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Progress in Laser Risk Reduction for 1 micron lasers at GSFC

机译:GSFC降低1微米激光器的激光风险的进展

摘要

In recent years, lasers have proven themselves to be invaluable to a variety of remote sensing applications. LIDAR techniques have been used to measure atmospheric aerosols and a variety of trace species, profile winds, and develop high resolution topographical maps. Often it would be of great advantage to make these measurements from an orbiting satellite. Unfortunately, the space environment is a challenging one for the high power lasers that would enable many LIDAR missions. Optical mounts must maintain precision alignment during and after launch. Outgassing materials in the vacuum of space lead to contamination of laser optics. Electronic components and optical materials must survive the space environment, including a vacuum atmosphere, thermal cycling, and radiation exposure. Laser designs must be lightweight, compact, and energy efficient. Many LIDAR applications require frequency conversion systems that have never been designed or tested for use in space. For the last six years the National Aeronautical and Space Administration (NASA) has undertaken a program specifically directed at addressing the durability and long term reliability issues that face space-borne lasers. The effort is shared between NASA Goddard Space Flight Center in Greenbelt, Maryland, and NASA Langley Research Center in Hampton, Virginia. This paper is an overview of the issues facing space-borne lasers and the efforts that Goddard has been pursuing to address them.
机译:近年来,激光已被证明对各种遥感应用具有不可估量的价值。 LIDAR技术已用于测量大气气溶胶和各种痕量物种,廓线风,并开发高分辨率的地形图。通常,从在轨卫星进行这些测量将具有很大的优势。不幸的是,对于高功率激光器而言,太空环境是一项具有挑战性的环境,它将使许多激光雷达任务得以执行。光学安装座在发射期间和发射后必须保持精确对准。空间真空中的除气材料会导致激光光学器件的污染。电子组件和光学材料必须在空间环境中生存,包括真空气氛,热循环和辐射暴露。激光设计必须轻巧,紧凑且节能。许多LIDAR应用都需要从未为太空使用而设计或测试过的变频系统。在过去的六年中,美国国家航空航天局(NASA)实施了一项计划,专门解决星载激光器面临的耐用性和长期可靠性问题。这项工作由马里兰州格林贝尔特的NASA戈达德太空飞行中心和弗吉尼亚州汉普顿的NASA兰利研究中心共同承担。本文概述了星载激光器面临的问题以及戈达德一直致力于解决这些问题。

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    Heaps William S.;

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  • 年度 2007
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