Mechanical and durability properties of self consolidating high performance concrete incorporating natural zeolite, silica fume and fly ash

Construction and Building Materials - Tập 44 - Trang 175-184 - 2013
Fereshteh Alsadat Sabet1, Nicolas Ali Libre1, Mohammad Shekarchi1
1Construction Materials Institute (CMI), School of Civil Engineering, University of Tehran, Tehran, Iran

Tài liệu tham khảo

Libre, 2012, Repeatability, responsiveness and relative cost analysis of SCC workability test methods, Mater Struct, 1 Xie, 2002, Optimum mix parameters of high-strength self compacting concrete with ultra-pulverized fly ash, Cement Concr Res, 32, 477, 10.1016/S0008-8846(01)00708-6 Khayat KH, Hu C, Monty H. Stability of SCC, advantages and potential applications. In: RILEM international conference on self-compacting concrete. Rilem Publications SARL; 1999. p. 143–52. Safiuddin, 2010, Hardened properties of self-consolidating high performance concrete including rice husk ash, Cement Concr Compos, 32, 708, 10.1016/j.cemconcomp.2010.07.006 SCCEPG. The European guidelines for self-compacting concrete: specification, production and use. West Midlands, UK: Self-Compacting Concrete European Project Group (SCCEPG), The European Federation of Concrete Admixtures Associations; 2005. EFNARC. Specifications and guidelines for self-consolidating concrete. Surrey, UK: European Federation of Suppliers of Specialist Construction Chemicals (EFNARC); 2002. Brameshuber W, Uebachs S. Practical experience with the application of self-compacting concrete in Germany. In: Proceedings of the second international symposium on self-compacting concrete. Tokyo, Japan: COMS Engineering Corporation; 2001. p. 687–95. Bui, 2002, Rapid testing method for segregation resistance of self-compacting concrete, Cement Concr Res, 32, 1489, 10.1016/S0008-8846(02)00811-6 Perez N, Romero H, Hermida G, Cuellar G. Self-compacting concrete, on the search and finding of an optimized design. In: Proceedings of the first North American conference on the design and use of self-consolidating concrete. Illinois, USA: Hanley-Wood, LLC; 2002. p. 101–7. ACI 237R-07. Self-consolidating concrete. ACI manual of concrete practice Part 1. Michigan, USA: American Concrete Institute; 2007. Khayat, 2000, Optimization and performance of air-entrained, self-consolidating concrete, ACI Mater J, 97, 526 Kosmatka, 2002 Shetty, 2001 Hearn N, Hooton RD, Mills RH. Pore structure and permeability. In: Significance of tests and properties of concrete and concrete-making materials (ASTM STP 169C). Philadelphia, USA: American Society for Testing and Materials; 1994. Vanwalleghem H, Blontrock H, Taerwe L. Spalling tests on self-compacting concrete. In: Proceedings of the third international symposium on self-compacting concrete. Bagneux, France: RILEM Publications; 2003. p. 855–62. Hearn N. On the corrosion of steel reinforcement in concrete. In: Proceedings of the first structural specialty conference. Montréal, Quebec: Canadian Society for Civil Engineering; 1996. p. 763–74. Russell, 1999, ACI defines high-performance concrete, Concr Int, 21, 56 Hwang, 2006, Performance-based specifications of self-consolidating concrete used in structural applications, ACI Mater J, 103, 121 Nehdi, 2004, Durability of self-consolidating concrete incorporating high-volume replacement composite cements, Cement Concr Res, 34, 2103, 10.1016/j.cemconres.2004.03.018 Dinakar, 2008, Durability properties of high volume fly ash self compacting concretes, Cement Concr Compos, 30, 880, 10.1016/j.cemconcomp.2008.06.011 Libre, 2010, Relationship between fluidity and stability of self-consolidating mortar incorporating chemical and mineral admixtures, Constr Build Mater, 24, 1262, 10.1016/j.conbuildmat.2009.12.009 Oner, 2007, An experimental study on optimum usage of GGBS for the compressive strength of concrete, Cement Concr Compos, 29, 505, 10.1016/j.cemconcomp.2007.01.001 Yang, 2007, Use of high volumes of fly ash to improve ECC mechanical properties and material greenness, ACI Mater J, 104, 620 Gesoglu, 2009, Properties of self-compacting concretes made with binary, ternary, and quaternary cementitious blends of fly ash, blast furnace slag, and silica fume, Constr Build