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首页> 外文期刊>Journal of Materials Engineering and Performance >Electrode Erosion Observed in Electrohydraulic Discharges Used in Pulsed Sheet Metal Forming
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Electrode Erosion Observed in Electrohydraulic Discharges Used in Pulsed Sheet Metal Forming

机译:脉冲钣金成形中使用的电动液压放电中观察到的电极腐蚀

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摘要

In this paper, we present results of electrode durability testing and electrode design in a pulsed electro-hydraulic discharge environment. Pulsed electrohydraulic forming (EHF) is an electrodynamic process based upon high-voltage discharge of capacitors between two electrodes positioned in a fluid-filled chamber. EHF enables a more uniform distribution of strains, widens the formability window, and reduces elastic springback in the final part when compared to traditional sheet metal stamping. This extended formability allows the fabrication of panels of alternative high strength alloys that are otherwise difficult to make conventionally. It was found that, of the materials tested, steel electrodes not only survived the stresses encountered in the EHF chamber but also had lower erosion rates compared to molybdenum. Erosion rates were found to be constant for low carbon steel at 3.7 mm~3/discharge, and they were high enough that the initial tip geometry was rapidly worn away and a more geometrically and thus electrically stable tip geometry had to be selected. Entrained air in the system had little influence on erosion rates but numerical modeling suggests that the erosion process takes place during the very initial stages of the pulse. Lastly, it was determined that the electrodes discussed in this paper can survive 2000 pulses.
机译:在本文中,我们介绍了在脉冲电动液压放电环境中进行电极耐久性测试和电极设计的结果。脉冲电液成形(EHF)是一种电动过程,其基于位于充液腔中的两个电极之间的电容器高压放电。与传统的钣金冲压相比,EHF可使应变分布更加均匀,扩大了可成形性范围,并减少了最终零件的弹性回弹。这种扩展的可成形性允许制造其他高强度合金的面板,而这些面板通常很难制造。发现在测试的材料中,钢电极不仅可以承受EHF腔室中遇到的应力,而且与钼相比,其腐蚀速率也较低。发现低碳钢在3.7 mm〜3 /放电时的腐蚀速率是恒定的,并且腐蚀速率足够高,以至于初始刀头的几何形状很快被磨损掉,因此必须选择更加几何形状且电稳定的刀头几何形状。系统中夹带的空气对腐蚀速率几乎没有影响,但是数值模型表明腐蚀过程发生在脉冲的最初阶段。最后,确定本文讨论的电极可以承受2000个脉冲。

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