Space–time collocation meshfree method for modeling 3D wave propagation problems

被引:0
作者
Zhentian Huang
Dong Lei
Zi Han
Heping Xie
Jianbo Zhu
机构
[1] Shenzhen University,Guangdong Provincial Key Laboratory of Deep Earth Sciences and Geothermal Energy Exploitation and Utilization, Institute of Deep Earth Sciences and Green Energy, College of Civil and Transportation Engineering
[2] Hohai University,College of Mechanics and Materials
来源
Computational Mechanics | 2024年 / 73卷
关键词
BMLS–ST; BMLS–NM; Wave propagation; Meshfree method;
D O I
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学科分类号
摘要
In this work, a novel local space–time domain collocation technique—space–time boundary moving least squares (BMLS–ST) method, which has been proposed for modeling 3D propagation problems in the 4D spatiotemporal domain. The transient wave equations are approximated by four 1D boundary shape functions on the X-, Y-, Z-, and T-axis within the BMLS–ST implementation. Specifically, due to the local approximation feature of the moving least square in 1D shape functions, the BMLS–ST results in a large-scale sparse linear system that is easy to store and solve. In addition, based on the boundary moving least square 3D spatial approximation, we introduce the Newmark implicit integration scheme to develop the boundary moving least square Newmark approximation formula (BMLS–NM). The identical spatial discretization scheme is adopted in the two methods proposed here, with different temporal approximations. The numerical results demonstrate that the BMLS–ST is of a high order of accuracy, easy to carry out, and utilizes large time steps for modeling transient 3D wave propagation problems. This work provides a numerical basis for further research on the dynamic analysis of discontinuous the arch dam model.
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页码:89 / 104
页数:15
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