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Formability of micro-gears fabrication punching in laser dynamic flexible punching

机译:激光动态柔性冲孔中微齿轮加工冲孔的可成形性

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A novel laser dynamic flexible punching process is employed to fabricate micro-gears to address the difficulties in punch-to-die alignment in the conventional micro-punching process. In this process, induced shocicwaves act as micro-punches and soft punch acts as the media to transmit pressure. The influences of laser intensity, foil thickness and grain size on dimensional accuracy and rollover diameter have been investigated experimentally. In addition, the changes in the hardness and elastic modulus of the work piece after the laser shock effect are characterized by nano-indentation experiments. It is revealed that the dimensional accuracy is optimal when the laser intensity is 5.6 GW/cm(2), but the laser intensity has little effect on the rollover diameter. Punched gears of thicker foils result in worse dimensional accuracy and larger rollover diameter. Foils annealed at 350 degrees C achieve the best punching accuracy but compromise with regard to the maximum rollover diameter. Furthermore, both the nano-hardness (9.92%) and elastic modulus (14.37%) are improved after the laser shock effect, as the evidence of an increase of surface strength and material stiffness. The proposed method, laser dynamic flexible punching, will potentially lead to new methods for micro-gears fabrication in the future. (C) 2016 Published by Elsevier B.V.
机译:一种新颖的激光动态柔性冲压工艺被用于制造微齿轮,以解决传统微冲压工艺中的冲模对准问题。在此过程中,感应的短波起着微冲作用,而软冲头起着传递压力的介质的作用。实验研究了激光强度,箔厚度和晶粒尺寸对尺寸精度和翻转直径的影响。另外,通过纳米压痕实验表征了激光冲击作用后工件硬度和弹性模量的变化。结果表明,当激光强度为5.6 GW / cm(2)时,尺寸精度是最佳的,但是激光强度对翻转直径几乎没有影响。较厚的金属箔的冲切齿轮会导致尺寸精度变差和翻滚直径变大。在350摄氏度下退火的箔可获得最佳的冲压精度,但在最大翻转直径方面存在折衷。此外,在激光冲击之后,纳米硬度(9.92%)和弹性模量(14.37%)均得到改善,这是表面强度和材料刚度增加的证据。所提出的激光动态挠性冲压方法将有可能在未来产生用于微齿轮制造的新方法。 (C)2016由Elsevier B.V.发布

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