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      KCI등재 SCIE SCOPUS

      Experimental behavior of VHSC encased composite stub column under compression and end moment

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      https://www.riss.kr/link?id=A106114641

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      다국어 초록 (Multilingual Abstract)

      This paper investigates the structural behavior of very high strength concrete encased steel composite columns via combined experimental and analytical study. The experimental programme examines stub composite columns under pure compression and eccent...

      This paper investigates the structural behavior of very high strength concrete encased steel composite columns via combined experimental and analytical study. The experimental programme examines stub composite columns under pure compression and eccentric compression. The experimental results show that the high strength encased concrete composite column exhibits brittle post peak behavior and low ductility but has acceptable compressive resistance. The high strength concrete encased composite column subjected to early spalling and initial flexural cracking due to its brittle nature that may degrade the stiffness and ultimate resistance. The analytical study compares the current code methods (ACI 318, Eurocode 4, AISC 360 and Chinese JGJ 138) in predicting the compressive resistance of the high strength concrete encased composite columns to verify the accuracy. The plastic design resistance may not be fully achieved. A database including the concrete encased composite column under concentered and eccentric compression is established to verify the predictions using the proposed elastic, elastoplastic and plastic methods. Image-oriented intelligent recognition tool-based fiber element method is programmed to predict the load resistances. It is found that the plastic method can give an accurate prediction of the load resistance for the encased composite column using normal strength concrete (20-60 MPa) while the elastoplastic method provides reasonably conservative predictions for the encased composite column using high strength concrete (60-120 MPa).

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      참고문헌 (Reference)

      1 이주하, "골재 및 섬유에 따른 초고강도 콘크리트의 내화성능평가" 한국방재학회 13 (13): 91-97, 2013

      2 "YB 9082, Technical specification for steel reinforced concrete structures"

      3 Du, Y., "Ultimate resistance behavior of rectangular concrete-filled tubular beam-columns made of high-strength steel" 133 : 418-433, 2017

      4 Zhang, L., "Theoretical Study on the Mechanical Behavior and Design Calculation of High Strength and High Performance Concrete Columns with Steel Profile" Xi’an University of Architectural Science and Technology 2011

      5 Deng, Z, "The experimental studies on behavior of ultrahigh-performance concrete confined by hybrid fiberreinforced polymer tubes" 1-18, 2015

      6 Lin, M., "Study on High Strength Steel Reinforced Concrete Columns" Xi’an University of Architectural Science and Technology 2006

      7 Huang, Z., "Structural behaviour of steel–concrete–steel sandwich composite wall subjected to compression and end moment" 98 : 592-606, 2016

      8 Margot F. Pereira, "Structural behavior of partially encased composite columns under axial loads" 국제구조공학회 20 (20): 1305-1322, 2016

      9 Lim, J. C., "Stress–strain model for normal-and light-weight concretes under uniaxial and triaxial compression" 71 : 492-509, 2014

      10 Carreira, D. J., "Stress-strain relationship for plain concrete in compression" 82 (82): 797-804, 1985

      1 이주하, "골재 및 섬유에 따른 초고강도 콘크리트의 내화성능평가" 한국방재학회 13 (13): 91-97, 2013

      2 "YB 9082, Technical specification for steel reinforced concrete structures"

      3 Du, Y., "Ultimate resistance behavior of rectangular concrete-filled tubular beam-columns made of high-strength steel" 133 : 418-433, 2017

      4 Zhang, L., "Theoretical Study on the Mechanical Behavior and Design Calculation of High Strength and High Performance Concrete Columns with Steel Profile" Xi’an University of Architectural Science and Technology 2011

      5 Deng, Z, "The experimental studies on behavior of ultrahigh-performance concrete confined by hybrid fiberreinforced polymer tubes" 1-18, 2015

      6 Lin, M., "Study on High Strength Steel Reinforced Concrete Columns" Xi’an University of Architectural Science and Technology 2006

      7 Huang, Z., "Structural behaviour of steel–concrete–steel sandwich composite wall subjected to compression and end moment" 98 : 592-606, 2016

      8 Margot F. Pereira, "Structural behavior of partially encased composite columns under axial loads" 국제구조공학회 20 (20): 1305-1322, 2016

      9 Lim, J. C., "Stress–strain model for normal-and light-weight concretes under uniaxial and triaxial compression" 71 : 492-509, 2014

      10 Carreira, D. J., "Stress-strain relationship for plain concrete in compression" 82 (82): 797-804, 1985

      11 Zohrevand, P., "Stress-Strain Model of Ultrahigh Performance Concrete Confined by Fiber-Reinforced Polymers" 25 (25): 1822-1829, 2013

      12 El-Tawil, S., "Strength and ductility of concrete encased composite columns" 125 (125): 1009-1019, 1999

      13 Zhenyu Huang, "Steel-Concrete-Steel Sandwich Composite Structures Subjected to Extreme Loads" 한국강구조학회 16 (16): 1009-1028, 2016

      14 AIJ, "Standard for Structural Calculation of Steel Reinforced Concrete Structures"

      15 Wee, T. H., "Sress-strain relationship of high-strength concrete in compression" 8 (8): 70-76, 1996

      16 Lou, Y., "Simplified calculation method for stiffened concrete long columns" 26 (26): 20-22, 1996

      17 Piscesa, B., "Plasticity Constitutive Model for Stress-Strain Relationship of Confined Concrete" 114 (114): 361-371, 2017

