Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer

This paper presents a new composite buffer for mitigating the lateral displacement of structures under seismic loading. The buffer consists of a cylindrical rubber wrapped with fiber reinforced polymer composite. The uniaxial compressive stiffness of the buffer can be controlled by varying either th...

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Main Authors: Shengshan Pan, Muzhou Zhao, Bassem Andrawes, Hang Zhao, Lian Li
Format: Article
Language:English
Published: SAGE Publishing 2020-09-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/1461348418783570
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spelling doaj-6e83d3fb508f4d42a93462735969c22a2020-11-25T03:14:05ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462020-09-013910.1177/1461348418783570Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymerShengshan PanMuzhou ZhaoBassem AndrawesHang ZhaoLian LiThis paper presents a new composite buffer for mitigating the lateral displacement of structures under seismic loading. The buffer consists of a cylindrical rubber wrapped with fiber reinforced polymer composite. The uniaxial compressive stiffness of the buffer can be controlled by varying either the number of fiber reinforced polymer layers or the wrapping scheme of fiber reinforced polymer. First, a test program is carried out to investigate the impact of various parameters on the compressive stiffness and strength of the new buffer including thickness of fiber reinforced polymer, wrapping scheme, and method of wrapping of fiber reinforced polymer. Next, a theoretical formulation is derived to describe the constitutive behavior of fiber reinforced polymer wrapped rubber under uniaxial compression using strain energy density function of the Yeoh N-order polynomial model. Finally, a finite element model is developed to analyze the new composite buffer and the numerical results are validated using the experimental results. The results of the study show that the Yeoh model is able to simulate the behavior of rubber under compression. The new composite buffer exhibits significantly higher stiffness and strength than that of pure rubber. Wrapping scheme plays an important role in defining the mechanical behavior of the buffer. The study also shows good agreement between the numerical simulation and the experimental results.https://doi.org/10.1177/1461348418783570
collection DOAJ
language English
format Article
sources DOAJ
author Shengshan Pan
Muzhou Zhao
Bassem Andrawes
Hang Zhao
Lian Li
spellingShingle Shengshan Pan
Muzhou Zhao
Bassem Andrawes
Hang Zhao
Lian Li
Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer
Journal of Low Frequency Noise, Vibration and Active Control
author_facet Shengshan Pan
Muzhou Zhao
Bassem Andrawes
Hang Zhao
Lian Li
author_sort Shengshan Pan
title Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer
title_short Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer
title_full Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer
title_fullStr Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer
title_full_unstemmed Compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer
title_sort compressive behavior of cylindrical rubber buffer confined with fiber reinforced polymer
publisher SAGE Publishing
series Journal of Low Frequency Noise, Vibration and Active Control
issn 1461-3484
2048-4046
publishDate 2020-09-01
description This paper presents a new composite buffer for mitigating the lateral displacement of structures under seismic loading. The buffer consists of a cylindrical rubber wrapped with fiber reinforced polymer composite. The uniaxial compressive stiffness of the buffer can be controlled by varying either the number of fiber reinforced polymer layers or the wrapping scheme of fiber reinforced polymer. First, a test program is carried out to investigate the impact of various parameters on the compressive stiffness and strength of the new buffer including thickness of fiber reinforced polymer, wrapping scheme, and method of wrapping of fiber reinforced polymer. Next, a theoretical formulation is derived to describe the constitutive behavior of fiber reinforced polymer wrapped rubber under uniaxial compression using strain energy density function of the Yeoh N-order polynomial model. Finally, a finite element model is developed to analyze the new composite buffer and the numerical results are validated using the experimental results. The results of the study show that the Yeoh model is able to simulate the behavior of rubber under compression. The new composite buffer exhibits significantly higher stiffness and strength than that of pure rubber. Wrapping scheme plays an important role in defining the mechanical behavior of the buffer. The study also shows good agreement between the numerical simulation and the experimental results.
url https://doi.org/10.1177/1461348418783570
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