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Effect of vibration frequency and displacement on melt expulsion characteristics and geometric parameters for ultrasonic vibration-assisted laser drilling of steel

机译:振动频率和位移对钢制超声振动激光钻孔的熔喷特性和几何参数

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摘要

Recently, the applications of ultrasonic vibration assistance to laser-based manufacturing processes are rapidly proliferating. Ultrasonic vibration-assisted laser drilling (UVLD) process involves simultaneous application of high frequency vertical vibrations to the workpiece while being irradiated with a continuous wave laser beam. In UVLD, the ultrasonic vibration assistance causes expulsion of droplets from the laser melted surface, resulting in the formation of deep holes. In this paper, systematic analysis of the effects of ultrasonic vibration frequency (20-40 kHz) and displacement (16-32 mu m) on melt expulsion characteristics in early stages of drilling and geometric/quality features of the holes for UVLD of AISI 316 is presented. Based on the analysis of initiation of droplet ejection from the melt pool and particle size of the ejected droplets, mechanisms of droplet ejection based on capillary wave theory are proposed. It was observed that while increasing both ultrasonic vibration frequency and displacement resulted in reduction in droplet ejection initiation time and the formation of deeper holes for the given laser irradiation time (100 ms), the effect of vibration displacement was much more pronounced than the frequency on the variation.
机译:最近,超声振动辅助对基于激光的制造工艺的应用是快速增殖的。超声波振动辅助激光钻孔(UVLD)工艺涉及通过连续波激光束照射的同时向工件同时施加高频垂直振动。在UVLD中,超声波振动辅助导致来自激光熔化表面的液滴驱逐,从而形成深孔的形成。在本文中,系统分析超声波振动频率(20-40 kHz)和位移(16-32μm)对钻孔的早期阶段的熔喷特性(16-32 mu m)对AISI 316的UVLD孔的孔和几何/质量特征中的熔体驱逐特征被表达。基于从喷射池的熔池和粒径的液滴喷射的开始分析,提出了基于毛细波理论的液滴喷射机理。观察到,在增加超声波振动频率和位移的同时导致液滴喷射起始时间和给定激光照射时间(100ms)的更深孔的形成,振动位移的效果比频率更加明显变异。

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