A fluctuating lattice Boltzmann method for viscoelastic fluid flows

Fuente: arXiv
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Main Authors: Wang, Juanyong, Liu, Xinyue, Wang, Lei, Yu, Yuan, Ji, Yiran
Format: Preprint
Published: 2025
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author Wang, Juanyong
Liu, Xinyue
Wang, Lei
Yu, Yuan
Ji, Yiran
author_facet Wang, Juanyong
Liu, Xinyue
Wang, Lei
Yu, Yuan
Ji, Yiran
contents This study introduces a novel fluctuating lattice Boltzmann (LB) method for simulating viscoelastic fluid flows governed by the Oldroyd-B model. In contrast to conventional LB approaches that explicitly compute the divergence of the polymer stress tensor using finite-difference schemes, the proposed method incorporates the polymer stress implicitly by introducing a polymer stress fluctuation term directly into the evolution equation. This treatment avoids the need for stress-gradient computations, and preserves the physical characteristics of viscoelastic fluid flows. The proposed method is validated against four classical benchmark problems: the simplified four-roll mill, planar Poiseuille flow, unsteady Womersley flow, and the three-dimensional Taylor-Green vortex. The numerical results show excellent agreement with analytical solutions and previous numerical results, confirming the method's reliability in viscoelastic fluid dynamics. Moreover, performance evaluations demonstrate that the present model reduces the memory occupancy and enhances computational efficiency, highlighting its potential for large-scale simulations of complex viscoelastic flows systems.
format Preprint
id arxiv_https___arxiv_org_abs_2506_13072
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A fluctuating lattice Boltzmann method for viscoelastic fluid flows
Wang, Juanyong
Liu, Xinyue
Wang, Lei
Yu, Yuan
Ji, Yiran
Fluid Dynamics
This study introduces a novel fluctuating lattice Boltzmann (LB) method for simulating viscoelastic fluid flows governed by the Oldroyd-B model. In contrast to conventional LB approaches that explicitly compute the divergence of the polymer stress tensor using finite-difference schemes, the proposed method incorporates the polymer stress implicitly by introducing a polymer stress fluctuation term directly into the evolution equation. This treatment avoids the need for stress-gradient computations, and preserves the physical characteristics of viscoelastic fluid flows. The proposed method is validated against four classical benchmark problems: the simplified four-roll mill, planar Poiseuille flow, unsteady Womersley flow, and the three-dimensional Taylor-Green vortex. The numerical results show excellent agreement with analytical solutions and previous numerical results, confirming the method's reliability in viscoelastic fluid dynamics. Moreover, performance evaluations demonstrate that the present model reduces the memory occupancy and enhances computational efficiency, highlighting its potential for large-scale simulations of complex viscoelastic flows systems.
title A fluctuating lattice Boltzmann method for viscoelastic fluid flows
topic Fluid Dynamics
url https://arxiv.org/abs/2506.13072