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Dynamic climbing of near-vertical smooth surfaces

Paul Birkmeyer, Andrew G. Gillies, Ronald S. Fearing

Year
2012
Citations
46

Abstract

A 10 cm hexapedal robot is adapted to dynamically climb near-vertical smooth surfaces. A gecko-inspired adhesive is mounted with an elastomer tendon and polymer loop to a remote-center-of-motion ankle that allows rapid engagement with the surface and minimizes peeling moments on the adhesive. The maximum velocity possible while climbing decreases as the incline gets closer to vertical, with the robot able to achieve speeds of 10 cm second <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">-1</sup> at a 70-degree incline. A model is implemented to describe the effect of incline angle on climbing speed and, together with high-speed video evidence, reveals that climbing velocity is limited by robot dynamics and adhesive properties and not by power.

Keywords

ClimbClimbingRobotAdhesiveComputer scienceSimulationFlappingArtificial intelligenceMaterials scienceEngineering

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