Experimental and finite element studies on the behavior of hybrid reinforced concrete beams

被引:8
|
作者
Hussein, Luma Fadhil [1 ]
Khattab, Mohammed M. [2 ]
Farman, Mustafa Shakir [3 ]
机构
[1] Univ Mustansiriyah, Dept Civil Engn, Baghdad, Iraq
[2] Middle Tech Univ, Inst Technol, Baghdad, Iraq
[3] Al Furat Al Awsat Tech Univ, Tech Inst Samawa, Kufa, Iraq
关键词
Hybrid concrete; Normal reinforced concrete beams; Self-compacting concrete (SCC); Shear strength; SELF-COMPACTING CONCRETE; SHEAR-STRENGTH; PERFORMANCE; TENSILE; DESIGN;
D O I
10.1016/j.cscm.2021.e00607
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper presents an experimental and numerical investigation on the behavior of reinforced concrete hybrid beams under two point load. Eight beams of dimensions (150x200x1300 mm) were cast and tested. The hybrid specimens contain of two layers, the upper layer (in the compression zone) made of self-compacted concrete (SCC) with compressive strength of approximately 75 MPa while the layer located in tension zone made of normal strength concrete (NSC) with compressive strength of approximately 30 MPa. These specimens were tested and compared with reference specimens made of SCC or NSC only. The main considered variables were: the SCC layer thickness in hybrid beams; and the effect of shear reinforcement on the total capacity of the tested beams. The test results showed that, using hybrid concrete in casting the reinforced beams has a significant effect in enhancing the general behavior of the specimens. The failure load increased by (18.2-54.5 %) in hybrid beams contained SCC by (25, 50 %) of the total beam height, respectively compared with corresponding reference specimens made of NSC only. It was also noticed that the use of shear reinforcement has an important role in increasing the total capacity of the specimens by about (35.3-38.5 %). ANSYS program (Version 15.0) was employed for modelling the specimens. The numerical results showed that, the general behaviour of the finite element models was in good agreement with the experimental data.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Nonlinear Finite Element Analysis Formulation for Shear in Reinforced Concrete Beams
    Kim, Sang-Ho
    Han, Sun-Jin
    Kim, Kang Su
    APPLIED SCIENCES-BASEL, 2019, 9 (17):
  • [42] FINITE-ELEMENT FORMULATION FOR THE ANALYSIS OF REINFORCED FIBROUS CONCRETE BEAMS
    MURUGAPPAN, K
    TAN, KH
    PARAMASIVAM, P
    FINITE ELEMENTS IN ANALYSIS AND DESIGN, 1994, 18 (1-3) : 67 - 74
  • [43] Nonlinear finite element analysis of concrete beams reinforced with FRP bars
    Li, N.
    Luo, Y.
    ADVANCES IN HETEROGENEOUS MATERIAL MECHANICS 2008, 2008, : 1477 - 1480
  • [44] Finite element analysis of reinforced concrete beams strengthened with advanced composites
    Hu, B
    Delpak, R
    Andreou, E
    Tann, DB
    COMPUTATIONAL CONCRETE STRUCTURES TECHNOLOGY, 2000, : 125 - 128
  • [45] Finite Element Analysis of Reinforced Concrete Beams with Corrosion Subjected to Shear
    Potisuk, Tanarat
    Higgins, Christopher C.
    Miller, Thomas H.
    Yim, Solomon C.
    ADVANCES IN CIVIL ENGINEERING, 2011, 2011
  • [46] Finite Element Analysis of Reinforced Concrete Beams with Transversely Prestressed Bars
    Liu, Can
    Wu, Bo
    Xu, Kai Yan
    ADVANCES IN CIVIL ENGINEERING AND ARCHITECTURE INNOVATION, PTS 1-6, 2012, 368-373 : 108 - +
  • [47] FINITE ELEMENT MODEL UPDATING OF REINFORCED CONCRETE BEAMS WITH HONEYCOMB DAMAGE
    Ismail, Z.
    ARCHIVES OF CIVIL ENGINEERING, 2012, 58 (02) : 135 - 151
  • [48] Simplified Approach for Finite Element Analysis of Laced Reinforced Concrete Beams
    Anandavalli, N.
    Lakshmanan, N.
    Knight, G. M. Samuel
    ACI STRUCTURAL JOURNAL, 2012, 109 (01) : 91 - 99
  • [49] Nonlinear Finite Element Analysis of FRP Strengthened Reinforced Concrete Beams
    Sasmal S.
    Kalidoss S.
    Srinivas V.
    Journal of The Institution of Engineers (India): Series A, 2012, 93 (04) : 241 - 249
  • [50] Finite element modelling of aluminum alloy plated reinforced concrete beams
    Abuodeh, Omar R.
    Hawileh, Rami A.
    Abdalla, Jamal A.
    COMPUTERS AND CONCRETE, 2021, 27 (06): : 585 - 596