      18 Mahbuba Begum, "Parametric study on eccentrically-loaded partially encased composite columns under major axis bending" 국제구조공학회 19 (19): 1299-1319, 2015

      19 Ellobody, E., "Numerical simulation of concrete encased steel composite columns" 67 (67): 211-222, 2011

      20 Xiong, M., "Mechanical behaviour of ultra-high strength concrete at elevated temperatures and fire resistance of ultra-high strength concrete filled steel tubes" 104 (104): 414-427, 2016

      21 Bărbos, G. A., "Long-term Behavior of Ultra – High Performance Concrete(UHPC)Bended Beams" 22 (22): 203-210, 2016

      22 Huang, Z. Y., "Lightweight steel-concrete-steel sandwich shell subject to punching shear" 102 : 146-161, 2015

      23 "JGJ 138, Code for design of composite structure, Ministry of Housing and Urban-Rural Construction of the People’s Republic of China"

      24 Javed, M. F., "FE modelling of the flexural behaviour of square and rectangular steel tubes filled with normal and high strength concrete" 119 : 470-481, 2017

      25 Ye, L., "Experimental study on stiffened reinforced concrete columns under eccentric compression" 16 (16): 45-52, 1995

      26 Xilin Lu, "Experimental study on hysteretic properties of SRC columns with high steel ratio" 국제구조공학회 17 (17): 287-303, 2014

      27 Gentian, Z., "Experimental study on Mechanical behavior of long columns under eccentric Compression of Steel reinforced concrete" 25 (25): 384-400, 2006

      28 Weiqing Zhu, "Experimental research on seismic behavior of steel reinforced high-strength concrete short columns" 국제구조공학회 25 (25): 603-615, 2017

      29 Yong Yang, "Experimental investigation on shear capacity of partially prefabricated steel reinforced concrete columns" 국제구조공학회 28 (28): 73-82, 2018

      30 Tokgoz, S., "Experimental behaviour of steel fiber high strength reinforced concrete and composite columns" 74 (74): 98-107, 2012

      31 Wang, Z., "Experimental Study and Nonlinear Analysis of Eccentric Columns with High Strength and High Performance of Steel Reinforced Concrete" Xi’an University of Architectural Science and Technology 2007

      32 Choe, G., "Evaluation of the mechanical properties of 200MPa ultra-high-strength concrete at elevated temperatures and residual strength of column" 86 (86): 159-168, 2015

      33 "Eurocode 4, EN 1994-1-1 Design of composite steel and concrete structures"

      34 "Eurocode 2, Design of concrete strctures, part 1-1: General rules and rules for buildings"

      35 Kim, C. S., "Effect of Sustained Load on Ultimate Strength of High-Strength Composite Columns Using 800-MPa Steel and 100-MPa Concrete" 143 (143): 04016189-, 2017

      36 Ellobody, E., "Eccentrically loaded concrete encased steel composite columns" 49 (49): 53-65, 2011

      37 Kim, C. S., "Eccentric axial load test for high-strength composite columns of various sectional configurations" 43 (43): 04017075-, 2017

      38 Kim, C. S., "Eccentric axial load capacity of high-strength steel-concrete composite columns of various sectional shapes" 140 (140): 04013091-, 2014

      39 Kim, C. S., "Eccentric Axial Load Testing for Concrete-Encased Steel Columns Using 800 MPa Steel and 100 MPa Concrete" 138 (138): 1019-1031, 2012

      40 Wang, Y. B., "Constitutive model for confined ultra-high strength concrete in steel tube" 126 : 812-822, 2016

      41 Papanikolaou, V. K., "Confinementsensitive plasticity constitutive model for concrete in triaxial compression" 44 (44): 7021-7048, 2007

      42 Begum, M., "Behaviour of partially encased composite columns with high strength concrete" 56 (56): 1718-1727, 2013

      43 Chen, S., "Analytical model for predicting axial compressive behavior of steel reinforced concrete column" 128 : 649-660, 2016

      44 "ASTM E8/E8M - 16A, Standard Test Methods for Tension Testing of Metallic Materials" 2016

      45 "ASTM C39/C39M, Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens" 2014

      46 "ASTM C1611/C1611M-14, Standard test method for slump flow of self-consolidating concrete" 2018

      47 "ASTM C136/C136M – 14, Standard Test Method for Sieve Analysis of Fine and Coarse ;ggregates" 2014

      48 "AISC 360, Specification for Structural Steel Buildings"

      49 "ACI 318, Building Code Requirements for Structural Concrete"

      50 Lu, D., "A threedimensional elastoplastic constitutive model for concrete" 163 : 41-55, 2016

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      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2021 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-12-01 평가 등재 탈락 (해외등재 학술지 평가)
      2013-10-01 평가 SCOPUS 등재 (등재유지) KCI등재
      2011-01-01 평가 등재후보학술지 유지 (기타) KCI등재후보
      2007-04-09 학회명변경 한글명 : (사)국제구조공학회 -> 국제구조공학회 KCI등재후보
      2005-09-23 학술지명변경 한글명 : 강합성 구조물에 대한 국제저널 -> Steel and Composite Structures, An International Journal KCI등재후보
      2005-09-22 학술지등록 한글명 : 강합성 구조물에 대한 국제저널
      외국어명 : Steel and Composite Structures, An International Journal
      KCI등재후보
      2005-06-16 학회명변경 영문명 : Ternational Association Of Structural Engineering And Mechanics -> International Association of Structural Engineering And Mechanics KCI등재후보
      2002-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 3.1 2.02 2.67
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      2.37 2.24 0.935 0.37
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