Simulation Process Deep Drawing of Tailor Welded Blanks DP600 and BH220 Materials in Tool With Elastic Blankholder

Q3 Engineering
A. Schrek, P. Švec, A. Brusilová, Z. Gábrišová
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引用次数: 5

Abstract

Abstract The high-strength steels and tailor welded blanks (TWB) are applied in construction of cars parts to reduction of cars weight [1, 2]. The application of these materials brings possible complicatons during the forming when it proves the considerable influence of stress-strain characteristics differences of of the individual parts of TWB what result in non-constant material flow and consequently a negative movement of the weld interface [3, 4]. One of the ways of elimination of this negative effect is to choose a suitable blankholder system with optimal distribution of blankholder forces by using elastic blankholder with adjustable distribution of blankholder forces. Within the bounds of study the experimental blankholder system with elastic blankholder with adjustable distribution of blankholder forces was used [5, 6]. Finite element methods (FEM) simulation has unsubstitutable role n the study of formability of TWB whereby it is possible to determine the values and points of application of the blankholder forces [7, 8]. The FEM simulations results carried out in simulative LS-Dyna software are presented in this article which is focused on achieving weld interface movement minimalization of tailor welded blanks from DP600 and BH220 materials by optimization of blankholder forces [9, 10].
DP600和BH220拼焊坯料在弹性压边器中拉深成形的模拟
高强度钢和拼焊板(TWB)被应用于汽车零部件的制造,以减轻汽车的重量[1,2]。这些材料的应用在成形过程中可能会带来一些问题,因为它证明了环壁板各部件的应力-应变特性差异会产生相当大的影响,导致材料流动不恒定,从而导致焊缝界面的负运动[3,4]。消除这一负面影响的方法之一是采用可调节压边力分布的弹性压边器,选择合适的压边力分布最优的压边器系统。在研究范围内,采用可调节压边力分布的弹性压边器实验压边系统[5,6]。有限元方法(FEM)仿真在板条板成形性研究中具有不可替代的作用,可以确定压边力的取值和施加点[7,8]。本文介绍了在LS-Dyna模拟软件中进行的有限元模拟结果,重点研究了通过优化压边力,实现DP600和BH220材料定制焊接坯料焊缝界面移动最小化[9,10]。
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
Strojnicky Casopis
Strojnicky Casopis Engineering-Mechanical Engineering
CiteScore
2.00
自引率
0.00%
发文量
33
审稿时长
14 weeks
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