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Punch Radius Influence on 'Large Size' Hydroformed Components

机译:冲压半径对“大尺寸”液压成形组分的影响

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Sheet metal hydroforming has gained increasing interest during last years, especially as application in the manufacturing of some components for: automotive, aerospace and electrical appliances for niche productions. Different studies have been also done to determine the optimal forming parameters making an extensive use of FEA. In the hydroforming process a blank sheet metal is formed through the action of a fluid and a punch. It forces the sheet into a die, which contains a compressed fluid. Many studies have been focused on the analysis of process and geometric parameters influence about the hydroforming process of a single product with main dimensions till to 100 mm. In this paper the authors describe the results of an experimental activity developed on two different large sized products obtained through sheet metal hydroforming. Different geometric and process parameters have been taken into account during the testing phase to study, in particular, the punch radius influence on the process feasibility. An ANOVA analysis has been implemented to study the influence of geometrical and process parameters on the maximum hydroforming depth. Through this work it has been possible to verify that in the hydroforming process of large size products geometry and, in particular, punch radius, are some of the main factors that influences the feasibility of the products. Different considerations can be made about the effects of the blankholder force and the fluid pressure on the maximum hydroforming depth. As further developments, the authors would perform a numerical study in order to enlarge the knowledge of the process design space to other possible values of the punch radius.
机译:在去年期间,钣金液体换热器已经增加了兴趣,特别是在制造某些组件的应用:汽车,航空航天和利基生产的电器。还进行了不同的研究来确定最佳的成型参数,这是广泛使用的FEA。在液压成形过程中,通过流体和冲头的作用形成空白金属板。它迫使纸张进入模具,其含有压缩的流体。许多研究专注于对过程和几何参数的分析,对单一产品的液压成形过程的影响,主要尺寸至100mm。在本文中,作者描述了通过金属板液压成形获得的两种不同大型产品开发的实验活动的结果。在测试阶段期间已经考虑了不同的几何和过程参数,特别是对处理可行性的冲压半径影响。已经实施了ANOVA分析以研究几何和过程参数对最大液压成形深度的影响。通过这项工作,可以验证大尺寸产品几何形状的液压成形过程,特别是冲压半径,是影响产品可行性的主要因素。关于空白钳力和流体压力对最大液压成形深度的影响,可以进行不同的考虑因素。作为进一步的发展,作者将执行数值研究,以便将过程设计空间的知识扩大到冲头半径的其他可能值。

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