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Reduction of the sheet thickness variation and its negative effects on the accuracy of mini drawn parts using different geometries of tool components

机译:使用不同几何形状的工具部件,减少薄板厚度变化及其对微型拉伸零件精度的负面影响

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摘要

Like in the case of macro deep drawing, the sheet thickness of mini drawn parts, with dimensions smaller than 20 mm and made from very thin sheets, is unevenly distributed and varies from minimum values resulted in the zone of part edge radius to maximum values in the upper zone of part vertical walls. Such variation of sheet thickness can cause for the resulted drawn parts some geometric deviations from their theoretic geometry or it can determine the parts failure. Hence, the main objective of the mini scale deep drawing processes is to obtain an increased accuracy by reducing the sheet thickness variation, or in other words to minimize the values of sheet thinning and thickening. The present paper analyses the results of investigations made by experiment and simulation concerning the use of different geometries of the tool components that permit to control and minimize the sheet thickness variation in the mini cylindrical drawn part zones where this phenomenon can generate negative effects and determine the part inaccuracy. The new geometries of tools were obtained by modifying the state of stress in the deformed sheet using adequate geometries of active surfaces of the die cavity and blank holder plate.
机译:类似于宏观深冲的情况,尺寸小于20 mm且由非常薄的薄板制成的微型拉制零件的板厚分布不均匀,并且从最小值(导致零件边缘半径的区域)到最大值(最大值)变化。部分垂直墙的上部区域。片材厚度的这种变化可能导致所绘制的零件与其理论几何形状有些几何偏差,或者可以确定零件故障。因此,小规模深冲工艺的主要目的是通过减少板材厚度变化来获得提高的精度,换句话说,是将板材变薄和增厚的值最小化。本文分析了通过实验和模拟得出的调查结果,这些调查和结果涉及使用不同几何形状的工具组件,这些控件允许控制并最小化微型圆柱拉伸零件区域中的板厚变化,在这种情况下,这种现象会产生负面影响并确定部分不准确。通过使用适当的模腔和毛坯支架板有效表面的几何形状来修改变形板中的应力状态,从而获得新的工具几何形状。

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