SHEAR TRANSFER BEHAVIOR OF FIBROUS CONCRETE

Authors

  • Eman Jwad Civil Engineering Department, College of Engineering, Mustansiriyah University, Baghdad, Iraq Author
  • Waleed Awad Waryosh Civil Engineering Department, College of Engineering, Mustansiriyah University, Baghdad, Iraq Author

DOI:

https://doi.org/10.31272/jeasd.27.1.9

Keywords:

Shear transfer, Fibrous concrete, steel fiber, glass fiber, push-off test, direct shear

Abstract

Fibrous concrete's shear strength behavior is important in structural design. Brackets, corbels, and ledger beams are examples of concrete members that might collapse in shear. Such a failure might be brittle and sudden. Fibers improve concrete's behavior by increasing residual shear transfer and reducing crack development and extension. In an experimental study, nine push-off specimens were divided into three groups and examined as part of the experiment. Conventional concrete, conventional concrete with 1% glass fiber, and conventional concrete with 1% steel fiber were the groups. There were three push-off specimens with various shear reinforcement ratios in each of the groups that were examined (0.0, 0.45, and 0.68%). The specimens utilized had dimensions of 500mm x 250mm x 125mm. The vertical slip and horizontal separation at the shear plane were measured using two-stroke linear variable displacement transducers (LVDT). The effect of fiber type and the ratio of transverse reinforcement across the shear plane were the parameters evaluated. The presence of fibers enhances final shear strength, which is more obvious in specimens without stirrups in the shear plane. Where the addition of 1% of glass fiber to normal strength concrete increased ultimate shear strength by 32.26%, 12.38%, and 12.5%, while adding 1% of steel fiber to normal strength concrete increased ultimate shear strength by up to 53.22%, 19%, and 25%, respectively, for the specimens without stirrups, two stirrups, and three stirrups. The fibrous specimens were stiffer and ductile failure was seen. Steel fibers improved overall concrete shear behavior better than glass fibers.

References

Mattock, A. H. (1981). "Cyclic shear transfer and type of interface". Journal of the Structural Division, Vol. 107, No. 10.

https://doi.org/10.1061/JSDEAG.0005795

Divakar, M.P., Fafitis, A. and Shah, S.P. (1987). "Constitutive model for shear transfer in cracked concrete". Journal of Structural Engineering, Vol. 113, No.5.https://doi.org/10.1061/(ASCE)0733-9445(1987)113:5(1046)

Robert, E. L. and Anil, K. P. (1994). "Horizontal shear strength of composite concrete beams". PCI Journal, Vol. 39, No.1. https://doi.org/10.15554/pcij.01011994.48.69

Khaloo, A.R. and Kim, N. (1997). "Influence of Concrete and Fiber Characteristics on Behavior of Steel Fiber-Reinforced Concrete under Direct Shear". ACI Journal, V. 94, No. 6. https://doi.org/10.14359/344

Cuenca, E. and Serna, P. (2010). "Shear Behavior and Mode of Failure analysis of different structural elements made with Fiber Reinforced Concrete". 8th fib PhD Symposium in Kgs. Lyngby, Denmark. https://www.fib-international.org

Khanlou, G. A., Scott, A. N., Hicks, S. J., and Clifton, G. C. (2013). "Shear Performance of Steel Fiber-Reinforced Concrete". Steel Innovations Conference Christchurch, New Zealand, pp.21-22.

https://www.semanticscholar.org

Hofbeck, A., Ibrahim, I. O. and Mattock, A. H. (1969). "Shear Transfer in Reinforced Concrete". Title No. 66-13, ACI Journal, 196, pp. 119-128. https://doi.org/10.14359/7349

Paulay, T. and Loeber, P. J. (1974). " Shear Transfer by Aggregate Interlock”. Publication SP ACI, Vol. 42, Part V 1, pp. 1-15.

https://www.concrete.org/publications/internationalconcreteabstractsportal/m/details/id/17277

Walraven, J. C. (1981). "Fundamental analysis of aggregate interlock". Journal of Structural Division, Vol. 107, No. 11,

pp. 2245–2270. https://doi.org/10.1061/JSDEAG.0005820

Al-Sulayvani, B. J. and Al-Feel, J. R. (2009). "Effect of Direct Compressive Stress on the Shear Transfer Strength of Fibrous Concrete". Al-Rafidain Engineering Journal, Vol. 17, No. 2. http://dx.doi.org/10.33899/rengj.2009.38837

N. Al-Chalabi, N. (2011). "Experimental Investigation on the Effect of the Use of Steel Wire Meshes on Shear Transfer Strength of Reinforced Concrete Push-Off Specimens" Journal of Engineering and Development, Vol. 15, No. 1, pp. 205-215.

https://jeasd.uomustansiriyah.edu.iq/index.php/jeasd/article/view/1361

Ghailan, D. B. (2013). "Shear-Transfer Strength and Behavior of Reactive Powder Concrete", PhD. Thesis, Al-Mustansiriya University Baghdad, Iraq, 2013, 223pp.

Al-Quraishi, H., Lafta, M. J., and Abdulridha, A. A. (2018). "Direct Shear Behavior of Fiber Reinforced Concrete Elements". Journal of Engineering, Vol. 24, No. 1. https://joe.uobaghdad.edu.iq/index.php/main/article/view/511

Madhlom, S. Q., Aziz, H. A., and Ali, A. A. (2021). "Direct Shear Strength of RPC Member". Engineering and Technology Journal, Vol. 39, No. 01. https://doi.org/10.30684/etj.v39i1a.1638

Central Organization for Standardization and Quality Control (2019). "Ordinary Portland cement". Iraqi Standard Specification (IQS). No.5/2019, Baghdad, Iraq.

Central Organization for Standardization and Quality Control (1984). Iraqi Standard Specification (IQS). "Natural Aggregate".

No.45/ 1984, Baghdad, Iraq.

ASTM C31 / C31M-12, (2012). “Standard Practice for Making and Curing Concrete Test Specimens in the Field”, ASTM International, West Conshohocken, PA, www.astm.org.

Anil Kumar K, Harish Kumar N R, and RPrabhakara (2016).“Experimental Investigations and Comparative Study on Effect of Fibers on In-plane Shear Strength of Different concretes Using Push-Off Specimens”. International Journal of Research in Engineering and Technology, Vol. 05, No.14. https://doi.org/10.15623/ijret.2016.0526001

Abdul-Zaher, A. S., Abdul-Hafez, L. M., Tawfik, Y. R., and Hammed, O. (2016). “Shear Behavior of Fiber Reinforced Concrete Beams”. Journal of Engineering Sciences, Vol. 44, No. 2. https://doi.org/10.21608/jesaun.2016.117592

Ahmad, S., Bhargava, P., and Chourasia, A. (2018). “Shear transfer strength of uncracked interfaces: A simple analytical model”. Construction and Building Materials Journal, Vol. 192, pp. 366–380. https://doi.org/10.1016/j.conbuildmat.2018.10.094.

Araújo, D. L., Lobo, F. A., and Martins, B. G.(2021). “ A shear stress- slip relationship in steel fiber-reinforced concrete obtained from push-off testing”. Construction and Building Materials Journal, Vol. 293, No. 123435. https://doi.org/10.1016/j.conbuildmat.2021.123435

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Key Dates

Published

2023-01-01

How to Cite

Jwad, E., & Waryosh , W. A. . (2023). SHEAR TRANSFER BEHAVIOR OF FIBROUS CONCRETE . Journal of Engineering and Sustainable Development, 27(1), 104-116. https://doi.org/10.31272/jeasd.27.1.9

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