Accesso libero

Effect Of Metakaolin Developed From Local Natural Material Soorh On Workability, Compressive Strength, Ultrasonic Pulse Velocity And Drying Shrinkage Of Concrete

INFORMAZIONI SU QUESTO ARTICOLO

Cita

Sabir, B., S. Wild, and J. Bai(2001). Metakaolin and calcined clays as pozzolans for concrete: a review. Cement and Concrete Composites, 23(6), 441–454.10.1016/S0958-9465(00)00092-5 Search in Google Scholar

Portland cement association (PCA) report.; Global cement consumption on the rise. Published on 3 June 2015. Search in Google Scholar

Rashad, A.M. and S.R. Zeedan (2011). The effect of activator concentration on the residual strength of alkali-activated fly ash pastes subjected to thermal load. Construction and Building Materials, 25(7), 3098–3107.10.1016/j.conbuildmat.2010.12.044 Search in Google Scholar

Scrivener, K.L. and R.J. Kirkpatrick (2008). Innovation in use and research on cementitious material. Cement and concrete research, 38(2), 128–136.10.1016/j.cemconres.2007.09.025 Search in Google Scholar

Park, S.-S. and H.-Y. Kang (2008). Characterization of fly ash-pastes synthesized at different activator conditions. Korean Journal of Chemical Engineering, 25(1), 78–83.10.1007/s11814-008-0013-6 Search in Google Scholar

Samet, B., T. Mnif, and M. Chaabouni (2007). Use of a kaolinitic clay as a pozzolanic material for cements: formulation of blended cement. Cement and Concrete Composites, 29(10), 741–749.10.1016/j.cemconcomp.2007.04.012 Search in Google Scholar

Habert, G., et al. (2008). Effects of the secondary minerals of the natural pozzolans on their pozzolanic activity. Cement and Concrete Research, 38(7), 963–975.10.1016/j.cemconres.2008.02.005 Search in Google Scholar

Habert, G., et al. (2009). Clay content of argillites: Influence on cement based mortars. Applied Clay Science, 43(3), 322–330.10.1016/j.clay.2008.09.009 Search in Google Scholar

Janotka, I., et al. (2010). Metakaolin sand–blendedcement pastes: Rheology, hydration process and mechanical properties. Construction and Building Materials, 24(5), 791–802.10.1016/j.conbuildmat.2009.10.028 Search in Google Scholar

Morsy, M.S. and S.S. Shebl (2007). Effect of silica fume and metakaoline pozzolana on the performance of blended cement pastes against fire. Ceramics Silikaty, 51(1), 40. Search in Google Scholar

Duda, W.H. (1977). Manual tecnológico del Cemento. Reverte. Search in Google Scholar

Shvarzman, A., et al. (2003). The effect of dehydroxylation/amorphization degree on pozzolanic activity of kaolinite. Cement and Concrete Research, 33(3), 405–416.10.1016/S0008-8846(02)00975-4 Search in Google Scholar

Tironi, A., et al. (2012). Kaolinitic calcined clays: Factors affecting its performance as pozzolans. Construction and Building Materials, 28(1), 276–281.10.1016/j.conbuildmat.2011.08.064 Search in Google Scholar

Ramezanianpour, A. and H.B. Jovein. (2012). Influence of metakaolin as supplementary cementing material on strength and durability of concretes. Construction and Building materials, 30, 470–479.10.1016/j.conbuildmat.2011.12.050 Search in Google Scholar

Poon, C.-S., S. Kou, and L. Lam. (2006). Compressive strength, chloride diffusivity and pore structure of high performance metakaolin and silica fume concrete. Construction and building materials, 20(10), 858–865.10.1016/j.conbuildmat.2005.07.001 Search in Google Scholar

Güneyisi, E., et al. (2012). Strength, permeability and shrinkage cracking of silica fume and metakaolin concretes. Construction and Building Materials, 34, 120–130.10.1016/j.conbuildmat.2012.02.017 Search in Google Scholar

Kim, H.-S., S.-H. Lee, and H.-Y. Moon (2007). Strength properties and durability aspects of high strength concrete using Korean metakaolin. Construction and building materials, 21(6), 1229–1237.10.1016/j.conbuildmat.2006.05.007 Search in Google Scholar

Khatib, J. and J. Hibbert (2005). Selected engineering properties of concrete incorporating slag and metakaolin. Construction and building materials, 19(6), 460–472.10.1016/j.conbuildmat.2004.07.017 Search in Google Scholar

