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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >An elasto-plastic finite element analysis of the sheet metal stretch flanging process
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An elasto-plastic finite element analysis of the sheet metal stretch flanging process

机译:钣金拉伸翻边过程的弹塑性有限元分析

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摘要

The incremental updated Lagrangian elasto-plastic finite element method (FEM) was employed in this study to analyse the stretch flanging of circular plates with a pre-determined smaller hole at the centre of the sheet metal. An extended r min technique was employed such that each incremental step size is determined not only by the yielding of an element Gaussian point, but also by the change in the boundary condition along the tool-sheet interface. The experimental results, using a low-carbon (BA-CQ2) sheet plate with a thickness of 1.0 mm, have been obtained and compared with the corresponding theoretical results. It was found that the flange thickness does not always decrease monotonically from the die shoulder to the flange edge. Reducing the punch diameter and increasing the flange height significantly reduced the flange thickness. Web width does not influence the thickness distribution of the flange. The tendency of flange thickness to thin decreases as punch diameter increases. The reduction of thickness at the die shoulder depends on the die shoulder radius. Simulation results of punch load of stretch flanging, the deformed geometry, and the distribution of thickness are compared with experimental data and found to satisfactorily agree.
机译:本研究采用增量更新的拉格朗日弹塑性有限元方法(FEM)来分析具有预定较小孔的钣金中心的圆形板的拉伸折边。采用了扩展的r min 技术,使得每个增量步长不仅取决于元素高斯点的屈服程度,还取决于沿工具表界面的边界条件的变化。获得了使用厚度为1.0 mm的低碳(BA-CQ2 )薄板的实验结果,并将其与相应的理论结果进行了比较。已经发现,凸缘厚度并不总是从模具肩部到凸缘边缘单调减小。减小冲头直径并增加法兰高度可以显着减小法兰厚度。腹板宽度不影响法兰的厚度分布。凸缘厚度变薄的趋势随着冲头直径的增加而减小。模肩厚度的减小取决于模肩半径。将拉伸翻边的冲头载荷,变形的几何形状和厚度分布的仿真结果与实验数据进行比较,发现令人满意。

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