arXiv:2603.14524cs.RO2026-03被引 3

为微重力环境下小型飞艇巡检设计安全自主架构,解决高精度控制与故障容错难题。

Architecting Autonomy for Safe Microgravity Free-Flyer Inspection

  • 从操作指令推导出巡检路径规划与控制的自主决策框架
  • 在速度、指向和禁区约束下实现任务关键性路径规划,保障安全
  • 提供可落地的系统需求参数,适合航天器自主巡检研发者参考

小型自由飞行航天器可为未来轨道前哨(如月球门户)提供关键舱外活动服务,如巡检与维修。由于需靠近脆弱空间站和微重力目标运行,必须形式化定义巡检任务所需的自主能力。本文将通用任务需求转化为具体的规划与控制自主架构决策,从操作员指令与任务时效性出发,构建运动规划问题,考虑速度限制、姿态指向及保持在/禁止进入区域等独特约束,并引入分层安全机制应对模型不确定性和故障。讨论了代价函数设计、路径与轨迹控制等规划策略,明确任务输入输出接口。记录了典型求解时间与推进剂消耗等系统要求以指导设计。整个自主框架在SmallSatSim仿真环境中实现,形成小型航天器近距自主巡检的参考范例。该架构不仅提供真实系统需求,更将需求转化为自主设计决策,超越现有文献水平。

原文摘要 · Abstract (English)

Small free-flying spacecraft can provide vital extravehicular activity (EVA) services like inspection and repair for future orbital outposts like the Lunar Gateway. Operating adjacent to delicate space station and microgravity targets, these spacecraft require formalization to describe the autonomy that a free-flyer inspection mission must provide. This work explores the transformation of general mission requirements for this class of free-flyer into a set of concrete decisions for the planning and control autonomy architectures that will power such missions. Flowing down from operator commands for inspection of important regions and mission time-criticality, a motion planning problem emerges that provides the basis for developing autonomy solutions. Unique constraints are considered such as velocity limitations, pointing, and keep-in/keep-out zones, with mission fallback techniques for providing hierarchical safety guarantees under model uncertainties and failure. Planning considerations such as cost function design and path vs. trajectory control are discussed. The typical inputs and outputs of the planning and control autonomy stack of such a mission are also provided. Notional system requirements such as solve times and propellant use are documented to inform planning and control design. The entire proposed autonomy framework for free-flyer inspection is realized in the SmallSatSim simulation environment, providing a reference example of free-flyer inspection autonomy. The proposed autonomy architecture serves as a blueprint for future implementations of small satellite autonomous inspection in proximity to mission-critical hardware, going beyond the existing literature in terms of both (1) providing realistic system requirements for an autonomous inspection mission and (2) translating these requirements into autonomy design decisions for inspection planning and control.

自主巡检航天器路径规划安全控制

Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。