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THEORY OF DIELECTRIC ELASTOMERS 被引量:46

THEORY OF DIELECTRIC ELASTOMERS
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摘要 In response to a stimulus, a soft material deforms, and the deformation provides a function. We call such a material a soft active material (SAM). This review focuses on one class of soft active materials: dielectric elastomers. When a membrane of a dielectric elastomer is subject to a voltage through its thickness, the membrane reduces thickness and expands area, possibly straining over 100%. The dielectric elastomers are being developed as transducers for broad applications, including soft robots, adaptive optics, Braille displays, and electric generators. This paper reviews the theory of dielectric elastomers, developed within continuum mechanics and thermodynamics, and motivated by molecular pictures and empirical observations. The theory couples large deformation and electric potential, and describes nonlinear and nonequilibrium behavior, such as electromechanical instability and viscoelasticity. The theory enables the finite element method to simulate transducers of realistic configurations, predicts the efficiency of electromechanical energy conversion, and suggests alternative routes to achieve giant voltage-induced deformation. It is hoped that the theory will aid in the creation of materials and devices. In response to a stimulus, a soft material deforms, and the deformation provides a function. We call such a material a soft active material (SAM). This review focuses on one class of soft active materials: dielectric elastomers. When a membrane of a dielectric elastomer is subject to a voltage through its thickness, the membrane reduces thickness and expands area, possibly straining over 100%. The dielectric elastomers are being developed as transducers for broad applications, including soft robots, adaptive optics, Braille displays, and electric generators. This paper reviews the theory of dielectric elastomers, developed within continuum mechanics and thermodynamics, and motivated by molecular pictures and empirical observations. The theory couples large deformation and electric potential, and describes nonlinear and nonequilibrium behavior, such as electromechanical instability and viscoelasticity. The theory enables the finite element method to simulate transducers of realistic configurations, predicts the efficiency of electromechanical energy conversion, and suggests alternative routes to achieve giant voltage-induced deformation. It is hoped that the theory will aid in the creation of materials and devices.
出处 《Acta Mechanica Solida Sinica》 SCIE EI 2010年第6期549-578,共30页 固体力学学报(英文版)
基金 as a part of a research program on Soft Active Materials,supported at various times by NSF (CMMI-0800161, Large Deformation and Instability in Soft Active Materials) MURI (W911NF-04-1-0170, Design and Processing of Electret Structures W911NF-09-1-0476, Innovative Design and Processing for Multi-Functional Adaptive Structural Materials) DARPA (W911NF-08-1-0143,ProgrammableMatter W911NF-10-1-0113, Cephalopod-Inspired Adaptive Photonic Systems)
关键词 soft active material dielectric elastomer electromechanical instability large deformation TRANSDUCER soft active material, dielectric elastomer, electromechanical instability, large deformation transducer
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  • 1Mathger,L.M.,Denton,E.J.,Marshall,N.J.and Hanlon,R.T.,Mechanisms and behavioral functions of structural coloration in cephalopods.Journal of the Royal Society Interface,2008,6(Suppl 2):S149-5163.
  • 2Zwieniecki,M.A.,Melcher,P.J.and Holbrook,N.M.,Hydrogel control of xylem hydraulic resistance in plants.Science,2001,291:1059-1062.
  • 3Pelrine,R.,Kornbluh,R.,Pei,Q.B.and Joseph,J.,High-speed electrically actuated elastomers with strain greater than 100%.Science,2000,287:836-839.
  • 4McKay,T.,O'Brien,B.,Calius,E.and Anderson,I.,Self-priming dielectric elastomer generators.Smart Materials and Structures,2010,19:055025.
  • 5Beebe,D.J.,Moore,J.S.,Bauer,J.M.,Yu,Q.,Liu,R.H.,Devadoss,C.and Jo,B.H.,Functional hydrogel structures for autonomous flow control inside microfluidic channels.Nature,2000,404:588-590.
  • 6Calvert,P.,Hydrogels for soft machines.Advanced Materials,2009,21:743-756.
  • 7'Irivedi,D.,Rahn,C.D.,Kier,W.M.and Walker,I.D.,Soft robotics:biological inspiration,state of the art,and future research.Applied Bionics and Biomechanics,2008,5:99-117.
  • 8Cai,S.Q.,Lou,Y.C.,Ganguly,P.,Robisson,A.and Suo,Z.G.,Force generated by a swelling elastomer subject to constraint.Journal of Applied Physics,2010,107:103535.
  • 9Goulbourne,N.C.,Mockensturm,E.M.and Frecker,M.,A nonlinear model for dielectric elastomer membranes,Journal of Applied Mechanics,2005,72:899-906.
  • 10Dorfmann,A.and Ogden,R.W.,Nonlinear electroelasticity.Acta Mechanica,2005,174:167-183.

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