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A fast implementation of the FETI-DP method: FETI-DP-RBS-LNA and applications on large scale problems with localized non-linearities

机译:FETI-DP方法的快速实现:FETI-DP-RBS-LNA及其在具有局部非线性的大规模问题上的应用

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As parallel and distributed computing gradually becomes the computing standard for large scale problems, the domain decomposition method (DD) has received growing attention since it provides a natural basis for splitting a large problem into many small problems, which can be submitted to individual computing nodes and processed in a parallel fashion. This approach not only provides a method to solve large scale problems that are not solvable on a single computer by using direct sparse solvers but also gives a flexible solution to deal with large scale problems with localized non-linearities. When some parts of the structure are modified, only the corresponding subdomains and the interface equation that connects all the subdomains need to be recomputed. In this paper, the dual-primal finite element tearing and interconnecting method (FETI-DP) is carefully investigated, and a reduced back-substitution (RBS) algorithm is proposed to accelerate the time-consuming preconditioned conjugate gradient (PCG) iterations involved in the interface problems. Linear-non-linear analysis (LNA) is also adopted for large scale problems with localized non-linearities based on subdomain linear-non-linear identification criteria. This combined approach is named as the FETI-DP-RBS-LNA algorithm and demonstrated on the mechanical analyses of a welding problem. Serial CPU costs of this algorithm are measured at each solution stage and compared with that from the IBM Watson direct sparse solver and the FETI-DP method. The results demonstrate the effectiveness of the proposed computational approach for simulating welding problems, which is representative of a large class of three-dimensional large scale problems with localized non-linearities. Copyright © 2005 John Wiley & Sons, Ltd.
机译:随着并行和分布式计算逐渐成为解决大规模问题的计算标准,域分解方法(DD)受到了越来越多的关注,因为它为将大问题分解为许多小问题提供了自然基础,并可以提交给各个计算节点并以并行方式进行处理。这种方法不仅提供了一种通过使用直接稀疏求解器来解决无法在单台计算机上解决的大规模问题的方法,而且还提供了一种灵活的解决方案,可以解决具有局部非线性的大规模问题。修改结构的某些部分时,只需重新计算相应的子域和连接所有子域的接口方程。本文对双基元有限元撕裂和互连方法(FETI-DP)进行了仔细研究,并提出了一种简化的后代替换(RBS)算法,以加速涉及该过程的耗时的预处理共轭梯度(PCG)迭代接口问题。基于子域线性非线性识别准则,线性非线性分析(LNA)也用于具有局部非线性的大规模问题。这种组合方法被称为FETI-DP-RBS-LNA算法,并在焊接问题的力学分析中得到了证明。该算法的串行CPU成本在每个解决方案阶段都进行了测量,并与IBM Watson直接稀疏求解器和FETI-DP方法的成本进行了比较。结果证明了所提出的计算方法模拟焊接问题的有效性,该方法代表了具有局部非线性的一类大型三维大规模问题。版权与复制; 2005年John Wiley&Sons,Ltd.

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