Stride Period Adaptation of a Biomimetic Running Hexapod
- 1 February 2004
- journal article
- Published by SAGE Publications in The International Journal of Robotics Research
- Vol. 23 (2) , 141-153
- https://doi.org/10.1177/0278364904041323
Abstract
We demonstrate an adaptation strategy for adjusting the stride period in a hexapedal running robot. The robot is inspired by discoveries about the self-stabilizing properties of insects and uses a sprawled posture, a bouncing alternating-tripod gait, and passive compliance and damping in the limbs to achieve fast (over four body-lengths per second), stable locomotion. The robot is controlled by an open-loop motor pattern that activates the legs at fixed intervals. For maximum speed and efficiency, the stride period of the pattern should be adjusted to match changes in terrain (e.g., slopes) or loading conditions (e.g., carrying an object). An ideal adaptation strategy will complement the design philosophy behind the robot and take advantage of the self-stabilizing role of the mechanical system. In this paper we describe an adaptation scheme based on measurements of ground contact timing obtained from binary sensors on the robot’s feet. Wediscuss the motivation for the approach, putting it in the context of previous research on the dynamic properties of running machines and bouncing multi-legged animals, and we show the results of the experiments.Keywords
This publication has 10 references indexed in Scilit:
- Fast and Robust: Hexapedal Robots via Shape Deposition ManufacturingThe International Journal of Robotics Research, 2002
- Perspectives and results on the stability and stabilizability of hybrid systemsProceedings of the IEEE, 2000
- Biomimetic Robotic Mechanisms via Shape Deposition ManufacturingPublished by Springer Nature ,2000
- Templates and anchors: neuromechanical hypotheses of legged locomotion on landJournal of Experimental Biology, 1999
- The role of the mechanical system in control: a hypothesis of self–stabilization in hexapedal runnersPhilosophical Transactions Of The Royal Society B-Biological Sciences, 1999
- Locomotion and MovementAmerican Zoologist, 1998
- Coupling the Neural and Physical Dynamics in Rhythmic MovementsNeural Computation, 1996
- Analysis of a Simplified Hopping RobotThe International Journal of Robotics Research, 1991
- An "Interesting" Strange Attractor in the Dynamics of a Hopping RobotThe International Journal of Robotics Research, 1991
- Legged Robots That BalanceIEEE Expert, 1986