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Selective laser melting of copper using ultrashort laser pulses at different wavelengths

机译:使用不同波长的超短激光脉冲对铜进行选择性激光熔化

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摘要

Additive manufacturing gained increasing interest during the last decade due to the potential of creating 3D devices featuring nearly any desired geometry. One of the most widely used methods is the so-called powder bed method. In general, conventional cw and pulsed laser sources operating around 1030 nm and CO_2 lasers at 10.6 urn are usually applied for local melting of the powder material. Among other materials like polymers, these systems are feasible for several metals, alloys and even ceramics, but reach their limitations for a variety of other materials. In order to overcome these limits, ultrashort pulse laser systems are one approach. Due to the increased peak power and ultrashort interaction times within the femtosecond to picosecond time range, materials with extraordinary high melting points, increased heat conductivity or new composites with tailored specifications are coming into reach. Moreover, based on the nonlinear absorption effect, also transparent materials can be processed. Here, we present the selective laser melting of pure copper using ultrashort laser pulses. This work involves a comparative study using 500 fs pulses at processing wavelengths of 515 nm and 1030 nm. The repetition rate of the applied laser system was varied within the MHz range in order to exploit heat accumulation. By using the ultrashort interaction times and tailoring the repetition rate, the induced melt pool can be significantly optimized yielding robust copper parts revealing thin-wall structures in the range below 100 urn.
机译:在过去的十年中,由于制造具有几乎任何所需几何形状的3D设备的潜力,增材制造越来越引起人们的兴趣。最广泛使用的方法之一是所谓的粉末床方法。通常,通常将工作在1030 nm附近的常规连续波和脉冲激光源以及10.6微米的CO_2激光器用于粉末材料的局部熔化。在诸如聚合物之类的其他材料中,这些系统对于几种金属,合金甚至陶瓷都是可行的,但在多种其他材料上却达到了其局限性。为了克服这些限制,超短脉冲激光系统是一种方法。由于在飞秒到皮秒的时间范围内增加的峰值功率和超短的相互作用时间,具有非凡高熔点,更高导热性的材料或具有定制规格的新型复合材料将陆续问世。此外,基于非线性吸收效应,还可以处理透明材料。在这里,我们介绍了使用超短激光脉冲对纯铜的选择性激光熔化。这项工作涉及在515 nm和1030 nm的处理波长下使用500 fs脉冲进行的比较研究。为了利用热量积累,所应用的激光系统的重复频率在MHz范围内变化。通过使用超短的相互作用时间并调整重复率,可以显着优化感应熔池,从而生产出坚固的铜部件,从而揭示出低于100微米范围内的薄壁结构。

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  • 来源
    《Conference on Laser 3D Manufacturing》|2018年|1052312.1-1052312.6|共6页
  • 会议地点 San Francisco(US)
  • 作者单位

    Institute of Applied Physics Abbe Center of Photonics Friedrich-Schiller-Universitaet Jena Albert-Einstein-Str. 15 07745 Jena Germany;

    Institute of Applied Physics Abbe Center of Photonics Friedrich-Schiller-Universitaet Jena Albert-Einstein-Str. 15 07745 Jena Germany Fraunhofer Institute for Applied Optics and Precision Engineering IOF High Performance Center Photonics Albert-Einstein-Str. 7 07745 Jena Germany;

    Institute of Applied Physics Abbe Center of Photonics Friedrich-Schiller-Universitaet Jena Albert-Einstein-Str. 15 07745 Jena Germany Fraunhofer Institute for Applied Optics and Precision Engineering Albert-Einstein-Str. 7 07745 Jena Germany;

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  • 关键词

    additive manufacturing; selective laser melting; ultrashort laser pulses; copper;

    机译:添加剂制造;选择性激光熔化超短激光脉冲铜;

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