Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal Connection

Abstract This paper reports the results of a seismic performance study of a precast shear wall with a new horizontal connection. The new connection is the rabbet-unbonded horizontal connection, which is composed of rabbets and unbonded rebar segments. The rabbets are used to improve the shear capaci...

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Main Authors: Chong-fang Sun, Shu-ting Liang, Xiao-jun Zhu, Hu Li, Jian-min Guo, Gang Li, Ya-min Song, Dong-yue Wu
Format: Article
Language:English
Published: SpringerOpen 2020-01-01
Series:International Journal of Concrete Structures and Materials
Subjects:
Online Access:https://doi.org/10.1186/s40069-019-0379-3
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spelling doaj-dcda65e469b84451bc3fc62db6e27e6e2021-01-17T12:24:58ZengSpringerOpenInternational Journal of Concrete Structures and Materials1976-04852234-13152020-01-0114111610.1186/s40069-019-0379-3Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal ConnectionChong-fang Sun0Shu-ting Liang1Xiao-jun Zhu2Hu Li3Jian-min Guo4Gang Li5Ya-min Song6Dong-yue Wu7School of Civil Engineering, Shandong Jianzhu UniversitySchool of Civil Engineering, Southeast UniversityArchitectural Design and Research Institute Ltd, Southeast UniversityJinan Rail Transit Group Co. LtdJinan Rail Transit Group Co. LtdJinan Rail Transit Group Co. LtdSchool of Civil Engineering, Southeast UniversitySchool of Civil Engineering and Architecture, Jiangsu University of Science and TechnologyAbstract This paper reports the results of a seismic performance study of a precast shear wall with a new horizontal connection. The new connection is the rabbet-unbonded horizontal connection, which is composed of rabbets and unbonded rebar segments. The rabbets are used to improve the shear capacity and prevent slippage of the connection, and the unbonded rebar segments are used to improve the ductility and energy dissipation. Three specimens were tested with different parameters under cyclic quasi-static loading. The test results showed that the specimen with a larger unbonded level had a richer hysteresis curve, larger ductility, larger energy dissipation, and slightly smaller bearing capacity. Moreover, in relation to the stiffness degradation, in the initial stage, the specimen with a larger unbonded level had a smaller stiffness, whereas in the last stage, the stiffnesses were similar regardless of the unbonded level. A parameter analysis using a finite element model proved that the ductility and energy dissipation of a shear wall with the rabbet-unbonded horizontal connection increased with the unbonded length and level. In addition, when the axial compression ratio increased, the bearing capacity increased, but the load–displacement curves decreased more rapidly. It was concluded that the unbonded length and unbonded level could effectively improve the ductility and energy dissipation of a shear wall. However, they should not be too large under high pressure, and the design suggestions for the new connection need further research considering other factors.https://doi.org/10.1186/s40069-019-0379-3precast shear wallrabbet-unbonded horizontal connectionunbonded lengthunbonded levelductilityenergy consumption
collection DOAJ
language English
format Article
sources DOAJ
author Chong-fang Sun
Shu-ting Liang
Xiao-jun Zhu
Hu Li
Jian-min Guo
Gang Li
Ya-min Song
Dong-yue Wu
spellingShingle Chong-fang Sun
Shu-ting Liang
Xiao-jun Zhu
Hu Li
Jian-min Guo
Gang Li
Ya-min Song
Dong-yue Wu
Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal Connection
International Journal of Concrete Structures and Materials
precast shear wall
rabbet-unbonded horizontal connection
unbonded length
unbonded level
ductility
energy consumption
author_facet Chong-fang Sun
Shu-ting Liang
Xiao-jun Zhu
Hu Li
Jian-min Guo
Gang Li
Ya-min Song
Dong-yue Wu
author_sort Chong-fang Sun
title Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal Connection
title_short Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal Connection
title_full Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal Connection
title_fullStr Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal Connection
title_full_unstemmed Experimental Study and Numerical Simulation of Precast Shear Wall with Rabbet-Unbonded Horizontal Connection
title_sort experimental study and numerical simulation of precast shear wall with rabbet-unbonded horizontal connection
publisher SpringerOpen
series International Journal of Concrete Structures and Materials
issn 1976-0485
2234-1315
publishDate 2020-01-01
description Abstract This paper reports the results of a seismic performance study of a precast shear wall with a new horizontal connection. The new connection is the rabbet-unbonded horizontal connection, which is composed of rabbets and unbonded rebar segments. The rabbets are used to improve the shear capacity and prevent slippage of the connection, and the unbonded rebar segments are used to improve the ductility and energy dissipation. Three specimens were tested with different parameters under cyclic quasi-static loading. The test results showed that the specimen with a larger unbonded level had a richer hysteresis curve, larger ductility, larger energy dissipation, and slightly smaller bearing capacity. Moreover, in relation to the stiffness degradation, in the initial stage, the specimen with a larger unbonded level had a smaller stiffness, whereas in the last stage, the stiffnesses were similar regardless of the unbonded level. A parameter analysis using a finite element model proved that the ductility and energy dissipation of a shear wall with the rabbet-unbonded horizontal connection increased with the unbonded length and level. In addition, when the axial compression ratio increased, the bearing capacity increased, but the load–displacement curves decreased more rapidly. It was concluded that the unbonded length and unbonded level could effectively improve the ductility and energy dissipation of a shear wall. However, they should not be too large under high pressure, and the design suggestions for the new connection need further research considering other factors.
topic precast shear wall
rabbet-unbonded horizontal connection
unbonded length
unbonded level
ductility
energy consumption
url https://doi.org/10.1186/s40069-019-0379-3
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