Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene Nanoplatelets

This paper presents a study on wave propagation in rotating functionally graded (FG) microbeams reinforced by graphene nanoplatelets (GPLs). The graphene nanoplatelets (GPLs) are considered to distribute in the diameter direction of the micro-beam in a gradient pattern, which leads to the functional...

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Main Authors: Tianyu Zhao, Yu Ma, Jiannan Zhou, Yanming Fu
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/26/17/5150
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spelling doaj-b3c2a37405764691b85193a09ed53ba42021-09-09T13:52:53ZengMDPI AGMolecules1420-30492021-08-01265150515010.3390/molecules26175150Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene NanoplateletsTianyu Zhao0Yu Ma1Jiannan Zhou2Yanming Fu3School of Science, Northeastern University, Shenyang 110819, ChinaSchool of Science, Northeastern University, Shenyang 110819, ChinaTechnology Center of Shenyang Customs, Shenyang 110016, ChinaLaboratory Management Center, Shenyang Sport University, Shenyang 110102, ChinaThis paper presents a study on wave propagation in rotating functionally graded (FG) microbeams reinforced by graphene nanoplatelets (GPLs). The graphene nanoplatelets (GPLs) are considered to distribute in the diameter direction of the micro-beam in a gradient pattern, which leads to the functionally graded structure. By using the Halpin-Tsai micromechanics model and the rule of mixture, the effective material properties of the microbeam are determined. According to the Euler-Bernoulli beam theory and nonlocal elasticity theory, the rotating microbeams are modeled. A comprehensive parametric study is conducted to examine the effects of rotating speed, GPL distribution pattern, GPL length-to-thickness ratio, GPL length-to-width ratio, and nonlocal scale on the wavenumber, phase speed and group speed of the microbeam. The research findings can play an important role on the design of rotating graphene nanoplatelet (GPL) reinforced microbeams for better structural performance.https://www.mdpi.com/1420-3049/26/17/5150graphene nanoplateletswave propagationrotationmicrobeamsfunctionally graded
collection DOAJ
language English
format Article
sources DOAJ
author Tianyu Zhao
Yu Ma
Jiannan Zhou
Yanming Fu
spellingShingle Tianyu Zhao
Yu Ma
Jiannan Zhou
Yanming Fu
Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene Nanoplatelets
Molecules
graphene nanoplatelets
wave propagation
rotation
microbeams
functionally graded
author_facet Tianyu Zhao
Yu Ma
Jiannan Zhou
Yanming Fu
author_sort Tianyu Zhao
title Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene Nanoplatelets
title_short Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene Nanoplatelets
title_full Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene Nanoplatelets
title_fullStr Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene Nanoplatelets
title_full_unstemmed Wave Propagation in Rotating Functionally Graded Microbeams Reinforced by Graphene Nanoplatelets
title_sort wave propagation in rotating functionally graded microbeams reinforced by graphene nanoplatelets
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2021-08-01
description This paper presents a study on wave propagation in rotating functionally graded (FG) microbeams reinforced by graphene nanoplatelets (GPLs). The graphene nanoplatelets (GPLs) are considered to distribute in the diameter direction of the micro-beam in a gradient pattern, which leads to the functionally graded structure. By using the Halpin-Tsai micromechanics model and the rule of mixture, the effective material properties of the microbeam are determined. According to the Euler-Bernoulli beam theory and nonlocal elasticity theory, the rotating microbeams are modeled. A comprehensive parametric study is conducted to examine the effects of rotating speed, GPL distribution pattern, GPL length-to-thickness ratio, GPL length-to-width ratio, and nonlocal scale on the wavenumber, phase speed and group speed of the microbeam. The research findings can play an important role on the design of rotating graphene nanoplatelet (GPL) reinforced microbeams for better structural performance.
topic graphene nanoplatelets
wave propagation
rotation
microbeams
functionally graded
url https://www.mdpi.com/1420-3049/26/17/5150
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