智能小卫星群通过自适应重定向,提升洪涝监测响应速度。
Agile, Autonomous Spacecraft Constellations with Disruption Tolerant Networking to Monitor Precipitation and Urban Floods
- 构建星间通信与智能调度框架,动态规划卫星姿态
- 实现平均1/3可用时间内完成共识,比地面方案多观测7%洪涝范围
- 适合灾害应急、气象监测等实时性要求高的场景
商业技术使小型可全向调整姿态的卫星成为可能,能快速响应突发现象。本文提出一种结合轨道力学、姿态控制、星间通信与智能预测的算法框架,用于管理24颗卫星组成的星座,在全球5个区域监测降水与城市洪涝。通过共享演化中的降水和洪水预报信息,提升未来观测的预测价值。在快速动态的星间拓扑中,建模了物理层、接入控制层与网络层的可靠通信。结果表明,信息交换延迟极低(平均为可用时间的1/3),使星载调度器比地面方案多观测约7%的洪水强度。无论星载还是离线版本,均比无敏捷性的星座表现好约98%。
原文摘要 · Abstract (English)
Fully re-orientable small spacecraft are now supported by commercial technologies, allowing them to point their instruments in any direction and capture images, with short notice. When combined with improved onboard processing, and implemented on a constellation of inter-communicable satellites, this intelligent agility can significantly increase responsiveness to transient or evolving phenomena. We demonstrate a ground-based and onboard algorithmic framework that combines orbital mechanics, attitude control, inter-satellite communication, intelligent prediction and planning to schedule the time-varying, re-orientation of agile, small satellites in a constellation. Planner intelligence is improved by updating the predictive value of future space-time observations based on shared observations of evolving episodic precipitation and urban flood forecasts. Reliable inter-satellite communication within a fast, dynamic constellation topology is modeled in the physical, access control and network layer. We apply the framework on a representative 24-satellite constellation observing 5 global regions. Results show appropriately low latency in information exchange (average within 1/3rd available time for implicit consensus), enabling the onboard scheduler to observe ~7% more flood magnitude than a ground-based implementation. Both onboard and offline versions performed ~98% better than constellations without agility.
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