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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Numerical analysis of the effects of non-conventional laser beam geometries during laser melting of metallic materials
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Numerical analysis of the effects of non-conventional laser beam geometries during laser melting of metallic materials

机译:金属材料激光熔化过程中非常规激光束几何形状影响的数值分析

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摘要

Laser melting is an important industrial activity encountered in a variety of laser manufacturing processes, e. g. selective laser melting, welding, brazing, soldering, glazing, surface alloying, cladding etc. The majority of these processes are carried out by using either circular or rectangular beams. At present, the melt pool characteristics such as melt pool geometry, thermal gradients and cooling rate are controlled by the variation of laser power, spot size or scanning speed. However, the variations in these parameters are often limited by other processing conditions. Although different laser beam modes and intensity distributions have been studied to improve the process, no other laser beam geometries have been investigated. The effect of laser beam geometry on the laser melting process has received very little attention. This paper presents an investigation of the effects of different beam geometries including circular, rectangular and diamond shapes on laser melting of metallic materials. The finite volume method has been used to simulate the transient effects of a moving beam for laser melting of mild steel ( EN-43A) taking into account Marangoni and buoyancy convection. The temperature distribution, melt pool geometry, fluid flow velocities and heating/cooling rates have been calculated. Some of the results have been compared with the experimental data.
机译:激光熔化是在各种激光制造过程中遇到的重要工业活动,例如,激光加工。 G。选择性激光熔化,焊接,钎焊,钎焊,上光,表面合金化,熔覆等。这些过程中的大多数是通过使用圆形或矩形光束进行的。目前,熔池特性(如熔池几何形状,热梯度和冷却速率)是通过改变激光功率,光斑大小或扫描速度来控制的。但是,这些参数的变化通常受到其他处理条件的限制。尽管已经研究了不同的激光束模式和强度分布以改善该过程,但是尚未研究其他的激光束几何形状。激光束几何形状对激光熔化过程的影响很少受到关注。本文研究了包括圆形,矩形和菱形在内的不同光束几何形状对金属材料激光熔化的影响。考虑到Marangoni和浮力对流,有限体积法已被用于模拟移动光束对低碳钢(EN-43A)进行激光熔化的瞬态效应。已经计算出温度分布,熔池几何形状,流体流速和加热/冷却速率。一些结果已经与实验数据进行了比较。

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