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DESIGN OF OPTIMAL TRANSFERS BETWEEN NORTH AND SOUTH POLE-SITTER ORBITS

机译:北极轨道轨道上最佳转移设计

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Recent studies have shown the feasibility of an Earth pole-sitter mission, where a spacecraft follows the Earth's polar axis to have a continuous, hemispherical view of one of the Earth's Poles. However, due to the tilt of the polar axis, the North and South Poles are alternately situated in darkness for long periods during the year. This significantly constrains observations and decreases mission scientific return. This paper therefore investigates transfers between north and south pole-sitter orbits before the start of the Arctic and Antarctic winters to maximize scientific return by observing the polar regions only when lit. Clearly, such a transfer can also be employed for the sole purpose of visiting both the North and South Poles with one single spacecraft during one single mission. To enable such a novel transfer, two types of propulsion are proposed, including solar electric propulsion (SEP) and a hybridization of SEP with solar sailing. A direct optimization method based on pseudospectral transcription is used to find both transfers that minimize the SEP propellant consumption and transfers that trade-off SEP propellant consumption and observation time of the Poles. Also, a feedback control is developed to account for non-ideal properties of the solar sail. It is shown that, for all cases considered, hybrid low-thrust propulsion out-performs the pure SEP case, while enabling a transfer that would not be feasible with current solar sail technology.
机译:最近的研究表明了地球杆的任务的可行性,航天器遵循地球的极性轴线,以具有一个地球杆的连续,半球形视图。然而,由于极轴的倾斜,北极和南极在年内长时间交替地位于黑暗中。这显着限制了观察和减少了使命科学回报。因此,本文在北极和南极冬季开始之前,调查北极和南极台轨道之间的转移,以最大限度地通过观察极地区域来最大化科学回归。显然,这种转移也可以用于唯一目的,可以在一个任务期间与一个航天器一起访问北极和南极。为了使如此新颖的转移,提出了两种类型的推进,包括太阳能电动推进(SEP)和具有太阳帆船的SEP的杂交。基于伪谱分析的直接优化方法用于找到两种转移,这使得SEP推进剂消耗量最小化并转移转换SEP推进剂消耗和杆的观察时间。此外,开发了反馈控制以考虑太阳帆的非理想性质。结果表明,对于所有案例考虑,杂交低推力推进推出出现纯粹的SEP案例,同时使得能够与当前的太阳能帆技术不可行的转移。

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