Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating Beams

For the transverse vibration problem of a fractional derivative viscoelastic rotating beam, the differential equation of the system is obtained based on the Euler–Bernoulli beam theory and Hamilton principle. Then, introducing dimensionless quantities to differential equations and boundary condition...

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Main Authors: Tianle Lu, Zhongmin Wang, Dongdong Liu
Format: Article
Language:English
Published: Wiley 2019-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2019/5715694
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author Tianle Lu
Zhongmin Wang
Dongdong Liu
author_facet Tianle Lu
Zhongmin Wang
Dongdong Liu
author_sort Tianle Lu
collection DOAJ
description For the transverse vibration problem of a fractional derivative viscoelastic rotating beam, the differential equation of the system is obtained based on the Euler–Bernoulli beam theory and Hamilton principle. Then, introducing dimensionless quantities to differential equations and boundary conditions, the generalized complex eigenvalue equations of the system are obtained by the differential quadrature method. The effects of the slenderness ratio, the viscoelastic ratio, the hub radius-beam length ratio, and dimensionless hub speed and fractional order on the vibration characteristics of fractional derivative viscoelastic rotating beams are discussed by numerical examples. Numerical calculations show that when the dimensionless hub speed is constant, the real part of complex frequency increases with the increase of the fractional order, and the higher-order growth trend is more obvious. Through the study of displacement response at different points on the beam, it can be seen that the closer to the free end, the larger the response amplitude. And, the amplitude of response has been attenuated, which is also consistent with the vibration law of free vibration considering damping.
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institution Kabale University
issn 1070-9622
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publishDate 2019-01-01
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series Shock and Vibration
spelling doaj-art-0af09fd2bae44abd88a253d92b66f75d2025-02-03T06:11:26ZengWileyShock and Vibration1070-96221875-92032019-01-01201910.1155/2019/57156945715694Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating BeamsTianle Lu0Zhongmin Wang1Dongdong Liu2School of Civil Engineering and Architecture, Xi’an University of Technology, 710048 Xi’an, ChinaSchool of Civil Engineering and Architecture, Xi’an University of Technology, 710048 Xi’an, ChinaSchool of Civil Engineering and Architecture, Xi’an University of Technology, 710048 Xi’an, ChinaFor the transverse vibration problem of a fractional derivative viscoelastic rotating beam, the differential equation of the system is obtained based on the Euler–Bernoulli beam theory and Hamilton principle. Then, introducing dimensionless quantities to differential equations and boundary conditions, the generalized complex eigenvalue equations of the system are obtained by the differential quadrature method. The effects of the slenderness ratio, the viscoelastic ratio, the hub radius-beam length ratio, and dimensionless hub speed and fractional order on the vibration characteristics of fractional derivative viscoelastic rotating beams are discussed by numerical examples. Numerical calculations show that when the dimensionless hub speed is constant, the real part of complex frequency increases with the increase of the fractional order, and the higher-order growth trend is more obvious. Through the study of displacement response at different points on the beam, it can be seen that the closer to the free end, the larger the response amplitude. And, the amplitude of response has been attenuated, which is also consistent with the vibration law of free vibration considering damping.http://dx.doi.org/10.1155/2019/5715694
spellingShingle Tianle Lu
Zhongmin Wang
Dongdong Liu
Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating Beams
Shock and Vibration
title Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating Beams
title_full Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating Beams
title_fullStr Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating Beams
title_full_unstemmed Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating Beams
title_short Analysis of Complex Modal Characteristics of Fractional Derivative Viscoelastic Rotating Beams
title_sort analysis of complex modal characteristics of fractional derivative viscoelastic rotating beams
url http://dx.doi.org/10.1155/2019/5715694
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