Thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell

Electro-active polymers are often subjected to periodic loading when used as actuators or resonators, thus the dynamical response and the failure of the material subjected to electro-mechanical coupling loading with the effect of temperature are important. The nonlinear thermo-electro-mechanical dyn...

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Autores principales: Jiusheng Ren, Shaoxing Guo
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Publicado: Elsevier 2021
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spelling oai:doaj.org-article:2ce8325ba9404147a33045d93249c2792021-12-01T05:05:51ZThermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell2666-496810.1016/j.apples.2020.100031https://doaj.org/article/2ce8325ba9404147a33045d93249c2792021-03-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S2666496820300315https://doaj.org/toc/2666-4968Electro-active polymers are often subjected to periodic loading when used as actuators or resonators, thus the dynamical response and the failure of the material subjected to electro-mechanical coupling loading with the effect of temperature are important. The nonlinear thermo-electro-mechanical dynamical response and the failure of an incompressible electro-active polymer cylindrical shell subjected to a suddenly applied constant load or a periodic internal load are analyzed within the framework of finite elasto-dynamics in this paper. The time history curves, phase portraits, Poincare maps of the shell in terms of different pressures, voltages, temperatures or wall thicknesses are presented through numerical computation. The attention is focused on the parameter effect on the motion of the shell and the corresponding critical values. Results indicate that the shell will undergo nonlinear periodic oscillation or quasi-periodic oscillation, and maybe a failure with time if one of the parameters for load, voltage, temperature or wall thickness exceeds its critical value. It is hoped that the results of this paper may provide a numerical reference for the related application and design of diverse electro-active polymers.Jiusheng RenShaoxing GuoElsevierarticleFinite elasto-dynamicsElectro-active polymerDynamical responseQuasi-periodic oscillationFailureEngineering (General). Civil engineering (General)TA1-2040ENApplications in Engineering Science, Vol 5, Iss , Pp 100031- (2021)
institution DOAJ
collection DOAJ
language EN
topic Finite elasto-dynamics
Electro-active polymer
Dynamical response
Quasi-periodic oscillation
Failure
Engineering (General). Civil engineering (General)
TA1-2040
spellingShingle Finite elasto-dynamics
Electro-active polymer
Dynamical response
Quasi-periodic oscillation
Failure
Engineering (General). Civil engineering (General)
TA1-2040
Jiusheng Ren
Shaoxing Guo
Thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell
description Electro-active polymers are often subjected to periodic loading when used as actuators or resonators, thus the dynamical response and the failure of the material subjected to electro-mechanical coupling loading with the effect of temperature are important. The nonlinear thermo-electro-mechanical dynamical response and the failure of an incompressible electro-active polymer cylindrical shell subjected to a suddenly applied constant load or a periodic internal load are analyzed within the framework of finite elasto-dynamics in this paper. The time history curves, phase portraits, Poincare maps of the shell in terms of different pressures, voltages, temperatures or wall thicknesses are presented through numerical computation. The attention is focused on the parameter effect on the motion of the shell and the corresponding critical values. Results indicate that the shell will undergo nonlinear periodic oscillation or quasi-periodic oscillation, and maybe a failure with time if one of the parameters for load, voltage, temperature or wall thickness exceeds its critical value. It is hoped that the results of this paper may provide a numerical reference for the related application and design of diverse electro-active polymers.
format article
author Jiusheng Ren
Shaoxing Guo
author_facet Jiusheng Ren
Shaoxing Guo
author_sort Jiusheng Ren
title Thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell
title_short Thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell
title_full Thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell
title_fullStr Thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell
title_full_unstemmed Thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell
title_sort thermo-electro-mechanical dynamical response and the failure of an electro-active polymer cylindrical shell
publisher Elsevier
publishDate 2021
url https://doaj.org/article/2ce8325ba9404147a33045d93249c279
work_keys_str_mv AT jiushengren thermoelectromechanicaldynamicalresponseandthefailureofanelectroactivepolymercylindricalshell
AT shaoxingguo thermoelectromechanicaldynamicalresponseandthefailureofanelectroactivepolymercylindricalshell
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