The Complete Set of Thermo-mechanical-Radiation Methods, Simulations and Results for a Swarm of Nanorovers Deployed on the Moon’s Surface (Lunar Zebro Mission)

J. M. Tejeda, P. Fajardo, M. K. Verma, C. Verhoeven
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Abstract

Lunar Zebro’s mission is heading the race for deploying the world’s smallest and lightest swarm of nanorovers on the surface of Moon. The concept validation of a single nanorover is of crucial importance, as it will be the launching pad for deploying a swarm of those nanorovers thereafter. Then, they will get connected in a network, acting as a single device and performing scientific missions analyzing data from remote points on the Moon’s surface. In the current study, the complete set of thermo-mechanical-radiation analyses for Lunar Zebro nanorovers are carried out. These range from the Ground Segment to the Moon environment, taking also into account the extreme mechanical and thermal environment at launch-transit conditions when the nanorover is attached to the lander. An innovative ray tracing method to evaluate the effect of the thermal environment on the Lunar Zebro nanorovers is explained in this paper. Material choices, structural design, and mechanical/thermal strategies for the nanorover to overcome the launch, space and Moon’s conditions are shown. The different analyses methods used, expected loads and results obtained should serve as a baseline for evaluating the behaviour of other small devices attached to a lander when aiming for any space mission. More specifically, for those aiming to go to the Moon, the environmental and mechanical expectations here can also be implemented. The ultimate outcome of the paper is the environmental survivability assurance from an analytical perspective of these nanorovers when being sent to the Moon. The validation of the survivability of a single nanorover will be a breakthrough in the space swarm robotics’ field, resulting in the successful performance of the lightest swarm of nanorovers ever deployed on the Moon’s surface.

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部署在月球表面的一组纳米漫游车的完整热力辐射方法、模拟和结果(月球斑马任务)
月球斑马的任务是在月球表面部署世界上最小、最轻的纳米漫游车群。单个纳米漫游车的概念验证至关重要,因为它将成为此后部署一批纳米漫游车所需的发射台。然后,它们将连接到一个网络中,作为一个单一的设备,执行科学任务,分析月球表面远程点的数据。在目前的研究中,对月球斑马号纳米漫游车进行了一整套热机械辐射分析。这些范围从地面段到月球环境,还考虑到当纳米漫游车连接到着陆器时,发射过渡条件下的极端机械和热环境。本文介绍了一种用于评估热环境对月球斑马号纳米漫游车影响的创新射线追踪方法。展示了纳米漫游车克服发射、太空和月球条件的材料选择、结构设计和机械/热策略。所使用的不同分析方法、预期载荷和获得的结果应作为评估着陆器上其他小型设备在执行任何太空任务时的行为的基线。更具体地说,对于那些打算登上月球的人来说,这里的环境和机械期望也可以实现。该论文的最终成果是从分析的角度保证了这些纳米漫游车在被送往月球时的环境生存能力。单个纳米漫游车生存能力的验证将是空间群机器人领域的一项突破,从而使有史以来部署在月球表面的最轻的纳米漫游车群取得成功。
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