A STUDY ON CONCRETE CONTAINING THE SANDSTONE SLURRY AND FLY ASH PARTIALLY REPLACED WITH SAND AND CEMENT
DOI:
https://doi.org/10.55766/sujst-2023-04-e0927Keywords:
Compressive strength, Durability Properties, Flexural Strength, Fly Ash, Sand Stone Slurry, Sulfate bath etc.Abstract
Now a day’s the waste is produced in immense amounts during construction and coal burning, this study mainly focused on the utilization of sandstone slurry produced during sandstone cutting and Class-F fly ash produced by coal-burning. In this study a deep analysis is taken after 28 days’ testing, six concrete mixes were prepared one is conventional as M20, and trial mix batches are a total of five, three specimens were taken from each concrete mix separately to determine the engineering properties of the prepared specimen. Fly ash partly replaced with the cement in % of 5%,10%,15%,20%,25% and Sandstone slurry partially replaced with sand in % of 10%,20%,30%,40%,50%. Water cement ration took .4-.7%, after 28 days specimens were tested of water curing at ±2, 270C. Sulfate bath is prepared for durability test with 5% Na2SO4 and prepared specimen left for 28 days curing in prepared sulfate bath after completion of 28 days’ normal water curing, the specimen was tested after 56-day curing, acidic nature was maintained for prepared bath, on daily basis pH value has been noted if found more than 6.9 pH than sulphuric acid is added to keep the acidic nature of prepared bath. Only 5% FA and 10% SSS specimen show strength increment up to 14.477% and after sulfate bath, no change was found in specimen’s volume. In compressive strength maximum strength increased up to 19.39%, from 5% FA and 10% SSS replacement. In splitting tensile strength maximum strength increased 11.37% with 10% FA and 20% SSS.
References
Binici, H., Shah, T., Aksogan, O., and Kaplan, H. (2008). Durability of concrete made with granite and marble as recycle aggregates. Journal of Materials Processing Technology, 208(1-3):299-308. https://doi.org/10.1016/j.jmatprotec.2007.12.120
Elinwa, A.U., and Mahmood, Y.A. (2002). Ash from timber waste as cement replacement material. Cement and Concrete Composites, 24(2):219-222. https://doi.org/10.1016/S0958-9465(01)00039-7
Harbec, D., Zidol, A., Hamou, A.T., and Gitzhofer, F. (2017). Mechanical and durability properties of high-performance GF concrete and mortar. Construction and Building Material, 134:142-156. https://doi.org/10.1016/j.conbuildmat.2016.12.018
Hebhoub, H., Aoun, H., Belachia, M., Houari, H., and Ghorbel, E. (2011). Use of waste marble aggregates in concrete. Construction and Building Materials, 25(3):1,167-1,171. https://doi.org/10.1016/j.conbuildmat.2010.09.037
IS 1199-1959 methods of sampling and analysis of concrete.
IS 2386 (Part-I)-1963 fine aggregate particle size and shape.
IS 2386 (Part-III)-1963 Methods of test for aggregate for concrete.
IS 383-1970 Specification for fine and coarse aggregate from natural sources for concrete.
IS 4031-1988 (Part- II, III, IV, V) Consistency, Setting time, Fineness, Specific gravity test for cement.
IS 516-1959 methods of test for the strength of concrete.
IS 5816-1999 splitting tensile strength of concrete method of test.
IS 8112-2013 Ordinary Portland Cement 43 Grade- specification.
Kala, F., and Partheeban, P. (2010). Granite powder concrete. Indian Journal od Science and Technology, 3(3):311-317. https://doi.org/10.17485/ijst/2010/v3i3.6
Kumar, L., Thanappan, S., Mekonnen, E., Mulugeta, D. and Chala, G. (2021). Effect of fly ash and sandstone slurry on mechanical properties of concrete materials. Materials today proceedings, 45(2):2,878-2,882. https://doi.org/10.1016/j.matpr.2020.11.856
Limeira, J., Etxeberria, M., Agullo, L., and Molina, D. (2011). Mechanical and durability properties of concrete made with dredged marine sand. Construction and Building Materials, 25(11):4,165-4,174. https://doi.org/10.1016/j.conbuildmat.2011.04.053
Mukuna P. Mubiayi. (2013). Characterisation of sandstone: Mineralogy and Physical Properties, Proceedings of the World Congress on Engineering; July 3-5, 2013; London, U.K. Vol. 3.
Prabhu, G.G., Bang, J.M., Lee, B.J., Hyun, J.H. and Kim, Y.Y. (2015). Mechanical and Durability Properties of Concrete Made with Used Foundry Sand as Fine Aggregate. Advance in Material Science Engineering, 2015(ID161753):11. https://doi.org/10.1155/2015/161753
Quadir, U.M., Islam, K., Billah, A.H.M.M., and Alam, M.S. (2016). Mechanical and durability properties of concrete using recycled granulated steel. Concrete and Building Materials, 123:174-183. https://doi.org/10.1016/j.conbuildmat.2016.06.139
Siddique, R. and Noumowe, A. (2008). Utilization of spent foundry sand in controlled low-strength materials and concrete. Resources, Conservation and Recycling,
(1-2):27-35. https://doi.org/10.1016/j.resconrec.2008.09.007
Siddique, R., Schutter, G.D., and Noumowe, A. (2009). Effect of used foundry sand on the mechanical properties of concrete. Construction and Building Materials, 23(2):976-980. https://doi.org/10.1016/j.conbuildmat.2008.05.005
Tangchirapat, W., Saeting, T., Jaturapitakkul, C., Kiattikomol, K., and Siripanichchgorn, A. (2007). Use of waste ash from palm oil industry in concrete. Waste Management, 27(1):81-88. https://doi.org/10.1016/j.wasman.2005.12.014
Temiz H., and Karakeçi, A.Y. (2002). An investigation on microstructure of cement paste containing fly ash and silica füme. Cement and Concrete Research, 32(7):1,131-1,132. https://doi.org/10.1016/S0008-8846(02)00749-4
Topcu, I.B., Bilir, T., and Uygunoglu, T. (2009). Effect of waste marble dust content as filler on properties of self-compacting concrete. Construction and Building Materials, 23(5):1,947-1,953. https://doi.org/10.1016/j.conbuildmat.2008.09.007
Uysal, M., Yilmaz, K., and Ipek, M. (2012). The effect of mineral admixtures on mechanical properties, chloride ion permeability and impermeability of self-compacting concrete. Construction and Building Materials, 27(1):263-270. https://doi.org/10.1016/j.conbuildmat.2011.07.049
Uzbas, B., and Aydin, A.C. (2019). Analysis of Fly Ash Concrete with Scanning Electron Microscopy and X-ray diffraction. Advances in Science and Technology Research Journal, 13(4):100-110. https://doi.org/10.12913/22998624/114178.
Vefago, L.H.M., and Avellaneda, J. (2013). Recycling concepts and the index of recyclability for building materials. Resources, Conservation and Recycling, 72(127):135. https://doi.org/10.1016/j.resconrec.2012.12.015
Vijayalakshmi, M., Sekar, A.S.S., and Prabhu, G.G. (2013). Strength and durability properties of concrete made with granite industry waste. Construction and Building Materials, 46:1-7. https://doi.org/10.1016/j.conbuildmat.2013.04.018








