An Interface-Driven Adaptive Variational Procedure for Fully Eulerian Fluid-Structure Interaction via Phase-field Modeling
Biswajeet Rath, Xiaoyu Mao, Rajeev K. Jaiman

TL;DR
This paper introduces a novel fully Eulerian, interface-driven adaptive variational method for fluid-structure interaction, utilizing phase-field modeling, adaptive mesh refinement, and stability techniques to accurately simulate complex FSI phenomena.
Contribution
It presents a new fully Eulerian phase-field approach with adaptive mesh refinement for fluid-structure interaction, ensuring stability and convergence in complex simulations.
Findings
Achieved stable and bounded solutions for phase-field equations.
Demonstrated accurate simulation of contact and bouncing in FSI.
Validated convergence and conservation properties through benchmark problems.
Abstract
In this paper, we present a novel interface-driven adaptive variational procedure using a fully Eulerian description of fluid-structure interaction. The proposed fully-Eulerian procedure involves a fixed background unstructured mesh on which the fluid-structure interface is treated implicitly. We model the fluid-structure interaction by the phase-field finite element formulation relying on a partitioned staggered integration of the convective Allen-Cahn equation with the unified momentum equation for both solid and fluid dynamics. We employ the positivity preserving variational scheme for a bounded and stable solution of the Allen-Cahn phase-field equation. To evaluate the solid stresses, the left Cauchy-Green deformation tensor is convected at each time step to trace the evolution of the solid strain in the Eulerian reference frame. We utilize the residual based error indicators and…
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Taxonomy
TopicsAdvanced Numerical Methods in Computational Mathematics · Solidification and crystal growth phenomena · Fluid Dynamics and Thin Films
