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      KCI등재 SCIE SCOPUS

      A physically consistent stress-strain model for actively confined concrete

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      https://www.riss.kr/link?id=A105154025

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      다국어 초록 (Multilingual Abstract)

      With a special attention to the different stages of a typical loading path travelled in a fluid confined concrete test, this paper introduces a physically consistent model for the stress-strain curve of actively confined normal-strength concrete in th...

      With a special attention to the different stages of a typical loading path travelled in a fluid confined concrete test, this paper introduces a physically consistent model for the stress-strain curve of actively confined normal-strength concrete in the axial direction. The model comprises of the five elements of: (1) a criterion for the peak or failure strength, (2) an equation for the peak strain, (3) a backbone hydrostatic curve, (4) a transient hardening curve linking the point of departure from the hydrostatic curve to the failure point, and finally (5) a set of formulas for the post-peak region. Alongside, relevant details and shortcomings of existing models will be discussed in each part. Finally, the accuracy and efficiency of the proposed model have been verified in a set of simulations which compare well with the experimental results from the literature.

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      참고문헌 (Reference)

      1 Malecot, Y., "Unconfined compressive strength is a poor indicator of the high-pressure mechanical response of concrete" 2 : 1325-1331, 2009

      2 Setunge, S., "Ultimate strength of confined very high-strength concretes" 90 (90): 632-641, 1993

      3 Montuori, R., "Ultimate behaviour of FRP wrapped sections under axial force and bending : Influence of stress-strain confinement model" 54 (54): 85-96, 2013

      4 Leon, A., "Uber die scherfestigkeit des betons" 34 (34): 1935

      5 Gabet, T., "Triaxial behavior of concrete under high stresses : Influence of the loading path on compaction and limit states" 38 (38): 403-412, 2008

      6 Hansen, T. C., "Triaxial Tests with Concrete and Cement Paste" Technical University of Denmark 1995

      7 Mander, J. B., "Theoretical stress-strain model for confined concrete" 114 (114): 1804-1826, 1988

      8 Teng, J. G., "Theoretical model for fiber reinforced polymer-confined concrete" 11 (11): 201-210, 2007

      9 Sfer, D., "Study of the behavior of concrete under triaxial compression" 128 (128): 156-163, 2002

      10 Attard, M. M., "Stress-strain relationship of confined and unconfined concrete" 93 (93): 432-442, 1996

      1 Malecot, Y., "Unconfined compressive strength is a poor indicator of the high-pressure mechanical response of concrete" 2 : 1325-1331, 2009

      2 Setunge, S., "Ultimate strength of confined very high-strength concretes" 90 (90): 632-641, 1993

      3 Montuori, R., "Ultimate behaviour of FRP wrapped sections under axial force and bending : Influence of stress-strain confinement model" 54 (54): 85-96, 2013

      4 Leon, A., "Uber die scherfestigkeit des betons" 34 (34): 1935

      5 Gabet, T., "Triaxial behavior of concrete under high stresses : Influence of the loading path on compaction and limit states" 38 (38): 403-412, 2008

      6 Hansen, T. C., "Triaxial Tests with Concrete and Cement Paste" Technical University of Denmark 1995

      7 Mander, J. B., "Theoretical stress-strain model for confined concrete" 114 (114): 1804-1826, 1988

      8 Teng, J. G., "Theoretical model for fiber reinforced polymer-confined concrete" 11 (11): 201-210, 2007

      9 Sfer, D., "Study of the behavior of concrete under triaxial compression" 128 (128): 156-163, 2002

      10 Attard, M. M., "Stress-strain relationship of confined and unconfined concrete" 93 (93): 432-442, 1996

      11 Samani, A. K., "Stress-strain model for uniaxial and confined concrete under compression" 41 : 335-349, 2012

      12 Green, S. I., "Static Constitutive Relations for Concrete" Air Force Weapons Lab, Kirtland Air Force Base 1973

      13 Vonk, R., "Softening of concrete loaded in compression" Eindhoven University of Technology 1992

      14 Markeset, G., "Softening of concrete in compression-localization and size effects" 25 (25): 702-708, 1995

      15 Balmer, G. G., "Shearing Strength of Concrete under High Triaxial Stress-Computation of Mohr’s Envelope as a Curve" Structure Research Laboratory 1949

      16 Chen, W. F., "Plasticity for Structural Engineers" Springer-Verlag 1988

      17 Singh, M., "Modified mohr-coulomb criterion for non-linear triaxial and polyaxial strength of intact rocks" 48 (48): 546-555, 2011

      18 Marques, S. P. C., "Model for analysis of short columns of concrete confined by fiber-reinforced polymer" 8 (8): 332-340, 2004

