Modelling the curing process in particle-filled electro-active polymers with a dispersion anisotropy

被引:23
|
作者
Hossain, Mokarram [1 ]
机构
[1] Swansea Univ, Coll Engn, Zienkiewicz Ctr Computat Engn, Fabian Way, Swansea SA1 8EN, W Glam, Wales
关键词
Electro-active polymers; Polymer curing; Electro-mechanically coupled problem; Dispersion anisotropy; Electro-elasticity; Curing shrinkage; RUBBER-LIKE MATERIALS; DIELECTRIC ELASTOMER; NUMERICAL-INTEGRATION; ELECTROMECHANICAL RESPONSE; CONSTITUTIVE MODELS; SPHERE; PERMITTIVITY; VISCOELASTICITY; ENHANCEMENT; IMPROVEMENT;
D O I
10.1007/s00161-019-00747-5
中图分类号
O414.1 [热力学];
学科分类号
摘要
Even for a moderate actuation, a large electric voltage requirement hinders the application of electro-active polymers (EAPs) in many areas. Hence, among other mechanisms, the actuation enhancement in EAPs is performed via inclusions of high-dielectric-permittivity fillers in the matrix material in the uncured stage. Moreover, to obtain an optimum advantage from the high-dielectric-permittivity fillers, an electric field can be applied during the curing process which helps the particles to align in a preferred direction. To be specific, recent experimental evidences show that these particles form a dispersed anisotropy rather than a perfect transverse anisotropic structure. The polymer curing process is a complex (visco-) elastic phenomenon where a liquid polymer gradually transforms into a solid macromolecular structure due to cross-linking of the initial solution of short polymer chains. This phase transition comes along with an increase in the material stiffness and a volume shrinkage. In this paper we present a phenomenologically inspired large strain framework for simulating the curing process of particle-filled electro-active polymers with a dispersion-type anisotropy that can work under the influence of an electro-mechanically coupled load. The application of the proposed approach is demonstrated with some numerical examples. These examples illustrate that the model can predict common features in particle-filled dispersed electro-active polymers undergoing curing processes in the presence of an electro-mechanically coupled load.
引用
收藏
页码:351 / 367
页数:17
相关论文
共 50 条
  • [1] Modelling the curing process in particle-filled electro-active polymers with a dispersion anisotropy
    Mokarram Hossain
    Continuum Mechanics and Thermodynamics, 2020, 32 : 351 - 367
  • [2] Modelling electro-active polymers with a dispersion-type anisotropy
    Hossain, Mokarram
    Steinmann, Paul
    SMART MATERIALS AND STRUCTURES, 2018, 27 (02)
  • [3] Impregnation molding of particle-filled preceramic polymers:: Process modeling
    Erdal, M
    Güçeri, SI
    Danforth, SC
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1999, 82 (08) : 2017 - 2028
  • [4] ABRASIVE WEAR OF PARTICLE-FILLED POLYMERS
    PRASAD, SV
    CALVERT, PD
    JOURNAL OF MATERIALS SCIENCE, 1980, 15 (07) : 1746 - 1754
  • [5] RECENT DEVELOPMENTS IN ELECTRO-ACTIVE POLYMERS
    BROOK, MG
    PLASTICS AND RUBBER PROCESSING AND APPLICATIONS, 1987, 8 (04): : 235 - 238
  • [6] Constitutive modelling for the mullins effect with permanent set and induced anisotropy in particle-filled rubbers
    Zhu, Pingping
    Zhong, Zheng
    APPLIED MATHEMATICAL MODELLING, 2021, 97 : 19 - 35
  • [7] EFFECT OF PARTICLE-SIZE ON MODULUS OF PARTICLE-FILLED POLYMERS
    MIWA, M
    OHSAWA, T
    KOHARA, T
    NAKAYAMA, A
    KOBUNSHI RONBUNSHU, 1978, 35 (02) : 125 - 129
  • [8] Control-Oriented Nonlinear Dynamic Modelling of Dielectric Electro-Active Polymers
    Jacobs, Will
    Wilson, Emma D.
    Assaf, Tareq
    Rossiter, Jonathan M.
    Dodd, Tony J.
    Porrill, John
    Anderson, Sean R.
    TOWARDS AUTONOMOUS ROBOTIC SYSTEMS, 2014, 8069 : 259 - +
  • [9] Modeling and simulation of viscous electro-active polymers
    Kuhl, Ellen (ekuhl@stanford.edu), 1600, Elsevier Ltd (48):
  • [10] Modeling and simulation of viscous electro-active polymers
    Vogel, Franziska
    Goktepe, Serdar
    Steinmann, Paul
    Kuhl, Ellen
    EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2014, 48 : 112 - 128