Acknowledgement
Supported by : 국토교통부, 미래창조과학부
References
- Gustavo J. Parra-Montesinos(2006). Shear Strength of Beams with Deformed Steel Fibers, Concrete international, 28(11), 57-66.
- Korea Concrete Institute(2012). Concrete Design Code and Commentary, Kimoondang Publishing Company, Seoul, Korea, 154.
- ACI Committee 318(2008). Building Code Requirements for Structural Concrete (ACI 318-11) and Commentary, American Concrete Institute, Farmington Hills, Mich. 171.
- Comite Euro-International du Beton(2012). CEB-FIP Model Code 2010 - Final draft, vol. 1. 220.
- Japan Society of Civil Engineers (2008). Recommendations for Design and Construction of High Performance Fiber Reinforced Cement Composites with Multiple Fine Cracks (HPFRCC), Concrete Engineering Series, 82, 30.
- ASCE-ACI Commitee 445 on Shear and Torsion (1998). Recent approaches to shear design of structural concrete. Journal of Structure Engineering, 124(12), 1375-1417 https://doi.org/10.1061/(ASCE)0733-9445(1998)124:12(1375)
- European Commitee for Standardization (CEN) (2004). Design of concrete structures-Part 1-1: General rules and rules for buildings. Eurocode 2, Brussels, Belgium., 84.
- NewZealand Standard (2006). New Zealand Concrete Structures Standards (NZS 3101), 84.
- Japan Society of Civil Engineering(2008). Standard Specifications for Concrete Structures-Design, JSCE Guideline for Concrete, No. 15, 154.
- AFGC Scientific and Technical Committee(2002). Ultra High Performance Fiber-Reinforced Concretes : Interim Recommendation, Documents scientifiques et techniques, 61.
- Japan Society of Civel Engineering(2006). Recommendations for design and construction of ultra high strength fiber reinforced concrete structures (Draft), Concrete Committee of Japan Society of Civil Engineers (JSCE), JSCE Guideline for Concrete, No. 9, 26.
- Narayanan, R., & Darwish, I. Y. S. (1987). Use of Steel Fibers as Shear Reinforcement, ACI Structural Journal, 84(3), 216-227.
- A1-Ta'an, S. A., & A1-Feel, J. R. (1990). Evaluation of Shear Strength of Fibre-Reinforced Concrete Beams Cement &Concrete Composites 12, 87-94. https://doi.org/10.1016/0958-9465(90)90045-Y
- Khuntia, M., Stojadinovic, B., & Subhash C. Goel. (1999). Shear Strength of Normal and High-Strength Fiber Reinforced Concrete Beams without Stirrups, ACI Structural Journal, 96(2), 282-290.
- Samir A. Ashour, Ghazi S. Hasanain, & Faisal F. Wafa. (1992). Shear Behavior of High-Strength Fiber Reinforced Concrete Beams, ACI Structural Journal, 89(2), 176-184
- Swamy, R. N., & Mangat, P. S. (1976). Interfacial Bond Stress in Steel Fiber Cement Composites, Cement and Concrete Research, 6, 641-650. https://doi.org/10.1016/0008-8846(76)90028-4
- Zsutty, T. (1968). Beam Shear Strength Prediction by Analysis of Existing Data, ACI JOURNAL, Proceedings 65(11), 943-951.
- KS D 3504(2011). Steel bars for concrete reinforcement, Korean Agency for Technology and Standards, 1-30.
- Richard, P., & Cheyrezy, M. H. (1994). Reactive Powder Concretes with High Ductility and 200-800MPa Compressive Strength, ACI SP 144, 507-518.
- KS F 2405(2010). Standard Test Method for Compressive Strength of Concrete, Korean Agency for Technology and Standards, 1-16.
- KS F 2423(2011). Method of test for splitting tensile strength of concrete, Korean Agency for Technology and Standards, 1-12.
- Japan Concrete Institute Standard (2003). Method of test for load-displacement curve of fiber reinforced concrete by use of notched beam : JCI-S-002-2003, Japan Concrete Institute, Research Committees, 1-6.