References
- Aginam, C.H., Chidolue, C.A. and Kwakire, C. (2013), "Investigating the effects of coarse aggregate types on the compressive strength of concrete", Int. J. Eng. Res. Appl., 3(4), 1140-1144.
- Amudhavalli, N.K. and Mathew, J. (2012), "Effect of silica fume on strength and durability parameters in concrete", Int. J. Eng. Sci. Emerg. Technol., 3(1), 28-35.
- Bansal, R., Singh, V. and Pareek, R.K. (2015), "Effect on compressive strength with partial replacement of fly ash", Int. J. Emerg. Technol., 6(1), 1-6. https://doi.org/10.14716/ijtech.v6i1.777
- Debabrata, P. and Dutta, D. (2014), "Properties exploration of conventional concrete after silica supplementation", Int. J. Innov. Res. Sci. Eng. Technol., 3(1), 8431-8435.
- Ghorpade Vaishali, G., Rao Sudharsana, H. and Beulah, M. (2012), "Development of genetic algorithm based neural network model for predicting workability of high performance concrete" Int. J. Res. Rev. Appl. Math. Comput. Sci., 2(5), 40-50.
- Ghutke Vishal, S. and Bhandari Pranita, S. (2014), "Influence of silica fume on concrete", IOSR J. Mech. Civil Eng., 44-47.
- Kanthe, V.N. (2013), "Use of waste Plaster of Paris in concrete", Int. J. Innov. Res. Develop., 2(3), 855-862.
- Mansour and Saravanan (2015), "Experimental study on concrete by oartial replacement of fine aggregate with rubber", Int. J., 1, 60-64.
- Namagga, C. and Atadero, R.A. (2009) "Optimization of fly ash in concrete: High lime fly ash as a replacement for cement and filler material", World of Coal Ash Conference, Lexington, May.
- Namyong, J., Sangchun, Y. and Hongbum, C. (2004), "Prediction of compressive strength of In-situ concrete based on mixture proportions", J. Asian Arch. Build. Eng., 3(1), 9-16. https://doi.org/10.3130/jaabe.3.9
- Prasad, R., Anuradha, V. and Rahul, N.V. (2016), "Partial replacement of natural aggregates with reclaimed rubber in cement concrete", SSRG Int. J. Civil Eng., 3(4), 6-11.
- Pratik, P. and Indrajit, P. (2013), "Effect of partial replacement of cement with silica fume and cellulose fiber on workability and compressive strength of high performance concrete", Ind. J. Appl. Res., 3 (7), 263-264. https://doi.org/10.15373/2249555X/JULY2013/82
- Sharma, A., Gupta, A., Varma, V. and Singh, B. (2014), "Variation of different percentage of silica fume on concrete mechanical properties", Int. J. Recent Res. Aspect., 1(1), 50-53
- Siddique, R. and Iqbal Khan, M. (2011), Silica Fume, Supplementary Cementitious Materials, Springer, Berlin
- Swapnil, S., Piyush, S. and Mohod, M.V. (2016), "Use of fly ash as partial replacement of cement in concrete pavements", Int. J. Civil Eng., 60-65.
- Yadav, R.N. (2008), "A study on Plaster of Paris as an additive on some properties of magnesium oxychloride flooring composition", Int. J. Chem. Sci., 6 (3), 1646-1652.
- Youssf, O., Gawady El, M.A., Mills, J.E. and Ma, X. (2014), "Prediction of crumb rubber concrete strength", Australasian Conference on the Mechanics of Structures and Materials, New South Wales, December.
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