Vibro-Electrical Behavior of a Viscoelastic Piezo-Nanowire in an Elastic Substrate Considering Stress Nonlocality and Microstructural Size-Dependent Effects
Abstract
This research deals with dynamics response of a Pol/BaTiO3 nanowire including viscosity influences. The wire is also impressed by a longitudinal electric field. Hamilton's principle and Lagrangian strains are employed in conjunction with a refined higher-order beam theory in order to derive equations of motion. By combining nonlocality and small size effects of a unique model into the derived equations, the couple relations which describe nanosize behavior in a small scale are presented. By employing an analytical approach, the fundamental natural frequencies are calculated numerically. The important results display that the effect of internal viscosity and nonlocality whenever the nanowire is very large are pointless.
Citations
-
0
CrossRef
-
0
Web of Science
-
0
Scopus
Author (1)
Cite as
Full text
full text is not available in portal
Keywords
Details
- Category:
- Magazine publication
- Type:
- Magazine publication
- Publication year:
- 2019
- DOI:
- Digital Object Identifier (open in new tab) 10.24107/ijeas.567435
- Verified by:
- No verification
seen 46 times
Recommended for you
Electromagnetic forced vibrations of composite nanoplates using nonlocal strain gradient theory
- M. Malikan,
- V. B. Nguyen,
- F. Tornabene
Electromagnetic forced vibrations of composite nanoplates using nonlocal strain gradient theory
- M. Malikan,
- V. B. Nguyen,
- F. Tornabene
Dynamic modeling of non-cylindrical curved viscoelastic single-walled carbon nanotubes based on the second gradient theory
- M. Malikan,
- V. B. Nguyen,
- R. Dimitri
- + 1 authors