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Design and Evaluation of a Fiber Optic Probe as a means of Subsurface Planetary Exploration.

机译:作为地下行星探测手段的光纤探头的设计和评估。

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摘要

The Optical Probe for Regolith Analysis (OPRA) is an instrumentation concept designed to provide spectroscopic analysis of the near subsurface of unconsolidated regolith on bodies such as moons, asteroids and planets. Below a chemically altered surface may lay the geological history in the form of stratigraphy that is shielded from degradation due to harsh external environments. Most of what we know about our solar system comes from remote platforms, such as satellites that are deployed into orbit around the target body. In the case of Mars, we have had several successful landers and rovers however, with the exception of the Mars Science Laboratory that just drilled its first hole, the complexity of subsurface excavation has limited the extent of subsurface exploration to simple scoops deployed on the ends of robotic arms which, by their very nature, will erase any stratigraphy that it may be digging into.;The OPRA instrumentation concept allows for an integrated, lightweight and simple apparatus for subsurface exploration via a small, spike like structure which contains integrated optical fibers coupled to small windows running down the length of the probe. Each window is connected to a spectrometer housed onboard the deploying spacecraft. Each window is separately interrogated via the spectrometer over the wavelength range 1-2.5 nm to produce a spectroscopic profile as a function of depth.;This project takes the Technology Readiness Level (TRL) of the OPRA instrumentation concept to level 3, which is defined by NASA to be the demonstration either analytically or experimentally of the proof of concept for critical functions of the proposed instrument. Firstly, to demonstrate that optical fibers are feasible for this type of application, we report on the techniques used by NASA to space qualify optical fibers. We investigate the optical performance of several fiber optic bundle configurations, both experimentally and numerically, to help optimize bundle performance. Optical bundles were then spectrally validated via a series of spectral comparisons between standardized reflectance spectroscopy targets and spectra obtained with the bundles. We also report on the integration of fiber optical bundles into other research and experimental results from several other groups within our research teams to obtain spectra under a more "space like" environment. Finally, the probe housing structural performance was investigated via finite element analysis, using probe penetration forces derived from data analysis of experimentation conducted by the Apollo lunar missions, and investigations into a mechanical analogue for the Martian regolith.
机译:用于粉煤灰分析的光学探针(OPRA)是一种仪器概念,旨在对月球,小行星和行星等物体上未固结的粉煤灰的近地下进行光谱分析。在化学变化的表面之下,可能会以地层的形式形成地质历史,该地质历史可以防止由于恶劣的外部环境而导致的退化。我们对太阳系的了解大部分来自远程平台,例如部署在目标身体周围轨道上的卫星。就火星而言,我们已经有几架成功的着陆器和漫游车,但是,除了刚刚钻出第一个孔的火星科学实验室外,地下挖掘的复杂性已将地下勘探的范围限制为部署在末端的简单瓢机械臂的本质,将消除可能挖掘的任何地层学.OPRA仪器概念允许通过集成了光纤的小尖峰状结构实现集成,轻便,简单的地下勘探设备再加上沿着探针长度延伸的小窗口。每个窗口都与部署在太空船上的光谱仪相连。通过光谱仪在1-2.5 nm的波长范围内分别询问每个窗口,以产生与深度有关的光谱轮廓;该项目将OPRA仪器概念的技术准备水平(TRL)提升到了3级,该级别已定义美国国家航空航天局(NASA)将以分析或实验方式对拟议仪器的关键功能进行概念验证。首先,为了证明光纤对于这种类型的应用是可行的,我们报告了NASA用于间隔合格光纤的技术。我们通过实验和数值研究几种光纤束配置的光学性能,以帮助优化束性能。然后,通过在标准反射光谱仪目标和通过束获得的光谱之间进行一系列光谱比较,对光束进行光谱验证。我们还报告了将光纤束集成到我们研究团队中其他几个小组的其他研究和实验结果中,以在更“类似太空”的环境下获得光谱的情况。最后,使用从Apollo月球飞行任务进行的实验数据分析得出的探针穿透力,并通过对火星re石的机械类似物进行研究,通过有限元分析研究了探针壳体的结构性能。

著录项

  • 作者

    Pilgrim, Robert Paul.;

  • 作者单位

    University of Arkansas.;

  • 授予单位 University of Arkansas.;
  • 学科 Planetology.;Physics Astronomy and Astrophysics.;Physics Astrophysics.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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