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http://dx.doi.org/10.12989/scs.2019.31.6.617

Dynamic increase factor for progressive collapse of semi-rigid steel frames with extended endplate connection  

Huang, Ying (School of Civil Engineering, Xi'an University of Architecture and Technology)
Wu, Yan (School of Mechanical and Civil Engineering, Northwestern Polytechnical University)
Chen, Changhong (School of Mechanical and Civil Engineering, Northwestern Polytechnical University)
Huang, Zhaohui (Department of Civil and Environmental Engineering, Brunel University)
Yao, Yao (School of Mechanical and Civil Engineering, Northwestern Polytechnical University)
Publication Information
Steel and Composite Structures / v.31, no.6, 2019 , pp. 617-628 More about this Journal
Abstract
As an extremely destructive accident, progressive collapse is defined as the spread of an initial local failure from element to element, resulting eventually in the collapse of an entire structure or disproportionately large of it. To prevent the occurrence of it and evaluate the ability of structure resisting progressive collapse, the nonlinear static procedure is usually adopted in the whole structure design process, which considered dynamic effect by utilizing Dynamic Increase Factor (DIF). In current researches, the determining of DIF is performed in full-rigid frame, however, the performance of beam-column connection in the majority of existing frame structures is not full-rigid. In this study, based on the component method proposed by EC3 guideline, the expression of extended endplate connection performance is further derived, and the connection performance is taken into consideration when evaluated the performance of structure resisting progressive collapse by applying the revised plastic P-M hinge. The DIF for structures with extended endplate beam-column connection have been determined and compared with the DIF permitted in current GSA guideline, the necessity of considering connection stiffness in determining the DIF have been proved.
Keywords
Dynamic Increase Factor (DIF); extended endplate connection; the component method; the revised P-M hinge;
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1 Bredean, L.A. and Botez, M.D. (2018), "The influence of beams design and the slabs effect on the progressive collapse resisting mechanisms development for RC framed structures", Eng. Fail. Anal., 91 527-542.   DOI
2 Chen, C.H., Zhu, Y.F., Yao, Y. and Huang, Y. (2016a), "Progressive collapse analysis of steel frame structure based on the energy principle", Steel Compos. Struct., Int. J., 21(3), 553-571. http://dx.doi.org/10.12989/scs.2018.28.2.233   DOI
3 Chen, C.H., Zhu, Y.F., Yao, Y., Huang, Y. and Long, X. (2016b), "An evaluation method to predict progressive collapse resistance of steel frame structures", J. Constr. Steel. Res., 122, 238-250.   DOI
4 Da Silva, L.S., de Lima, L.R., Da SVellasco, P. and de Andrade, S.A. (2004), "Behaviour of flush end-plate beam-to-column joints under bending and axial force", Steel Compos. Struct., 4(2), 77-94.   DOI
5 Del Savio, A.A., Nethercot, D.A., Vellasco, P.D.S., Andrade, S. and Martha, L.F. (2009), "Generalised component-based model for beam-to-column connections including axial versus moment interaction", J. Constr. Steel. Res., 65(8-9), 1876-1895.   DOI
6 Department of Defense (DoD) (2013), DESIGN OF BUILDINGS TO RESIST PROGRESSIVE COLLAPSE, Unified Facilities Criteria.
7 EN, E.C.F.S. (2005), Design of steel structures, part 1-8: Design of joints, Eurocode 3.
8 Eren, N., Brunesi, E. and Nascimbene, R. (2019), "Influence of masonry infills on the progressive collapse resistance of reinforced concrete framed buildings", Eng. Struct., 178, 375-394.   DOI
9 Federal Emergency Management Agency (2000), FEMA356, Prestandard and Commentary for the Seismic Rehabilitation of Buildings, Washington, D.C., USA.
10 Frye, M.J. and Morris, G.A. (1975), "Analysis of flexibly connected steel frames", Can. J. Civil Eng., 2(3), 280-291.   DOI
11 Fu, F. (2009), "Progressive collapse analysis of high-rise building with 3-D finite element modeling method", J. Constr. Steel Res., 65(6), 1269-1278.   DOI
12 Gao, S. (2019), "Nonlinear finite element failure analysis of bolted steel-concrete composite frame under column-loss", J. Constr. Steel. Res., 155, 62-76.   DOI
13 Gao, S., Guo, L., Fu, F. and Zhang, S. (2017), "Capacity of semirigid composite joints in accommodating column loss", J. Constr. Steel Res., 139, 288-301.   DOI
14 GSA, U.S. (2003), "Progressive collapse analysis and design guidelines for new federal office buildings and major modernization projects", Washington, D.C., USA.
15 GSA, U.S. (2013), "Progressive collapse analysis and design guidelines for new federal office buildings and major modernization projects", Washington, D.C., USA.
