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    Axial-Shear-Flexural Interaction Behavior of a Double-Span Steel Beam Under a Column-Loss State Using the Pushdown Method

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    https://www.riss.kr/link?id=A108637673

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    The axial-shear-flexural interaction behavior of a double-span steel beam in a column-loss state is a complex phenomenon that demands more explanation. Nowadays, it is common practice to study the column loss scenario of a double-span steel beam using the pushdown method. Generally, two pushdown methods are commonly used: the Monotonic Pushdown Force (MPF) and the Distributed Pushdown Force (DPF) methods. Many current researchers adopted the MPF approach due to its practical and straightforward instrumentation for experimental testing compared to the DPF approach. However, the DPF approach would better approximate the actual collapse behavior of the structure in a column-loss event since it resembles the proper form of gravity loads. This paper aimed to demonstrate how these two approaches result in significantly different behavior in double-span steel beam collapse, particularly on the axial-shear-flexural interaction behavior. A finite element analysis using ABAQUS software was undertaken on a validated double-span steel beam model. In the MPF approach, the results have highlighted the importance of the tensile catenary action in the overall structural resistance of the double-span beam against collapse. The tensile catenary action dominated the load-resisting mechanism of the double-span beam at a large deformation state and interrupted the flexural resistance development. The stretching effect induced by the tensile catenary action has avoided the inelastic local buckling and allowed for greater rotation capacity on the beam assembly. However, under the DPF approach, the double-span beam has limited tensile catenary action build-up with high shear force development after the plastic hinge formation. The significant effects of the high shear force development on the double-span beam behavior were highlighted in this study.
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    The axial-shear-flexural interaction behavior of a double-span steel beam in a column-loss state is a complex phenomenon that demands more explanation. Nowadays, it is common practice to study the column loss scenario of a double-span steel beam using...

    The axial-shear-flexural interaction behavior of a double-span steel beam in a column-loss state is a complex phenomenon that demands more explanation. Nowadays, it is common practice to study the column loss scenario of a double-span steel beam using the pushdown method. Generally, two pushdown methods are commonly used: the Monotonic Pushdown Force (MPF) and the Distributed Pushdown Force (DPF) methods. Many current researchers adopted the MPF approach due to its practical and straightforward instrumentation for experimental testing compared to the DPF approach. However, the DPF approach would better approximate the actual collapse behavior of the structure in a column-loss event since it resembles the proper form of gravity loads. This paper aimed to demonstrate how these two approaches result in significantly different behavior in double-span steel beam collapse, particularly on the axial-shear-flexural interaction behavior. A finite element analysis using ABAQUS software was undertaken on a validated double-span steel beam model. In the MPF approach, the results have highlighted the importance of the tensile catenary action in the overall structural resistance of the double-span beam against collapse. The tensile catenary action dominated the load-resisting mechanism of the double-span beam at a large deformation state and interrupted the flexural resistance development. The stretching effect induced by the tensile catenary action has avoided the inelastic local buckling and allowed for greater rotation capacity on the beam assembly. However, under the DPF approach, the double-span beam has limited tensile catenary action build-up with high shear force development after the plastic hinge formation. The significant effects of the high shear force development on the double-span beam behavior were highlighted in this study.

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    참고문헌 (Reference)

    1 Shabani, M. J., "W-section steel columns energy criteria considering beams for progressive collapse analysis" 2021

    2 Kong, D. Y., "Vertical progressive collapse of composite floor systems under a side column removal scenario : Experimental and numerical investigations" 147 (147): 04021192-, 2021

    3 Department of Defense(DoD)., "Unified facilities criteria: Design of buildings to resist progressive collapse" Department of Defense 2016

    4 Wang, J., "Theoretical evaluation method for the progressive collapse resistance of steel frame buildings" 179 : 106576-, 2021

    5 Baker, J., "The steel skeleton: Plastic behaviour and design (Vol. 2)" Cambridge University Press 1956

    6 Neal, B. G., "The plastic methods of structural analysis" Wiley 1963

    7 Subki, N. A., "The development of a moment-rotation model for progressive collapse analysis under the influence of tensile catenary action" 187 : 106960-, 2021

