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http://dx.doi.org/10.12989/sss.2018.21.4.479

Seismic behavior of properly designed CBFs equipped with NiTi SMA braces  

Qiu, Canxing (School of civil engineering, Shandong University)
Zhang, Yichen (School of civil engineering, Shandong University)
Qi, Jian (School of civil engineering, Shandong University)
Li, Han (School of civil engineering, Shandong University)
Publication Information
Smart Structures and Systems / v.21, no.4, 2018 , pp. 479-491 More about this Journal
Abstract
Shape memory alloys (SMA) exhibit superelasticity which refers to the capability of entirely recovering large deformation upon removal of applied forces and dissipating input energy during the cyclic loading reversals when the environment is above the austenite finish temperature. This property is increasingly favored by the earthquake engineering community, which is currently developing resilient structures with prompt recovery and affordable repair cost after earthquakes. Compared with the other SMAs, NiTi SMAs are widely deemed as the most promising candidate in earthquake engineering. This paper contributes to evaluate the seismic performance of properly designed concentrically braced frames (CBFs) equipped with NiTi SMA braces under earthquake ground motions corresponding to frequently-occurred, design-basis and maximum-considered earthquakes. An ad hoc seismic design approach that was previously developed for structures with idealized SMAs was introduced to size the building members, by explicitly considering the strain hardening characteristics of NiTi SMA particularly. The design procedure was conducted to compliant with a suite of ground motions associated with the hazard level of design-basis earthquake. A total of four six-story CBFs were designed by setting different ductility demands for SMA braces while designating with a same interstory drift target for the structural systems. The analytical results show that all the designed frames successfully met the prescribed seismic performance objectives, including targeted maximum interstory drift, uniform deformation demand over building height, eliminated residual deformation, controlled floor acceleration, and slight damage in the main frame. In addition, this study indicates that the strain hardening behavior does not necessarily impose undesirable impact on the global seismic performance of CBFs with SMA braces.
Keywords
seismic performance; NiTi, shape memory alloy; concentrically braced frame;
Citations & Related Records
Times Cited By KSCI : 8  (Citation Analysis)
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1 Casciati, S. and Marzi, A. (2011), "Fatigue tests on SMA bars in span control", Eng. Struct., 33(33), 1232-1239.   DOI
2 Chopra, A.K. (2001), Dynamics of structures theory and applications to earthquake engineering, Upper Saddle River NJ Prentice-Hall.
3 Cornell, A.C., Jalayer, F. and Hamburger, R.O. (2002), "Probabilistic basis for 2000 SAC federal emergency management agency steel moment frame guidelines", J. Struct. Eng.- ASCE, 128, 526-532.   DOI
4 DesRoches, R., McCormick, J. and Delemont, M. (2004), "Cyclic properties of superelastic shape memory alloy wires and bars", J. Struct. Eng. - ASCE, 130(1), 38-46.   DOI
5 DesRoches, R. and Smith, B. (2004), "Shape memory alloys in seismic resistant design and retrofit: a critical review of their potential and limitations", J. Earthq. Eng., 8(3), 415-429.   DOI
6 Dezfuli, F.H. and Alam, M.S. (2013), "Shape memory alloy wire-based smart natural rubber bearing", Smart Mater. Struct., 22(4), 045013.
7 Dolce, M., Cardone, D. and Marnetto, R. (2000), "Implementation and testing of passive control devices based on shape memory alloys", Earthq. Eng. Struct. D., 29(7), 945-968.   DOI
8 Park J.K. and Park S. (2016), "Intelligent bolt-jointed system integrating piezoelectric sensors with shape memory alloys", Smart Struct. Syst., 17(1), 135-147.   DOI
9 Priestley, M.J.N. and Kowalsky, M.J. (2000), "Direct displacement-based seismic design of concrete buildings", B.N.Z. Soc. Earthq. E., 33(4) 421-444.
10 Qian, H., Li, H. and Song, G. (2016), "Experimental investigations of building structure with a superelastic shape memory alloy friction damper subject to seismic loads", Smart Mater. Struct., 25(12), 125026.
