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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >A spatially stabilized TDG based finite element framework for modeling biofilm growth with a multi-dimensional multi-species continuum biofilm model
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A spatially stabilized TDG based finite element framework for modeling biofilm growth with a multi-dimensional multi-species continuum biofilm model

机译:一种基于空间稳定TDG的有限元框架,用于模拟基于多维多物种连续体生物膜模型的生物膜生长

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摘要

We consider a model for biofilm growth in the continuum mechanics framework, where the growth of different components of biomass is governed by a time dependent advection-reaction equation. The recently developed time-discontinuous Galerkin (TDG) method combined with two different stabilization techniques, namely the Streamline Upwind Petrov Galerkin (SUPG) method and the finite increment calculus (FIC) method, are discussed as solution strategies for a multi-dimensional multi-species biofilm growth model. The biofilm interface in the model is described by a convective movement following a potential flow coupled to the reaction inside of the biofilm. Growth limiting substrates diffuse through a boundary layer on top of the biofilm interface. A rolling ball method is applied to obtain a boundary layer of constant height. We compare different measures of the numerical dissipation and dispersion of the simulation results in particular for those with non-trivial patterns. By using these measures, a comparative study of the TDG-SUPG and TDG-FIC schemes as well as sensitivity studies on the time step size, the spatial element size and temporal accuracy are presented.
机译:我们考虑了连续介质力学框架中的生物膜生长模型,其中生物质不同成分的生长受时间依赖性平流反应方程控制。本文讨论了最近发展的时间不连续Galerkin(TDG)方法与两种不同的稳定技术,即流线逆风Petrov Galerkin(SUPG)方法和有限增量微积分(FIC)方法,作为多维多物种生物膜生长模型的求解策略。模型中的生物膜界面由与生物膜内部反应耦合的势流之后的对流运动来描述。生长限制底物通过生物膜界面顶部的边界层扩散。采用滚球法获得恒高边界层。我们比较了仿真结果的数值耗散和色散的不同度量,特别是对于那些具有非平凡模式的测度。通过这些措施,对TDG-SUPG和TDG-FIC方案进行了比较研究,并对时间步长、空间元素大小和时间精度进行了敏感性研究。

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