PARALLEL SOLUTION OF THERMOMECHANICAL INVERSE PROBLEMS FOR LASER DIELESS DRAWING OF ULTRA-THIN WIRE

Q3 Economics, Econometrics and Finance Applied Computer Science Pub Date : 2022-09-30 DOI:10.35784/acs-2022-20
A. Milenin
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Abstract

The paper discusses the solving of inverse thermomechanical problems requiring a large number of FEM tasks with various boundary conditions. The study examined the case when all tasks have the same number of nodes, finite elements, and nodal connections. In this study, the speedup of the solution of the inverse problem is achieved in two ways: 1. The solution of all FEM tasks in parallel mode. 2. The use by all FEM tasks a common matrix with addresses of nonzero elements in the stiffness matrices. These algorithms are implemented in the own FEM code, designed to solve inverse problems of the hot metal forming. The calculations showed that developed code in parallel mode is effective for the number of tasks late than 0,7-0,9 of the number of available processors. Thus, at some point, it becomes effective to use a sequential solution to all tasks and to use a common matrix of addresses of nonzero elements in the stiffness matrix. The achieved acceleration at the optimal choice of the algorithm is 2–10 times compared with the classical multivariate calculations in the FEM. The paper provides an example of the practical application of the developed code for calculating the allowable processing maps for laser dieless drawing of ultra-thin wire from copper alloy by solving the thermomechanical inverse problem. The achieved acceleration made it possible to use the developed parallel code in the control software of the laboratory setup for laser dieless drawing.
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超细线材激光无模拉丝热力学逆问题的并行求解
本文讨论了需要大量具有各种边界条件的有限元任务的逆热力学问题的求解。该研究考察了所有任务具有相同数量的节点、有限元素和节点连接的情况。在本研究中,通过两种方式实现逆问题解的加速:1。并行模式下所有有限元任务的求解。2. 所有有限元法的任务都是使用一个具有刚度矩阵中非零单元地址的公共矩阵。这些算法在自己的有限元程序中实现,旨在解决金属热成形的反问题。计算表明,在并行模式下开发的代码对于任务数晚于0,7-0,9的可用处理器数是有效的。因此,在某些情况下,使用所有任务的顺序解和使用刚度矩阵中非零元素的公共地址矩阵变得有效。该算法在最优选择下获得的加速度是有限元中经典多变量计算的2-10倍。本文给出了通过求解热力学逆问题计算激光无模拉拔铜合金超细线材允许加工图的实例。所实现的加速使所开发的并行代码可以用于激光无模拉伸实验室装置的控制软件中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Applied Computer Science
Applied Computer Science Engineering-Industrial and Manufacturing Engineering
CiteScore
1.50
自引率
0.00%
发文量
0
审稿时长
8 weeks
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