Please wait a minute...
Frontiers of Structural and Civil Engineering

ISSN 2095-2430

ISSN 2095-2449(Online)

CN 10-1023/X

邮发代号 80-968

2019 Impact Factor: 1.68

Frontiers of Architecture and Civil Engineering in China  2008, Vol. 2 Issue (4): 329-335   https://doi.org/10.1007/s11709-008-0044-4
  本期目录
Micromechanics model for static and dynamic strength of concrete under confinement
Micromechanics model for static and dynamic strength of concrete under confinement
ZHENG Dan
Department of Hydraulic Engineering, Chongqing Jiaotong University
 全文: PDF(151 KB)   HTML
Abstract:The process of propagation, kinking of micro-cracks in concrete and the interaction among cracks as well as the induced failure were analyzed using the model that describes the wing type crack from the point of view of micromechanics. The pseudo-force method is applied to calculate the compressive strength factor of kinky propagated crack taking into account the effect of interaction among cracks. On the assumption that the micro fracture toughness of concrete does not vary with stain rate, the static and dynamic strength of concrete under different confinements can be calculated. The comparison of calculation result with experimental data indicates that a good agreement is achieved which implies that the model can be used to explain the rate-dependent properties of concrete in multi-axial stress state.
出版日期: 2008-12-05
 引用本文:   
. Micromechanics model for static and dynamic strength of concrete under confinement[J]. Frontiers of Architecture and Civil Engineering in China, 2008, 2(4): 329-335.
ZHENG Dan. Micromechanics model for static and dynamic strength of concrete under confinement. Front. Struct. Civ. Eng., 2008, 2(4): 329-335.
 链接本文:  
https://academic.hep.com.cn/fsce/CN/10.1007/s11709-008-0044-4
https://academic.hep.com.cn/fsce/CN/Y2008/V2/I4/329
1 Gran J K, Florence A L, Colton J D . Dynamic triaxial test of high-strength concrete. Journal of Engineering Mechanics, 1989, 115(5): 891–904
Gran J K, Florence A L, Colton J D. Dynamic triaxial test of high-strength concrete. Journal of Engineering Mechanics, 1989, 115(5): 891-904
Gran J K, Florence A L, Colton J D. Dynamic triaxial test of high-strength concrete. Journal of Engineering Mechanics, 1989, 115(5): 891-904
2 Song Yupu, Lü Peiyin, Hou Jingpeng . Concrete splitting tensile strength and failure criterionfor different loading rate and lateral stress. Shuili Xuebao, 2002, 33(3): 1–5 (in Chinese)
Song Yupu, Lü Peiyin, Hou Jingpeng. Concrete splitting tensile strength and failure criterion for different loading rate and lateral stress. Shuili Xuebao, 2002, 33(3): 1-5 (in Chinese)
Song Yupu, Lü Peiyin, Hou Jingpeng. Concrete splitting tensile strength and failure criterion for different loading rate and lateral stress. Shuili Xuebao, 2002, 33(3): 1-5 (in Chinese)
3 Yan Dongming, Lin Gao, Liu Junyu, et al.. Dynamic biaxial compressive strength and fracturepattern of concrete with constant confining pressure. Shuili Xuebao, 37(2): 200–204 (in Chinese)
Yan Dongming, Lin Gao, Liu Junyu, et al. Dynamic biaxial compressive strength and fracture pattern of concrete with constant confining pressure. Shuili Xuebao, 37(2): 200-204 (in Chinese)
Yan Dongming, Lin Gao, Liu Junyu, et al. Dynamic biaxial compressive strength and fracture pattern of concrete with constant confining pressure. Shuili Xuebao, 37(2): 200-204 (in Chinese)
4 Guo Zhenghai . Strength and Deformation of Concrete: Test Basis and ConstitutiveRelation. Beijing: Tsinghua University Press, 1997 (in Chinese)
Guo Zhenghai. Strength and Deformation of Concrete: Test Basis and Constitutive Relation. Beijing, Tsinghua University Press, 1997 (in Chinese)
Guo Zhenghai. Strength and Deformation of Concrete: Test Basis and Constitutive Relation. Beijing, Tsinghua University Press, 1997 (in Chinese)
5 Park H, Kim J Y . Plasticity model using multiplefailure criteria for concrete in compression. International Journal of Solids & Structures. 2005, 42: 2303–2322.
