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Built-in Flexibility for Space Logistics Mission Planning and Spacecraft Design

机译:内置的灵活性可用于太空物流任务计划和航天器设计

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This paper develops a space logistics mission planning optimization framework considering uncertainty in space missions based on decision rules and stochastic programming. It makes space logistics mission planning and spacecraft design flexible to counter potential uncertainties in launch delays and staging delays. The rocket launch delay is considered as the uncertainty source. A scenario generation model is built to discretize the continuous launch delay probability distribution. Since a space mission may contain multiple rocket launches, a scenario reduction model is developed to recombine delay scenarios into a space mission uncertainty scenario. It can also decrease the number of scenarios to increase the computational efficiency of the mission planning framework. An example mission scenario based on Deep Space Gateway is considered. The results show that this optimization framework can provide a series of decision rules and spacecraft design, which can come up with a Pareto front between expected mission cost (i.e. initial mass in low-Earth orbit) and expected mission objective (i.e. effective crew time) under uncertainty environment The Pareto front plot and decision rules can help decision makers make decisions quickly when a launch delay happens in space mission. The scenario reduction method is also able to improve the computational efficiency significantly while maintaining an acceptable accuracy.
机译:本文基于决策规则和随机规划,开发了一种考虑空间任务不确定性的空间物流任务计划优化框架。它使空间物流任务计划和航天器设计变得灵活,以应对发射延迟和登台延迟中的潜在不确定性。火箭发射延迟被认为是不确定性来源。建立场景生成模型以离散化连续发射延迟概率分布。由于太空任务可能包含多次火箭发射,因此开发了场景减少模型以将延迟场景重新组合为太空任务不确定性场景。它还可以减少方案的数量,以提高任务计划框架的计算效率。考虑基于深空网关的示例任务场景。结果表明,该优化框架可以提供一系列决策规则和航天器设计,可以在预期任务成本(即低地球轨道的初始质量)与预期任务目标(即有效乘员时间)之间提出帕累托前沿。在不确定的环境下,当太空任务发生发射延迟时,帕累托前沿图和决策规则可以帮助决策者快速做出决策。场景减少方法还能够在保持可接受的精度的同时显着提高计算效率。

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