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Numerical analysis of locally conservative weak Galerkin dual-mixed finite element method for the time-dependent Poisson-Nernst-Planck system

机译:局部保守弱Galerkin双混合有限元方法的数值分析,用于时间依赖于时间泊松 - 内核人机 - 普通普通普通系统

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摘要

In this study, a linearized locally conservative scheme, based on using a weak Galerkin (WG)-mixed finite element method (MFEM), is developed for the Poisson–Nernst–Planck (PNP) system. In the dual-mixed formulation of the PNP equation, in addition to the three unknowns of concentrations , and the potential , their fluxes, namely, and and are introduced. These fluxes have an essential role in specifying the Debye layer and computing the electric current. The WG-MFEM considered here uses discontinuous functions to construct the approximation space. Also, a linearization scheme is employed to treat nonlinear terms. In the proposed method, the important physical laws of mass conservation and free energy dissipation are preserved without any restriction on the time step. Error estimates are developed and analyzed for both semi- and fully discrete WG-MFEM schemes. Furthermore, optimal error estimates (under adequate regularity assumptions on the solution) are derived. Several numerical results are provided and they demonstrate the efficiency of the proposed method and validate the convergence theorems.
机译:在本研究中,基于使用弱Galerkin(WG)-Mixed有限元方法(MFEM)的基于使用弱的局部保守方案进行了线性化的本地保守方案,用于Poisson-nernster-Planck(PNP)系统。在PNP方程的双混合制剂中,除了浓度的三个未知,以及潜在的助熔剂,即和并被引入。这些通量在指定DEYBE层并计算电流方面具有重要作用。这里考虑的WG-MFEM使用不连续的功能来构造近似空间。而且,使用线性化方案来治疗非线性术语。在该方法中,保存了大规模保护和自由能量耗散的重要物理规律,而不会对时间步长进行任何限制。为半径和完全离散的WG-MFEM方案开发和分析错误估计。此外,派生了最佳误差估计(在解决方案上的足够规律性假设下)。提供了几种数值结果,并展示了所提出的方法的效率并验证收敛定理。

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