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首页> 外文期刊>Optics and Lasers in Engineering >Keyhole cutting of carbon fiber reinforced polymer using a long-duration nanosecond pulse laser
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Keyhole cutting of carbon fiber reinforced polymer using a long-duration nanosecond pulse laser

机译:使用长持续时间纳秒脉冲激光的碳纤维增强聚合物的钥匙孔切割

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摘要

The machining performance of a high-energy nanosecond pulse laser with a near-infrared wavelength is investigated for carbon fiber-reinforced polymer (CFRP) with two different fiber arrangements. This research work demonstrates for the first time that a keyhole mode cutting can be achieved for CFRP materials using a high-energy nanosecond pulse laser of a Long Pulse mode (120 ns). Specifically, it is shown that the short-duration Q-Switch mode (8 ns) results in ineffective material removal for CFRP, despite much higher peak laser power intensity than the Long Pulse mode. In Long Pulse mode, multi-pass straight line and contour cutting experiments are further performed to investigate the effect of laser processing parameters and resultant machined surface integrity. Plasma absorption effects using both pulse modes are discussed. The results show that a 2.2 mm thick cross-ply CFRP panel can be cut through using as few as 6 laser passes, and a high-quality machined surface can be produced with a limited heat-affected zone and minimal fiber pull-out using Argon assist gas. The successful outcomes from this work provide the key to enable efficient CFRP laser machining using high-energy nanosecond pulse lasers, and offer insight into the unique energy absorption mechanisms for CFRP laser machining.
机译:采用近红外波长的高能纳秒脉冲激光的加工性能,用于碳纤维增强聚合物(CFRP),具有两种不同的纤维布置。该研究工作首次演示了使用长脉冲模式(120ns)的高能纳秒脉冲激光器来实现钥匙孔模式切割。具体地,示出短持续时间Q-Switch模式(8ns)导致CFRP的无效材料去除,尽管比长脉冲模式要高出峰值激光功率强度。在长脉冲模式下,进一步执行多通直线和轮廓切割实验以研究激光加工参数和所得到的加工表面完整性的效果。讨论了使用两个脉冲模式的等离子体吸收效应。结果表明,使用少量6个激光器可以通过少量的6.2mm厚的交叉层CFRP面板切割,并且可以使用有限的热影响区域和使用氩气的最小纤维拉出来生产高质量加工表面辅助气体。这项工作的成功结果提供了使用高能量纳秒脉冲激光器实现高效CFRP激光加工的关键,并对CFRP激光加工的独特能量吸收机制提供了深入了解。

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