A hybrid self-centering seismic damper: Finite element modeling and parametric analysis

被引:10
作者
Cao, Sasa [1 ]
Shi, Fei [2 ]
Cao, Liang [3 ]
Ricles, James [3 ]
Ozbulut, Osman E. [2 ,4 ]
机构
[1] Guangzhou Univ, Sch Civil Engn, Guangzhou, Peoples R China
[2] Univ Virginia, Dept Civil & Environm Engn, Charlottesville, VA USA
[3] Lehigh Univ, Adv Technol Large Struct Syst ATLSS Engn Res Ctr, Dept Civil & Environm Engn, Bethlehem, PA USA
[4] Univ Virginia, Dept Civil & Environm Engn, Thornton Hall D217,351 McCormick Rd, Charlottesville, VA 22904 USA
基金
中国国家自然科学基金; 美国国家科学基金会;
关键词
Shape memory alloys; superelasticity; modeling; friction; seismic; damper; PERFORMANCE ASSESSMENT; EXPERIMENTAL VALIDATION; BRACING SYSTEM; BEHAVIOR; BUILDINGS; DESIGN;
D O I
10.1177/1045389X231215377
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study presents a finite element model for a hybrid self-centering damper considering the rate and temperature effects and explores the effects of different design parameters on the damper response. The damper, called as superelastic friction damper (SFD), consists of superelastic shape memory alloy (SMA) cables and a frictional energy dissipation mechanism. The experimental response of the SMA cables, frictional unit and overall damper at different loading frequencies and temperature are used to develop numerical model of the damper. Once a validated numerical model is obtained, parametric studies are carried out to evaluate force-displacement response of the damper when the design parameters are altered. The effects of damper design parameters on the equivalent stiffness, dissipated energy, equivalent viscous damping and self-centering capabilities of the damper are analyzed. Based on the findings, the recommendations for the design of the damper are presented.
引用
收藏
页码:440 / 457
页数:18
相关论文
共 52 条
[1]   Analytical and Experimental Lateral-Load Response of Self-Centering Posttensioned CLT Walls [J].
Akbas, Tugce ;
Sause, Richard ;
Ricles, James M. ;
Ganey, Ryan ;
Berman, Jeffrey ;
Loftus, Sarah ;
Dolan, J. Daniel ;
Pei, Shiling ;
van de Lindt, John W. ;
Blomgren, Hans-Erik .
JOURNAL OF STRUCTURAL ENGINEERING, 2017, 143 (06)
[2]   Utilizing shape memory alloys to enhance the performance and safety of civil infrastructure: a review [J].
Alam, M. S. ;
Youssef, M. A. ;
Nehdi, M. .
CANADIAN JOURNAL OF CIVIL ENGINEERING, 2007, 34 (09) :1075-1086
[3]   Development of a shape memory alloy-based friction damper and its experimental characterization considering rate and temperature effects [J].
Asfaw, Amedebrhan M. ;
Cao, Liang ;
Ozbulut, Osman E. ;
Ricles, James .
ENGINEERING STRUCTURES, 2022, 273
[4]   Characterization of shape memory alloy energy dissipators for earthquake-resilient structures [J].
Asfaw, Amedebrhan M. ;
Ozbulut, Osman E. .
STRUCTURAL CONTROL & HEALTH MONITORING, 2021, 28 (04)
[5]   Seismic performance assessment of highway bridges equipped with superelastic shape memory alloy-based laminated rubber isolation bearing [J].
Bhuiyan, A. Rahman ;
Alam, M. Shahria .
ENGINEERING STRUCTURES, 2013, 49 :396-407
[6]   Bond behavior of smooth and sand-coated shape memory alloy (SMA) rebar in concrete [J].
Billah, A. H. M. Muntasir ;
Alam, M. Shahria .
STRUCTURES, 2016, 5 :186-195
[7]  
Buchanan A., 2011, Base Isolation and Damage-Resistant Technologies for Improved Seismic Performance of Buildings
[8]   Experimental and numerical investigations on hysteretic response of a multi-level SMA/lead rubber bearing seismic isolation system [J].
Cao, Sasa ;
Ozbulut, Osman E. ;
Shi, Fei ;
Deng, Jiangdong .
SMART MATERIALS AND STRUCTURES, 2022, 31 (03)
[9]   An SMA cable-based negative stiffness seismic isolator: Development, experimental characterization, and numerical modeling [J].
Cao, Sasa ;
Ozbulut, Osman E. ;
Shi, Fei ;
Deng, Jiangdong .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2022, 33 (14) :1819-1833
[10]   Long-stroke shape memory alloy restrainers for seismic protection of bridges [J].
Cao, Sasa ;
Ozbulut, Osman E. .
SMART MATERIALS AND STRUCTURES, 2020, 29 (11)