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Cavity formation and surface modeling of laser milling process under a thin-flowing water layer

机译:薄流动水层下激光铣削加工的型腔形成与表面建模

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Laser milling process normally involves a number of laser scans over a workpiece to selectively remove the material and then to form cavities with shape and dimensions required. However, this process adversely causes a heat accumulation in work material, which can in turn damage the laser-milled area and vicinity in terms of recast deposition and change of material properties. Laser milling process performing in a thin-flowing water layer is a promising method that can overcome such damage. With the use of this technique, water can flush away the cut debris and at the same time cool the workpiece during the ablation. To understand the potential of this technique for milling application, the effects of process parameters on cavity dimensions and surface roughness were experimentally examined in this study. Titanium sheet was used as a workpiece to be milled by a nanosecond pulse laser under different water flow velocities. A smooth and uniform cut feature can be obtained when the metal was ablated under the high laser pulse frequency and high water flow velocity. Furthermore, a surface model based on the energy balance was developed in this study to predict the cavity profile and surface roughness. By comparing to the experiments, the predicted profiles had a good agreement with the measured ones. (C) 2016 Elsevier B.V. All rights reserved.
机译:激光铣削过程通常涉及对工件进行多次激光扫描,以选择性地去除材料,然后形成具有所需形状和尺寸的型腔。然而,该过程不利地导致了工作材料中的热量积聚,这继而会在重铸沉积和材料特性变化方面损害激光铣削的区域和附近。在稀薄流动的水层中执行激光铣削工艺是可以克服这种破坏的一种有前途的方法。使用该技术,水可以冲走切碎的碎屑,同时在烧蚀过程中冷却工件。为了了解该技术在铣削应用中的潜力,在本研究中通过实验检查了工艺参数对型腔尺寸和表面粗糙度的影响。钛板用作要在不同水流速度下通过纳秒脉冲激光铣削的工件。当在高激光脉冲频率和高水流速下烧蚀金属时,可以获得光滑且均匀的切割特征。此外,在本研究中开发了基于能量平衡的表面模型来预测腔体轮廓和表面粗糙度。通过与实验进行比较,预测的轮廓与测量的轮廓具有良好的一致性。 (C)2016 Elsevier B.V.保留所有权利。

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