Fully discrete finite element approximation for the projection method to solve the Chemotaxis-Fluid System

Fuente: arXiv
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Auteurs principaux: Li, Chenyang, Lin, Ping, Zheng, Haibiao
Format: Preprint
Publié: 2025
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author Li, Chenyang
Lin, Ping
Zheng, Haibiao
author_facet Li, Chenyang
Lin, Ping
Zheng, Haibiao
contents In this paper, we investigate a chemotaxis-fluid interaction model governed by the incompressible Navier-Stokes equations coupled with the classical Keller-Segel chemotaxis system. To numerically solve this coupled system, we develop a pressure-correction projection finite element method based on a projection framework. The proposed scheme employs a backward Euler method for temporal discretization and a mixed finite element method for spatial discretization. Nonlinear terms are treated semi-implicitly to enhance computational stability and efficiency. We further establish rigorous error estimates for the fully discrete scheme, demonstrating the convergence of the numerical method. A series of numerical experiments are conducted to validate the stability, accuracy, and effectiveness of the proposed method. The results confirm the scheme's capability to capture the essential dynamical behaviors and characteristic features of the chemotaxis-fluid system.
format Preprint
id arxiv_https___arxiv_org_abs_2506_06792
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fully discrete finite element approximation for the projection method to solve the Chemotaxis-Fluid System
Li, Chenyang
Lin, Ping
Zheng, Haibiao
Numerical Analysis
In this paper, we investigate a chemotaxis-fluid interaction model governed by the incompressible Navier-Stokes equations coupled with the classical Keller-Segel chemotaxis system. To numerically solve this coupled system, we develop a pressure-correction projection finite element method based on a projection framework. The proposed scheme employs a backward Euler method for temporal discretization and a mixed finite element method for spatial discretization. Nonlinear terms are treated semi-implicitly to enhance computational stability and efficiency. We further establish rigorous error estimates for the fully discrete scheme, demonstrating the convergence of the numerical method. A series of numerical experiments are conducted to validate the stability, accuracy, and effectiveness of the proposed method. The results confirm the scheme's capability to capture the essential dynamical behaviors and characteristic features of the chemotaxis-fluid system.
title Fully discrete finite element approximation for the projection method to solve the Chemotaxis-Fluid System
topic Numerical Analysis
url https://arxiv.org/abs/2506.06792