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An accelerated explicit method with GPU parallel computing for thermal stress and welding deformation of large structure models

机译:GPU并行计算的加速显式方法用于大型结构模型的热应力和焊接变形

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摘要

To simulate welding induced transient thermal stress and deformation of large scale FE models, an accelerated explicit method (ACEXP) and graphical processing units (GPU) parallel computing program of the finite element method (FEM) were developed. In the accelerated explicit method, a two-stage computation scheme is employed. The first computation stage is based on a dynamic explicit method considering the characteristics of the welding mechanical process by controlling both the temperature increment and time scaling parameter. In the second computation stage, a static equilibrium computation scheme is implemented after dynamic thermal loading to obtain a static solution of transient thermal stress and welding deformation. It has been demonstrated that the developed GPU parallel computing program has a good scalability for large-scale models of more than 20 million degrees of freedom. The validity of the accelerated explicit method is verified by comparing the transient thermal stress and deformation with those computed by an implicit FEM. Finally, welding deformation and residual stress in a structure model assembled from nine high-strength steel plates and 26 weld lines were efficiently analyzed by ACEXP and GPU parallel computing within 45 h. The computed welding deformation agreed well with measured results, and a good accuracy was obtained.
机译:为了模拟大规模有限元模型的焊接引起的瞬态热应力和变形,开发了有限元方法(FEM)的加速显式方法(ACEXP)和图形处理单元(GPU)并行计算程序。在加速显式方法中,采用了两阶段计算方案。第一计算阶段基于动态显式方法,通过控制温度增量和时间缩放参数来考虑焊接机械过程的特性。在第二计算阶段,在动态热负荷之后实施静态平衡计算方案,以获得瞬态热应力和焊接变形的静态解。已经证明,开发的GPU并行计算程序对于超过2000万自由度的大规模模型具有良好的可伸缩性。通过将瞬态热应力和变形与隐式有限元法计算的结果进行比较,可以验证加速显式方法的有效性。最后,通过ACEXP和GPU并行计算在45小时内有效地分析了由9个高强度钢板和26条焊接线组成的结构模型中的焊接变形和残余应力。计算得出的焊接变形与实测结果吻合良好,精度较高。

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