Determination of the Compressive Strength of Concrete from Binary Cement and Ternary Aggregates
- 1 Department of Civil Engineering, Federal University of Technology, Akure, Nigeria
- 2 Department of Civil Engineering, Federal University of Technology, Akure, Nigeria
Abstract
One of the most active fields of research embraced by many disciplines, including civil engineering, is material reuse. It is known that ceramics wastes from various construction and demolition sites and manufacturing processes are dumped away into the environment, resulting in the pollution that threatens both agriculture and public health. Therefore, the utilization of ceramic waste in construction industries would help to protect the environment from such pollutions. This paper presents the results of an experimental analysis of the effects of partial replacement of coarse aggregates, fine aggregates, and ordinary Portland cement with the ceramic waste, at percentage levels of 0%, 5%, 10%, and 20%; and the assessment of the strength property of the concrete produced with optimum combination of the constituents. Compressive strengths of this concrete were determined at 7, 28, and 56 days of curing using 150 × 150 × 150 mm cube specimens. Test results showed that the compressive strength of the concrete decreased as the content of ceramic waste present in the concrete increased. Thus, concrete produced from the partial replacement of ordinary Portland cement with ground ceramics gave compressive strengths of 16.6 N/mm 2 and 13.4 N/mm 2 at 5% and 20% replacement levels respectively. Similarly, the compressive strengths of concrete from the partial replacement of sand with fine ceramics were 13.8 N/mm 2 and 10.9 N/mm 2 for 5% and 20% replacements respectively. For 5% and 20% replacement levels of granite with crushed ceramics in concrete gave a compressive strength of 11.6 N/mm 2 and 9.7 N/mm 2 , respectively. For concrete derived from the partial replacement of stone dust with fine ceramics, the compressive strengths were 19.6 N/mm 2 and 18.10 N/mm 2 respectively for 5% and 20%. For concrete produced from the partial replacement of bush gravel with crushed ceramics, the compressive strengths obtained were 10.9 N/mm 2 and 8.98 N/mm 2 respectively for 5% and 20% replacements. Finally, the concrete derived from the optimal combination of binary cement, ternary fine, and coarse aggregate had a compressive strength of 22.20 N/mm 2 which is higher than the compressive strength of the control mixture at 18.10 N/mm 2 . The result of the ANOVA carried out showed that the compressive strength obtained for each partial replacement of different components is statistically significant at 5%, i.e. the change in the compressive strength of the concrete produced is due to the presence of ceramic waste.
- Neville, A. (2011) Properties of Concrete. John Wiley Publishers, New York.
- Arum, C., Ikumapayi, C.M. and Aralepo, O.G. (2013) Ashes of Biogenic Wastes—Pozzolanicity, Prospects for Use, and Effects on Some Engineering Properties of Concrete. Materials Sciences and Applications, 4, 521-527. https://doi.org/10.4236/msa.2013.49064
- Mark, O.G., Ede, A.N., Olofinnade, O., Bamigboye, G. Okeke, C., Oyebisi, S. and Arum, C. (2019) Influence of Some Selected Supplementary Cementitious Materials on Workability and Compressive Strength of Concrete—A Review. 1st International Conference on Sustainable Infrastructural Development, Nigeria, 24-28 June 2019. https://doi.org/10.1088/1757-899X/640/1/012071
- Ede, A.N., Bamigboye, G.O., Olofinnade, O.M. and Shittu, K. (2016) "Influence of Portland Cement Brands and Aggregates Sizes on the Compressive Strength of Normal Concrete. Journal of Materials Science, 866, 78-82. https://doi.org/10.4028/www.scientific.net/MSF.866.78
- Awoyera, P.O., Olofinnade, O.M., Busari, A.A., Akinwumi, I.I., Oyefesobi, M. and Ikemefuna, M. (2016) Performance of Steel Slag Aggregate Concrete with Varied Water-Cement Ratio. Journal of Engineering Science and Technology, 78, 125-131. https://doi.org/10.11113/jt.v78.8819
- Qu, S. and Zheng, B. (2014) Application of Ceramic Wastes in Concrete. The Open Civil Engineering Journal, 8, 368-372. https://doi.org/10.2174/1874149501408010368
- Ehikhuenmen, S.O. and Ikponmwosa, E.E. (2017) "The Effect of Ceramics Waste as Coarse Aggregate on Strength Properties of Concrete. Nigerian Journal of Technology (NIJOTECH), 36, 691-696.
- Rawaid, K., Abdul, J., Irshad , A., Wajid, K., Akhtar, N.H. and Jahangir, M. (2012) Reduction in Environmental Problems Using Rice-Husk Ash in Concrete Husk Ash in Concrete. Construction and Building Materials, 30, 360-365. https://doi.org/10.1016/j.conbuildmat.2011.11.028
- BS EN (2000) Specification for Portland Cement. British Standards Institute, London.
- Geochemistry Technical Note (2019) Reference Tables: Element to Oxide Conversion Factors. ALS Global.
- BS EN (1999) Tests for Mechanical and Physical Properties of Aggregates. Determination of the Water Content by Drying in a Ventilated Oven. British Standards Institution.
- BS (1985) Testing Aggregates. Method for Determination of Particle Size Distribution. British Standards Institution, London.