    8 Yun, X., "The continuous strength method for the design of hot-rolled steel cross-sections" 157 : 179-191, 2018

    9 Afshan, S., "The continuous strength method for structural stainless steel design" 68 : 42-49, 2013

    10 Gardner, L., "The continuous strength method" 6 (6): 127-133, 2008

    1 Shabani, M. J., "W-section steel columns energy criteria considering beams for progressive collapse analysis" 2021

    2 Kong, D. Y., "Vertical progressive collapse of composite floor systems under a side column removal scenario : Experimental and numerical investigations" 147 (147): 04021192-, 2021

    3 Department of Defense(DoD)., "Unified facilities criteria: Design of buildings to resist progressive collapse" Department of Defense 2016

    4 Wang, J., "Theoretical evaluation method for the progressive collapse resistance of steel frame buildings" 179 : 106576-, 2021

    5 Baker, J., "The steel skeleton: Plastic behaviour and design (Vol. 2)" Cambridge University Press 1956

    6 Neal, B. G., "The plastic methods of structural analysis" Wiley 1963

    7 Subki, N. A., "The development of a moment-rotation model for progressive collapse analysis under the influence of tensile catenary action" 187 : 106960-, 2021

    8 Yun, X., "The continuous strength method for the design of hot-rolled steel cross-sections" 157 : 179-191, 2018

    9 Afshan, S., "The continuous strength method for structural stainless steel design" 68 : 42-49, 2013

    10 Gardner, L., "The continuous strength method" 6 (6): 127-133, 2008

    11 Yun, X., "Stress-strain curves for hot-rolled steels" 133 : 36-46, 2017

    12 Sadowski, A. J., "Statistical analysis of the material properties of selected structural carbon steels" 53 : 26-35, 2015

    13 Wang, W., "Slab effect of composite subassemblies under a column removal scenario" 129 : 141-155, 2017

    14 Holzer, S. M., "Singer: A computer code for general analysis of two-dimensional concrete structures" National Technical Information Service (NTIS) 1975

    15 Lee, C. H., "Simplified nonlinear progressive collapse analysis of welded steel moment frames" 65 (65): 1130-1137, 2009

    16 Khandelwal, K., "Pushdown resistance as a measure of robustness in progressive collapse analysis" 33 (33): 2653-2661, 2011

    17 Elsanadedy, H., "Progressive collapse risk of 2D and 3D steel-frame assemblies having shear connections" 179 : 106533-, 2021

    18 Li, H., "Progressive collapse of steel moment-resisting frame subjected to loss of interior column : Experimental tests" 150 : 203-220, 2017

    19 Izzuddin, B. A., "Progressive collapse of multi-storey buildings due to sudden column loss—Part I : Simplified assessment framework" 30 (30): 1308-1318, 2007

    20 Ren, L. M., "Progressive collapse of 3D composite floor systems with rigid connections under external column removal scenarios" 146 (146): 04020244-, 2020

    21 Chen, C., "Progressive collapse behavior of joints in steel moment frames involving reduced beam section" 225 : 111297-, 2020

    22 Subki, N. A., "Progressive collapse assessment : A review of the current energy-based alternate load path(ALP)method" 258 : 02012-, 2019

    23 Feng, F., "Progressive collapse analysis of high-rise building with 3-D finite element modeling method" 65 (65): 1269-1278, 2009

    24 Lew, H. S., "Performance of steel moment connections under a column removal scenario. I : Experiments" 139 (139): 98-107, 2013

    25 Wang, W., "Performance of practical beam-to-SHS column connections against progressive collapse" 106 : 332-347, 2016

    26 Zhong, W., "Performance of different stiffness connections against progressive collapse" 135 : 162-175, 2017

    27 Daneshvar, H., "Performance evaluation of WT connections in progressive collapse" 167 : 376-392, 2018

    28 Mashhadi, J., "Modification of dynamic increase factor to assess progressive collapse potential of structures" 138 : 72-78, 2017

    29 Fu, Q. N., "Load-resisting mechanisms of 3D composite floor systems under internal column-removal scenario" 148 : 357-372, 2017

    30 Kim, T., "Investigation of progressive collapse-resisting capability of steel moment frames using push-down analysis" 23 (23): 327-335, 2009

    31 Alrubaidi, M., "Investigation of different steel intermediate moment frame connections under column-loss scenario" 154 : 106875-, 2020

