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A matrix free implicit scheme for solution of resistive magneto-hydrodynamics equations on unstructured grids

机译:非矩阵网格上的无矩阵隐式求解电阻磁流体动力学方程的方法

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The resistive magneto-hydrodynamics (MHD) governing equations represent eight conservation equations for the evolution of density, momentum, energy and induced magnetic fields in an electrically conducting fluid, typically a plasma. A matrix free implicit method is developed to solve the conservation equations within the framework of an unstructured grid finite volume formulation. The analytic form of the convective flux Jacobian is derived on a general unstructured mesh and used in a Lower-Upper Symmetric Gauss Seidel (LU-SGS) technique developed as part of the implicit scheme. A grid coloring technique is also developed to create data parallelism in the algorithm. The computational efficiency of the matrix free method is compared with two common approaches: a global matrix solve technique that uses the GMRES (Generalized minimum residual) algorithm and an explicit method. The matrix-free method is observed to be overall computationally faster than the global matrix solve method and demonstrates excellent parallel scaling on multiple cores. The computational effort and memory requirements for the matrix free approach is comparable to the explicit approach which in turn is much lower than the global solve implicit approach. Both the matrix free and global solve implicit techniques exhibit superior steady state convergence compared to the explicit method.
机译:电阻磁流体动力学(MHD)控制方程式表示八个守恒方程式,用于在导电流体(通常为等离子体)中密度,动量,能量和感应磁场的演化。提出了一种无矩阵隐式方法来求解非结构化网格有限体积公式框架内的守恒方程。对流通量雅可比方程的解析形式是在一般的非结构网格上得出的,并用于作为隐式方案一部分开发的上下对称高斯·赛德尔(LU-SGS)技术中。还开发了网格着色技术以在算法中创建数据并行性。将无矩阵方法的计算效率与两种常用方法进行了比较:使用GMRES(广义最小残差)算法的全局矩阵求解技术和显式方法。从整体上看,无矩阵方法在计算上比全局矩阵求解方法要快,并且证明了在多核上的出色并行缩放。无矩阵方法的计算量和内存要求与显式方法相当,而显式方法则比全局求解隐式方法低得多。与显式方法相比,无矩阵和全局求解隐式技术都表现出优异的稳态收敛性。

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