用于室内声学的大规模并行节点不连续 Galerkin 有限元法模拟器

Anders Melander, Emil Strøm, Finnur Pind, A. Engsig-Karup, Cheol-Ho Jeong, Tim Warburton, Noel Chalmers, J. Hesthaven
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引用次数: 0

摘要

我们为时域线性化声波方程提出了一种大规模并行和可扩展的节点非连续伽勒金有限元法(DGFEM)求解器。该求解器使用 libParanumal 有限元框架实现,并进行了扩展,以处理实际室内声学中的曲线几何和频率相关边界条件。在异构多设备多核计算架构上对该实现进行了基准测试,并针对实际应用中被认为解决成本高昂的问题展示了高性能和可扩展性。在一项基准研究中,扩展测试表明,多 GPU 支持能够在广泛的频率范围内模拟大型房间,在计算时间和内存需求方面都能满足现实的边界条件。此外,还介绍了两种非难几何形状的数值模拟,一种是带穹顶的星形房间,另一种是礼堂。总之,这表明使用多设备加速 DGFEM 求解器进行基于波的大规模房间声学模拟是可行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Massively parallel nodal discontinous Galerkin finite element method simulator for room acoustics
We present a massively parallel and scalable nodal discontinuous Galerkin finite element method (DGFEM) solver for the time-domain linearized acoustic wave equations. The solver is implemented using the libParanumal finite element framework with extensions to handle curvilinear geometries and frequency dependent boundary conditions of relevance in practical room acoustics. The implementation is benchmarked on heterogeneous multi-device many-core computing architectures, and high performance and scalability are demonstrated for a problem that is considered expensive to solve in practical applications. In a benchmark study, scaling tests show that multi-GPU support gives the ability to simulate large rooms, over a broad frequency range, with realistic boundary conditions, both in terms of computing time and memory requirements. Furthermore, numerical simulations on two non-trivial geometries are presented, a star-shaped room with a dome and an auditorium. Overall, this shows the viability of using a multi-device accelerated DGFEM solver to enable realistic large-scale wave-based room acoustics simulations.
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