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SPIF of tailored sheets to optimize thickness distribution along the shaped wall

机译:定制板材的SPIF,以优化沿成型壁的厚度分布

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Tailored blanks are widely used in industry for reducing the parts’ weight without affecting stiffness. In this study, the authors proposed the use of the tailored blanks with an alternative aim. Specifically, the attention has been focused on the use of an initial blank with variable thickness for overcoming one of the main drawback of Single Point Incremental Forming process (SPIF), i.e. the material thinning. More in detail, blanks with variable thickness have been designed and experimentally tested for compensating the thinning phenomenon, which characterizes SPIF. An experimental and numerical research has been planned to consider the geometrical variables of the problem. Briefly, an artificial localised variable thickness has been imposed to the original blank with the aim to modify the overall strength of the sheet affecting its deformation. The idea has been analysed changing the depth and the position of the machined pockets on the sheet surface. The application of subtractive step, instead of forming or additive processes, was now preferred for time and cost saving. However, the outcomes of the experimentation can be easily transposed to any combination of processes. The feasibility of the proposed approach will be detailed in the paper.
机译:量身定做的毛坯在工业中广泛用于减轻零件的重量而又不影响刚度。在这项研究中,作者提出了使用量身定制的坯料的替代目的。具体地,注意力集中在使用具有可变厚度的初始坯料上,以克服单点增量成形工艺(SPIF)的主要缺点之一,即材料变薄。更详细地说,已经设计并通过厚度可变的毛坯进行了设计和实验测试,以补偿作为SPIF特征的变薄现象。已经计划进行实验和数值研究来考虑问题的几何变量。简而言之,已经对原始毛坯施加了人工局部可变厚度,目的是改变影响其变形的薄片的整体强度。已经对该想法进行了分析,以改变板材表面上加工的凹坑的深度和位置。为了节省时间和成本,现在优选使用减成法而不是成形或加法法。但是,实验的结果可以轻松转换为过程的任意组合。本文将详细介绍该方法的可行性。

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