Home /Research /Distributed flow sensing for closed-loop speed control of a flexible fish robot
OTHER

Distributed flow sensing for closed-loop speed control of a flexible fish robot

Feitian Zhang, Francis D. Lagor, Derrick Yeo, Patrick Washington, Derek A. Paley

Year
2015
Citations
43

Abstract

Flexibility plays an important role in fish behavior by enabling high maneuverability for predator avoidance and swimming in turbulent flow. This paper presents a novel flexible fish robot equipped with distributed pressure sensors for flow sensing. The body of the robot is molded from soft, hyperelastic material, which provides flexibility. Its Joukowski-foil shape is conducive to modeling the fluid analytically. A quasi-steady potential-flow model is adopted for real-time flow estimation, whereas a discrete-time vortex-shedding flow model is used for higher-fidelity simulation. The dynamics for the flexible fish robot yield a reduced model for one-dimensional swimming. A recursive Bayesian filter assimilates pressure measurements to estimate flow speed, angle of attack, and foil camber. The closed-loop speed-control strategy combines an inverse-mapping feedforward controller based on an average model derived for periodic actuation of angle-of-attack and a proportional-integral feedback controller utilizing the estimated flow information. Simulation and experimental results are presented to show the effectiveness of the estimation and control strategy. The paper provides a systematic approach to distributed flow sensing for closed-loop speed control of a flexible fish robot by regulating the flapping amplitude.

Keywords

Control theory (sociology)Feed forwardFlow control (data)Controller (irrigation)EngineeringRobotFlappingSimulationControl engineeringComputer science

Related papers

Browse all OTHER papers