Mater, 23, 1847, 10.1016/j.conbuildmat.2008.09.015 Elahi, 2010, Mechanical and durability properties of high performance concretes containing supplementary cementitious materials, Constr Build Mater, 24, 292, 10.1016/j.conbuildmat.2009.08.045 Afrand Tooska Co., 1 Nader Alley, Tohid Square, Tehran. <http://www.anzymite.com/about_e.html> Feng, 2005, Application of natural zeolite to construction and building materials in China, Constr Build Mater, 19, 579, 10.1016/j.conbuildmat.2005.01.013 1993 Mindess, 2002 Colella, 2005, Natural zeolites, Stud Surf Sci Catal, 157, 13, 10.1016/S0167-2991(05)80004-7 Feng, 1995, Prevention of AAR in cement concrete with natural zeolite, Concr Cement Prod, 2 Najimi, 2012, An experimental study on durability properties of concrete containing zeolite as a highly reactive natural pozzolan, Constr Build Mater, 35, 1023, 10.1016/j.conbuildmat.2012.04.038 Chan, 1999, Comparative study on the initial surface absorption and chloride diffusion of high performance zeolite, silica fume and PFA concretes, Cement Concr Compos, 21, 293, 10.1016/S0958-9465(99)00010-4 Eftekharnejad, 1996 Gu, 1992, AC impedance spectroscopy (II): microstructural characterization of hydrating cement–silica fume systems, Cement Concr Res, 23, 157, 10.1016/0008-8846(93)90147-2 NT Build 443. Concrete, hardened: accelerated chloride penetration. Nordtest method; 1995. Safiuddin M. Development of self-consolidating high performance concrete incorporating rice husk ash. Ph.D. thesis. Waterloo, Ontario, Canada: University of Waterloo; 2008. Feng, 1990, High-strength and flowing concrete with a zeolitic mineral admixture, ASTM Cement Concr Aggr, 12, 61, 10.1520/CCA10273J Feng, 1988, The strength effect of mineral admixture on cement concrete, Cement Concr Res, 18, 464, 10.1016/0008-8846(88)90081-6 Park, 2005, Rheological properties of cementitious materials containing mineral admixtures, Cement Concr Res, 35, 842, 10.1016/j.cemconres.2004.11.002 Wei, 2003, Analysis of mechanism on water reducing effect of fine ground slag, high-calcium fly ash, and low calcium fly ash, Cement Concr Res, 33, 1119, 10.1016/S0008-8846(03)00022-X Ahmadi, 2010, Use of natural zeolite as a supplementary cementitious material, Cement Concr Compos, 32, 134, 10.1016/j.cemconcomp.2009.10.006 Guneyisi, 2011, Permeation properties of self-consolidating concretes with mineral admixtures, ACI Mater J, 108, 150 ACI Committee 222. Protection of metals in concrete against corrosion. ACI 222R-01. Farmington Hills, Michigan: American Concrete Institute; 2001. Feng, 1998, Mechanism of natural zeolite powder in preventing alkali–silica reaction in concrete, Adv Cement Res, 10, 101, 10.1680/adcr.1998.10.3.101 Farnam Y, Behrouzikhah A, Sabet FS, Jalili SM, Shekarchi M. The effect of cement content on concrete durability with respect to environmental compatibility. In: Fourth international conference on construction materials: performance, innovations and structural implications. Nagoya, Japan: ConMat’09; 2009. p. 289–94. CEB–FIP. Diagnosis and assessment of concrete structures – state of art report. CEB Bulletin, Euro-International Concrete Committee (Comité Euro-International du Béton); 1989. p. 83–85. Nili, 2012, The long-term compressive strength and durability properties of silica fume fuber-reinforced concrete, Mater Sci Eng A, 531, 108, 10.1016/j.msea.2011.10.042 Nilsson LO, Poulson E, Sandberg P, Sorensen HE, Klinghoffer OH. Chloride penetration into concrete, State of the Art, Transport processes. Corrosion initiation, test methods and prediction models. In: Fredriksen JM, editor. Report no. 53. The Road Directorate, Denmark; 1996. p. 151. Valipour M, Pargar F, Shekarchi M, Khani D. Study of variation in surface chloride of concrete containing different pozzolans in Persian Gulf Region. In: 12th International conference on durability of building materials and components. Porto, Portugal; 2011. Dousti, 2011, Binding of externally supplied in microsilica concrete under field exposure conditions, Cement Concr Compos, 33, 1071, 10.1016/j.cemconcomp.2011.08.002 Shekarchi, 2009, Long-term chloride diffusion in silica fume concrete in harsh marine climates, Cement Concr Compos, 31, 769, 10.1016/j.cemconcomp.2009.08.005