16 Ferraioli, M., Lavino, A. and Mandara, A. (2017), "06.03: Dynamic increase factor for nonlinear static alternate path analysis of steel moment-resisting frames against progressive collapse", ce/papers., 1(2-3), 1437-1446.   DOI
17 Kim, T. and Kim, J. (2009), "Collapse analysis of steel moment frames with various seismic connections", J. Constr. Steel. Res., 65(6), 1316-1322.   DOI
18 Lima, L.R.O.D., Silva, L.S.D., Da, S., Vellasco, P.C.G. and Andrade, S.A.L.D. (2002), "Experimental analysis of extended end-plate beam-to-column joints under bending and axial force", Eurosteel Coimbra, 1121-1130.
19 Lin, S., Yang, B., Kang, S. and Xu, S. (2019), "A new method for progressive collapse analysis of steel frames", J. Constr. Steel. Res., 153, 71-84.   DOI
20 Liu, M. (2013), "A new dynamic increase factor for nonlinear static alternate path analysis of building frames against progressive collapse", Eng. Struct., 48, 666-673.   DOI
21 Mashhadi, J. and Saffari, H. (2017), "Effects of Postelastic Stiffness Ratio on Dynamic Increase Factor in Progressive Collapse", J. Perform. Constr. Fac., 31(6), 4017107.   DOI
22 Mashhadiali, N., Kheyroddin, A. and Zahiri-Hashemi, R. (2016), "Dynamic Increase Factor for Investigation of Progressive Collapse Potential in Tall Tube-Type Buildings", J. Perform. Constr. Fac., 30(6), 4016050.   DOI
23 Mckay, A.E. (2008), "Alternate Path method in progressive collapse analysis: Variation of dynamic and non-linear load increase factors", Pract. Period. Struct. Des. Const., 17(4), 152-160.   DOI
24 Peng, Z., Orton, S.L., Liu, J. and Tian, Y. (2017), "Experimental Study of Dynamic Progressive Collapse in Flat-Plate Buildings Subjected to Exterior Column Removal", J. Struct. Eng., 143(9), p. 04017125.   DOI
25 Qian, K. and Li, B. (2018), "Performance of Precast Concrete Substructures with Dry Connections to Resist Progressive Collapse", J. Perform. Constr. Fac., 32(2), 4018005.   DOI
26 Quiel, S.E., Naito, C.J. and Fallon, C.T. (2019), "A non-emulative moment connection for progressive collapse resistance in precast concrete building frames", Eng. Struct., 179, 174-188.   DOI
27 Rahnavard, R., Fard, F.F.Z., Hosseini, A. and Suleiman, M. (2018), "Nonlinear Analysis on Progressive Collapse of Tall Steel Composite Buildings", Case Stud. Const. Materials., 8, S1390319133.
28 Ruth, P., Marchand, K.A. and Williamson, E.B. (2006), "Static equivalency in progressive collapse alternate path analysis: Reducing conservatism while retaining structural integrity", J. Perform. Constr. Fac., 20(4), 349-364.   DOI
29 Stephen, D., Lam, D., Forth, J., Ye, J. and Tsavdaridis, K.D. (2019), "An evaluation of modelling approaches and column removal time on progressive collapse of building", J. Constr. Steel. Res., 153, 243-253.   DOI
30 Stylianidis, P.M. and Nethercot, D.A. (2015), "Modelling of connection behaviour for progressive collapse analysis", J. Constr. Steel. Res., 113, 169-184.   DOI
31 Tsai, M. and Lin, B. (2009), "Dynamic amplification factor for progressive collapse resistance analysis of an RC building", Struct. Des. Tall Spec. Build., 18(5), 539-557.   DOI
32 Yan, S., Zhao, X., Chen, Y., Xu, Z. and Lu, Y. (2018), "A new type of truss joint for prevention of progressive collapse", Eng. Struct., 167, 203-213.   DOI
33 Yang, B. and Tan, K.H. (2012), "Numerical analyses of steel beam-column joints subjected to catenary action", J. Constr. Steel. Res., 70, 1-11.   DOI
34 Yu, J., Luo, L. and Yi, L. (2018), "Numerical study of progressive collapse resistance of RC beam-slab substructures under perimeter column removal scenarios", Eng. Struct., 159, 14-27.   DOI
35 Al-Salloum, Y.A., Alrubaidi, M.A., Elsanadedy, H.M., Almusallam, T.H. and Iqbal, R.A. (2018), "Strengthening of precast RC beam-column connections for progressive collapse mitigation using bolted steel plates", Eng. Struct., 161, 146-160.   DOI
36 Amiri, S., Saffari, H. and Mashhadi, J. (2018), "Assessment of dynamic increase factor for progressive collapse analysis of RC structures", Eng. Fail. Anal., 84, 300-310.   DOI
37 ASCE (2010), Minimum Design Loads for Buildings and Other Structures, Reston, VA, USA.
38 ASCE (2013), Seismic Evaluation and Retrofit of Existing Buildings, ASCE/SEI 41-13, Reston, VA, USA.