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http://dx.doi.org/10.12989/anr.2017.5.1.001

Buckling temperature of a single-walled boron nitride nanotubes using a novel nonlocal beam model  

Elmerabet, Abderrahmane Hadj (Laboratoire de Modelisation et Simulation Multi-echelle, Departement de Physique)
Heireche, Houari (Laboratoire de Modelisation et Simulation Multi-echelle, Departement de Physique)
Tounsi, Abdelouahed (Laboratoire de Modelisation et Simulation Multi-echelle, Departement de Physique)
Semmah, Abdelwahed (Laboratoire de Modelisation et Simulation Multi-echelle, Departement de Physique)
Publication Information
Advances in nano research / v.5, no.1, 2017 , pp. 1-12 More about this Journal
Abstract
In this paper, the critical buckling temperature of single-walled Boron Nitride nanotube (SWBNNT) is estimated using a new nonlocal first-order shear deformation beam theory. The present model is capable of capturing both small scale effect and transverse shear deformation effects of SWBNNT and is based on assumption that the inplane and transverse displacements consist of bending and shear components, in which the bending components do not contribute toward shear forces and, likewise, the shear components do not contribute toward bending moments. Results indicate the importance of the small scale effects in the thermal buckling analysis of Boron Nitride nanotube.
Keywords
single walled boron nitride nanotube; critical buckling temperature; small scale effect;
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Times Cited By KSCI : 10  (Citation Analysis)
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