1 |
ASCE/SEI 7-16 (2016), American Society of Civil Engineers; Minimum Design Loads for Buildings and Other Structures, Reston, FL, USA.
|
2 |
ASCE/SEI 41-13 (2013), American Society of Civil Engineers; Seismic Evaluation and Retrofit of Existing Buildings, Reston, FL, USA.
|
3 |
Bedoya-Ruiz, D.A., Bermudez, C.A., A lvarez, D.A., Ortiz, G.A. and Escobar, J.V. (2012), "Cyclic behavior of prestressed precast concrete walls", Proceedings of 15th WCEE, Lisbon, Portugal.
|
4 |
Celik, O.C. and Ellingwood, B.R. (2009), "Seismic risk assessment of gravity load designed reinforced concrete frames subjected to Mid-America ground motions", J. Struct. Eng., 135(4), 414-424.
DOI
|
5 |
Chou, C.C., Tsai, W.J. and Chung, P.T. (2016), "Development and validation tests of a dual-core self-centering sandwiched buckling-restrained brace (SC-SBRB) for seismic resistance", J. Struct. Eng., 121, 30-41.
DOI
|
6 |
Christopoulos, C., Tremblay, R., Kim, H.J. and Lacerte, M. (2008), "Self-centering energy dissipative bracing system for the seismic resistance of structures development and validation", J. Struct. Eng., 134(1), 96-107.
DOI
|
7 |
Cornell, C.A., Jalayer, F., Hamburger, R.O. and Foutch, D.A. (2002), "Probabilistic basis for the 2000 SAC Federal Emergency Management Agency steel moment frame guidelines", J. Struct. Eng., 128(4), 526-533.
DOI
|
8 |
Dolce, M. and Cardone, D. (2006), "Theoretical and experimental studies for the application of shape memory alloys in civil engineering", J. Eng. Mater. Technol., 128(3), 302-311.
DOI
|
9 |
Dyanati, M., Huang, Q. and Roke, D.A. (2014), "Structural and nonstructural performance evaluation of self-centering, concentrically braced frames under seismic loading", In: Structures Congress 2014, pp. 2393-2404.
|
10 |
Eatherton, M.R., Ma, X., Krawinkler, H., Mar, D., Billington, S., Hajjar, J.F. and Deierlein, G.G. (2014), "Design concepts for controlled rocking of self-centering steel-braced frames", J. Struct. Eng., 140(11), 04014082.
DOI
|
11 |
FEMA P695 (2009), Quantification of Building Seismic Performance Factors; Federal Emergency Management Agency (FEMA), FEMA, USA.
|
12 |
Wen, Y.K. and Kang, Y.J. (2001), "Minimum building life-cycle cost design criteria I: Methodology", J. Struct. Eng. (ASCE), 127(3), 330-337.
DOI
|
13 |
Sorace, S. and Terenzi, G. (2012b), "The damped cable system for seismic protection of frame structures. Part II: Design and application", Earthq. Eng. Struct. Dyn., 41(5), 929-947.
DOI
|
14 |
Tsai, C., Chen, K. and Chen, C. (1998), "Seismic resistibility of high-rise buildings with combined velocity-dependent and velocity-independent devices", ASME-PUBLICATIONS-PVP 366, 103-110.
|
15 |
Turner & Townsend (2016), International Construction Cost Survey 2016-2017.
|
16 |
Xu, Z.D., Shen, Y.P. and Zhao, H.T. (2003), "A synthetic optimization analysis method on structures with viscoelastic dampers", Soil Dyn. Earthq. Eng., 23(8), 683-689.
DOI
|
17 |
Xu, Z.D., Zhao, H.T. and Li, A.Q. (2004), "Optimal analysis and experimental study on structures with viscoelastic dampers. Journal of Sound and Vibration", 273(3), 607-618.
