Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions

This paper mainly treats the seismic behavior of lead-rubber bearing (LRB) isolation systems with superealstic shape memory alloy (SMA) bending bars functioning as damper and self-centering devices. The conventional LRB isolators that are usually installed at the column bases supply extra flexibilit...

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Main Authors: Junwon Seo, Jong Wan Hu
Format: Article
Language:English
Published: MDPI AG 2016-01-01
Series:Sustainability
Subjects:
Online Access:http://www.mdpi.com/2071-1050/8/2/109
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spelling doaj-f3f6289736b44bb0894bd099351170772020-11-24T21:46:33ZengMDPI AGSustainability2071-10502016-01-018210910.3390/su8020109su8020109Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground MotionsJunwon Seo0Jong Wan Hu1Department of Civil and Environmental Engineering, South Dakota State University, Brookings, SD 57007, USADepartment of Civil and Environmental Engineering, Incheon National University, 12-1 Songdo-dong, Yeonsu-gu, Incheon 22012, KoreaThis paper mainly treats the seismic behavior of lead-rubber bearing (LRB) isolation systems with superealstic shape memory alloy (SMA) bending bars functioning as damper and self-centering devices. The conventional LRB isolators that are usually installed at the column bases supply extra flexibility to the centrically braced frame (CBF) building with a view to elongate its vibration period, and thus make a contribution to mitigating seismic acceleration transferred from ground to structure. However, these base isolation systems are somehow susceptible to shear failure due to the lack of lateral resistance. In the construction site, they have been used to be integrated with displacement control dampers additionally withstanding lateral seismic forces. For this motivation, LRB isolation systems equipped with superelastic SMA bending bars, which possess not only excellent energy dissipation but also outstanding recentering capability, are proposed in this study. These reinforced and recentering LRB base isolators are modeled as nonlinear component springs, and then assigned into the bases of 2D frame models used for numerical simulation. Their seismic performance and capacity in the base-isolated frame building can be evaluated through nonlinear dynamic analyses conducted with historic ground motion data. After comparative study with analyses results, it is clearly shown that 2D frame models with proposed LRB isolators generally have smaller maximum displacements than those with conventional LRB isolators. Furthermore, the LRB isolation systems with superelastic SMA bending bars effectively reduce residual displacement as compared to those with steel bending bars because they provide more flexibility and recentering force to the entire building structure.http://www.mdpi.com/2071-1050/8/2/109recentering capabilityenergy dissipationShape Memory Alloy (SMA)Lead-rubber Bearing (LRB)base-isolated frame
collection DOAJ
language English
format Article
sources DOAJ
author Junwon Seo
Jong Wan Hu
spellingShingle Junwon Seo
Jong Wan Hu
Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions
Sustainability
recentering capability
energy dissipation
Shape Memory Alloy (SMA)
Lead-rubber Bearing (LRB)
base-isolated frame
author_facet Junwon Seo
Jong Wan Hu
author_sort Junwon Seo
title Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions
title_short Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions
title_full Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions
title_fullStr Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions
title_full_unstemmed Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions
title_sort seismic response and performance evaluation of self-centering lrb isolators installed on the cbf building under nf ground motions
publisher MDPI AG
series Sustainability
issn 2071-1050
publishDate 2016-01-01
description This paper mainly treats the seismic behavior of lead-rubber bearing (LRB) isolation systems with superealstic shape memory alloy (SMA) bending bars functioning as damper and self-centering devices. The conventional LRB isolators that are usually installed at the column bases supply extra flexibility to the centrically braced frame (CBF) building with a view to elongate its vibration period, and thus make a contribution to mitigating seismic acceleration transferred from ground to structure. However, these base isolation systems are somehow susceptible to shear failure due to the lack of lateral resistance. In the construction site, they have been used to be integrated with displacement control dampers additionally withstanding lateral seismic forces. For this motivation, LRB isolation systems equipped with superelastic SMA bending bars, which possess not only excellent energy dissipation but also outstanding recentering capability, are proposed in this study. These reinforced and recentering LRB base isolators are modeled as nonlinear component springs, and then assigned into the bases of 2D frame models used for numerical simulation. Their seismic performance and capacity in the base-isolated frame building can be evaluated through nonlinear dynamic analyses conducted with historic ground motion data. After comparative study with analyses results, it is clearly shown that 2D frame models with proposed LRB isolators generally have smaller maximum displacements than those with conventional LRB isolators. Furthermore, the LRB isolation systems with superelastic SMA bending bars effectively reduce residual displacement as compared to those with steel bending bars because they provide more flexibility and recentering force to the entire building structure.
topic recentering capability
energy dissipation
Shape Memory Alloy (SMA)
Lead-rubber Bearing (LRB)
base-isolated frame
url http://www.mdpi.com/2071-1050/8/2/109
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AT jongwanhu seismicresponseandperformanceevaluationofselfcenteringlrbisolatorsinstalledonthecbfbuildingundernfgroundmotions
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