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    Behavior of circular CFT columns subject to axial force and bending moment

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    https://www.riss.kr/link?id=A104818756

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    The major objective of this paper is to evaluate the behavior and ultimate resisting capacity of circular CFT columns. To consider the confinement effect, proper material models with respect to the confinement pressure are selected. A fiber section approach is adopted to simulate the nonlinear stress distribution along the section depth. Material nonlinearity due to the cracking of concrete and the yielding of the surrounding steel tube, as well as geometric nonlinearity due to the P-Δ effect, are taken into account. The validity of the proposed numerical analysis model is established by comparing the analytical predictions with the results from previous experimental studies about pure bending and eccentric axial loading. Numerical predictions using an unconfined material model were also compared to investigate the confinement effects on various loading combinations. The ultimate resisting capacities predicted by the proposed numerical model and the design guidelines in Eurocode 4 are compared to evaluate the existing design recommendation.
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    The major objective of this paper is to evaluate the behavior and ultimate resisting capacity of circular CFT columns. To consider the confinement effect, proper material models with respect to the confinement pressure are selected. A fiber section ap...

    The major objective of this paper is to evaluate the behavior and ultimate resisting capacity of circular CFT columns. To consider the confinement effect, proper material models with respect to the confinement pressure are selected. A fiber section approach is adopted to simulate the nonlinear stress distribution along the section depth. Material nonlinearity due to the cracking of concrete and the yielding of the surrounding steel tube, as well as geometric nonlinearity due to the P-Δ effect, are taken into account. The validity of the proposed numerical analysis model is established by comparing the analytical predictions with the results from previous experimental studies about pure bending and eccentric axial loading. Numerical predictions using an unconfined material model were also compared to investigate the confinement effects on various loading combinations. The ultimate resisting capacities predicted by the proposed numerical model and the design guidelines in Eurocode 4 are compared to evaluate the existing design recommendation.

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    참고문헌 (Reference)

    1 곽효경, "축력이 재하된 원형 콘크리트 충전강관 기둥의 최대 저항능력" 한국콘크리트학회 24 (24): 423-433, 2012

    2 Susantha, K. A. S., "Uniaxial stress-strain relationship of concrete confined by various shaped steel tubes" 23 (23): 1331-1347, 2001

    3 Mander, J. B., "Theoretical Stress-Strain Model for Confined Concrete" 114 (114): 1804-1826, 1988

    4 Fuyun Huang, "The structural performance of axially loaded CFST columns under various loading conditions" 국제구조공학회 13 (13): 451-471, 2012

    5 O'Shea, M.D., "Tests on circular thin-walled steel tubes filled with medium and high strength concrete" 40 (40): 15-27, 1998

    6 Furlong, R. W., "Strength of steel-encased concrete beam columns" 93 (93): 113-124, 1967

    7 Baig, M. N., "Strength of Concrete Filled Steel Tubular Columns" 11 (11): 657-666, 2006

    8 Hajjar, J.F., "Representation of concrete-filled steel tube cross-section strength" 122 (122): 1327-1336, 1996

    9 Hatzigeorgiou, G. D., "Numerical model for the behavior and capacity of circular CFT columns, Part II : Verification and extension" 30 (30): 1579-1589, 2008

    10 Lakshmi, B., "Nonlinear analysis of in-filled steel-concrete composite columns" 128 (128): 922-933, 2002

    1 곽효경, "축력이 재하된 원형 콘크리트 충전강관 기둥의 최대 저항능력" 한국콘크리트학회 24 (24): 423-433, 2012

    2 Susantha, K. A. S., "Uniaxial stress-strain relationship of concrete confined by various shaped steel tubes" 23 (23): 1331-1347, 2001

    3 Mander, J. B., "Theoretical Stress-Strain Model for Confined Concrete" 114 (114): 1804-1826, 1988

    4 Fuyun Huang, "The structural performance of axially loaded CFST columns under various loading conditions" 국제구조공학회 13 (13): 451-471, 2012

    5 O'Shea, M.D., "Tests on circular thin-walled steel tubes filled with medium and high strength concrete" 40 (40): 15-27, 1998

    6 Furlong, R. W., "Strength of steel-encased concrete beam columns" 93 (93): 113-124, 1967

    7 Baig, M. N., "Strength of Concrete Filled Steel Tubular Columns" 11 (11): 657-666, 2006

    8 Hajjar, J.F., "Representation of concrete-filled steel tube cross-section strength" 122 (122): 1327-1336, 1996

    9 Hatzigeorgiou, G. D., "Numerical model for the behavior and capacity of circular CFT columns, Part II : Verification and extension" 30 (30): 1579-1589, 2008

    10 Lakshmi, B., "Nonlinear analysis of in-filled steel-concrete composite columns" 128 (128): 922-933, 2002

    11 Liang, Q.Q., "Nonlinear analysis of circular concrete-filled steel tubular short columns under axial loading" 65 (65): 2186-2196, 2009

    12 Hu, H. T., "Nonlinear analysis of axially loaded concretefilled tube columns with confinement effect" 129 (129): 1322-1329, 2003

    13 Kwak, H.G., "Finite element analysis of reinforced concrete structures under monotonic loads" University of California at Berkeley 1990

    14 H.-T. Hu, "Finite element analysis of CFT columns subjected to pure bending moment" 국제구조공학회 10 (10): 415-428, 2010

    15 Wang, Q., "Experimental study on the strength and ductility of steel tubular columns filled with steel-reinforced concrete" 26 (26): 907-915, 2004

    16 Eurocode, "Design of composite steel and concrete structures part 2. General rules and rules for bridges" Brussels 2004

    17 O'Shea, M.D., "Design of circular thin-walled concrete filled steel tubes" 126 (126): 1295-1303, 2000

    18 Fam, A., "Concrete-filled steel tubes subjected to axial compression and lateral cyclic loads" 130 (130): 631-640, 2004

    19 Elchalakani, M., "Concrete-filled circular steel tubes subjected to pure bending" 57 (57): 1141-1168, 2001

    20 Sakino, K., "Behavior of centrally loaded concrete-filled steel-tube short columns" 130 (130): 180-188, 2004

    21 Elremaily, A., "Behavior and strength of circular concrete-filled tube columns" 58 (58): 1567-1591, 2002

    22 Schneider, S. P., "Axially loaded concrete-filled steel tubes" 124 (124): 1125-1138, 1998

    23 Giakoumelis, G., "Axial capacity of circular concrete-filled tube columns" 60 (60): 1049-1068, 2004

    24 Kwak, H.G., "An improved design formula for a biaxially loaded slender RC column" 32 (32): 226-237, 2010

    25 Richart, F. E., "A study of the failure of concrete under combined compressive stresses" University of Illinois Engineering Experimental Station 1928

    26 Liu, G. Y., "A Study on the behaviors of concrete-filled steel tubular beam - columns subjected to axial load and bending moment" National Center for Research on Earthquake Engineering 2003

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