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A study on micro hydroforming using shock wave of 355 nm UV-pulsed laser

机译:355 nm紫外脉冲激光冲击波进行微液压成形的研究

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In this paper, we proposed a new manufacturing technology of micro hydroforming using 355 nm ultraviolet(UV)-pulsed laser. Hydroforming is known as a well-established technology to manufacture metallic parts, in particular for mass production of sheet metal, for several industrial applications such as automobiles, battery and military products. In addition laser shock processing(LSP) has been developed as the expanded applications of electrical and mechatronic devices. When the material was exposed to laser beam, multiple phenomena like the photochemical, the photothermal and the photomechanical effect are simultaneously occurred at the spot area. Especially, the photothermal effect due to laser heat transfer makes it hard to improve the accuracy of laser processing. To reduce the thermal effect and to enhance the photomechanical effect, the laser was irradiated under water in this paper. Strong forming pressure of LSP was provided by the higher density of water than air, which could help directly manufacture the thin sheet metal materials like as laser direct writing. We also conducted computer simulation using finite element method(FEM) to demonstrate its deformation behaviour with and without the strain rate effect of 10(4)-10(5) (sec(-1)). Compared with conventional processing technology, this new method can provide high selectivity, excellent hydroforming efficiency and lower cost to achieve micro grooving pattern on the surface of thin metal sheet. (C) 2017 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种使用355 nm紫外线脉冲激光进行微液压成形的新技术。液压成形是一种成熟的技术,用于制造金属零件,特别是用于大量生产的钣金零件,用于多种工业应用,例如汽车,电池和军用产品。另外,随着电子和机电设备的扩展应用,已经开发了激光冲击处理(LSP)。当材料暴露于激光束时,在光斑区域同时发生多种现象,如光化学,光热和光机械效应。特别地,由于激光热传递引起的光热效应使得难以提高激光加工的精度。为了降低热效应并增强光机械效应,本文在水下对激光进行了辐照。 LSP的强大成形压力是由于水的密度高于空气而提供的,这可以帮助直接制造薄金属板材料,例如激光直接书写。我们还使用有限元方法(FEM)进行了计算机仿真,以证明其变形行为在有和没有10(4)-10(5)(sec(-1))的应变速率效应的情况下进行。与传统的加工技术相比,该新方法可提供较高的选择性,优异的液压成形效率和较低的成本,从而在薄金属板的表面上实现微细的开槽图案。 (C)2017 Elsevier B.V.保留所有权利。

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