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Homogeneous large deformation analysis of a dielectric elastomer peristaltic actuator

Homogeneous large deformation analysis of a dielectric elastomer peristaltic actuator
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摘要 A series of isometric,radially expanding tubular units,made of dielectric elastomer with compliant electrodes,constitute a soft linear peristaltic pump with distributed actuation for transport of incompressible fluids.Based on the Gent strain energy model,this paper theoretically analyzes the homogeneous large deformation of the peristaltic unit.We discuss the effects of axial prestretch on the actuation of the actuator.We then predict the maximum actuation strain of this actuator which is limited by dielectric strength of the polymer.The results presented here extend the previous study based on linear elasticity,and can predict the electromechanical behaviors of the novel actuator at large deformations. A series of isometric, radially expanding tubular units, made of dielectric elastomer with compliant electrodes, constitute a soft linear peristaltic pump with distributed actuation for transport of incompressible fluids. Based on the Gent strain energy model, this paper theoretically analyzes the homogeneous large deformation of the peristaltic unit. We discuss the effects of axial pre-stretch on the actuation of the actuator. We then predict the maximum actuation strain of this actuator which is limited by dielectric strength of the polymer. The results presented here extend the previous study based on linear elasticity, and can predict the electromechanical behaviors of the novel actuator at large deformations.
出处 《Science China(Technological Sciences)》 SCIE EI CAS 2012年第2期537-541,共5页 中国科学(技术科学英文版)
基金 supported by the National Natural Science Foundation of China (Grant Nos. 11102149,10872157,11072185,and 10972174)
关键词 大变形分析 介电强度 驱动器 弹性体 蠕动泵 不可压缩流体 贯流式机组 能量模型 dielectric elastomer, peristaltic pump, large deformation, electromechanical, actuation
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参考文献10

  • 1Pelrine R,Kornbluh R,Pei Q B,et al.High-speed electrically actuated elastomers with strain greater than 100%[].Science.2000
  • 2Ha S M,Yuan W,Pei Q B,et al.Interpenetrating polymer networks for high-performance electroelastomer artificial muscles[].Advanced Materials.2006
  • 3Kofod G.Dielectric elastomer actuators[]..2001
  • 4Carpi F,Bauer S,De Rossi D.Stretching dielectric elastomer performance[].Science.2010
  • 5Zhigang Suo (School of Engineering and Applied Sciences,Kavli Institute for Nanobio Science and Technology,Harvard University,Cambridge,MA 02138,USA).THEORY OF DIELECTRIC ELASTOMERS[J].Acta Mechanica Solida Sinica,2010,23(6):549-578. 被引量:46
  • 6Carpi F,Menon C,De Rossi D.Electroactive elastomeric actuator for all-polymer linear peristaltic pumps[].Transactions on Mechatronics.2010
  • 7Arora S,Ghosh T,Muth J.Dielectric elastomer based prototype fiber actuators[].Sensors and Actuators A Physical.2007
  • 8Kofod G,Stoyanov H,Gerhard R.Multilayer coaxial fiber dielectric elastomers for actuation and sensing[].Applied Physics A Materials Science Processing.2011
  • 9Cameron C G,Szabo J P,Johnstone S,et al.Linear actuation in coextruded dielectric elastomer tubes[].Sensors and Actuators A Physical.2008
  • 10Zhu J,Stoyanov H,Kofod G,et al.Large deformation and electromechanical instability of a dielectric elastomer tube actuator[].Journal of Applied Physics.2010

二级参考文献91

  • 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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