Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving Oscillator

To investigate the vibration analysis of elastically connected multiple beam system (ECMB) under the moving oscillator, finite sine-Fourier transform has been applied to the dynamic partial differential equations of ECMB with respect to space coordinates. Then, the numerical integration has been use...

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Main Authors: Binbin He, Yulin Feng
Format: Article
Language:English
Published: Hindawi Limited 2019-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2019/4950841
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spelling doaj-cd230970215740ee81856908258d87ba2020-11-24T21:53:22ZengHindawi LimitedAdvances in Civil Engineering1687-80861687-80942019-01-01201910.1155/2019/49508414950841Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving OscillatorBinbin He0Yulin Feng1State Key Laboratory of Frozen Soil Engineering, Northwest Institute of Eco-Environment and Resources, Chinese Academy of Sciences, Lanzhou 730000, ChinaSchool of Civil Engineering, Central South University, Changsha 410075, ChinaTo investigate the vibration analysis of elastically connected multiple beam system (ECMB) under the moving oscillator, finite sine-Fourier transform has been applied to the dynamic partial differential equations of ECMB with respect to space coordinates. Then, the numerical integration has been used to solve the equations. Finally, the expression for vibration analysis of ECMB under the moving oscillator has been derived based on finite sine-Fourier inverse transform. Using the method developed in this study and ANSYS numerical method, the vibration analysis of a four-layer beam system under moving oscillator with different speeds has been calculated. The results show that the calculated results from the method developed in this study are in good agreement with the ANSYS numerical calculation results, and the differences between the two calculation results are all less than 2%, which verified the correctness of the method developed in this study. The method developed in this study has been applied to the beam-rail system on a railway line in China. The effect of the train speed and interlayer stiffness on the vibration of beam-rail system has been investigated. The results show that the maximum dynamic deflection of the rail under the train load is always near the midspan, while the maximum dynamic deflections of the track plate, base plate, and bridge occur after the train travel through the midspan. The interlayer stiffness has a larger impact on the vibration of the rail and the track plate and little impact on the vibration of the base plate and the bridge.http://dx.doi.org/10.1155/2019/4950841
collection DOAJ
language English
format Article
sources DOAJ
author Binbin He
Yulin Feng
spellingShingle Binbin He
Yulin Feng
Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving Oscillator
Advances in Civil Engineering
author_facet Binbin He
Yulin Feng
author_sort Binbin He
title Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving Oscillator
title_short Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving Oscillator
title_full Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving Oscillator
title_fullStr Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving Oscillator
title_full_unstemmed Vibration Theoretical Analysis of Elastically Connected Multiple Beam System under the Moving Oscillator
title_sort vibration theoretical analysis of elastically connected multiple beam system under the moving oscillator
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8086
1687-8094
publishDate 2019-01-01
description To investigate the vibration analysis of elastically connected multiple beam system (ECMB) under the moving oscillator, finite sine-Fourier transform has been applied to the dynamic partial differential equations of ECMB with respect to space coordinates. Then, the numerical integration has been used to solve the equations. Finally, the expression for vibration analysis of ECMB under the moving oscillator has been derived based on finite sine-Fourier inverse transform. Using the method developed in this study and ANSYS numerical method, the vibration analysis of a four-layer beam system under moving oscillator with different speeds has been calculated. The results show that the calculated results from the method developed in this study are in good agreement with the ANSYS numerical calculation results, and the differences between the two calculation results are all less than 2%, which verified the correctness of the method developed in this study. The method developed in this study has been applied to the beam-rail system on a railway line in China. The effect of the train speed and interlayer stiffness on the vibration of beam-rail system has been investigated. The results show that the maximum dynamic deflection of the rail under the train load is always near the midspan, while the maximum dynamic deflections of the track plate, base plate, and bridge occur after the train travel through the midspan. The interlayer stiffness has a larger impact on the vibration of the rail and the track plate and little impact on the vibration of the base plate and the bridge.
url http://dx.doi.org/10.1155/2019/4950841
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AT yulinfeng vibrationtheoreticalanalysisofelasticallyconnectedmultiplebeamsystemunderthemovingoscillator
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