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The diffuse solid method for wetting and multiphase fluid simulations in complex geometries

delete2025-05-07
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PRE
AI
F
Fandi Oktasendra
M
Michael Rennick
S
Samuel J. Avis
J
Jack R. Panter
H
Halim Kusumaatmaja *
DOI:10.1063/5.0267171delete
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Abstract

Abstract

En 中文
We develop a diffuse solid method that is versatile and accurate for modeling wetting and multiphase flows in highly complex geometries. In this scheme, we harness N+1-component phase field models to investigate interface shapes and flow dynamics of N fluid components, and we optimize how to constrain the evolution of the component employed as the solid phase to conform to any pre-defined geometry. Implementations for phase field energy minimization and lattice Boltzmann method are presented. Our approach does not need special treatment for the fluid-solid wetting boundary condition, which makes it simple to implement. To demonstrate its broad applicability, we employ the diffuse solid method to explore wide-ranging examples, including droplet contact angle on a flat surface, particle adsorption on a fluid-fluid interface, critical pressure on micropillars and on Salvinia leaf structures, capillary rise against gravity, Lucas-Washburn's law for capillary filling, and droplet motion on a sinusoidally undulated surface. Our proposed approach can be beneficial to computationally study multiphase fluid interactions with textured solid surfaces that are ubiquitous in nature and engineering applications. (c) 2025 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Keywords:
LATTICE-BOLTZMANN SIMULATIONS
HELE-SHAW CELL
MODELING PINCHOFF
SURFACES
MICROSTRUCTURES
RECONNECTION
COMPUTATION
DYNAMICS
IMPACT
FLOWS

Journal

Physics of Fluids cover
Physics of Fluids
IF:
4.3
Papers:
2.9W
Citations:
8.0W

Organization

U
Univ East Anglia
Scholars:
300
Papers: 212
Citations: 77
U
Univ Durham
Scholars:
572
Papers: 417
Citations: 232