在超级计算机框架下挑战性天线阵列的多物理场计算

IF 1.8 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Journal on Multiscale and Multiphysics Computational Techniques Pub Date : 2023-03-10 DOI:10.1109/JMMCT.2023.3254661
Hao-Xuan Zhang;Qiwei Zhan;Li Huang;Da-Wei Wang;Yin-Da Wang;Wei-Jie Wang;Zhen-Guo Zhao;Hai-Jing Zhou;Kai Kang;Liang Zhou;Wen-Yan Yin
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引用次数: 1

摘要

为解决大型天线阵的电磁-热-机械耦合问题,开发了一种并行多物理场仿真求解器。为了实现超级计算机体系结构的高可扩展性,我们重构了预置的BiCGSTAB方法和不重叠的域分解方法,使资源最密集的矩阵分解步骤能够在子域内并行独立地执行。电磁场和热场分别求解,并通过耗散功率和温度相关的材料参数进行耦合;在达到热稳态后,受温度升高的影响进行力学模拟。首先验证了电磁-热耦合和热应力求解的准确性,然后在超级计算机上对所开发的多物理场求解器进行了强/弱并行可扩展性实验。最后,使用所提出的求解器模拟了一个极具挑战性的天线阵列,据我们所知,我们首次将频域电磁场激发的多物理场模拟的规模提高到数十亿个未知数。
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Multiphysics Computing of Challenging Antenna Arrays Under a Supercomputer Framework
A parallel multiphysics simulation solver is developed to solve electromagnetic-thermal-mechanical coupling for some challenging large-scale antenna arrays. To achieve high scalability of supercomputer architectures, we reconstruct the preconditioned BiCGSTAB method and the non-overlapping domain decomposition method, so that the most resource-intensive matrix factorization steps can be performed in parallel independently within subdomains. The electromagnetic and thermal fields are solved separately, while coupled through the dissipated power and the temperature-dependent material parameters; after thermal steady state is reached, the mechanical simulation is stimulated subject to the temperature rise. The accuracy of electromagnetic-thermal coupling and thermal stress solution are first validated, and then the strong/weak parallel scalability experiments of the developed multiphysics solver are performed on supercomputer. Finally, an extremely challenging antenna array is simulated using the proposed solver, where to our best knowledge we bring the scale of multiphysics simulations excited by frequency-domain electromagnetic fields to the order of billion unknowns for the first time.
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来源期刊
CiteScore
4.30
自引率
0.00%
发文量
27
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