Fiber-Reinforced Equibiaxial Dielectric Elastomer Actuator for Out-of-Plane Displacement
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Published:2024-07-25
Issue:15
Volume:17
Page:3672
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ISSN:1996-1944
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Container-title:Materials
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language:en
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Short-container-title:Materials
Author:
Holzer Simon1ORCID, Konstantinidi Stefania1ORCID, Koenigsdorff Markus2ORCID, Martinez Thomas1ORCID, Civet Yoan1ORCID, Gerlach Gerald2ORCID, Perriard Yves1ORCID
Affiliation:
1. Integrated Actuators Laboratory, Ecole Polytechnique Fédérale de Lausanne, Rue de la Maladière 71b, 2000 Neuchâtel, Switzerland 2. Institute of Solid-State Electronics, Faculty of Electrical and Computer Engineering, Dresden University of Technology, Mommsenstraße 15, 01069 Dresden, Germany
Abstract
Dielectric elastomer actuators (DEAs) have gained significant attention due to their potential in soft robotics and adaptive structures. However, their performance is often limited by their in-plane strain distribution and limited mechanical stability. We introduce a novel design utilizing fiber reinforcement to address these challenges. The fiber reinforcement provides enhanced mechanical integrity and improved strain distribution, enabling efficient energy conversion and out-of-plane displacement. We discuss an analytical model and the fabrication process, including material selection, to realize fiber-reinforced DEAs. Numerical simulations and experimental results demonstrate the performance of the fiber-reinforced equibiaxial DEAs and characterize their displacement and force capabilities. Actuators with four and eight fibers are fabricated with 100 μm and 200 μm dielectric thicknesses. A maximal out-of-plane displacement of 500 μm is reached, with a force of 0.18 N, showing promise for the development of haptic devices.
Funder
Werner Siemens-Stiftung and the Deutsche Forschungsgemeinschaft
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