English

Locomotion and Control of a Friction-Driven Tripedal Robot

Robotics 2021-03-25 v2

Abstract

This letter considers control of a radially symmetric tripedal friction-driven robot. The robot features 3 servo motors mounted on a 3-D printed chassis 7 cm from the center of mass and separated 120 degrees. These motors drive limbs, which impart frictional reactive forces on the body. Experimental observations performed on a uniform friction surface validated a mathematical model for robot motion. This model was used to create a gait map, which features instantaneous omni-directional control. We demonstrated line following using live feedback from an overhead tracking camera. Proportional-Integral error compensation performance was compared to a basic position update procedure on a rectangular course. The controller reduced path error by approximately 46%46\%. The error compensator is also able to correct for aerodynamic disturbances generated by a high-volume industrial fan with a mean flow speed of 5.5ms15.5ms^{-1}, reducing path error by 65%65\% relative to the basic position update procedure.

Keywords

Cite

@article{arxiv.2011.07370,
  title  = {Locomotion and Control of a Friction-Driven Tripedal Robot},
  author = {Mark Hermes and Taylor McLaughlin and Mitul Luhar and Quan Nguyen},
  journal= {arXiv preprint arXiv:2011.07370},
  year   = {2021}
}

Comments

6 pages, 6 figures