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http://dx.doi.org/10.12989/eas.2022.23.3.297

Assessment of the performance of composite steel shear walls with T-shaped stiffeners  

Zarrintala, Hadi (Department of Civil Engineering, Maragheh Branch, Islamic Azad University)
Maleki, Ahmad (Department of Civil Engineering, Maragheh Branch, Islamic Azad University)
Yaghin, Mohammad Ali Lotfollahi (Faculty of Civil Engineering, University of Tabriz)
Publication Information
Earthquakes and Structures / v.23, no.3, 2022 , pp. 297-313 More about this Journal
Abstract
Composite steel plate shear wall (CSPSW) is a relatively novel structural system proposed to improve the performance of steel plate shear walls by adding one or two layers of concrete walls to the infill plate. In addition, the buckling of the infill steel plate has a significant negative effect on the shear strength and energy dissipation capacity of the overall systems. Accordingly, in this study, using the finite element (FE) method, the performance and behavior of composite steel shear walls using T-shaped stiffeners to prevent buckling of the infill steel plate and increase the capacity of CSPSW systems have been investigated. In this paper, after modeling composite steel plate shear walls with and without steel plates with finite element methods and calibration the models with experimental results, effects of parameters such as several stiffeners, vertical, horizontal, diagonal, and a combination of T-shaped stiffeners located in the composite wall have been investigated on the ultimate capacity, web-plate buckling, von-Mises stress, and failure modes. The results showed that the arrangement of stiffeners has no significant effect on the capacity and performance of the CSPSW so that the use of vertical or horizontal stiffeners did not have a significant effect on the capacity and performance of the CSPSW. On the other hand, the use of diagonal hardeners has potentially affected the performance of CSPSWs, increasing the capacity of steel shear walls by up to 25%.
Keywords
composite steel plate shear wall (CSPSW); FE method; performance; T-shaped stiffener; ultimate capacity;
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