[1] P.-C. Aïtcin, High-Performance Concrete E & FN SPON. (2004).
[2] [E. C. P. ASBL, Commentary Eurocode 2. European Concrete Platform ASBL, (2008).
[3] S. Cholostiakow, M. Di Benedetti, K. Pilakoutas, and M. Guadagnini, Effect of beam depth on shear behavior of FRP RC beams, J. Compos. Constr., 23 (2018). 40.
[4] D. Y. Yoo and J. M. Yang, Effects of stirrup, steel fiber, and beam size on shear behavior of high-strength concrete beams, Cem. Concr. Compos., 87 (2018) 137–148.
[5] J.-Y. Lee, J.-H. Lee, D. H. Lee, S.-J. Hong, and H.-Y. Kim, Practicability of large-scale reinforced concrete beams using grade 80 stirrups, ACI Struct. J., 115 (2018) 269–280.
[6] A. Althin and M. Lippe, Size effects in shear force design of concrete beams, MSc Thesis,Division Struct. Eng. Fac. Eng. LTH,Sweden, p. 70, (2018).
[7] D. I. Shin, M. Haroon, C. Kim, B. S. Lee, and J. Y. Lee, Shear strength reduction of large-scale reinforced concrete beams with high-strength stirrups, ACI Struct. J., 116 (2019) 161–172.
[8] G. B. Jumaa and A. R. Yousif, Size effect in shear failure of high strength concrete beams without stirrup reinforced with basalt FRP bars, KSCE J. Civ. Eng., 23 (2019) 1636–1650.
[9] T. Wu, H. Wei, and X. Liu, Shear behavior of large-scale deep beams with lightweight-aggregate concrete, ACI Struct. J., 117 (2020) 75–89.
[10] S. H. Chao, Size effect on ultimate shear strength of steel fiber-reinforced concrete slender beams, ACI Struct. J., 117, no. 1 (2020) 145–158.
[11] No. 5/1984, Iraqi Specification, Portland Cement. Ministry of Planning, Central Agency for Standardization and Quality Control, (1984).
[12] H. P. J. Taylor, “Shear strength of large beams,” J. Struct. Div. ASCE, 98 (1972) 2473–2489.
[13] ASTM C-494/C 494M, Standard specification for chemical admixtures for concrete. (2001).
[14] ASTM C 1240 – 05, Standard specification for silica fume used in cementitious mixtures. (2005).
[15] ASTM A615-16, Standard specification for deformed and plain carbon structural steel bars for concrete reinforcement. Annual Book of ASTM Standards,( 2016).
[16] ASTM C 39/C 39M – 03, Standard test method for compressive strength of cylindrical concrete specimens. (2003).
[17] ACI 318M-19, Building code requirements for structural concrete and commentary. (2019).
[18] ASTM C 192/C 192M-05, Standard practice for making and curing concrete test specimens in the laboratory. Annual Book of ASTM Standards, (2005).
[19] TML Company, Strain gauges user guide, No Title, Tokyo Sokki Kenkyujo Co., Ltd, Japan, Web site www.tml.jp/e.
[20] L. H. Sneed and J. A. Ramirez, Influence of effective depth on shear strength of concrete beams-experimental study, ACI Struct. J., 107 (2010) 554–562.
[21] Z. P. Bazant and M. T. Kazemi, Size effect on diagonal shear failure of beams without stirrups, ACI Struct. J., 88 (1991) 268–276.
[22] P. Bazant, Z. P.; Kim, J. K.; and Pfeiffer, Determination of nonlinear fracture parameters from size effect tests. (1984).
[23] ACI-ASCE Committee 445R, Recent approaches to shear design of strucutral concrete, ACI, p. 55, (1999).
[24] Shioya et al., “Shear strength of large reinforced concrete beams,” ACI Struct. J., 118 (1990) 259–280.
[25] D. Collins, M. P., and Mitchell, Prestressed concrete structures. Response Publications, Canada, (1997).
[26] T. Sherwood and A. Lubell, Safe shear design of large, wide beams adding shear reinforcement is recommended, Concr. Int. Des. Constr., (2004) 66–78.
[27] ASCE-ACI Committee 426, The shear strength of reinforced concrete members, J. Struct. Div., 99 (1973) 1091–1187.