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Locally-optimal electric sail transfer

机译:局部最优的电帆传递

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摘要

This paper analyzes the locally-optimal heliocentric transfer of a spacecraft propelled by an electric solar wind sail, an innovative propellantless propulsion system that generates a propulsive acceleration exploiting the momentum of solar wind particles. The potentialities of such an advanced thruster are investigated in terms of flight times required to achieve a given heliocentric orbit. The problem is addressed using a locally-optimal formulation, by minimizing a scalar performance index that depends on the time derivatives of the osculating orbital elements. The proposed algorithm gives an estimate of the globally-optimal flight time with reduced computational efforts compared to a traditional optimization approach. Also, when the performance index involves a single orbital parameter and the transfer trajectory is two-dimensional, the proposed approach provides an analytical solution to the locally-optimal control problem. The procedure discussed in the paper is used to quantify the near-optimal performance of an electric solar wind sail in some advanced mission scenarios, such as the design of a heliocentric non-Keplerian orbit for solar activity monitoring, the exploration of the Solar System boundaries, and the rendezvous with comets 1P Halley and 67P/Churyumov-Gerasimenko.
机译:本文分析了由电动太阳风帆推动的航天器的局部最优日心轴传输,这是一种创新的无推进力推进系统,该系统利用太阳风粒子的动量产生推进加速度。根据实现给定日心轨道所需的飞行时间,研究了这种先进推进器的潜力。通过使依赖于振荡轨道元素的时间导数的标量性能指数最小化,可以使用局部最优公式来解决该问题。与传统的优化方法相比,所提出的算法以减少的计算量给出了全球最优飞行时间的估计。此外,当性能指标涉及单个轨道参数并且转移轨迹是二维的时,所提出的方法为局部最优控制问题提供了一种解析解决方案。本文讨论的程序用于量化某些高级任务场景中电动太阳风帆的最佳性能,例如设计用于太阳活动监测的日心非基普利耶轨道,探索太阳系边界,并与1P哈雷彗星和67P / Churyumov-Gerasimenko彗星会合。

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