Published June 1, 2017 | Version v1
Journal article

Nonlocal strain gradient theory calibration using molecular dynamics simulation based on small scale vibration of nanotubes

  • 1. Mechanical Engineering Department, Shahrekord University, Shahrekord (Iran, Islamic Republic of)
  • 2. Faculty of Engineering, Shahrekord University, Shahrekord (Iran, Islamic Republic of)

Description

Featured by two small length scale parameters, nonlocal strain gradient theory is utilized to investigate the free vibration of nanotubes. A new size-dependent shell model formulation is developed by using the first order shear deformation theory. The governing equations and boundary conditions are obtained using Hamilton's principle and solved for simply supported boundary condition. As main purpose of this study, since the values of two small length scale parameters are still unknown, they are calibrated by the means of molecular dynamics simulations (MDs). Then, the influences of different parameters such as nonlocal parameter, scale factor, length and thickness on vibration characteristics of nanotubes are studied. It is also shown that increase in thickness and decrease in length parameters intensify the effect of nonlocal parameter and scale factor.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.physb.2017.03.030

Additional details

Identifiers

DOI
10.1016/j.physb.2017.03.030;
PII
S0921-4526(17)30143-6;

Publishing Information

Journal Title
Physica. B, Condensed Matter
Journal Volume
514
Journal Page Range
p. 61-69
ISSN
0921-4526
CODEN
PHYBE3

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
48065598
Subject category
S77: NANOSCIENCE AND NANOTECHNOLOGY;
Descriptors DEI
BOUNDARY CONDITIONS; CALIBRATION; COMPUTERIZED SIMULATION; DEFORMATION; EQUATIONS; MOLECULAR DYNAMICS METHOD; NANOTUBES; SHEAR; SHELL MODELS; SHELLS; STRAINS; THICKNESS
Descriptors DEC
CALCULATION METHODS; DIMENSIONS; MATHEMATICAL MODELS; NANOSTRUCTURES; NUCLEAR MODELS; SIMULATION

Optional Information

Copyright
Copyright (c) 2017 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.