      19 Xie, J., "Mechanical properties of three high-strength concretes containing silica fume" 92 (92): 135-145, 1995

      20 Ansari, F., "High-strength concrete subjected to triaxial compression" 95 (95): 747-755, 1998

      21 Li, Q., "High-strength concrete in triaxial compression by different sizes of specimens" 97 (97): 684-689, 2000

      22 Kotsovos, M. D., "Generalized stressstrain relations for concrete" 104 (104): 845-856, 1978

      23 Ozbakkaloglu, T., "FRPconfined concrete in circular sections : Review and assessment of stress-strain models" 49 : 1068-1088, 2013

      24 Spoelstra, M. R., "FRP-confined concrete model" 3 (3): 143-150, 1999

      25 Imran, I., "Experimental study of plain concrete under triaxial stress" 93 (93): 589-560, 1996

      26 Shin, M., "Experimental investigation of actively confined concrete using shape memory alloys" 32 (32): 656-664, 2010

      27 Hurlbut, B., "Experimental and computational investigation of strain-softening in concrete" University of Colorado 1985

      28 Girgin, Z. C., "Evaluation of strength criteria for very-high-strength concretes under triaxial compression" 104 (104): 277-283, 2007

      29 Hoek, E., "Empirical strength criterion for rock masses" 106 (106): 1013-1035, 1980

      30 Tan, T. H., "Effects of triaxial stress on concrete" 2005

      31 Vu, X. H., "Effect of the water/cement ratio on concrete behavior under extreme loading" 33 (33): 1867-1888, 2009

      32 Laine, D. P., "Effect of axial preloads on confined concrete" University of Toronto 2004

      33 Ghorbi, E., "Development of a compressive constitutive model for FRP-confined concrete elements" 45 (45): 504-517, 2013

      34 Willam, K. J., "Constitutive model for the triaxial behavior of concrete" 1995

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

      36 Fam, A. Z., "Confinement model for axially loaded concrete confined by circular fiber-reinforced polymer tubes" 9 (9): 451-461, 2001

      37 Smith, S. S., "Concrete over the top, or : Is there life after peak?" 86 (86): 491-497, 1989

      38 Candappa, D. C., "Complete triaxial stress-strain curves of high-strength concrete" 13 (13): 209-215, 2001

      39 Montuori, R., "Comparative analysis and critical issues of the main constitutive laws for concrete elements confined with FRP" 43 (43): 3219-3230, 2012

      40 Albanesi, T., "Closed form constitutive relationship for concrete filled FRP tubes under compression" 21 (21): 409-427, 2007

      41 "Building Code Requirements for Structural Concrete"

      42 Lahlou, K., "Behaviour of high-strength concrete under confined stresses" 14 (14): 185-193, 1992

      43 Chinn, J., "Behavior of plain concrete under various high triaxial compression loading conditions" Air Force Weapons Laboratory 1965

      44 Lu, X., "Behavior of high-strength concrete with and without steel fiber reinforcement in triaxial compression" 36 (36): 1679-1685, 2006

      45 Fa-Xing Ding, "Behavior of circular thin-walled steel tube confined concrete stub columns" 국제구조공학회 23 (23): 229-238, 2017

      46 Kabir Sadeghi, "Behavior modeling and damage quantification of confined concrete under cyclic loading" 국제구조공학회 61 (61): 625-635, 2017

      47 Xiao, Q. G., "Behavior and modeling of confined high-strength concrete" 14 (14): 249-259, 2010

      48 Harries, K. A., "Behavior and modeling of concrete subject to variable confining pressure" 99 (99): 180-189, 2002

      49 Caggiano, A., "Application of some classic constitutive theories to the numerical simulation of the behavior of plain concrete" University of Salerno 2007

      50 Samdani, S., "Analytical study of FRP confined concrete columns" 2005

      51 Jiang, T., "Analysis-oriented stress-strain models for FRP-confined concrete" 29 (29): 2968-2986, 2007

      52 Binici, B., "An analytical model for stress-strain behavior of confined concrete" 27 (27): 1040-1051, 2005

      53 Hsieh, S. S., "A plasticityfracture model for concrete" 18 (18): 181-197, 1982

      54 Gabet, T., "A new experimental technique for the analysis of concrete under high triaxial loading" 134 : 635-640, 2006

      55 Dupray, F., "A mesoscopic model for the behaviour of concrete under high confinement" 33 (33): 1407-1423, 2009

      56 Richart, F. E., "A Study of the Failure of Concrete under Combined Compressive Stresses" University of Illinois 1928

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      2021 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-12-01 평가 등재 탈락 (해외등재 학술지 평가)
      2016-12-26 학회명변경 한글명 : 한국국제계산역학회 -> 사단법인 한국계산역학회 KCI등재
      2013-10-01 평가 SCOPUS 등재 (등재유지) KCI등재
      2011-11-01 학술지명변경 한글명 : 컴퓨터와 콘크리트 국제학술지 -> Computers and Concrete, An International Journal KCI등재후보
      2011-01-01 평가 등재후보학술지 유지 (기타) KCI등재후보
      2005-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.72 0.07 0.53
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.44 0.4 0.173 0.02
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