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Molecular dynamics simulation study of deep hole drilling in iron by ultrashort laser pulses

机译:超短激光脉冲在铁深孔中的分子动力学模拟研究

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Classical molecular dynamics simulation technique is applied for investigation of the iron ablation by ultrashort laser pulses at conditions of deep hole for the first time. Laser pulse duration of 0.1 ps at wavelength of 800 nm is considered. The evolution of the ablated material in deep hole geometry differs completely from the free expansion regime as two major mechanisms are important for the final hole shape. The first one is the deposition of the ablated material on the walls, which narrows the hole at a certain height above its bottom. The second mechanism is related to ablation of the material from the walls (secondary ablation) caused by its interaction with the primary ablated particles. Properties of the secondary ablated particles in terms of the velocity and the angular distribution are obtained. The material removal efficiency is estimated for vacuum or in Ar environment conditions. In the latter case, the existence of well-defined vapor cloud having low center of the mass velocity is found. The processes observed affect significantly the material expulsion and can explain the decrease of the drilling rate with the hole depth increase, an effect observed experimentally. (c) 2005 Elsevier B.V. All rights reserved.
机译:首次将经典的分子动力学模拟技术用于深孔条件下超短激光脉冲对铁的烧蚀研究。考虑在800 nm波长下0.1 ps的激光脉冲持续时间。消融材料在深孔几何形状中的演变与自由膨胀方式完全不同,因为有两种主要机制对最终孔的形状很重要。第一个是烧蚀材料在壁上的沉积,它使孔在其底部上方一定高度处变窄。第二种机理与材料与壁的烧蚀(二次烧蚀)有关,这是由于材料与一次烧蚀的颗粒相互作用而引起的。获得了次级烧蚀颗粒在速度和角度分布方面的特性。估计在真空或Ar环境条件下的材料去除效率。在后一种情况下,发现存在质量中心较低的轮廓分明的蒸气云。观察到的过程会显着影响材料的排出,并且可以解释随着钻孔深度的增加钻孔速率的降低,这是实验观察到的效果。 (c)2005 Elsevier B.V.保留所有权利。

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