Cyclic behavior of low rise concrete shear walls containing recycled coarse and fine aggregates

Journal Article (2017)
Author(s)

Qiyun Qiao (Beijing University of Technology)

Wanlin Cao (Beijing University of Technology)

Zhiwei Qian (TU Delft - Civil Engineering & Geosciences)

Xiangyu Li (Beijing University of Technology)

Wenwen Zhang (Beijing University of Technology)

Wenchao Liu (Beijing University of Technology)

Research Group
Railway Engineering
DOI related publication
https://doi.org/10.3390/ma10121400 Final published version
More Info
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Publication Year
2017
Language
English
Research Group
Railway Engineering
Issue number
12
Volume number
10
Article number
1400
Pages (from-to)
1-22
Downloads counter
265
Collections
Institutional Repository
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Abstract

In this study, the cyclic behaviors of low rise concrete shear walls using recycled coarse or fine aggregates were investigated. Eight low rise Recycled Aggregates Concrete (RAC) shear wall specimens were designed and tested under a cyclic loading. The following parameters were varied: replacement percentages of recycled coarse or fine aggregates, reinforcement ratio, axial force ratio and X-shaped rebars brace. The failure characteristics, hysteretic behavior, strength and deformation capacity, strain characteristics and stiffness were studied. Test results showed that the using of the Recycled Coarse Aggregates (RCA) and its replacement ratio had almost no influence on the mechanical behavior of the shear wall; however, the using of Recycled Fine Aggregates (RFA) had a certain influence on the ductility of the shear wall. When the reinforcement ratio increased, the strength and ductility also increased. By increasing the axial force ratio, the strength increased but the ductility decreased significantly. The encased brace had a significant effect on enhancing the RAC shear walls. The experimental maximum strengths were evaluated with existing design codes, it was indicated that the strength evaluation of the low rise RAC shear walls can follow the existing design codes of the conventional concrete shear walls.