根据入射激光能量和初始压力归一化激光诱导单原子和分子气体击穿中吸收的能量和压力

S. Rudz, Robin Flaugere, M. Wartel, S. Pellerin, J. Hanus
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引用次数: 0

摘要

在激光诱导击穿实验中,吸收能量是首先测量的参数之一。对于给定的光学配置和入射能量,根据压力测量的吸收能量对于测试气体(氩气、氮气、二氧化碳和空气)总是呈现出类似的曲线。这项工作提出了一个经验模型,以有效地预测单原子和分子气体中吸收能量的压力依赖性。第一系列实验涉及Ar、N2和CO2,在50至2400毫巴的压力和~15至~135 mJ的入射激光能量下表现出其效率。第二个系列介绍了这种空气建模的有效性。所有实验都是用532nm的Nd:YAG激光器进行的,焦距为4.23μm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Normalization of absorbed energy and pressure in laser-induced breakdown in mono-atomic and molecular gases according to incident laser energy and initial pressure
In laser-induced breakdown experiments, the absorbed energy is one of the first measured parameters. For a given optical configuration and incident energy, the measured absorbed energy depending on pressure always exhibits a similar curve for the tested gases: argon, nitrogen, carbon dioxide and air. This work presents an empirical modelling to predict the pressure dependence of the absorbed energy in mono-atomic and molecular gas efficiently. The first series of experiments, involving Ar, N2 and CO2, presents its efficiency over pressure from 50 to 2400 mbar and incident laser energies from ∼15 to ∼135 mJ. The second series presents the effectiveness of this modelling on air. All experiments are conducted with a Nd:YAG laser at 532 nm and a focal radius of 4.23 μm.
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