论文标题

敏捷航天器星座具有延迟耐受性网络的自主调度以进行反应成像

Autonomous Scheduling of Agile Spacecraft Constellations with Delay Tolerant Networking for Reactive Imaging

论文作者

Nag, Sreeja, Li, Alan S., Ravindra, Vinay, Net, Marc Sanchez, Cheung, Kar-Ming, Lammers, Rod, Bledsoe, Brian

论文摘要

现在,小型航天器现在可以在商业上提供精确的态度控制系统,从而使它们可以以3度的自由度杀死,并在短时间内捕获图像。当与适当的软件结合使用时,此敏捷性可以显着提高响应率,重新审视时间和覆盖范围。在先前的工作中,我们展示了一种算法框架,将轨道力学,态度控制和调度优化结合在一起,以计划敏捷的敏捷,全身方向,在星座中小型航天器。拟议的时间表优化将在地面站自动运行,因此结果日程安排上线链接到航天器进行执行。该算法可以推广到小型可访问的航天器,控制能力,传感器规格,成像要求和感兴趣的区域。在本文中,我们修改了算法以运行在小型航天器上的运行,以便星座可以做出时间敏感的决策,以自主地杀死和捕获图像而无需地面控制。我们已经基于延迟/中断的耐受网络(DTN)开发了一个通信模块,用于卫星之间的数据管理和路由,该模块将与其他模块结合使用,以优化敏捷通信和转向的时间表。然后,我们将该初步框架应用于代表性星座,以模拟针对性的降水事件和随后的城市洪水的目标测量。将我们敏捷算法的指挥和控制效率与非敏捷(11.3倍提高)和非DTN(21%改善)星座进行了比较。

Small spacecraft now have precise attitude control systems available commercially, allowing them to slew in 3 degrees of freedom, and capture images within short notice. When combined with appropriate software, this agility can significantly increase response rate, revisit time and coverage. In prior work, we have demonstrated an algorithmic framework that combines orbital mechanics, attitude control and scheduling optimization to plan the time-varying, full-body orientation of agile, small spacecraft in a constellation. The proposed schedule optimization would run at the ground station autonomously, and the resultant schedules uplinked to the spacecraft for execution. The algorithm is generalizable over small steerable spacecraft, control capability, sensor specs, imaging requirements, and regions of interest. In this article, we modify the algorithm to run onboard small spacecraft, such that the constellation can make time-sensitive decisions to slew and capture images autonomously, without ground control. We have developed a communication module based on Delay/Disruption Tolerant Networking (DTN) for onboard data management and routing among the satellites, which will work in conjunction with the other modules to optimize the schedule of agile communication and steering. We then apply this preliminary framework on representative constellations to simulate targeted measurements of episodic precipitation events and subsequent urban floods. The command and control efficiency of our agile algorithm is compared to non-agile (11.3x improvement) and non-DTN (21% improvement) constellations.

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