A Thermo-Electro-Viscoelastic Model for Dielectric Elastomers.

Materials (Basel)

Advanced Materials Thrust and Sustainable Energy and Environment Thrust, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou 511400, China.

Published: August 2023

AI Article Synopsis

  • Dielectric elastomers (DEs) are electro-active polymers capable of significant deformation under electric stimuli, with potential applications in fields like bionic robotics and biomedical devices.
  • This paper develops a thermo-electro-viscoelastic model to simulate the complex stress-strain behavior of DEs during various loading conditions, addressing factors such as stretching rate and temperature.
  • Experimental validations using VHB4905 data confirm the model's accuracy, highlighting how temperature and electric fields can influence DE behavior, which aids in understanding potential failure mechanisms in practical applications.

Article Abstract

Dielectric elastomers (DEs) are a class of electro-active polymers (EAPs) that can deform under electric stimuli and have great application potential in bionic robots, biomedical devices, energy harvesters, and many other areas due to their outstanding deformation abilities. It has been found that stretching rate, temperature, and electric field have significant effects on the stress-strain relations of DEs, which may result in the failure of DEs in their applications. Thus, this paper aims to develop a thermo-electro-viscoelastic model for DEs at finite deformation and simulate the highly nonlinear stress-strain relations of DEs under various thermo-electro-mechanical loading conditions. To do so, a thermodynamically consistent continuum theoretical framework is developed for thermo-electro-mechanically coupling problems, and then specific constitutive equations are given to describe the thermo-electro-viscoelastic behaviors of DEs. Furthermore, the present model is fitted with the experimental data of VHB4905 to determine a temperature-dependent function of the equilibrium modulus. A comparison of the nonlinear loading-unloading curves between the model prediction and the experimental data of VHB4905 at various thermo-electro-mechanical loading conditions verifies the present model and shows its ability to simulate the thermo-electro-viscoelastic behaviors of DEs. Simultaneously, the results reveal the softening phenomena and the instant pre-stretch induced by temperature and the electric field, respectively. This work is conducive to analyzing the failure of DEs in functionalities and structures from theoretical aspects at various thermo-electro-mechanical conditions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488715PMC
http://dx.doi.org/10.3390/ma16175917DOI Listing

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A Thermo-Electro-Viscoelastic Model for Dielectric Elastomers.

Materials (Basel)

August 2023

Advanced Materials Thrust and Sustainable Energy and Environment Thrust, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou 511400, China.

Article Synopsis
  • Dielectric elastomers (DEs) are electro-active polymers capable of significant deformation under electric stimuli, with potential applications in fields like bionic robotics and biomedical devices.
  • This paper develops a thermo-electro-viscoelastic model to simulate the complex stress-strain behavior of DEs during various loading conditions, addressing factors such as stretching rate and temperature.
  • Experimental validations using VHB4905 data confirm the model's accuracy, highlighting how temperature and electric fields can influence DE behavior, which aids in understanding potential failure mechanisms in practical applications.
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