Lateral seismic performance of multipanel precast hollowcore walls

The seismic resistance of full-scale superassemblage of precast hollow core wall units is investigated. The superassemblage consists of six prestressed concrete 1.2 m wide hollow core units. Two load-bearing of the units are tied to the foundation via unbonded vertical tendons while the other four u...

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Published in:Journal of Structural Engineering
Main Author: Hamid N.H.; Mander J.B.
Format: Article
Language:English
Published: 2010
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-77953573849&doi=10.1061%2f%28ASCE%29ST.1943-541X.0000183&partnerID=40&md5=f2b64fba117ea6854349b18c29552a1e
id 2-s2.0-77953573849
spelling 2-s2.0-77953573849
Hamid N.H.; Mander J.B.
Lateral seismic performance of multipanel precast hollowcore walls
2010
Journal of Structural Engineering
136
7
10.1061/(ASCE)ST.1943-541X.0000183
https://www.scopus.com/inward/record.uri?eid=2-s2.0-77953573849&doi=10.1061%2f%28ASCE%29ST.1943-541X.0000183&partnerID=40&md5=f2b64fba117ea6854349b18c29552a1e
The seismic resistance of full-scale superassemblage of precast hollow core wall units is investigated. The superassemblage consists of six prestressed concrete 1.2 m wide hollow core units. Two load-bearing of the units are tied to the foundation via unbonded vertical tendons while the other four units primarily act as "nonstructural" cladding. The longitudinal unbonded prestressing tendons consist of regular thread-bars with an in-series portion of those bars possessing a reduced diameter to act as "fuses." The multipanel wall system is tested under several different conditions: in-plane quasi-static reverse cyclic loading with different sizes of fuse bars and with and without rubber block spacers and sealant between units. No structural damage occurs up to the experimental ±4% drift limit and only minor nonstructural distress is observed at 3% drift. The overall good performance of the multipanel wall system well satisfies the requirements of an emerging seismic damage avoidance design philosophy. © 2010 ASCE.

7339445
English
Article

author Hamid N.H.; Mander J.B.
spellingShingle Hamid N.H.; Mander J.B.
Lateral seismic performance of multipanel precast hollowcore walls
author_facet Hamid N.H.; Mander J.B.
author_sort Hamid N.H.; Mander J.B.
title Lateral seismic performance of multipanel precast hollowcore walls
title_short Lateral seismic performance of multipanel precast hollowcore walls
title_full Lateral seismic performance of multipanel precast hollowcore walls
title_fullStr Lateral seismic performance of multipanel precast hollowcore walls
title_full_unstemmed Lateral seismic performance of multipanel precast hollowcore walls
title_sort Lateral seismic performance of multipanel precast hollowcore walls
publishDate 2010
container_title Journal of Structural Engineering
container_volume 136
container_issue 7
doi_str_mv 10.1061/(ASCE)ST.1943-541X.0000183
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-77953573849&doi=10.1061%2f%28ASCE%29ST.1943-541X.0000183&partnerID=40&md5=f2b64fba117ea6854349b18c29552a1e
description The seismic resistance of full-scale superassemblage of precast hollow core wall units is investigated. The superassemblage consists of six prestressed concrete 1.2 m wide hollow core units. Two load-bearing of the units are tied to the foundation via unbonded vertical tendons while the other four units primarily act as "nonstructural" cladding. The longitudinal unbonded prestressing tendons consist of regular thread-bars with an in-series portion of those bars possessing a reduced diameter to act as "fuses." The multipanel wall system is tested under several different conditions: in-plane quasi-static reverse cyclic loading with different sizes of fuse bars and with and without rubber block spacers and sealant between units. No structural damage occurs up to the experimental ±4% drift limit and only minor nonstructural distress is observed at 3% drift. The overall good performance of the multipanel wall system well satisfies the requirements of an emerging seismic damage avoidance design philosophy. © 2010 ASCE.
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