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On a parallel, 3-dimensional, finite element solver for viscous, resistive, stationary magneto hydrodynamics equations: Velocity-current formulation

机译:在平行的三维有限元求解器上,用于求解粘性,电阻性,固定的磁流体动力学方程:速度-电流公式

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摘要

We describe a parallel implementation for the numerical approximation of solutions to the three-dimensional viscous, resistive magnetohydrodynamics (MHD) equations using a velocity–current formulation. In comparison to other formulations, the velocity–current formulation presented in this paper is an integro-differential system of equations that incorporates nonideal boundaries and nonlinearities due to induction. The solution to the equations is approximated using a Picard iteration, discretized with the finite element method, and solved iteratively with the Krylov subspace method GMRES. Effective preconditioning strategies are required to numerically solve the resulting equations with Krylov solvers . For GMRES convergence, the system matrix resulting from the discretization of the velocity–current formulation is preconditioned using a simple, block-diagonal Schur-complement preconditioner based on . The MHD solver is implemented using freely available, well-documented, open-source, libraries deal.II, p4est, Trilinos, and PETSc, capable of scaling to tens of thousands of processors on state-of-the-art HPC architectures.
机译:我们使用速度-电流公式描述了三维粘性粘性磁流体动力学(MHD)方程解的数值逼近的并行实现。与其他公式相比,本文提出的速度-电流公式是一个积分微分方程组,其中包含了归因于感应的非理想边界和非线性。方程的解法使用Picard迭代进行近似,用有限元法离散化,然后使用Krylov子空间法GMRES迭代求解。需要有效的预处理策略,才能用Krylov求解器对所得方程进行数值求解。对于GMRES收敛,使用基于的简单,块对角Schur-complement预处理器对速度-电流公式离散化后的系统矩阵进行预处理。 MHD解算器是使用免费提供的,有据可查的开放源代码的Library Deal.II,p4est,Trilinos和PETSc来实现的,能够在最新的HPC架构上扩展到成千上万的处理器。

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