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A Dual Launch Robotic and Human Lunar Mission Architecture

机译:双发射机器人和人类登月任务体系结构

摘要

This paper describes a comprehensive lunar exploration architecture developed by Marshall Space Flight Center's Advanced Concepts Office that features a science-based surface exploration strategy and a transportation architecture that uses two launches of a heavy lift launch vehicle to deliver human and robotic mission systems to the moon. The principal advantage of the dual launch lunar mission strategy is the reduced cost and risk resulting from the development of just one launch vehicle system. The dual launch lunar mission architecture may also enhance opportunities for commercial and international partnerships by using expendable launch vehicle services for robotic missions or development of surface exploration elements. Furthermore, this architecture is particularly suited to the integration of robotic and human exploration to maximize science return. For surface operations, an innovative dual-mode rover is presented that is capable of performing robotic science exploration as well as transporting human crew conducting surface exploration. The dual-mode rover can be deployed to the lunar surface to perform precursor science activities, collect samples, scout potential crew landing sites, and meet the crew at a designated landing site. With this approach, the crew is able to evaluate the robotically collected samples to select the best samples for return to Earth to maximize the scientific value. The rovers can continue robotic exploration after the crew leaves the lunar surface. The transportation system for the dual launch mission architecture uses a lunar-orbit-rendezvous strategy. Two heavy lift launch vehicles depart from Earth within a six hour period to transport the lunar lander and crew elements separately to lunar orbit. In lunar orbit, the crew transfer vehicle docks with the lander and the crew boards the lander for descent to the surface. After the surface mission, the crew returns to the orbiting transfer vehicle for the return to the Earth. This paper describes a complete transportation architecture including the analysis of transportation element options and sensitivities including: transportation element mass to surface landed mass; lander propellant options; and mission crew size. Based on this analysis, initial design concepts for the launch vehicle, crew module and lunar lander are presented. The paper also describes how the dual launch lunar mission architecture would fit into a more general overarching human space exploration philosophy that would allow expanded application of mission transportation elements for missions beyond the Earth-moon realm.
机译:本文介绍了由马歇尔航天中心(Marshall Space Flight Center)先进概念办公室(Advanced Concepts Office)开发的全面月球探索体系结构,该体系结构具有科学依据的地面探索策略和运输体系结构,该体系结构使用两次发射的重型运载火箭将人类和机器人飞行任务系统交付月球。双发登月任务战略的主要优势是仅开发一种运载火箭系统就能降低成本和降低风险。双发登月任务体系结构还可以通过使用消耗性的运载工具服务来执行机器人任务或开发地面探测要素,从而增加商业和国际合作的机会。此外,该体系结构特别适合于机器人和人类探索的集成,以最大化科学回报。对于地面操作,提出了一种创新的双模式流动站,它能够执行机器人科学探索以及运送人员进行地面探索。双模漫游车可以部署到月球表面,以进行前体科学活动,收集样本,侦察潜在的机组人员着陆点,并在指定的着陆点会见机组人员。通过这种方法,工作人员能够评估机器人收集的样本,以选择最佳样本返回地球,从而最大化科学价值。机组人员离开月球表面后,漫游车可以继续进行机器人探索。用于双重发射任务架构的运输系统使用月球轨道交会策略。两辆重型运载火箭在六个小时内离开地球,将月球着陆器和机组人员分别运送到月球轨道。在月球轨道上,乘员转移车与着陆器停靠,乘员登上着陆器以下降到水面。水面任务结束后,机组人员返回轨道转移车返回地球。本文描述了一个完整的运输体系结构,包括对运输要素选择和敏感性的分析,包括:运输要素质量到地面着陆质量;着陆剂的选择;和任务人员人数。基于此分析,提出了运载火箭,乘员模块和月球着陆器的初始设计概念。本文还描述了双重发射月球任务架构如何适合更普遍的总体人类太空探索哲学,该哲学将允许将任务运输要素扩展应用到地球月球领域之外的任务。

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