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High Energy Density Laser Interactions with Planetary and Astrophysical Materials: Methodology and Data

机译:高能量密度激光相互作用与行星和天体物理材料:方法和数据

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Sandia National Laboratories NLS (1064 nm) and Z-Beamlet (527 nm) pulsed lasers @ ~ 100 GW/cm~2 and 10 TW/cm~2 were used to attain pressures at 20 - 525 GPa on a variety of metallic and mineral targets. A simple, inexpensive and innovative electro-optical real-time methodology monitored rear surface mechanical deformation and associated particle and shock wave velocities that differ considerably between metals and non-metals. A reference calibration metal (Aluminum) and a reference non-metal (graphite) were used to demonstrate the validity of this methodology. Normative equations of state and momentum coupling coefficients were obtained for dunite, carbonaceous meteorites, graphite, iron and nickel. These experimental results on inhomogeneous materials can be applied to a variety of high energy density interactions involving stellar and planetary material formation, dynamic interactions, geophysical models, space propulsion systems, orbital debris, materials processing, near-earth space (lunar and asteroid) resource recovery, and near-earth object mitigation models.
机译:Sandia National Laboratories NLS(1064nm)和Z-Beamlet(527 nm)脉冲激光器@〜100 gw / cm〜2和10 tw / cm〜2用于在各种金属和矿物上获得20-525 gpa的压力目标。一种简单,廉价且创新的电光实时方法监测后表面机械变形和相关颗粒和冲击波速度,这些颗粒和冲击波速度在金属和非金属之间大大不同。参考校准金属(铝)和参考非金属(石墨)用于证明该方法的有效性。为Dunite,碳质陨石,石墨,铁和镍获得状态和动量偶联系数的规范性方程。这些对非均匀材料的实验结果可以应用于涉及恒星和行星材料的各种高能密度相互作用,动态相互作用,地球物理模型,空间推进系统,轨道碎片,材料加工,近地区空间(月球和小行星)资源恢复和近地对象缓解模型。

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