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Cite This Study

Jan Bender (2025) studied this question.

synapsesocial.com/papers/693624ce4fa91c937236cecbhttps://doi.org/10.1145/3763325
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