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Formability of Micro-Tubes in Hydroforming

机译:微管在液压成形中的可塑造性

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Micro-hydroforming is a down-scaled metal forming process, based on the expansion of micro-tubes by internal pressurization within a die cavity. The objective of micro-hydroforming is to provide a technology for the economic mass production of complex shaped hollow micro-components. Influence of size effects in metal forming processes increases with scaling down of metal parts. Investigations into the change in formability of micro-tubes due to metal part scaling down constituted an important subject within the conducted fundamental research work. Experimental results are presented, concerning the analysis of the formability of micro-tubes made from stainless steel AISI 304 with an outer diameter of 800 (mu)m and a wall thickness of 40 (mu)m. An average ratio of tube wall thickness to grain size of 1.54 of up to 2.56 was analyzed. Miniaturised mechanical standard methods as well as bulge tests with internal hydrostatic pressurization of the tubular specimens were applied to analyze the influence of size-dependent effects. A test device was developed for the bulge experiments which enabled the pressurization of micro-tubes with internal pressures up to 4000 bar. To determine the attainable maximum achievable expansion ratio the tubes were pressurized in the bulge tests with increasing internal pressure until instability due to necking and subsequent bursting occurred. Comparisons with corresponding tests of macro-tubes, made from the here investigated material, showed a change in formability of micro-tubes which was attributed to the scaling down of the hydroforming process. In addition, a restricted applicability of existing theoretical correlations for the determination of the maximum pressure at bursting was observed for down-scaled micro-hydroforming.
机译:微液压成形是一种下缩放的金属成形过程,基于模腔内通过内部加压的微管的膨胀。微型液压成形的目的是为复杂形状的中空微量组分的经济批量生产提供一种技术。大小效应在金属成型过程中的影响随着金属部件的缩放而增加。对由于金属部件扩展的微管成形性变化的调查构成了进行的基本研究工作中的重要主题。提出了实验结果,关于由不锈钢AISI 304制成的微管的成形性,外径为800(mu)m,壁厚为40(mu)m。分析了管壁厚度与晶粒尺寸为1.54的平均比率,比2.56的粒度为1.56。采用小型化的机械标准方法以及具有管状试样的内部静水加压的凸起测试分析尺寸依赖性影响的影响。开发了一种测试装置,用于凸起实验,使微管的加压能够具有高达4000巴的内部压力。为了确定可获得的最大可实现的膨胀率,在凸起测试中加压管,随着内部压力而增加,直到由于颈颈和随后的爆裂而导致的不稳定性。具有由这里研究的材料制成的宏管相应测试的比较显示了微管的可成形性的变化,其归因于液压成形过程的缩放。此外,观察到用于测定突发时最大压力的现有理论相关性的限制性适用性,用于下缩放的微型液压成形。

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