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27-03-2024 | Original Article

A parallel acceleration GPU algorithm for large deformation of thin shell structures based on peridynamics

Authors: Zheng Guojun, Li Runjin, Shen Guozhe, Zhang Xiangkui

Published in: Engineering with Computers | Issue 5/2024

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Abstract

Loaded shell structures may deform, rotate, and crack, leading to fracture. The traditional finite element method describes material internal forces through differential equations, posing challenges in handling discontinuities and complicating fracture problem resolution. Peridynamics (PD), employing integral equations, presents advantages for fracture analysis. However, as a non-local theory, PD requires discretizing materials into nodes and establishing interactions through bonds, leading to reduce computational efficiency. This study introduces a GPU-based parallel PD algorithm for large deformation problems in shell structures within the compute unified device architecture (CUDA) framework. The algorithm incorporates element mapping and bond mapping for high parallelism. The algorithm optimizes data structures and GPU memory usage for efficient parallel computing. The parallel computing capabilities of GPU expedite crack analysis simulations, greatly reducing the time required to address large deformation problems. Experimental tests confirm the algorithm’s accuracy, efficiency, and value for engineering applications, demonstrating its potential to advance fracture analysis in shell structures.

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Metadata
Title
A parallel acceleration GPU algorithm for large deformation of thin shell structures based on peridynamics
Authors
Zheng Guojun
Li Runjin
Shen Guozhe
Zhang Xiangkui
Publication date
27-03-2024
Publisher
Springer London
Published in
Engineering with Computers / Issue 5/2024
Print ISSN: 0177-0667
Electronic ISSN: 1435-5663
DOI
https://doi.org/10.1007/s00366-024-01951-x