arXiv:2607.12130cs.RO2026-07

用机械臂实现无推进剂姿态调整,提升航天器自主能力

More than a Manipulator: Planning Propellant-Free Attitude Maneuvers for Free-Floating Spacecraft

论文配图:More than a Manipulator: Planning Propellant-Free Attitude Maneuvers for Free-Floating Spacecraft
图 1 · 摘自论文原文
  • 通过轨迹优化让机械臂运动实现无推进剂姿态控制
  • 验证了多种复杂系统下成功完成姿态机动与解旋
  • 适合空间组装制造等高负载场景,可替代或补充飞轮

传统航天器姿态控制依赖动量交换装置或消耗推进剂的喷射器。越来越多任务需要机械臂,但通常被视为干扰源而非控制执行器。本文通过构建包含关键关节限制和避碰约束的轨迹优化问题,利用内点法求解非线性规划,展示了多种不同运动学复杂度和质量特性的航天器-机械臂系统中复杂姿态机动与解旋轨迹。通过动量与力矩包络直接比较,证实机械臂具备作为冗余甚至主要姿态控制系统的潜力。本工作为机械臂作为多功能姿态控制执行器提供了框架,尤其适用于抓取高相对质量载荷的空间组装与制造任务。

原文摘要 · Abstract (English)

Spacecraft attitude control is traditionally achieved using momentum exchange devices or propellant-consuming thrusters. Meanwhile, a growing number of missions require robotic manipulators, which are typically treated as disturbance sources to be rejected rather than as actuators for spacecraft reorientation. This work investigates the use of manipulator motions for propellant-free attitude control by formulating a trajectory optimization problem with critical joint and collision avoidance constraints. Using an interior point solver for the resulting nonlinear program, complex slew and detumble trajectories are demonstrated for a range of spacecraft-manipulator systems with varying kinematic complexity and mass properties. The achievable control authority is compared directly with that of reaction wheel arrays via momentum and torque envelopes, demonstrating the potential for manipulators to serve as redundant or even primary attitude control systems. This work provides a framework for using manipulators as multipurpose attitude control actuators, with particularly promising applications in in-space assembly and manufacturing when grasping payloads with high relative mass fractions.

姿态控制机械臂空间制造

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