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Can a new experimental and numerical study improve metal blanking

机译:一项新的实验和数值研究可以改善金属落料吗

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摘要

Blanking is still commonly used in high volume production. Yet, since high-tech products are becoming smaller and smaller, product specifications are becoming more severe. This usually leads to lengthy trial and error in developing industrial blanking applications. The fact that the blanking process is not yet fully understood and that the process is based on empirical knowledge, leads to this trial and error. Therefore, industry needs a suitable model to help overcome the long cycle time in developing a particular blanking process. We developed a finite element model and validated it using a planar experimental set-up. We not only measured the punch load, but also the logarithmic strain-fields. Using digital image correlation, we measured the displacement fields, coupled with a second order method to calculate strain-fields. For both small and large clearances, we concluded that the numerical model describes the blanking process well, up to ductile fracture initiation. This validated model will be a good starting point from which we tackle the issue of ductile fracture in future research.
机译:大批量生产中仍常使用落料。然而,由于高科技产品越来越小,因此产品规格变得越来越严格。这通常会导致开发工业下料应用程序时的反复试验和错误。消隐过程尚未完全理解,并且该过程基于经验知识,这一事实导致了这种尝试和错误。因此,工业界需要一种合适的模型来帮助克服开发特定下料过程的长周期时间。我们开发了一个有限元模型,并使用平面实验装置对其进行了验证。我们不仅测量了冲头载荷,还测量了对数应变场。使用数字图像相关性,我们测量了位移场,并结合了二阶方法来计算应变场。对于小间隙和大间隙,我们得出的结论是,数值模型很好地描述了下料过程,直到韧性断裂开始。这个经过验证的模型将是我们在将来的研究中解决延性断裂问题的良好起点。

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