首页> 外文会议>Conference on Photon Processing in Microelectronics and Photonics III; 20040126-20040129; San Jose,CA; US >Efficient Pocketing Simulation Model for Solid State Laser Micromachining and its Application to a Sol-gel Material
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Efficient Pocketing Simulation Model for Solid State Laser Micromachining and its Application to a Sol-gel Material

机译:固态激光微加工的有效装袋仿真模型及其在溶胶-凝胶材料中的应用

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Laser ablation using diode pumped solid state lasers shows great potential for a wide range of micromachining applications. We have been using a frequency quadrupled Nd: VO_4 laser (266 nm wavelength), with a pulse duration < 30 ns, to ablate a sol-gel Ormocer material. With a pulse energy of around 20 μJ, and a focal spot of the order of 10 μm diameter, single pulses were found to produce craters a few microns in depth and ~10 μm in diameter. A study of the variation of the crater profile with pulse energy and angle of incidence to the surface has enabled the development of an efficient method to simulate the ablation for a series of consecutive shots constituting a toolpath. Multiple pulses with varying degrees of overlap were simulated, and compared with experiment. Results show that the model accurately predicts the profiles of trenches and pocketed surfaces given parameters obtained from a single crater machined at normal incidence. The "self calibrating" feature of our approach significantly reduces the number of input parameters required for adequate simulations. In particular, it does not require knowledge of the beam profile or material ablation curve. The simplicity and practicality of the method make it promising for use in an industrial environment.
机译:使用二极管泵浦固态激光器的激光烧蚀在广泛的微加工应用中显示出巨大的潜力。我们一直在使用脉冲持续时间<30 ns的四倍频Nd:VO_4激光器(波长266 nm)来烧蚀溶胶凝胶Ormocer材料。脉冲能量约为20μJ,焦点的直径约为10μm,发现单个脉冲会产生深度为几微米,直径约为10μm的陨石坑。对陨石坑轮廓随脉冲能量和相对于表面的入射角的变化的研究使得能够开发出一种有效的方法来模拟构成刀具路径的一系列连续喷丸的烧蚀。模拟了重叠程度不同的多个脉冲,并与实验进行了比较。结果表明,该模型可以准确预测沟槽和凹坑表面的轮廓,这些参数是从以法向入射加工的单个坑中获得的参数给定的。我们方法的“自校准”功能大大减少了进行适当仿真所需的输入参数的数量。特别地,它不需要光束轮廓或材料烧蚀曲线的知识。该方法的简单性和实用性使其有望在工业环境中使用。

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