DOI
|
18 |
Xu, Z.D., Liao, Y.X., Ge, T. and Xu, C. (2016), "Experimental and theoretical study of viscoelastic dampers with different matrix rubbers", J. Eng. Mech., 142(8), 04016051.
DOI
|
19 |
Kim, J., Choi, H. and Min, K.W. (2003), "Performance-based design of added viscous dampers using capacity spectrum method", J. Earthq. Eng., 7(1), 1-24.
DOI
|
20 |
Ingalkar, R.S. (2014), "Rehabilitation of Buildings and Bridges by Using Shape Memory Alloys (SMA)", Int. J. Civil Eng. Res., 5(2), 163-168.
|
21 |
Kim, J., Kim, M. and Nour Eldin, M. (2017), "Optimal distribution of steel plate slit dampers for seismic retrofit of structures", Steel Compos. Struct., Int. J., 25(4), 473-484
|
22 |
Lee, J. and Kim, J. (2015), "Seismic performance evaluation of moment frames with slit-friction hybrid dampers", Earthq. Struct., Int. J., 9(6), 1291-1311.
DOI
|
23 |
Lee, J., Kang, H. and Kim, J. (2017), "Seismic performance of steel plate slit-friction hybrid dampers", J. Constr. Steel Res., 136, 128-139.
DOI
|
24 |
Marshall, J.D. and Charney, F.A. (2012), "Seismic response of steel frame structures with hybrid passive control systems", Earthq. Eng. Struct. Dyn., 41(4), 715-733.
DOI
|
25 |
Miller, D.J., Fahnestock, L.A. and Eatherton, M.R. (2012), "Development and experimental validation of a nickel-titanium shape memory alloy self-centering buckling-restrained brace", Eng. Struct., 40, 288-298.
DOI
|
26 |
Naeem, A. and Kim, J. (2018), "Seismic performance evaluation of a spring viscous damper cable system", Eng. Struct., 176, 455-467.
DOI
|
27 |
PEER (2017), PEER NGA Database, Pacific Earthquake Engineering Research Center, University of California, Berkeley, CA, USA. http://peer.berkeley.edu/nga
|
28 |
Naeem, A., Nour Eldin, M., Kim, J. and Kim, J. (2017), "Seismic performance evaluation of a structure retrofitted using steel slit dampers with shape memory alloy bars", Int. J. Steel Struct., 17(4), 1627-1638.
DOI
|
29 |
Nour Eldin, M., Naeem, A. and Kim, J. (2018a), "Life-cycle cost evaluation of steel structures retrofitted with steel slit damper and shape memory alloy-based hybrid damper", Adv. Struct. Eng., 1369433218773487.
|
30 |
Nour Eldin, M., Kim, J.G. and Kim, J. (2018b), "Optimum distribution of steel slit-friction hybrid dampers based on life cycle cost", Steel Compos. Struct., Int. J., 27(5), 633-646.
|
31 |
Pekcan, G., Mander, J.B. and Chen, S.S. (2000), "Balancing lateral loads using tendon-based supplemental damping system", J. Struct. Eng., 126(8), 896-905.
DOI
|
32 |
Rahman, M.A. and Sritharan, S. (2007), "Performance-based seismic evaluation of two five-story precast concrete hybrid frame buildings", J. Struct. Eng., 133(11), 1489-1500.
DOI
|
33 |
Roke, D. and Jeffers, B. (2012), "Parametric study of selfcentering concentrically-braced frame systems with frictionbased energy dissipation", Proceeding of Behaviour of Steel Structures in Seismic Areas (STESSA), pp. 691-696.
|
34 |
Sorace, S. and Terenzi, G. (2001), "Non-linear dynamic modelling and design procedure of FV spring-dampers for base isolation", Eng. Struct., 23(12), 1556-1567.
DOI
|
35 |
Sorace, S. and Terenzi, G. (2012a), "The damped cable system for seismic protection of frame structures. Part I: General concepts, testing, and modeling", Earthq. Eng. Struct. Dyn., 41(5), 915-928.
DOI
|