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A multipass incremental sheet forming strategy of a car taillight bracket

机译:汽车尾灯支架的多道次渐进片材成形策略

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Incremental sheet forming (ISF) satisfies the increasing demand for the production of small batch products or customized parts. Up to now, however, there are little studies or applications on the ISF process of geometrically complex products as a result of the long processing time and the difficulty in generating an appropriate tool path. In this study, an attempt was made to process a car taillight bracket which had several intricate geometrical characteristics, especially the nearly straight-wall region and the groove region. It was firstly verified that cracks and wrinkles are prone to be brought about in the two crucial regions of the target product if a traditional multipass forming was employed. Thus, a multipass strategy, based on a detailed area division which considered the processing depth, was approached. And this strategy required only one transitional model so as to shorten the manufacturing cycle. In this way, associated with each region was a corresponding tool path which can be easily modified. Based on the proposed multipass design, the taillight bracket was successfully processed without evident forming defects. And the thickness thinning rate approximately met the conventional requirement of less than 25%. Then, as the transitional model plays an important role in the forming performance of the final product, the design of the addendum surface of the aforementioned two critical areas was discussed. It was verified that a regular transitional surface which is geometrically nearer to the final shape is able to obtain a satisfying forming quality.
机译:增量片材成型(ISF)满足了小批量产品或定制零件生产的不断增长的需求。但是,由于加工时间长且难以生成合适的刀具路径,因此到目前为止,关于几何形状复杂产品的ISF工艺的研究或应用很少。在这项研究中,试图加工具有几个复杂几何特征的汽车尾灯支架,尤其是近乎笔直的壁区域和凹槽区域。首先证实,如果采用传统的多道次成型方法,则在目标产品的两个关键区域容易产生裂纹和皱纹。因此,基于考虑处理深度的详细区域划分,提出了一种多通道策略。而且该策略仅需要一个过渡模型即可缩短制造周期。这样,与每个区域相关联的是可以轻松修改的相应刀具路径。基于提出的多通道设计,成功地加工了尾灯支架,而没有明显的成型缺陷。并且厚度减薄率大约满足小于25%的常规要求。然后,由于过渡模型在最终产品的成型性能中起着重要作用,因此讨论了上述两个关键区域的齿顶表面的设计。已经证实,几何上更接近最终形状的规则过渡表面能够获得令人满意的成形质量。

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