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Hygrothermal buckling analysis of magnetically actuated embedded higher order functionally graded nanoscale beams considering the neutral surface position.

Authors :
Ebrahimi, Farzad
Barati, Mohammad Reza
Source :
Journal of Thermal Stresses. 2016, Vol. 39 Issue 10, p1210-1229. 20p.
Publication Year :
2016

Abstract

In this article, the effects of humidity and thermal loads on buckling behavior of functionally graded (FG) nanobeams resting on elastic foundation and subjected to a unidirectional magnetic field is investigated. The nanobeam is modeled using different higher order refined beam theories which capture shear deformation influences needless of shear correction factors. The neutral axis position for all proposed beam models is determined. The material properties of FG nanobeam are temperature dependent and change gradually in spatial coordinate through the sigmoid and power-law models. Small-scale behavior of the nanobeam is described applying nonlocal elasticity theory of Eringen. Nonlocal governing equations for an embedded nanosize functionally graded material beam under hygrothermal loads obtained from Hamilton's principle are solved by an analytic method which satisfies various boundary conditions including S–S, C–S, and C–C. The validation of developed refined beam model has been proved with comparison to a previously published work on FG nanobeams. Numerical results are calculated for various beam theories to reveal the influences of moisture and temperature rise, elastic medium, nonlocality, volume fraction index, boundary conditions, and longitudinal magnetic field on the hygrothermal buckling responses of nanoscale P-FGM and S-FGM beams. The present study would be useful in the design of the nanoscale systems as one of the most demanded technologies in the near future. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01495739
Volume :
39
Issue :
10
Database :
Academic Search Index
Journal :
Journal of Thermal Stresses
Publication Type :
Academic Journal
Accession number :
118223968
Full Text :
https://doi.org/10.1080/01495739.2016.1215726