Cyclic behavior of an innovative braced ductile thin shear panel

Structures ◽  
2021 ◽  
Vol 32 ◽  
pp. 973-986
Author(s):  
Guohua Sun ◽  
Cheng Bao ◽  
Wenyuan Liu ◽  
Youzhen Fang
Keyword(s):  
2020 ◽  
Vol 221 ◽  
pp. 111050
Author(s):  
Hadis Mohammad Moradi ◽  
Behrokh Hosseini Hashemi ◽  
Mohammad Ali Jafari

2013 ◽  
Vol 40 (7) ◽  
pp. 633-643 ◽  
Author(s):  
S.M. Zahrai ◽  
A. Moslehi Tabar

An analytical investigation is performed on chevron braced frames using the shear panel system (SPS) and verified based on experimental results. This paper aims to determine key issues influencing the cyclic behavior and energy dissipation capacity of this kind of ductile braced frame. An extended analytical model is presented to evaluate the lateral stiffness of the SPSs at different levels of nonlinear deformation. The expressions developed in this model may be used to select the geometric properties of the SPS based on the desired ductility. Finally, the results obtained from testing on five full-scale braced specimens are used to verify the validity of the proposed model. The experimental specimens showed approximately 30% hysteretic damping ratio and their SPSs reached a plastic rotation of about 0.15 rad.


2008 ◽  
Vol 17 (3) ◽  
pp. 474-475
Author(s):  
Yukihiro HARADA ◽  
Kazumasa EBATO ◽  
Junpei YAGI
Keyword(s):  

2021 ◽  
Author(s):  
Sabahattin Aykaç ◽  
Eray Özbek ◽  
Ali Tugrul Tankut

Author(s):  
Mohammad Reza Azadi Kakavand ◽  
Ertugrul Taciroglu

AbstractSome of the current concrete damage plasticity models in the literature employ a single damage variable for both the tension and compression regimes, while a few more advanced models employ two damage variables. Models with a single variable have an inherent difficulty in accounting for the damage accrued due to tensile and compressive actions in appropriately different manners, and their mutual dependencies. In the current models that adopt two damage variables, the independence of these damage variables during cyclic loading results in the failure to capture the effects of tensile damage on the compressive behavior of concrete and vice-versa. This study presents a cyclic model established by extending an existing monotonic constitutive model. The model describes the cyclic behavior of concrete under multiaxial loading conditions and considers the influence of tensile/compressive damage on the compressive/tensile response. The proposed model, dubbed the enhanced concrete damage plasticity model (ECDPM), is an extension of an existing model that combines the theories of classical plasticity and continuum damage mechanics. Unlike most prior studies on models in the same category, the performance of the proposed ECDPM is evaluated using experimental data on concrete specimens at the material level obtained under cyclic multiaxial loading conditions including uniaxial tension and confined compression. The performance of the model is observed to be satisfactory. Furthermore, the superiority of ECDPM over three previously proposed constitutive models is demonstrated through comparisons with the results of a uniaxial tension-compression test and a virtual test.


2021 ◽  
Vol 178 ◽  
pp. 106494
Author(s):  
Zahra Ahmadi ◽  
Ali Akbar Aghakouchak ◽  
Seyyed Rasoul Mirghaderi

2021 ◽  
Vol 183 ◽  
pp. 106737
Author(s):  
Hao Wang ◽  
Youde Wang ◽  
Zongxing Zhang ◽  
Xiaogang Liu ◽  
Shanhua Xu

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