Title :
Fiber-Directed Conjugated-Polymer Torsional Actuator: Nonlinear Elasticity Modeling and Experimental Validation
Author :
Fang, Yang ; Pence, Thomas J. ; Tan, Xiaobo
Author_Institution :
Engine, Emissions, & Vehicle Res. Div., Southwest Res. Inst., Ann Arbor, MI, USA
Abstract :
Existing conjugated-polymer actuators typically take the form of benders or linear extenders. In this paper, a conjugated-polymer-based torsional actuator is proposed by embedding helically wound fibers into a conjugated polymer tube during the polymer-deposition process. Upon actuation, the electrolyte-soaked tube swells, and consequently, produces torsion and other associated deformations because of fiber-induced mechanical anisotropy of the composite material. A nonlinear elasticity-based model is presented to capture the torsion, elongation, and dilation of the tube. Experiments on tubular actuators with different thicknesses, fiber-winding angles, and diameters confirm the aforementioned deformation modes and validate the effectiveness of the proposed model.
Keywords :
actuators; conducting polymers; elasticity; torsion; conjugated polymer tube; extenders; fiber-directed conjugated-polymer torsional actuator; nonlinear elasticity modeling; nonlinear elasticity-based model; polymer-deposition process; Anisotropic magnetoresistance; Composite materials; Deformable models; Elasticity; Electrons; Hydraulic actuators; Oxidation; Polymers; Spine; Wounds; Actuators; conjugated polymer; electroactive polymers; modeling; nonlinear elasticity;
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
DOI :
10.1109/TMECH.2010.2049366