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Optimal Satellite Constellation Spare Strategy Using Multi-Echelon Inventory Control

机译:基于多级库存控制的最优卫星星座备用策略

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The recent growing trend to develop large-scale satellite constellations (i.e., mega-constellations) with low-cost small satellites has brought the need for an efficient and scalable maintenance strategy decision plan. Traditional spare strategies for satellite constellations cannot handle these mega-constellations due to their limited scalability in the number of satellites and/or frequency of failures. This paper proposes a novel spare strategy using an inventory management approach. It considers a set of parking orbits at a lower altitude than the constellation orbits for spare storage, and models the satellite constellation spare strategy problem using a multi-echelon (s,Q)-type inventory policy, viewing the Earth's ground as a supplier, the parking orbit spare stocks as warehouses, and the in-plane spare stocks as retailers. The accuracy of the proposed analytical model is assessed using simulations via Latin Hypercube Sampling. Furthermore, based on the proposed model, an optimization formulation is introduced to identify the optimal spare strategy, comprising the parking orbits' characteristics and all locations' policies, to minimize the maintenance cost of the system given performance requirements. The proposed model and optimization method are applied to a real-world satellite mega-constellation case to demonstrate their value.
机译:用低成本的小卫星发展大规模卫星星座(即,巨型星座)的最新趋势是,提出了对有效和可扩展的维护策略决策计划的需求。卫星星座的传统备用策略无法处理这些大型星座,因为它们在卫星数量和/或故障频率方面的可扩展性有限。本文提出了一种新的利用库存管理方法的备用策略。它考虑了一组比星座轨道低的高度的停车轨道用于备用存储,并使用多级(S,Q)型库存策略模拟了卫星星座备用策略问题,并视地球为​​供应商,停车轨道上的备用库存用作仓库,而飞机上的备用库存用作零售商。建议的分析模型的准确性通过Latin Hypercube Sampling的模拟进行评估。此外,基于提出的模型,引入了一种优化公式来确定最佳的备用策略,包括停车轨道的特性和所有位置的策略,以在给定性能要求的情况下最大程度地降低系统的维护成本。将所提出的模型和优化方法应用于现实世界的大型卫星案例,以证明其价值。

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