Thermoelastic characteristics of moving viscoelastic nanobeams based on the nonlocal couple stress theory and dual-phase lag model

Author:

Abouelregal Ahmed EORCID,Sedighi Hamid MORCID

Abstract

Abstract Thermal behavior of a moving viscoelastic nanobeam under the influence of periodic thermal load is considered in the framework of Kelvin-Voigt viscoelastic model with fractional operators. The equation of motion for axially moving nanobeam is modeled by employing the Eringen’s nonlocal elastic theory in conjunction with the couple stress hypothesis and the conventional Euler–Bernoulli beam model. The thermoelastic features is then established by employing the generalized dual phase-lag heat conduction model. After utilizing the Laplace transform, the thermomechanical equations are coupled and solved. The current results are validated by presenting numerical examples and comparing with previous solutions obtained by traditional theories in the literature. According to the provided numerical simulations, the deflection of the axially moving nanobeam as well as its temperature change reduce with the axial velocity and the influences of small scale and nonlocal parameters are also revealed and discussed.

Funder

Research Council of Shahid Chamran University of Ahvaz ?

Publisher

IOP Publishing

Subject

Condensed Matter Physics,Mathematical Physics,Atomic and Molecular Physics, and Optics

Reference68 articles.

1. Vibrations of a simply supported beam with a fractional viscoelastic material model–supports movement excitation;Freundlich;Shock and Vibration,2013

2. Nonlinear dynamic analysis of viscoelastic beams using a fractional rheological model;Martin;Appl. Math. Modell.,2017

3. Nonlinear vibrations of fractional nonlocal viscoelastic nanotube resting on a Kelvin–Voigt foundation;Martin;Mech. Adv. Mater. Struct.,2022

4. Nonlinear vibration analysis of the fluid-filled single walled carbon nanotube with the shell model based on the nonlocal elacticity theory;Soltani;Journal of Solid Mechanics,2015

5. Fractional conservation laws in optimal control theory;Frederico;Nonlinear Dyn.,2008

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