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Analysis of planetary exploration spacesuit systems and evaluation of a modified partial-gravity simulation technique.

机译:行星探测航天服系统的分析和改进的局部重力模拟技术的评估。

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Building on prior experience during Apollo, NASA now plans to send humans back to the Moon and then on to Mars as part of its Vision for Space Exploration. An integral component for enabling this plan is the development of advanced spacesuit systems. A planetary exploration spacesuit system consists of an astronaut, a spacesuit, and the associated surface systems designed to enable completion of mission objectives. This thesis addresses all three aspects, beginning with an examination of the effects of locomotion stability in lunar and Mars gravity from a metabolic energy expenditure standpoint. An experiment to determine the effects of stability on running in reduced gravity was performed with a modified vertical offload partial gravity device. Operations scenarios were also developed, along with engineering analysis to understand the forces and moments involved in partial gravity locomotion. Analysis is presented to assess the applicability of terrestrial exploration systems and to adapt them for planetary exploration. Access systems for partial gravity planetary explorations are described that may allow humans in spacesuits to safely access scientifically significant terrain on the Moon and Mars. Contingency scenarios for effective rescue of astronauts from flat and sloped terrain were also analyzed. Conclusions and recommendations are offered regarding the effectiveness of the simulation technique developed. An Earth-based field testing program plan is presented with the intent of including access systems in the lunar surface system architecture requirements early enough to allow synergies in component design.
机译:根据在阿波罗期间的先前经验,美国宇航局现在计划将人类送回月球,然后送入火星,这是其太空探索愿景的一部分。实现该计划的必要组成部分是先进太空服系统的开发。行星探索航天服系统由宇航员,航天服和相关的地面系统组成,旨在完成任务目标。本文从代谢能量消耗的角度研究月球和火星重力的运动稳定性的影响,着眼于这三个方面。用改进的垂直卸载部分重力装置进行了确定稳定性对降低重力行驶影响的实验。还开发了操作方案以及工程分析,以了解部分重力运动涉及的力和力矩。提出了分析方法,以评估地面勘探系统的适用性并使它们适用于行星勘探。描述了用于部分重力行星探索的进入系统,该系统可以允许宇航服中的人员安全进入月球和火星上具有科学意义的地形。还分析了从平坦和倾斜地形有效营救宇航员的应急方案。提供有关已开发的仿真技术的有效性的结论和建议。提出了一个基于地球的现场测试计划计划,其目的是尽早将登月系统纳入月球表面系统架构要求中,以实现组件设计的协同作用。

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