Onsager-variational formulation of diffuse-domain methods for computational modeling of microscale fluid-structure interactions
Xinpeng Xu

TL;DR
This paper develops a variational framework for diffuse-domain methods to simulate microscale fluid-structure interactions, unifying and extending existing models with thermodynamic consistency.
Contribution
It introduces an Onsager-variational formulation for diffuse-domain methods, enabling thermodynamically consistent modeling of complex interfacial and surface dynamics.
Findings
Recovers established DDM models and sharp-interface limits.
Derives coupled models for deformable vesicles with surface viscosity and active stresses.
Provides a unified, thermodynamically consistent framework for interfacial phenomena.
Abstract
Direct numerical simulation of microscale fluid--structure interactions in multicomponent and multiphase flows requires methods that can represent moving boundaries together with fields constrained to evolving interfaces. Diffuse-domain methods (DDMs) address this geometric difficulty by replacing sharp surfaces with diffuse volumetric representations on regular computational domains. Here we formulate DDMs using Onsager's variational principle. Instead of extending sharp-interface equations and boundary conditions term by term, we embed sharp-surface free-energy and dissipation functionals into the bulk through a diffuse surface delta density and derive the governing equations from the Rayleighian. The framework distinguishes balance-law fields, internal nonconserved order parameters, and kinematic or constitutive rate variables. It also clarifies a key moving-surface distinction:…
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