用Rover-Borne激光光谱仪进行直线拓测量的技术选择
Conor Ryan1,2, Tobias Haist1, Gennadii Laskin3
1Institute for Applied Optics (ITO), University of Stuttgart, 70569 Stuttgart, Germany.
Sensors (Basel, Switzerland)
|May 11, 2024
概括
这项研究增强了航天车激光光谱仪的3D地形图形,用于详细的地质分析. 整合3D成像为现场样本组成和历史提供了关键的背景.
科学领域:
- 行星科学 行星科学
- 地质地质地质地质地质地
- 光学工程是指光学工程.
背景情况:
- 激光光谱对于外星样本的现场分析至关重要.
- 目前的太空漫游车缺乏用于地质背景的全面3D形态数据.
研究的目的:
- 通过3D地形测量来增强航天车上的紧激光光谱仪.
- 为材料表征和地质历史分析提供前所未有的上下文和形态信息.
主要方法:
- 概述3D集成的科学,漫游器和样本约束.
- 讨论候选3D技术,包括性能,重量和功率估计.
- 评估直线显微镜边缘投影形状测量,不连贯的数字全息和多波长的数字全息.
主要成果:
- 通过分配高度信息,3D成像提供了比2D成像更完整的空间数据集.
- 性能,重量和功耗估计指导了用于漫游车应用的技术下调选择.
- 在线显微镜边缘投影形状测量,不连贯的数字全息和多波长的数字全息成为有前途的候选人.
结论:
- 增加3D地形测量显著提高了激光光谱仪在太空探索方面的功能.
- 选择的3D技术适合整合到未来的基于火星车的激光光谱仪提案中.
- 这种整合将通过详细的形态和组成分析,提高对外星地质历史的理解.
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