TY - JOUR
T1 - A new nonlocal cylindrical shell model for axisymmetric wave propagation in carbon nanotubes
AU - Yang, Yang
AU - Lim, C. W.
PY - 2011/1
Y1 - 2011/1
N2 - In this paper, an analytic nonlocal shell model is established to investigate the axisymmetric wave propagation in carbon nanotubes. Considering carbon nanotubes as continuum elastic shells and applying the nonlocal elasticity theory, the novel governing equations of motion for carbon nanotubes with nanoscale effects are derived based on the variational principle. The dispersion relation of phase velocity in terms of wavenumber for waves to propagate in carbon nanotubes are illustrated and compared with the results predicted by other approaches including the previous partial nonlocal models, classical elastic models, strain gradient theory and molecular dynamic simulation. The analysis and results confirm that this new analytical nonlocal shell model is capable of successfully predicting stiffness enhancement for carbon nanotubes with nonlocal effects and the decay of wave propagation at high wavenumber. Illustration of phase velocity with respect to the nonlocal nanoscale parameter of carbon nanotubes further confirm the rationality of this new, analytical nonlocal shell model in the studies of wave propagation in carbon nanotubes. © 2011 American Scientific Publishers.
AB - In this paper, an analytic nonlocal shell model is established to investigate the axisymmetric wave propagation in carbon nanotubes. Considering carbon nanotubes as continuum elastic shells and applying the nonlocal elasticity theory, the novel governing equations of motion for carbon nanotubes with nanoscale effects are derived based on the variational principle. The dispersion relation of phase velocity in terms of wavenumber for waves to propagate in carbon nanotubes are illustrated and compared with the results predicted by other approaches including the previous partial nonlocal models, classical elastic models, strain gradient theory and molecular dynamic simulation. The analysis and results confirm that this new analytical nonlocal shell model is capable of successfully predicting stiffness enhancement for carbon nanotubes with nonlocal effects and the decay of wave propagation at high wavenumber. Illustration of phase velocity with respect to the nonlocal nanoscale parameter of carbon nanotubes further confirm the rationality of this new, analytical nonlocal shell model in the studies of wave propagation in carbon nanotubes. © 2011 American Scientific Publishers.
KW - Axisymmetric wave propagation
KW - Carbon nanotubes
KW - Cylindrical shell
KW - Nonlocal elastic theory
KW - Variation principle
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UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-78650350833&origin=recordpage
U2 - 10.1166/asl.2011.1177
DO - 10.1166/asl.2011.1177
M3 - RGC 21 - Publication in refereed journal
SN - 1936-6612
VL - 4
SP - 121
EP - 131
JO - Advanced Science Letters
JF - Advanced Science Letters
IS - 1
ER -