11 Qiu, C. and Zhu, S. (2016), "High-mode effects on seismic performance of multi-story self-centering braced steel frames", J. Constr. Steel Res., 119, 133-143.   DOI
12 Qiu, C. and Zhu, S. (2017a), "Performance-based seismic design of self-centering steel frames with SMA-based braces", Eng. Struct., 130, 67-82.   DOI
13 Zhu, S. and Zhang, Y. (2008), "Seismic analysis of concentrically braced frame systems with self-centering friction damping braces", J. Struct. Eng. - ASCE, 134(1), 121-131.   DOI
14 Torra, V., Martorell, F., Lovey F.C. and Sade, M.L. (2017), "Civil Engineering Applications: Specific Properties of NiTi Thick Wires and Their Damping Capabilities, A Review", Shap. Mem. Superelasticity, 3:403-413.   DOI
15 Uang, C.M., Bruneau, M., Whittaker, A.S. and Tsai, K.C. (2001), Seismic Design of Steel Structures The Seismic Design Handbook",Springer ,US.
16 Dolce M, Cardone, D, Ponzo FC and Valente C (2010), "Shaking table tests on reinforced concrete frames without and with passive control systems", Earthq. Eng. Struct. D., 34(14), 1687-1717.   DOI
17 Fahnestock, L.A., Ricles, J.M. and Sause, R. (2007), "Experimental evaluation of a large-scale buckling-restrained braced frame", J. Struct. Eng.- ASCE, 133(9), 1205-1214.   DOI
18 Fang, C., Wang, W., He, C. and Chen, Y.Y. (2017), "Self-centring behaviour of steel and steel-concrete composite connections equipped with NiTi SMA bolts", Eng. Struct. 150, 390-408.   DOI
19 Zhang, Y. and Zhu, S. (2007), "A shape memory alloy-based reusable hysteretic damper for seismic hazard mitigation", Smart Mater. Struct., 16(5), 1603.
20 Zhang, Y., Hu, X. and Zhu, S. (2010), "Seismic performance of benchmark base-isolated bridges with superelastic Cu-Al-Be restraining damping device", Struct. Control. Health. Monit., 16(6), 668-685.   DOI
21 Araki, Y., Endo, T., Omori, T., Sutou, Y., Koetaka, Y., Kainuma, R. and Ishida, K. (2011), "Potential of superelastic Cu-Al-Mn alloy bars for seismic applications", Earthq. Eng. Struct. D., 40(1), 107-115.   DOI
22 Abou-Elfath, H. (2017), "Evaluating the ductility characteristics of self-centering buckling-restrained shape memory alloy braces", Smart Mater. Struct., 26(5), 055020.   DOI
23 Andrawes, B. and DesRoches, R. (2005), "Unseating prevention for multiple frame bridges using superelastic devices", Smart Mater. Struct., 14(3), 60-67.   DOI
24 Andrawes, B. and DesRoches, R. (2008). "Sensitivity of seismic applications to different shape memory alloy models". J. Eng. Mech., 134(2), 173-183.   DOI
25 Carreras, G., Casciati, F., Casciati, S., Isalgue, A., Marzi, A. and Torra, V. (2011), "Fatigue laboratory tests toward the design of SMA portico-braces", Smart Struct. Syst., 7(1), 41-57.   DOI
26 Casciati, F. and Faravelli, L. (2009), "A passive control device with SMA components from the prototype to the model", Struct. Control. Health. Monit, 16(7-8), 751-765.   DOI
27 Hadi, A. and Akbari, H. (2016), "Modeling and control of a flexible continuum module actuated by embedded shape memory alloys. ", Smart Mater. Struct., 18(4), 663-682.   DOI
28 Fang, C., Yam, M.C.H., Lam, A.C.C. and Xie, L.K. (2014), "Cyclic performance of extended end-plate connections equipped with shape memory alloy bolts", J. Constr. Steel. Res., 94, 122-136.   DOI
29 FEMA 1997 NEHRP Recommended provisions for seismic regulations for new buildings and other structures, Federal Emergency Management Agency Washington DC.
30 Gao, N., Jeon, J.S., Hodgson, D.E. and DesRoches, R. (2016), "An innovative seismic bracing system based on a superelastic shape memory alloy ring", Smart Mater. Struct., 25(5), 055030.