Mermerdaş, K., et al. (2012). Strength development of concretes incorporated with metakaolin and different types of calcined kaolins. Construction and Building Materials, 37, 766–774.10.1016/j.conbuildmat.2012.07.077 Search in Google Scholar

Duan, P., et al. (2013). Effects of metakaolin, silica fume and slag on pore structure, interfacial transition zone and compressive strength of concrete. Construction and Building Materials, 44, 1–6.10.1016/j.conbuildmat.2013.02.075 Search in Google Scholar

Parande, A.K., et al. (2008). Study on strength and corrosion performance for steel embedded in metakaolin blended concrete/mortar. Construction and Building Materials, 22(3), 127–134.10.1016/j.conbuildmat.2006.10.003 Search in Google Scholar

Wong, H. and H.A. Razak. (2005). Efficiency of calcined kaolin and silica fume as cement replacement material for strength performance. Cement and Concrete Research, 35(4), 696–702.10.1016/j.cemconres.2004.05.051 Search in Google Scholar

Khatib, J. (2008). Metakaolin concrete at a low water to binder ratio. Construction and Building Materials, 22(8), 1691–1700.10.1016/j.conbuildmat.2007.06.003 Search in Google Scholar

Saand, A., et al. (2016). Development of Metakaolin as a Pozzolanic Material from Local Natural Material, Soorh. Arabian Journal for Science and Engineering, 41(12), 4937–4944.10.1007/s13369-016-2216-1 Search in Google Scholar

Wild, S., J.M. Khatib, and A. Jones. (1996). Relative strength, pozzolanic activity and cement hydration in superplasticised metakaolin concrete. Cement and concrete research, 26(10), 1537–1544.10.1016/0008-8846(96)00148-2 Search in Google Scholar

Güneyisi, E., M. Gesoğlu, and K. Mermerdaş. (2008). Improving strength, drying shrinkage, and pore structure of concrete using metakaolin. Materials and Structures, 41(5), 937–949.10.1617/s11527-007-9296-z Search in Google Scholar

Brooks, J. and M.M. Johari. (2001). Effect of metakaolin on creep and shrinkage of concrete. Cement and Concrete Composites, 23(6), 495–502.10.1016/S0958-9465(00)00095-0 Search in Google Scholar

Wild, S., J. Khatib, and L. Roose. (1998). Chemical shrinkage and autogenous shrinkage of Portland cement-metakaolin pastes. Advances in Cement Research, 10(3), 109–119.10.1680/adcr.1998.10.3.109 Search in Google Scholar

Kinuthia, J., et al. (2000). Self-compensating autogenous shrinkage in Portland cement–metakaolin–fly ash pastes. Advances in cement research, 12(1), 35–43.10.1680/adcr.2000.12.1.35 Search in Google Scholar

Tironi, A., et al. (2013). Assessment of pozzolanic activity of different calcined clays. Cement and Concrete Composites, 37, 319–327.10.1016/j.cemconcomp.2013.01.002 Search in Google Scholar

Mermerdaş, K., et al. (2013). Experimental evaluation and modeling of drying shrinkage behavior of metakaolin and calcined kaolin blended concretes. Construction and Building Materials, 43, 337–347.10.1016/j.conbuildmat.2013.02.047 Search in Google Scholar

Ding, J.-T. and Z. Li. (2002). Effects of metakaolin and silica fume on properties of concrete. ACI Materials Journal, 99(4), 393–398. Search in Google Scholar

Zhang, M. and V.M. Malhotra. (1995). Characteristics of a thermally activated alumino-silicate pozzolanic material and its use in concrete. Cement and Concrete Research, 25(8), 1713–1725.10.1016/0008-8846(95)00167-0 Search in Google Scholar

Keleştemur, O. and B. Demirel. (2015). Effect of metakaolin on the corrosion resistance of structural lightweight concrete. Construction and Building Materials, 81, 172–178.10.1016/j.conbuildmat.2015.02.049 Search in Google Scholar

Ramli, M.B. and O.R. Alonge. (2016). Characterization of metakaolin and study on early age mechanical strength of hybrid cementitious composites. Construction and Building Materials, 121, 599–611.10.1016/j.conbuildmat.2016.06.039 Search in Google Scholar

eISSN:
1899-0142
Lingua:
Inglese
Frequenza di pubblicazione:
4 volte all'anno
Argomenti della rivista:
Architecture and Design, Architecture, Architects, Buildings