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Improved tool design for fine blanking through the application of numerical modeling techniques

机译:通过数值建模技术的应用,改进了工具设计,可以进行精细落料

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The economic and efficient desing of tools for metal-forming processes is increasingly being supported by the application of modem techniques such as the finite element method (FEM). This is especially the case for bulk forming and deep drawing operations, where existing codes have proven to be quite valuable for the prediction of important process parameters, including punch force, tool stress distribution as well as the stress and strain distributions within the workpiece itself. In the case of blanking operations, where a true material separation takes place, standard codes are limited. However, with recent improvements in FEM codes, it is possible to make a prediction as to the initiation of cracks and thus part quality. In this paper, the results of investigations of both blanking and fine-blanking processes with the help of FEM are presented. This includes the identification and elimination of critical locations high tool stress, the determination of tribological conditions such as normal pressure, relative velocity between tool and part and part and temperature effects, and the prediction of crack initiation using various rupture criteria.
机译:诸如有限元方法(FEM)等现代技术的应用越来越多地支持金属成型工艺工具的经济有效设计。对于批量成型和拉深操作尤其如此,现有的代码已被证明对于预测重要的工艺参数非常有价值,这些参数包括冲压力,工具应力分布以及工件自身内部的应力和应变分布。在落料操作中,发生真正的物料分离时,标准代码受到限制。但是,随着FEM代码的最新改进,可以预测裂纹的开始,从而预测零件质量。本文介绍了借助有限元方法对冲裁和精冲工艺的研究结果。这包括识别和消除高工具应力的关键位置,确定摩擦条件,例如法向压力,工具与零件之间的相对速度以及温度影响,以及使用各种破裂标准来预测裂纹萌生。

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