Experimental assessment of t-shaped reinforced concrete squat walls
Reinforced concrete (RC) T-shaped walls have been studied by many researchers over the past decades due to their popularity. Among them, however, few investigations are conducted regarding T-shaped squat walls, especially for their seismic behaviors under nonprincipal bending action. To build the da...
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sg-ntu-dr.10356-832122020-06-01T10:13:32Z Experimental assessment of t-shaped reinforced concrete squat walls Ma, Jiaxing Zhang, Zhongwen Li, Bing School of Civil and Environmental Engineering School of Materials Science & Engineering Lateral Loading Direction Effective Stiffness Reinforced concrete (RC) T-shaped walls have been studied by many researchers over the past decades due to their popularity. Among them, however, few investigations are conducted regarding T-shaped squat walls, especially for their seismic behaviors under nonprincipal bending action. To build the database and improve the understanding of structural walls, reversed cyclic tests of four RC T-shaped squat walls were conducted under displacement control. The variables were axial loads and lateral loading directions. Seismic responses of specimens were presented and assessed in detail from various aspects. Nonlinear section analyses and finite element modeling were also performed to facilitate investigations. The results indicated a significant shear lag effect exited in some T-shaped squat walls, which distinctly affected the strength and stiffness of test specimens. It was also found the impact of the shear lag effect increased with additional axial loads, and decreased as the test progressed. Published version 2018-07-12T07:01:14Z 2019-12-06T15:14:07Z 2018-07-12T07:01:14Z 2019-12-06T15:14:07Z 2018 Journal Article Ma, J., Zhang, Z., & Li, B. (2018). Experimental Assessment of T-Shaped Reinforced Concrete Squat Walls. ACI Structural Journal, 115(3), 621-634. 0889-3241 https://hdl.handle.net/10356/83212 http://hdl.handle.net/10220/45078 10.14359/51701294 en ACI Structural Journal © 2018 American Concrete Institute. This paper was published in ACI Structural Journal and is made available as an electronic reprint (preprint) with permission of American Concrete Institute. The published version is available at: [http://dx.doi.org/10.14359/51701294]. One print or electronic copy may be made for personal use only. Systematic or multiple reproduction, distribution to multiple locations via electronic or other means, duplication of any material in this paper for a fee or for commercial purposes, or modification of the content of the paper is prohibited and is subject to penalties under law. 14 p. application/pdf |
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Lateral Loading Direction Effective Stiffness Ma, Jiaxing Zhang, Zhongwen Li, Bing Experimental assessment of t-shaped reinforced concrete squat walls |
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Reinforced concrete (RC) T-shaped walls have been studied by many researchers over the past decades due to their popularity. Among them, however, few investigations are conducted regarding T-shaped squat walls, especially for their seismic behaviors under nonprincipal bending action. To build the database and improve the understanding of structural walls, reversed cyclic tests of four RC T-shaped squat walls were conducted under displacement control. The variables were axial loads and lateral loading directions. Seismic responses of specimens were presented and assessed in detail from various aspects. Nonlinear section analyses and finite element modeling were also performed to facilitate investigations. The results indicated a significant shear lag effect exited in some T-shaped squat walls, which distinctly affected the strength and stiffness of test specimens. It was also found the impact of the shear lag effect increased with additional axial loads, and decreased as the test progressed. |
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School of Civil and Environmental Engineering |
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School of Civil and Environmental Engineering Ma, Jiaxing Zhang, Zhongwen Li, Bing |
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Article |
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Ma, Jiaxing Zhang, Zhongwen Li, Bing |
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Ma, Jiaxing |
title |
Experimental assessment of t-shaped reinforced concrete squat walls |
title_short |
Experimental assessment of t-shaped reinforced concrete squat walls |
title_full |
Experimental assessment of t-shaped reinforced concrete squat walls |
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Experimental assessment of t-shaped reinforced concrete squat walls |
title_full_unstemmed |
Experimental assessment of t-shaped reinforced concrete squat walls |
title_sort |
experimental assessment of t-shaped reinforced concrete squat walls |
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2018 |
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https://hdl.handle.net/10356/83212 http://hdl.handle.net/10220/45078 |
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