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Optimizing Mars Sphere of Influence Maneuvers for NASA's Evolvable Mars Campaign

机译:优化MARS MADEMEUVERMENES NASA进一步的火星运动的影响

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NASA's Human Spaceflight Architecture Team is refining human exploration architectures that will extend human presence to the Martian surface. For both Mars orbital and surface missions, NASA's Evolvable Mars Campaign assumes that cargo and crew can be delivered repeatedly to the same destination. Up to this point, interplanetary trajectories have been optimized to minimize the total propulsive requirements of the in-space transportation systems, while the pre-deployed assets and surface systems are optimized to minimize their respective propulsive requirements separate from the in-space transportation system. There is a need to investigate the coupled problem of optimizing the interplanetary trajectory and optimizing the maneuvers within Mars's sphere of influence. This paper provides a description of the ongoing method development, analysis and initial results of the effort to resolve the discontinuity between the interplanetary trajectory and the Mars sphere of influence trajectories. Assessment of Phobos and Deimos orbital missions shows the in-space transportation and crew taxi allocations are adequate for missions in the 2030s. Because the surface site has yet to be selected, the transportation elements must be sized to provide enough capability to provide surface access to all landing sites under consideration. Analysis shows access to sites from elliptical parking orbits with a lander that is designed for sub-periapsis landing location is either infeasible or requires expensive orbital maneuvers for many latitude ranges. In this case the locus of potential arrival perigee vectors identifies the potential maximum north or south latitudes accessible. Higher arrival velocities can decrease reorientation costs and increase landing site availability. Utilizing hyperbolic arrival and departure vectors in the optimization scheme will increase transportation site accessibility and provide more optimal solutions.
机译:美国宇航局的人类航天建筑团队正在炼制人类勘探架构,将延伸到火星地面的人类存在。对于火星轨道和表面特派团,美国宇航局的进一步性火星运动假设货物和船员可以反复向同一目的地提供。截至目的,已经过优化的行星际轨迹,以最大限度地减少空间运输系统的总推进要求,而预先部署的资产和表面系统经过优化,以最小化与空间运输系统分开的各自的推进要求。需要研究优化行星际轨迹的耦合问题,并优化MARS的影响范围内的机动。本文提供了持续的方法开发,分析和初始结果的描述,努力解决行星际轨迹与影响轨迹的火星球体之间的不连续性。评估PHOBOS和DEIMOS Orbital任务的评估表明,空间运输和船员出租车分配在20世纪30年代的任务充足。由于表面位点尚未被选中,因此必须尺寸为传输元件,以提供足够的能力,以提供对所考虑的所有着陆位点的表面访问。分析显示,对具有较为适用于次恐慌的地理位置的着陆器的站点的访问是不可行的,或者需要昂贵的轨道演习许多纬度范围。在这种情况下,潜在到达PERIGEE矢量的轨迹识别可访问的潜在最大北纬或南纬度。较高到达速度可以降低重新定位成本并提高着陆现场可用性。利用超曲程到达和出发向量在优化方案中将提高运输现场可访问性并提供更优化的解决方案。

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