31 Hou, H.T., Li, H., Qiu, C.X. and Zhang, Y.C. (2017). "Effect of hysteretic properties of SMAs on seismic behavior of self-centering concentrically braced frames". Struct. Control Health. Monit., DOI: 10.1002/stc.2110.   DOI
32 Iwan, W.D. (1997), "Drift spectrum measure of demand for earthquake ground motions", J. Struct. Eng.-ASCE, 123(4) 397-404.   DOI
33 Qiu, C., Zhang, Y.C., Li, H., Qu, B., Hou, H.T., and Tian, L. (2018), "Seismic performance of concentrically braced frames with non-buckling braces: a comparative study". Eng. Struct., 154, 93-102.   DOI
34 Qiu, C. and Zhu, S. (2017b), "Shake table test and numerical study of self-centering steel frame with SMA braces", Earthq. Eng. Struct. D., 46, 117-137.   DOI
35 Qiu, C. and Zhu, S. (2014), "Characterization of cyclic properties of superelastic monocrystalline Cu-Al-Be SMA wires for seismic applications", Constr. Build. Mater., 72, 219-230.   DOI
36 Qiu, C., Li, H., Ji, K.F., Hou, H.T. and Tian, L. (2017), "Performance-based plastic design approach for multi-story self-centering concentrically braced frames using SMA braces", Eng. Struct., 153, 628-638.   DOI
37 Liu, J.L., Zhu, S., Xu, Y.L. and Zhang, Y.F. (2011), "Displacement-based design approach for highway bridges with SMA isolators", Smart Struct. Syst., 8(2), 173-190.   DOI
38 Casciati, S., Faravelli, L. and Vece, M. (2017), "Investigation on the fatigue performance of Ni-Ti thin wires", Struct. Control Health Monit., 24, e1855. doi: 10.1002/stc.1855.   DOI
39 Casciati, S. and Marzi, A. (2010), "Experimental studies on the fatigue life of shape memory alloy bars", Smart Struct. Syst., 6(1), 73-85.   DOI
40 Katariya P.V., Panda, S.K., Hirwani C.K., Mehar K. and Thakare O. (2017), "Enhancement of thermal buckling strength of laminated sandwich composite panel structure embedded with shape memory alloy fibre", Smart Struct. Syst., 20(5), 595-605.   DOI
41 McCormick, J., DesRoches, R., Fugazza, D. and Auricchio, F. (2007), "Seismic assessment of concentrically braced frames with shape memory alloy braces", J. Struct. Eng. -ASCE, 133(6), 862-870.   DOI
42 Song, G., Ma, N. and Li, H.N. (2006), "Applications of shape memory alloys in civil structures", Eng. Struct., 28(9), 1266-1274.   DOI
43 Sabelli, R., Mahin, S. and Chang, C. (2003), "Seismic demands on steel braced frame buildings with buckling-restrained braces", Eng. Struct., 25(5), 655-666.   DOI
44 Shrestha, B. and Hao, H. (2016), "Parametric study of seismic performance of super-elastic shape memory alloy-reinforced bridge piers", Struct. Infrastruct. Eng., 12(9), 1076-1089.   DOI
45 Sommerville, P.G., Smith, N.F., Punyamuthula, S. and Sun, J. (1997), Development of ground motion time histories for Phase 2 of the FEAM/SAC steel project SAC Background Document SAC/BD-91/04 SAC Joint Venture Sacramento Calif.
46 Torra, V., Carreras, G., Casciati, S. and Terriault, P. (2014), "On the NiTi wires in dampers for stayed cables", Smart Struct. Syst., 13(3), 353-374.   DOI
47 Ozbulut, O.E., Hurlebaus, S. and Desroches, R. (2011), "Seismic response control using shape memory alloys a review", J. Intel. Mat. Syst. Str., 22(14), 1531-1549.   DOI
48 Moradi, S., Alam, M.S. and Asgarian, B. (2014), "Incremental dynamic analysis of steel frames equipped with NiTi shape memory alloy braces", Struct. Des. Tall Spec. Build., 23(18), 1406-1425.   DOI
49 Neuenhofer, A. and Filippou, F.C. (1997), "Evaluation of nonlinear frame finite-element models", J. Struct. Eng.- ASCE, 123(7), 958-966.   DOI
50 OpenSees (2013), "Open system for earthquake engineering simulation (OpenSees) [Computer software]", Pacific Earthquake Engineering Research Center Berkeley CA.
51 Ozbulut, O.E. and Silwal B. (2016), "Performance assessment of buildings isolated with S-FBI system under near-fault earthquakes", Smart Struct. Syst., 17(5), 709-724.   DOI