Steel and Composite Structures
Volume 18, Number 4, 2015, pages 909-924
DOI: 10.12989/scs.2015.18.4.909
Thermoelastic interaction in functionally graded nanobeams subjected to time-dependent heat flux
Ashraf M. Zenkour and Ahmed E. Abouelregal
Abstract
This paper investigates the vibration phenomenon of a nanobeam subjected to a time-dependent heat flux. Material properties of the nanobeam are assumed to be graded in the thickness direction according to a novel exponential distribution law in terms of the volume fractions of the metal and ceramic constituents. The upper surface of the functionally graded (FG) nanobeam is pure ceramic whereas the lower surface is pure metal. A nonlocal generalized thermoelasticity theory with dual-phase-lag (DPL) model is used to solve this problem. The theories of coupled thermoelasticity, generalized thermoelasticity with one relaxation time, and without energy dissipation can extracted as limited and special cases of the present model. An analytical technique based on Laplace transform is used to calculate the variation of deflection and temperature. The inverse of Laplace transforms are computed numerically using Fourier expansion techniques. The effects of the phase-lags (PLs), nonlocal parameter and the angular frequency of oscillation of the heat flux on the lateral vibration, the temperature, and the axial displacement of the nanobeam are studied.
Key Words
thermoelasticity; DPL model; FG nanobeam; nonlocal Euler-Bernoulli theory; heat flux
Address
(1) Ashraf M. Zenkour:
Department of Mathematics, Faculty of Science, King Abdulaziz University, Jeddah 21589, Saudi Arabia;
(2) Ashraf M. Zenkour:
Department of Mathematics, Faculty of Science, Kafrelsheikh University, Kafr El-Sheikh 33516, Egypt;
(3) Ahmed E. Abouelregal:
Department of Mathematics, Faculty of Science, Mansoura University, Mansoura 35516, Egypt;
(4) Ahmed E. Abouelregal:
Department of Mathematics, College of Science and Arts, Aljouf University, Al-Qurayat, Saudi Arabia.