References
- ACI 232.2R-03 (2003), Use of fly ash in concrete, ACI Committee 232, 41.
- ACI 234R-06 (2006), Guide for the use of silica fume in concrete, Bond and development of straight reinforcing bars in tension, ACI Committee 234, 63.
- ACI 318R-08 (2008), Building code requirements for structural concrete (318-08) and commentary, ACI Committee 318, 471.
- ACI 408R-03 (2003), Bond and development of straight reinforcing bars in tension, ACI Committee 408, 49.
- Al-Gazzar M.A. (2009), Low-cost self-compacting Concrete, Ph.D. Dissertation, Menoufia University, Egypt, 243.
- Assie, S., Escadeillas, G. and Waller, V. (2007), "Estimates of self-compacting concrete potential durability", Constr. Build. Mater., 21, 1909-1917. https://doi.org/10.1016/j.conbuildmat.2006.06.034
- ASTM C618, Specification for fly ash and raw calcined natural Pozzolan for use as a mineral admixture in portland cement concrete, 4.
- ASTM C494 (2001), Standard specification for chemical admixtures for concrete, 9.
- BRE Special Digest-1 (2005), Concrete in Aggressive Ground, Building Research Establishment (BRE), Watford, UK. Publisher: HIS Rapidoc, Willoughby, Bracknall, Berks, UK.
- BS-EN 197-1 (2000), "Cement: composition, specifications, and conformity criteria for common cements", British Standards, 52.
- BS 5328-1 (1997), "Concrete: guide to specifying concrete", British Standards, 32.
- BS 8500 (2002), "Concrete: complementary British standard to BS EN 206-1, Part 1: method of specifying and guidance for the specifier", 66.
- BS 8500 (2006), "Part 2: Specifications for constituent materials and concrete", British Standards, 46.
- Chan, K.D., Ong, K.C.G. and Tam, C.T. (2010), "Passing ability of SCC - improved method based on the PRing", Proceedings of the 35th Conference on Our World in Concrete and Structures, Singapore, August.
- Chan, Y.W., Chen, Y.S. and Liu, Y.S. (2003), "Development of bond strength of reinforcing steel in selfconsolidation concrete", ACI Struct. J., 100(4), 490-498.
- CSA A23.1 (2009), "Concrete materials and methods of concrete construction", Canadian Standards, 582.
- Daoud, A., Lorrain, M. and Laborderie, C. (2003), "Anchorage and cracking behavior of self-compacting concrete", Proceedings of Third RILEM International Symposium on Self-Compacting Concrete, Wallevik, O. and Nielsson, I. Editors, Reykjavik Iceland, RILEM Publications, PRO 33, Bagneux, France.
- De Almeida F.M., De Nardin, S. and El-Debs, A.L.H.C. (2005), "Evaluation of the bond strength of selfcompacting concrete in pull-out tests", Proceedings of the 2nd North American conference on the Design and Use of Self-Consolidating Concrete and 4th International RILEM Symposium on Self-Compacting Concrete. Chicago.
- Domone, P.L. (2007), "A review of the hardened mechanical properties of self-compacting concrete", Cem. Concr. Compos., 29, 1-12. https://doi.org/10.1016/j.cemconcomp.2006.07.010
- Dunster, A. (2009), Silica Fume in Concrete, BREPress, Watford, UK.
- ECP 203-2007 (2007), Egyptian code for the design and construction of reinforced concrete structures, National Building and Research Center, Cairo, Egypt.
- Eligehausen, R., Popov, E.P. and Bertero, V.V. (1983), Local Bond Dtress-Slip Relationships of Deformed Bars Under Generalized Excitations, Report No. UCB/EERC-83/23.
- FIB (2000), Bond of Reinforcement in Concrete, State-of-Art Report, FIB Bulletin 10, Switzerland.
- Foroughi-Asl A., Dilmaghani, S. and Famili, H. (2008), "Bond strength of reinforcement steel in selfcompacting concrete", Int.. J. Civ. Eng., 6(1), 24-33.
- Hooton, R.D., Nokken, M.R. and Thomas, M.D.A. (2007), ".Portland Limestone Cement: State-of-the-Art Report and Gap Analysis for CSA A3000", Cem. Association Can. Res. Dev., Report SN3053, 59
- Kamal, M.M., Safan, M.A. and Al-Gazzar, M.A. (2008), "Blended Portland cements for low-cost selfcompacting concrete", Proceedings of the 1st International Conference New Cements and their Effects on Concrete Performance National Housing and Building and Research Center (HBRC) and Helwan University, Cairo, Egypt.
- Khan, M.S., Reddy, A.R., Shariq, M. and Prasad, J. (2007), "Studies in bond strength in RC flexural members", Asian J. Civ. Eng., 8(1), 89-96.
- Lutz, L.A., and Gergely, P. (1967), "Mechanics of bond and slip of deformed bars in concrete", ACI J., 64(11), 711-721.
- Menezes, F., El Debs, M.K. and El Debs, A.L. (2008), "Bond-slip behavior of self-compacting concrete and vibrated concrete using pull-out and beam tests", Mater. Struct., 41, 1073-1089. https://doi.org/10.1617/s11527-007-9307-0
- Ozawa, K., Maekawa, K., Kunishima, M. and Okamura, H. (1989), "High performance concrete based on the durability design of concrete structures", Proceedings East Asia Pacific conference on Structural Engineering (EASEC 2), Chiang Mai, Thailand.
- Safan, M.A. (2011), "Shear strength of self-compacting concrete containing different fillers and coarse aggregates", Concr. Res. Lett, 2(4), 300-314.
- Safan, M.A. (2011), "Performance of beams cast with low-cost self-compacting concrete in aggressive environment", Acta Polytech., 51(5), 120-130.
- Sonebi, M. and Bartos, P.J.M. (1999), "Hardened SCC and its bond with reinforcement", Proceedings of the First International RILEM Symposium on Self-Compacting Concrete, Eds. Skarendahl, A . and Petersson, O., Stockholm, Sweden.
- Tepfers, R. (1979), "Cracking of concrete cover along anchored deformed reinforcing bars", Mag. Concr. Res., 31(106), 3-12. https://doi.org/10.1680/macr.1979.31.106.3
- Thomas, M., Hooton, D., Cail, K., Smith, B., Wal, J. and Kazanis, K. (2010), "Field trials of concretes produced with Portland limestone cement: New CSA cement type performs well in an aggressive environment", Concr. Internatl., 32(1), 35-41.
- Turk, K., Karatas, M. and Ulucan, Z. (2010), "Effect of the use of different types and dosages of mineral additions on the bond strength of lap-spliced bars in self-compacting concrete", Mater. Struct., 43, 557-570. https://doi.org/10.1617/s11527-009-9511-1
- Zhu, W., Gibbs, J.C. and Bartos, P.J.M. (2001), "Uniformity of in situ properties of self-compacting concrete in full-scale structural elements", Cem. Conc. Compos., 23(1), 57-64. https://doi.org/10.1016/S0958-9465(00)00053-6
- Zhu, W., Sonebi, M. and Bartos, P.J.M. (2004), "Bond and interfacial properties of reinforcement in selfcompacting concrete", Mater. Struct. 37, 442-448. https://doi.org/10.1007/BF02481580
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