Abstract
Locomotion in confined microgravity environments, such as spacecraft piping, presents unique challenges due to the lack of gravitational normal forces and the strict requirement for environmental safety. Traditional rigid-body controllers often struggle to generate sufficient traction for agile maneuvering without violating the structural limits of fragile surroundings. This article introduces a novel control framework for a 6-link spinal wheeled-legged robot that actively exploits internal spinal dynamics to steer the system. We propose a lie-algebraic error-state model predictive control that plans optimal momentum fluxes and spinal configurations, ensuring singularity-free tracking even during omnidirectional tumbling. To guarantee safety, a hierarchical whole-body controller enforces strict environment-admissible force constraints and integrates an event-triggered asymmetric friction adaptation strategy to handle uncertain surface properties. Uniquely, the proposed framework is validated through real-world on-orbit experiments using a flight-equivalent pipe testbed aboard the China Space Station. Results demonstrate that our method successfully achieves agile heading recovery where rigid-body baselines fail to converge due to traction loss, while strictly maintaining contact forces within the 6.6 N safety limit despite friction uncertainties.
| Original language | English |
|---|---|
| Journal | IEEE Transactions on Industrial Electronics |
| DOIs | |
| Publication status | Accepted/In press - 2026 |
| Externally published | Yes |
Keywords
- Momentum control
- on-orbit validation
- pipeline robot
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