Use of Plant-Based Accelerator to Enhance Rate of Gain of Strength of Kenyan Blended Cement
- 1 Department of Sustainable Materials Research Technology Centre, Jomo Kenyatta University of Agriculture and Technology, Juja, Kiambu County, Central Kenya, Kenya
- 2 Department of Sustainable Materials Research Technology Centre, Jomo Kenyatta University of Agriculture and Technology, Juja, Kiambu County, Central Kenya, Kenya
- 3 Department of Civil Engineering, Multimedia University of Kenya, Nairobi, Kenya
Abstract
Concrete is the most widely used construction material in the world. The situation in the country is not an exception as most of the infrastructures in Kenya such as buildings, bridges, concrete drainage among others, are constructed using concrete. Sadly, the failure of buildings and other concrete structu res is very common in Kenya. Blended Portland cement type 32.5 N/mm 2 is the most widely used concrete binder material and is found in all parts of the country. Despite blended cement CEM 32.5 being the most commonly used cement type in construction industry in Kenya and most developing countries as a result of its low price and availability locally, its strength gain has been proven to be lower compared to when other types of cement are used due to quantity of pozzolanic material added to the blend. This paper outlines findings of an experimental investigation on the use of cypress tree extract as an accelerator to enhance rate of gain of strength on Kenyan blended cements. Six different blended cement brands locally available were used during the study. Cement chemical analysis was done using X-ray diffraction method while for the cypress extract, Atomic Absorption Spectrometer machine was used. Physical and mechanical properties were checked based on the British standards. The generation of the concrete mix design was done using the British DOE method and concrete was tested for the compressive strength at 7, 14, 21, 28, 56 and 90 days. It was observed that 15% dosage of the extract expressed as a mass percentage of the cement content gives the most improved compressive strength of concrete, 10.4% at 7 days and 9.5% at 28 days hence the optimum. It was further noted that when Cypress tree extract is used as an accelerator in the mix, the blended cement concrete achieves the design strength at 27 days saving 10 days of the project duration compared to when no accelerator is used while the ultimate strength is achieved at 67 days. The study therefore recommends the use of the cypress tree bark extract at a dosage of 15%, by mass, of the cement content as an accelerator when the structure is to be loaded at 28 days and waiting up to 39 days before loading the structure if no accelerator is used for blended cement concrete.
- Kioko, J.M. (2014) Causes of Building Failures in Africa: A Case Study on Collapsing Structures in Kenya. IOSR Journal of Mechanical and Civil Engineering, 11, 9-10. https://doi.org/10.9790/1684-11370910
- Adewuyi, A.P., Olaniyi, O.A., Ibrahim, K.A. and Babalola, D.D. (2017) Physical Properties and Compressive Strength of Concrete Exposed to Progressive Heat. Journal of Multidisciplinary Engineering Science Studies, 3, 2084-2090.
- Oyawa, W.O., Gathimba, N.K. and Manguriu, G.N. (2016) Structural Response of Composite Concrete Filled Plastic Tubes in Compression. Steel and Composite Structures, 21, 589-604. https://doi.org/10.12989/scs.2016.21.3.589
- Okumu, V.A., Shitote, S.M. and Oyawa, W.O. (2017) Influence of Constituent Materials Properties on the Compressive Strength of in Situ Concrete in Kenya. Open Journal of Civil Engineering, 7, 63-81. https://doi.org/10.4236/ojce.2017.71004
- Adewole, K.K., Olutoge, F.A. and Habib, H. (2014) Effect of Nigerian Portland-Limestone Cement Grades on Concrete Compressive Strength. International Journal of Civil and Environmental Engineering, 8, 1199-1202.
- Feng, Y., Zhang, Q., Chen, Q., Wang, D., Guo, H., Liu, L. and Yang, Q. (2019) Hydration and Strength Development in Blended Cement with Ultrafine Granulated Copper Slag. PLOS ONE, 14, e0215677. https://doi.org/10.1371/journal.pone.0215677
- Okumu, V.A. (2018) Suitability of the Kenyan Blended Portland Cements for Structural Concrete Production. Journal of Sustainable Research in Engineering, 4, 55-68.
- Fapohunda, C.A., Famodimu, B.I., Adigo, B.C. and Jeje, A.S. (2020) Effect of Changing Cement Grade on the Properties of Structural Concrete. Nigerian Journal of Technological Development, 17, 197-204. https://doi.org/10.4314/njtd.v17i3.6
- Olonade, K.A., Jaji, M.B., Rasak, S.A. and Ojo, B. (2015) Comparative Quality Evaluation of Cement Brands Used in South-West Nigeria. Academy Journal of Science and Engineering, 9, 53-63.
- Hiremath, P.N. (2019) Early-Strength Development of Blended Concrete under Different Curing Conditions. Emerging Materials Research, 9, 59-64. https://doi.org/10.1680/jemmr.19.00066
- Bamigboye, G.O., Ede, A.N., Egwuatu, C., Jolayemi, J. and Olowu, O. (2015) Assessment of Compressive Strength of Concrete Produced from Different Brands of Portland Cement. Civil and Environmental Research, 7, 31-39.
- Okumu, V.A., Oyawa, W.O. and Shitote, S.M. (2016) The Effect of the Properties of Constituent Materials on the Quality of Concrete in Kenya. Proceedings of the 2016 Annual Conference on Sustainable Research and Innovation, Nairobi, 4-6 May 2016, 225-230.