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Fuel Optimal, Finite Thrust Guidance Methods to Circumnavigate with Lighting Constraints

机译:燃料最佳,有限的推力指导方法与照明约束的环游

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This paper details improvements made to the authors' most recent work to find fuel optimal, finite-thrust guidance to inject an inspector satellite into a prescribed natural motion circumnavigation (NMC) orbit about a resident space object (RSO) in geosynchronous orbit (GEO). Better initial guess methodologies are developed for the low-fidelity model nonlinear programming problem (NLP) solver to include using Clohessy-Wiltshire (CW) targeting, a modified particle swarm optimization (PSO), and MATLAB's genetic algorithm (GA). These initial guess solutions may then be fed into the NLP solver as an initial guess, where a different NLP solver, IPOPT, is used. Celestial lighting constraints are taken into account in addition to the sunlight constraint, ensuring that the resulting NMC also adheres to Moon and Earth lighting constraints. The guidance is initially calculated given a fixed final time, and then solutions are also calculated for fixed final times before and after the original fixed final time, allowing mission planners to choose the lowest-cost solution in the resulting range which satisfies all constraints. The developed algorithms provide computationally fast and highly reliable methods for determining fuel optimal guidance for NMC injections while also adhering to multiple lighting constraints.
机译:本文详细说明了提交的作者最近的工作,找到了燃料最佳,有限的推力指导,将检查员卫星注入规定的自然运动环形术(NMC)轨道上的地球同步轨道(Geo)中的驻留空间对象(RSO) 。为低保真模型非线性编程问题(NLP)求解器开发了更好的初始猜测方法,以包括使用Clohessy-Wiltshire(CW)靶向,修改的粒子群优化(PSO)和Matlab的遗传算法(GA)。然后可以将这些初始猜测解决方案馈送到NLP求解器中作为初始猜测,其中使用不同的NLP求解器Ipopt。除了阳光约束之外,还考虑了天体的照明约束,确保所得到的NMC也遵守月球和地球照明约束。最初在固定的最终时间提供了指导,然后还针对原始固定最终时间之前和之后的固定最终时间计算解决方案,允许任务规划者在满足所有约束的所得到的范围内选择最低成本的解决方案。开发的算法提供了用于确定NMC喷射的燃料最佳引导的计算快速和高度可靠的方法,同时还粘附到多个照明约束。

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