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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science >Understanding the effect of non-conventional laser beam geometry on material processing by finite-element modelling
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Understanding the effect of non-conventional laser beam geometry on material processing by finite-element modelling

机译:通过有限元建模了解非常规激光束几何形状对材料加工的影响

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The temperature distribution inside the material is of prime importance in laser material processing. Optimization of laser processes requires control over this temperature distribution in order to achieve the desired outcomes by manipulating heating/cooling rates and thermal gradients. So far, most of the laser material processing has been carried out by using circular and rectangular beam geometries with variations in laser power, spot size, and scanning speed. However, variations in these parameters are often limited by other processing conditions and it is not always possible to change, e.g. the scanning speed or laser power. One possible method of varying the temperature distribution, and hence the heating/cooling rates and thermal gradients, is to modify the geometry of laser beams. It has been shown that non-conventional laser beam geometries can be effectively employed for laser processes such as surface heating, transformation hardening, forming, melting of metallic materials, and laser cutting. This article presents a review of non-conventional laser beam geometries that can be utilized to improve and/or optimize many laser material processes. Some examples of laser material processing that have been previously studied in detail are briefly discussed.
机译:材料内部的温度分布在激光材料加工中至关重要。激光工艺的优化要求对此温度分布进行控制,以便通过控制加热/冷却速率和热梯度来获得所需的结果。到目前为止,大多数激光材料加工都是通过使用圆形和矩形光束几何形状进行的,这些几何形状的激光功率,光斑尺寸和扫描速度都有变化。但是,这些参数的变化通常受到其他处理条件的限制,并且例如,通常不能改变。扫描速度或激光功率。改变温度分布并因此改变加热/冷却速率和热梯度的一种可能方法是改变激光束的几何形状。已经表明,非常规的激光束几何形状可以有效地用于诸如表面加热,相变硬化,成形,金属材料的熔化以及激光切割的激光加工。本文介绍了可以用于改善和/或优化许多激光材料工艺的非常规激光束几何形状。简要讨论了先前已详细研究过的激光材料加工的一些示例。

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