doi:10.1016/j.ijsolstr.2004.09.029
Park H, Kim J Y. Plasticity model using multiple failure criteria for concrete in compression. International Journal of Solids & Structures. 2005, 42: : 2303-2322
doi: 10.1016/j.ijsolstr.2004.09.029
Park H, Kim J Y. Plasticity model using multiple failure criteria for concrete in compression. International Journal of Solids & Structures. 2005, 42: : 2303-2322
doi: 10.1016/j.ijsolstr.2004.09.029
6 Richart F E, Brandtzaeg A, Brown R L . A study of the failure of concrete under combined compressivestresses. Engineering Experiment BulletinNo. 185, Univ. of Illinois, Urbana, 1928
Richart F E, Brandtzaeg A, Brown R L. A study of the failure of concrete under combined compressivestresses. Engineering Experiment Bulletin No. 185, Univ. of Illinois, Urbana, 1928
Richart F E, Brandtzaeg A, Brown R L. A study of the failure of concrete under combined compressivestresses. Engineering Experiment Bulletin No. 185, Univ. of Illinois, Urbana, 1928
7 Imran I, Pantazopoulou S J . Plasticity model for concreteunder triaxial compression. Journal ofEngineering Mechanics, ASCE, 2001, 127(3): 281–290.
doi:10.1061/(ASCE)0733-9399(2001)127:3(281)
Imran I, Pantazopoulou S J. Plasticity model for concrete under triaxial compression. Journal of Engineering Mechanics, ASCE, 2001, 127(3): 281-290
doi: 10.1061/(ASCE)0733-9399(2001)127:3(281)
Imran I, Pantazopoulou S J. Plasticity model for concrete under triaxial compression. Journal of Engineering Mechanics, ASCE, 2001, 127(3): 281-290
doi: 10.1061/(ASCE)0733-9399(2001)127:3(281)
8 Yu Maoqing . Concrete Strength Theory and Application. Beijing: Higher Education Press, 2002 (in Chinese)
Yu Maoqing. Concrete Strength Theory and Application. Beijing, Higher Education Press, 2002 (in Chinese)
Yu Maoqing. Concrete Strength Theory and Application. Beijing, Higher Education Press, 2002 (in Chinese)
9 Horri H, Nemat Nasser S . Compression induced microcrackgrowth in brittle solids: axial splitting and shear failure. Journal of Geophysics Research, 1985, 90: 3105–3125.
doi:10.1029/JB090iB04p03105
Horri H, Nemat Nasser S. Compression induced microcrack growth in brittle solids: axial splitting and shear failure. Journal of Geophysics Research, 1985, 90: : 3105-3125
doi: 10.1029/JB090iB04p03105
Horri H, Nemat Nasser S. Compression induced microcrack growth in brittle solids: axial splitting and shear failure. Journal of Geophysics Research, 1985, 90: : 3105-3125
doi: 10.1029/JB090iB04p03105
10 Ashby M F, Hallam S D . The failure of brittle solidscontaining small cracks under compressive states. Acta Metallica, 1986, 34: 497–510.
doi:10.1016/0001-6160(86)90086-6
Ashby M F, Hallam S D. The failure of brittle solids containing small cracks under compressive states. Acta Metallica, 1986, 34: : 497-510
doi: 10.1016/0001-6160(86)90086-6
Ashby M F, Hallam S D. The failure of brittle solids containing small cracks under compressive states. Acta Metallica, 1986, 34: : 497-510
doi: 10.1016/0001-6160(86)90086-6
11 Deng H, Nemat Nasser S . Microcrack interaction andshear fault failure. International Journalof Damage Mechanics, 1994, (3): 3–37
Deng H, Nemat Nasser S. Microcrack interaction andshear fault failure. International Journalof Damage Mechanics, 1994, (3): 3-37
Deng H, Nemat Nasser S. Microcrack interaction andshear fault failure. International Journalof Damage Mechanics, 1994, (3): 3-37
12 Zheng D, Li Q B, Wang L B, A microscopic approach to rate effect on compressivestrength of concrete. Engineering FractureMechanics, 2005, 72(15): 2316–2327.
doi:10.1016/j.engfracmech.2005.01.012
Zheng D, Li Q B, Wang L B. A microscopic approach to rate effect on compressive strength of concrete. Engineering Fracture Mechanics, 2005, 72(15): 2316-2327
doi: 10.1016/j.engfracmech.2005.01.012
Zheng D, Li Q B, Wang L B. A microscopic approach to rate effect on compressive strength of concrete. Engineering Fracture Mechanics, 2005, 72(15): 2316-2327
doi: 10.1016/j.engfracmech.2005.01.012
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed