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Finite element simulation of the electromagnetic piercing of sheet metal

机译:钣金件电磁穿孔的有限元模拟

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In the paper, the sheet electromagnetic piercing process is analyzed from a dynamic view. 3D non-linear simulation is undertaken by means of a dynamic explicit finite element method. Patterns of stress distribution, deformation, kinetic energy, and equivalent rigid velocity have been obtained. According to the different characteristics of deformation and using the von Mises stress distribution condition, the forming of the workpiece can be divided into four phases. In phase I, stress extends to the center of the workpiece gradually, showing a distinct circular wave. In phase II, the drawing of the workpiece increases gradually and the workpiece zone near to the die blade becomes highly stressed and high radial elongation occurs. In phase III, rupture occurs. The high stress zone changes to the center of the waste sheet with little displacement, but there is great bending deformation. In phase IV, inertia] emission of waste sheet starts and bending deformation of the waste sheet continues to extend to its center. It is established that the method has substantial feasibility. The present work affords a sound theoretical basis for further work.
机译:本文从动态的角度分析了薄板电磁穿孔过程。通过动态显式有限元方法进行3D非线性仿真。获得了应力分布,变形,动能和等效刚度的模式。根据变形的不同特征,并利用冯·米塞斯(von Mises)应力分布条件,可以将工件的形成分为四个阶段。在第一阶段,应力逐渐扩展到工件的中心,显示出明显的圆波。在阶段II中,工件的拉拔逐渐增加,靠近冲模刀片的工件区域变得高度受力,并发生了较高的径向伸长。在第三阶段,发生破裂。高应力区以很少的位移改变到废纸的中心,但是弯曲变形很大。在阶段IV中,废纸的惯性排放开始,废纸的弯曲变形继续扩展到其中心。已经确定该方法具有很大的可行性。目前的工作为进一步的工作提供了良好的理论基础。

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