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Research on Absorption Effects of Laser Energy Due to Plasma Plume Induced by Laser Ablation

机译:激光烧蚀引起的等离子体羽流对激光能量的吸收效应研究

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Ablaiton of solid target with high power energy can induce laser vapor plasma, which would impart reverse impulse to the target. The physical processes include target heating, melting, vaporization and formation of plasma plume. In this paper, we presented a new numerical model, which described target heating, melting and evaporation. Meanwhile, the ejection of material formed a plasma plume above the surface and expanded into the ambient vacuum. The formed plasma absorbed the laser energy passing through it. The heating of the target was described with a heat conduction equation, which led to the temperature distribution inside the target, as a function of time. When the temperature rises further, vaporization would appear. The vapor velocity and temperature at the surface were used as input for the boundary conditions of plasma plume, which was described with Navier-Stokes equations, for conservation of total vapor mass density, momentum and energy. We considered two dominant absorption mechanisms in the process of plasma shielding, which were electron-ion and electron-neutral inverse Bremsstrahlung. Based on above assumptions, the left laser energy because of plasma shielding was calculated. Results for an aluminum target with Gaussian profile laser pulse with duration of nanosecond were obtained, including the plasma plume temperature, ionization degree, densities of neutral, ions and electrons and laser absorption energy. Results showed that the energy absorption by plasma plume played an important role in the coupling of laser energy and target.
机译:具有高功率能量的固体靶材的脱落会引起激光蒸气等离子体,这将向靶材施加反向脉冲。物理过程包括目标加热,熔化,汽化和等离子羽流的形成。在本文中,我们提出了一个新的数值模型,该模型描述了目标加热,熔化和蒸发。同时,材料的喷射在表面上方形成等离子羽流,并膨胀到环境真空中。形成的等离子体吸收了通过它的激光能量。用热传导方程描述靶的加热,该热传导方程导致靶内部的温度分布随时间变化。当温度进一步升高时,将出现汽化。表面的蒸气速度和温度被用作等离子羽流边界条件的输入,等离子流的边界条件用Navier-Stokes方程描述,以保留总蒸气质量密度,动量和能量。我们考虑了等离子体屏蔽过程中两个主要的吸收机制,即电子离​​子和电子中性逆Bre致辐射。基于以上假设,计算了由于等离子体屏蔽而产生的剩余激光能量。获得了具有高斯轮廓激光脉冲(持续时间为纳秒)的铝靶材的结果,包括等离子体羽流温度,电离度,中性离子,电子和电子的密度以及激光吸收能。结果表明,等离子体羽流对能量的吸收在激光能量与目标的耦合中起着重要的作用。

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