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Model for bending actuators that use electrostrictive graft elastomers
Author(s) -
Robert C. Costen,
Ji Su,
Joycelyn S. Harrison
Publication year - 2001
Publication title -
proceedings of spie, the international society for optical engineering/proceedings of spie
Language(s) - English
Resource type - Conference proceedings
SCImago Journal Rank - 0.192
H-Index - 176
eISSN - 1996-756X
pISSN - 0277-786X
DOI - 10.1117/12.432677
Subject(s) - electrostriction , materials science , actuator , elastomer , composite material , deflection (physics) , bending , electroactive polymers , smart material , modulus , curvature , soft robotics , piezoelectricity , polymer , optics , electrical engineering , engineering , physics , geometry , mathematics
Recently, it was reported that an electrostrictive graft elastomer exhibits large electric field-induced strain (4 percent). Combined with its high mechanical modulus, the elastomer can offer very promising electromechanical properties, in terms of output mechanical energy density, for an electroactive polymeric material. Therefore, it has been considered as one of the candidates that can be used in high performance, low mass actuation devices in many aerospace applications. Various bi-layer- based bending actuators have been designed and fabricated. An analytic model based on beam theory in the strength of materials has been derived for the transverse deflection, or curvature, and the longitudinal strain of the bi-layer beam. The curvature and strain are functions of the applied voltage and the thickness, width, and Young s modulus of the active and passive layers. The model can be used to optimize the performance of electrostrictive graft elastomer-based actuators to meet the requirements of various applications. In this presentation, optimization and sensitivity studies are applied to the bending performance of such actuators.

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