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Energy coupling and plume dynamics during high power laser heating of metals.

机译:金属的高功率激光加热过程中的能量耦合和羽流动力学。

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摘要

High power laser heating of metals was studied utilizing experimental and numerical methods with an emphasis on the laser energy coupling with a target and on the dynamics of the laser generated vapor flow. Rigorous theoretical modeling of the heating, melting, and evaporation of metals due to laser radiation with a power density below the plasma shielding threshold was carried out. Experimentally, the probe beam deflection technique was utilized to measure the propagation of a laser induced shock wave.; The effects of a cylindrical cavity in a metal surface on the laser energy coupling with a solid were investigated utilizing photothermal deflection measurements. A numerical calculation of target temperature and photothermal deflection was performed to compare with the measured results. Reflection of the heating laser beam inside the cavity was found to increase the photothermal deflection amplitude significantly and to enhance the overall energy coupling between a heating laser beam and a solid.; Next, unsteady vaporization of metals due to nanosecond pulsed laser heating with an ambient gas at finite pressure was analyzed with a one dimensional thermal evaporation model for target heating and one dimensional compressible flow equations for inviscid fluid for the vapor flow. Target surface conditions, vapor velocity at the Knudsen layer, and the gasdynamic flow characteristics of the vapor were investigated.; Lastly, the propagation of a shock wave during excimer laser heating of aluminum was measured with the probe beam deflection technique. The transit time of the shock wave was measured at the elevation of the probe beam above the target surface; these results were compared with the predicted behavior using ideal blast wave theory. The experimental conditions at which the propagation of the laser generated shock wave agrees with the prediction from ideal blast wave theory were obtained. The propagation of a gaseous material plume was also observed from the deflection of the probe beam at later times.
机译:利用实验和数值方法研究了金属的高功率激光加热,重点是与目标耦合的激光能量以及激光产生的蒸气流的动力学。对功率密度低于等离子屏蔽阈值的激光辐射引起的金属的加热,熔化和蒸发进行了严格的理论建模。实验上,探测光束偏转技术被用来测量激光诱发的冲击波的传播。利用光热挠度测量研究了金属表面上的圆柱形空腔对与固体耦合的激光能量的影响。对目标温度和光热挠度进行了数值计算,以与测量结果进行比较。发现腔内加热激光束的反射显着增加了光热偏转幅度,并增强了加热激光束与固体之间的总能量耦合。接下来,使用一维热蒸发模型进行目标加热,并使用一维可压缩流动方程式分析不粘流体的蒸汽流,从而分析了由于在有限压力下用环境气体在有限压力下用纳秒脉冲激光加热而导致的金属不稳定蒸发。研究了目标表面条件,Knudsen层的蒸气速度以及蒸气的气体动力流动特性。最后,用探针束偏转技术测量了铝在受激准分子激光加热过程中冲击波的传播。冲击波的传播时间是在探测光束在目标表面上方的高度处测量的;将这些结果与使用理想爆炸波理论的预测行为进行了比较。获得了激光产生的冲击波的传播与理想爆炸波理论的预测相符的实验条件。从探测光束在稍后时间的偏转还观察到气态材料羽流的传播。

著录项

  • 作者

    Jeong, Sungho.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 173 p.
  • 总页数 173
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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