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Analysis of Shape Geometry and Roughness of Ti6Al4V Parts Fabricated by Nanosecond Laser Ablation

机译:纳秒激光烧蚀制备的Ti6Al4V零件的形状几何和粗糙度分析

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摘要

Laser milling is a micro-machining process that uses a laser beam as a tool to remove material through the layer-by-layer ablation mechanism. Generally in laser ablation, the quality of parts is reduced by melt accretions and thermal damage; therefore, this problem is reduced with shorter pulse duration, although ablation efficiency decreases as well. Thus, laser ablation in the nanosecond range still offers a good compromise between process quality and efficiency. Therefore, laser milling with nanosecond laser ablation requires an accurate study to reduce geometric defects induced by the process. The aim of this paper was to study the shape geometry and roughness of Ti6Al4V parts fabricated by laser milling using a nanosecond Nd:YAG laser source. The impact of the laser processing parameters on machining outcomes was studied in order to determine the optimized processing conditions for reducing geometrical defects and improving surface quality. In particular, the influence of average laser power, frequency, and scanning speed was investigated. The geometry of micro-parts was revealed using a 3D digitizing system, the Optimet Mini Conoscan 4000, which combines a non-contact, single-point measuring sensor based on conoscopic holography technology. The use of this measurement technology yielded complete information of the shape geometry and dimensions of the built parts. In addition, the roughness of manufactured surfaces was assessed to complete the analysis.
机译:激光铣削是一种微加工工艺,该工艺使用激光束作为工具通过逐层烧蚀机制去除材料。通常在激光烧蚀中,零件的质量会因熔体积聚和热损伤而降低;因此,尽管消融效率也降低了,但是用较短的脉冲持续时间可以减少该问题。因此,纳秒范围内的激光烧蚀仍然在工艺质量和效率之间提供了很好的折衷方案。因此,使用纳秒激光烧蚀进行激光铣削需要进行精确的研究,以减少由该工艺引起的几何缺陷。本文的目的是研究使用纳秒级Nd:YAG激光源通过激光铣削制造的Ti6Al4V零件的形状几何形状和粗糙度。为了确定减少几何缺陷和改善表面质量的最佳加工条件,研究了激光加工参数对加工结果的影响。特别是,研究了平均激光功率,频率和扫描速度的影响。使用3D数字化系统Optimet Mini Conoscan 4000揭示了微零件的几何形状,该系统结合了基于圆锥全息技术的非接触式单点测量传感器。使用这种测量技术可以获得完整的形状信息和所制造零件的尺寸。另外,评估制造表面的粗糙度以完成分析。

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