Nonlinear structural and vibration analysis of graphene sheets

A nonlinear differential quadrature based method is developed and successfully applied to structural and vibration analyses of general multi-layered graphene sheets in the presence of geometrical nonlinearities and nonlinear van der Waal forces. Important nonlinear displacement characteristics of mu...

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Main Author: Lin, Rongming
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2014
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Online Access:https://hdl.handle.net/10356/102598
http://hdl.handle.net/10220/19053
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1025982020-03-07T13:22:20Z Nonlinear structural and vibration analysis of graphene sheets Lin, Rongming School of Mechanical and Aerospace Engineering Mechanical and Aerospace Engineering A nonlinear differential quadrature based method is developed and successfully applied to structural and vibration analyses of general multi-layered graphene sheets in the presence of geometrical nonlinearities and nonlinear van der Waal forces. Important nonlinear displacement characteristics of multi-layered graphene sheets have first been established. Due to relatively large magnitudes of van der Waal forces, different layers of graphene undergo similar deflections under external loadings and nonlinearities in van der Waal forces do not contribute much to the overall nonlinear structural behaviour. In the case of vibration analysis, two groups of modes each having its own unique characteristics have been identified and are defined as the lower classical bending modes and the higher van der Waal enhanced modes. For lower classical bending modes, the layers vibrate in phase and their natural frequencies are only affected by geometrical nonlinearities but decoupled from nonlinear van der Waal forces. For higher van der Waal enhanced modes however, the nonlinear vibration characteristics are dictated by the nonlinear van der Waal forces. These observations are valid for different boundary conditions and different layers of graphene sheets that have been investigated. Van der Waal forces and their effects are properly modelled and examined, together with effects of key physical parameters. The results presented for the first time provide accurate and wholesome studies on the nonlinear structural and vibration characteristics of graphene sheets. These results are important to structural designs of graphene sheets which are increasingly being deployed for innovative engineering applications such as nano-electro-mechanical systems (NEMS). 2014-03-31T08:48:21Z 2019-12-06T20:57:19Z 2014-03-31T08:48:21Z 2019-12-06T20:57:19Z 2013 2013 Journal Article Lin, R. M. (2013). Nonlinear Structural and Vibration Analysis of Graphene Sheets. Journal of Computational and Theoretical Nanoscience, 10(9), 1941-1951. 1546-1955 https://hdl.handle.net/10356/102598 http://hdl.handle.net/10220/19053 10.1166/jctn.2013.3152 en Journal of computational and theoretical nanoscience © 2013 American Scientific Publishers.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Mechanical and Aerospace Engineering
spellingShingle Mechanical and Aerospace Engineering
Lin, Rongming
Nonlinear structural and vibration analysis of graphene sheets
description A nonlinear differential quadrature based method is developed and successfully applied to structural and vibration analyses of general multi-layered graphene sheets in the presence of geometrical nonlinearities and nonlinear van der Waal forces. Important nonlinear displacement characteristics of multi-layered graphene sheets have first been established. Due to relatively large magnitudes of van der Waal forces, different layers of graphene undergo similar deflections under external loadings and nonlinearities in van der Waal forces do not contribute much to the overall nonlinear structural behaviour. In the case of vibration analysis, two groups of modes each having its own unique characteristics have been identified and are defined as the lower classical bending modes and the higher van der Waal enhanced modes. For lower classical bending modes, the layers vibrate in phase and their natural frequencies are only affected by geometrical nonlinearities but decoupled from nonlinear van der Waal forces. For higher van der Waal enhanced modes however, the nonlinear vibration characteristics are dictated by the nonlinear van der Waal forces. These observations are valid for different boundary conditions and different layers of graphene sheets that have been investigated. Van der Waal forces and their effects are properly modelled and examined, together with effects of key physical parameters. The results presented for the first time provide accurate and wholesome studies on the nonlinear structural and vibration characteristics of graphene sheets. These results are important to structural designs of graphene sheets which are increasingly being deployed for innovative engineering applications such as nano-electro-mechanical systems (NEMS).
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Lin, Rongming
format Article
author Lin, Rongming
author_sort Lin, Rongming
title Nonlinear structural and vibration analysis of graphene sheets
title_short Nonlinear structural and vibration analysis of graphene sheets
title_full Nonlinear structural and vibration analysis of graphene sheets
title_fullStr Nonlinear structural and vibration analysis of graphene sheets
title_full_unstemmed Nonlinear structural and vibration analysis of graphene sheets
title_sort nonlinear structural and vibration analysis of graphene sheets
publishDate 2014
url https://hdl.handle.net/10356/102598
http://hdl.handle.net/10220/19053
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