English

ReachBot: A Small Robot for Large Mobile Manipulation Tasks

Robotics 2021-10-22 v1 Systems and Control Systems and Control

Abstract

Robots are widely deployed in space environments because of their versatility and robustness. However, adverse gravity conditions and challenging terrain geometry expose the limitations of traditional robot designs, which are often forced to sacrifice one of mobility or manipulation capabilities to attain the other. Prospective climbing operations in these environments reveals a need for small, compact robots capable of versatile mobility and manipulation. We propose a novel robotic concept called ReachBot that fills this need by combining two existing technologies: extendable booms and mobile manipulation. ReachBot leverages the reach and tensile strength of extendable booms to achieve an outsized reachable workspace and wrench capability. Through their lightweight, compactable structure, these booms also reduce mass and complexity compared to traditional rigid-link articulated-arm designs. Using these advantages, ReachBot excels in mobile manipulation missions in low gravity or that require climbing, particularly when anchor points are sparse. After introducing the ReachBot concept, we discuss modeling approaches and strategies for increasing stability and robustness. We then develop a 2D analytical model for ReachBot's dynamics inspired by grasp models for dexterous manipulators. Next, we introduce a waypoint-tracking controller for a planar ReachBot in microgravity. Our simulation results demonstrate the controller's robustness to disturbances and modeling error. Finally, we briefly discuss next steps that build on these initially promising results to realize the full potential of ReachBot.

Keywords

Cite

@article{arxiv.2110.10829,
  title  = {ReachBot: A Small Robot for Large Mobile Manipulation Tasks},
  author = {Stephanie Schneider and Andrew Bylard and Tony G. Chen and Preston Wang and Mark Cutkosky and Marco Pavone},
  journal= {arXiv preprint arXiv:2110.10829},
  year   = {2021}
}

Comments

12 pages, 13 figures

R2 v1 2026-06-24T07:03:31.045Z