    32 Gardner, L., "Influence of strain hardening on the behaviour and design of steel structures" 11 (11): 855-875, 2011

    33 British Standard Institution., "Hot rolled products of structural steels—Part 2: Technical delivery conditions for non-alloy structural steels. EN10025-2"

    34 ABAQUS, "Getting Started with ABAQUS: Interactive Edition. (Dassault Systèmes)"

    35 Subki, N. A., "Finite element dynamic analysis of double-span steel beam under an instantaneous loss of support" 593-610, 2022

    36 Yang, B., "Experimental tests of different types of bolted steel beam–column joints under a central-column-removal scenario" 54 : 112-130, 2013

    37 Dinu, F., "Experimental testing and numerical modelling of steel moment-frame connections under column loss" 151 : 861-878, 2017

    38 Dinu, F., "Experimental testing and numerical analysis of 3D steel frame system under column loss" 113 : 59-70, 2016

    39 Xie, F., "Experimental study on the dynamic behavior of steel frames during progressive collapse" 2020

    40 Li, G. Q., "Experimental study on progressive collapse resistance of steel frames under a sudden column removal scenario" 147 : 1-15, 2018

    41 Kong, D. Y., "Experimental study on progressive collapse of 3D steel frames under concentrated and uniformly distributed loading conditions" 146 (146): 04020017-, 2020

    42 Yang, B., "Experimental study on composite beam with various connections under midspan impact scenarios" 148 (148): 04022158-, 2022

    43 Qiao, H., "Experimental study on beam-to-column connections with reduced beam section against progressive collapse" 175 : 106358-, 2020

    44 Yang, B., "Experimental study about composite frames under an internal column-removal scenario" 121 : 341-351, 2016

    45 Andalib, Z., "Experimental investigation of the ductility and performance of steel rings" 103 : 77-88, 2014

    46 British Standard Institution., "Eurocode 8: Design of structures for earthquake resistance—Part 1: General rules, seismic actions and rules for buildings. EN1998-1"

    47 British Standard Institution, "Eurocode 3: Design of steel structures - Part 1–1: General rules and rules for buildings. EN 1993-1-1"

    48 Shabani, M. J., "Energy-based criteria for assessment of box-section steel columns against progressive collapse" 2021

    49 Liu, C., "Dynamic performance of flush end-plate beam-column connections and design applications in progressive collapse" 2015

    50 Yan Fei Zhu ; Chang Hong Chen ; Yao Yao ; Leon M. Keer ; Ying Huang, "Dynamic increase factor for progressive collapse analysis of semi-rigid steel frames" 국제구조공학회 28 (28): 209-221, 2018

    51 Liu, C., "Dynamic behaviour of web cleat connections subjected to sudden column removal scenario" 86 : 92-106, 2013

    52 Galal, M. A., "Dual effect of axial tension force developed in catenary action during progressive collapse of 3D composite semi-rigid jointed frames" 19 : 507-519, 2019

    53 Marjanishvili, S., "Comparison of various procedures for progressive collapse analysis" 20 (20): 365-374, 2006

    54 Zhang, J. Z., "Collapse of steel-concrete composite frame under edge-column loss—Experiment and its analysis" 209 : 109951-, 2020

    55 "Assessment of progressive collapse residual capacity using pushdown analysis" 2008

    56 Meng, B., "Anti-collapse performances of steel beam-to-column assemblies with different span ratios" 140 : 125-138, 2018

    57 Lin, S., "Anti-collapse performance of steel frames with RWS connections under a column removal scenario" 227 : 111495-, 2021

    58 Xu, G., "An energy-based partial pushdown analysis procedure for assessment of disproportionate collapse potential" 67 (67): 547-555, 2011

    59 General Services Administration(GSA)., "Alternate path analysis and design guidelines for progressive collapse resistance"

    60 ABAQUS, "Abaqus/CAE user’s guide. (Dassault Systèmes)"

    61 "ABAQUS Version 16.4"

    62 ABAQUS, "ABAQUS Theory Guide. (Dassault Systèmes)"

    63 Liu, M., "A new dynamic increase factor for nonlinear static alternate path analysis of building frames against progressive collapse" 48 : 666-673, 2013

    64 Ferraioli, M., "A modal pushdown procedure for progressive collapse analysis of steel frame structures" 156 : 227-241, 2019

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