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使用高功率超短脉冲激光对氧化铝进行微加工。

Micromachining of Alumina Using a High-Power Ultrashort-Pulsed Laser.

作者信息

Rung Stefan, Häcker Niklas, Hellmann Ralf

机构信息

Applied Laser and Photonics Group, University of Applied Sciences Aschaffenburg, Würzburger Straße 45, 63743 Aschaffenburg, Germany.

出版信息

Materials (Basel). 2022 Aug 2;15(15):5328. doi: 10.3390/ma15155328.

Abstract

We report on a comprehensive study of laser ablation and micromachining of alumina using a high-power 1030 nm ultrashort-pulsed laser. By varying laser power up to 150 W, pulse duration between 900 fs and 10 ps, repetition rates between 200 kHz and 800 kHz), spatial pulse overlap between 70% and 80% and a layer-wise rotation of the scan direction, the ablation efficiency, ablation rate and surface roughness are determined and discussed with respect to an efficient and optimized process strategy. As a result, the combination of a high pulse repetition rate of 800 kHz and the longest evaluated pulse duration of 10 ps leads to the highest ablation efficiency of 0.76 mm3/(W*min). However, the highest ablation rate of up to 57 mm3/min is achieved at a smaller repetition rate of 200 kHz and the shortest evaluated pulse duration of 900 fs. The surface roughness is predominantly affected by the applied laser fluence. The application of a high repetition rate leads to a small surface roughness Ra below 2 μm even for the usage of 150 W laser power. By an interlayer rotation of the scan path, optimization of the ablation characteristics can be achieved, while an interlayer rotation of 90° leads to increasing the ablation rate, the application of a rotation angle of 11° minimizes the surface roughness. The evaluation by scanning electron microscopy shows the formation of thin melt films on the surface but also reveals a minimized heat affected zone for the in-depth modification. Overall, the results of this study pave the way for high-power ultrashort-pulsed lasers to efficient, high-quality micromachining of ceramics.

摘要

我们报告了一项使用高功率1030 nm超短脉冲激光对氧化铝进行激光烧蚀和微加工的综合研究。通过改变激光功率高达150 W、脉冲持续时间在900 fs至10 ps之间、重复频率在200 kHz至800 kHz之间、空间脉冲重叠率在70%至80%之间以及扫描方向的逐层旋转,针对高效优化的工艺策略,确定并讨论了烧蚀效率、烧蚀速率和表面粗糙度。结果表明,800 kHz的高脉冲重复频率与所评估的最长10 ps脉冲持续时间相结合,可实现0.76 mm³/(W·min)的最高烧蚀效率。然而,在200 kHz的较低重复频率和所评估的最短900 fs脉冲持续时间下,可实现高达57 mm³/min的最高烧蚀速率。表面粗糙度主要受所施加的激光能量密度影响。即使使用150 W的激光功率,高重复频率的应用也会导致表面粗糙度Ra小于2μm。通过扫描路径的层间旋转,可以实现烧蚀特性的优化,90°的层间旋转会导致烧蚀速率增加,11°的旋转角度应用可使表面粗糙度最小化。扫描电子显微镜评估显示表面形成了薄熔膜,但也揭示了用于深度改性的最小热影响区。总体而言,本研究结果为高功率超短脉冲激光实现陶瓷的高效、高质量微加工铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/979d/9369604/4105b0e9e12e/materials-15-05328-g001.jpg

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