首页> 外文会议>ASME international manufacturing science and engineering conference;MSEC2009 >A THREE-DIMENSIONAL TRANSIENT MODELING AND EXPERIMENTAL ANALYSIS OF LASER TRANSFORMATION HARDENING BY USING HIGH POWER DIRECT DIODE LASER
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A THREE-DIMENSIONAL TRANSIENT MODELING AND EXPERIMENTAL ANALYSIS OF LASER TRANSFORMATION HARDENING BY USING HIGH POWER DIRECT DIODE LASER

机译:大功率直接二极管激光的三维变维瞬态建模与实验分析

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Laser transformation hardening (LTH) based on rapid heating and cooling cycles produce hard and wear-resistant layers of the metallic component. A high intensity moving laser beam heats up the thin layer of the external surface of the component without damaging the bulk of material. The metallurgical transformations taking place in the material during the thermo-kinetic cycles could effectively improve the mechanical properties of its surface. Nowadays, a high power direct diode laser (HPDDL) has been accepted by industry as a valuable tool to carry out this process.A three-dimensional (3-D) transient thermo-kinetic model has been developed to predict the temperature profile of the hardened layers of the material surface. The temperature-dependence of the thermal properties of the material is taken into account in the model. The laser beam is considered as a moving line heat source with a uniform distribution of laser power. The numerical solution is obtained by using a transient 3-D heat conduction equation with convection boundary conditions at the surfaces of the workpiece.A number of experiments have been carried out to harden components of AISI S7 tool steel by a continuous wave (CW) HPDDL at different power levels (1200 W- 2000 W) and different scanning speeds (5 mm/s- 20 mm/s). The main processing parameters such as laser power and scanning speed are optimized based on the numerical analysis of the heat conduction involved in this process. The numerical simulation results are compared with results produced experimentally by a HPDDL laser operating in CW, showing good agreement.
机译:基于快速加热和冷却循环的激光相变硬化(LTH)会产生坚硬且耐磨的金属部件层。高强度的移动激光束会加热组件外表面的薄层,而不会损坏大部分材料。在热动力学循环期间材料中发生的冶金转变可以有效地改善其表面的机械性能。如今,高功率直接二极管激光器(HPDDL)已被业界接受为执行此过程的宝贵工具。 已经开发了三维(3-D)瞬态热动力学模型来预测材料表面硬化层的温度曲线。在模型中考虑了材料热性能的温度依赖性。激光束被认为是具有均匀分布的激光功率的移动线热源。通过使用在工件表面具有对流边界条件的瞬态3-D导热方程获得数值解。 为了通过不同功率水平(1200 W- 2000 W)和不同扫描速度(5 mm / s-20 mm / s)的连续波(CW)HPDDL硬化AISI S7工具钢的组件,已进行了许多实验。 。基于此过程涉及的热传导的数值分析,优化了诸如激光功率和扫描速度之类的主要加工参数。将数值模拟结果与在连续波下操作的HPDDL激光器实验产生的结果进行了比较,显示出很好的一致性。

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