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Laser Welding Characterization of Kovar and Stainless Steel Alloys as Suitable Materials for Components of Photonic Devices Packaging

机译:KOVAR和不锈钢合金的激光焊接表征作为光子器件包装成分的合适材料

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The weldability of Kovar and stainless steel alloys by Nd:YAG laser beam is studied through changing of some laser beam parameters. It has been found that there is a suitable interaction of the pulsed laser beam of low power laser pulse with both the two alloys. The change of thennophysical properties with absorbed energy from the laser pulse is discussed in this paper which reports the suitability of both Kovar and stainless steel 304 as the base materials for photonic devices packaging. We used laser weld system (LW4000S from Newport) which employs Nd:YAG laser system with two simultaneous beams output for packaging 980 nm high power laser module. Results of changing both laser spot weld width and penetration depth with changing both the pulse peak power density, pulse energy and pulse duration show that there are good linear relationships between laser pulse energy or peak power density and pulse duration with- laser spot weld dimensions( both laser spot weld width and penetration depth). Therefore we concluded that there should be an optimization for both the pulse peak power and pulse duration to give a suitable aspect ratio (laser spot width to penetration depth) for achieving the desired welds with suitable penetration depth and small spot width. This is to reduce the heat affected zone (HAZ) which affects the sensitive optical components. An optimum value of the power density in the order of 10~5 w/cm~2 found to be suitable to induce melting in the welded joints without vaporization. The desired ratio can also be optimized by changing the focus position on the target material as illustrated from our measurements. A theoretical model is developed to simulate the temperature distribution during the laser pulse heating and predict the penetration depth inside the material. Samples have been investigated using SEM with EDS. The metallographic measurements on the weld spot show a suitable weld yield with reasonable weld width to depth ratio.
机译:通过改变一些激光束参数,研究了Kovar和不锈钢合金的可焊性:YAG激光束。已经发现,使用两个合金的低功率激光脉冲的脉冲激光束的合适相互作用。本文讨论了来自激光脉冲的吸收能量的HovyNophysical物理的变化,其报告了Kovar和不锈钢304作为光子器件包装的基础材料的适用性。我们使用了使用ND:YAG激光系统的激光焊接系统(来自Newport的LW4000s),其具有两个同时梁输出,用于包装980nm高功率激光模块。改变激光点焊宽度和穿透深度的结果改变脉冲峰值功率密度,脉冲能量和脉冲持续时间,表明激光脉冲能量或峰值功率密度与激光点焊尺寸之间存在良好的线性关系,并用激光点焊尺寸(激光点焊宽度和穿透深度。因此,我们得出结论,脉冲峰值功率和脉冲持续时间应该有优化,以提供合适的纵横比(激光光斑宽度与穿透深度),以实现具有合适的穿透深度和小点宽度的所需焊缝。这是减少影响敏感光学组件的热影响区域(HAZ)。发现10〜5W / cm〜2的功率密度的最佳值,发现适合于在焊接接头中诱导熔化而不蒸发。也可以通过从我们的测量结果改变目标材料上的焦点位置来优化所需的比率。开发理论模型以模拟激光脉冲加热期间的温度分布,并预测材料内的穿透深度。使用SEM使用EDS进行研究。焊接点上的金相测量显示出合适的焊接产量,合理的焊接宽度与深度比。

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