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首页> 外文期刊>Computer Modeling in Engineering & Sciences >Parallel Octree-Based Finite Element Method for Large-Scale Earthquake Ground Motion Simulation
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Parallel Octree-Based Finite Element Method for Large-Scale Earthquake Ground Motion Simulation

机译:基于并行八叉树的有限元方法在大地震地震动模拟中的应用

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We present a parallel octree-based finite element method for large-scale earthquake ground motion simulation in realistic basins. The octree representation combines the low memory per node and good cache performance of finite difference methods with the spatial adaptivity to local seismic wavelengths characteristic of unstructured finite element methods. Several tests are provided to verify the numerical performance of the method against Green's function solutions for homogeneous and piecewise homogeneous media, both with and without anelastic attenuation. A comparison is also provided against a finite difference code and an unstructured tetrahedral finite element code for a simulation of the 1994 Northridge Earthquake. The numerical tests all show very good agreement with analytical solutions and other codes. Finally, performance evaluation indicates excellent single-processor performance and parallel scalability over a range of 1 to 2048 processors for Northridge simulations with up to 300 million degrees of freedom.
机译:我们提出了基于平行八叉树的有限元方法,用于在现实盆地中进行大规模地震地震动模拟。八叉树表示法结合了每个节点的低内存和有限差分方法的良好缓存性能以及对非结构化有限元方法的局部地震波长的空间适应性。提供了几个测试,以验证该方法针对格林函数解的数值性能,适用于具有或不具有非弹性衰减的均质和分段均质介质。还提供了与有限差分代码和非结构化四面体有限元代码的比较,用于模拟1994年Northridge地震。数值测试均显示出与解析解决方案和其他代码的良好一致性。最后,性能评估表明,在Northridge仿真中,在高达1到2048个处理器的范围内,具有高达3亿自由度的出色单处理器性能和并行可扩展性。

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