Effect of Flaky Plastic Particle Size and Volume Used as Partial Replacement of Gravel on Compressive Strength and Density of Concrete Mix — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Effect of Flaky Plastic Particle Size and Volume Used as Partial Replacement of Gravel on Compressive Strength and Density of Concrete Mix
Department of Chemical Engineering, Faculty of Engineering, University of Abuja, Abuja, Nigeria
,
Department of Chemical Engineering, Faculty of Engineering, University of Abuja, Abuja, Nigeria
,
Department of Civil Engineering, Faculty of Engineering, University of Abuja, Abuja, Nigeria
1 Department of Chemical Engineering, Faculty of Engineering, University of Abuja, Abuja, Nigeria
2 Department of Chemical Engineering, Faculty of Engineering, University of Abuja, Abuja, Nigeria
3 Department of Civil Engineering, Faculty of Engineering, University of Abuja, Abuja, Nigeria
Common ways of disposing waste plastic such as incineration and landfilling have negative impacts on the environment. Partial replacement of natural aggregate in concrete with waste plastic including polyethylene terephthalate (PET) is more environmental friendly and sustainable. The effect of adding 5% to 20% waste plastic by volume of natural coarse aggregate (“gravel”) and plastic particle size (3 to 7 mm) on the density and compressive strength of plastic-concrete mix after 28 days of curing was studied. The results showed that density of the concrete decreased from 2406.7 to 2286.7 kg/m 3 as waste plastic increased from 5% to 20% v/v compared with 2443.3 kg/m 3 recorded by concrete without waste plastic. Change in particle size from 3 to 7 mm has no significant effect on the density of the plastic-concrete mix. The compressive strength decreased as the volume and particle size of waste plastic increased. When waste plastic volume changed from 5% to 20% v/v, the compressive strength decreased from 20.5 to 15 MPa, 18.6 to 14.3 MPa and 17.2 to 13.8 MPa for 3, 5 and 7 mm waste plastic particle size respectively while the concrete without plastic has 21.33 MPa. Therefore, the addition of 5% (v/v gravel) of flaky waste plastic in the concrete produces a lightweight concrete which could offer economic benefit without substantially reducing the compressive strength of the plastic-concrete mix.
Suganthy, P., Chandrasekar, D. and Kumar, S.P.K. (2013) Utilization of Pulverized Plastic in Cement Concrete as Fine Aggregate. International Journal of Research in Engineering and Technology, 2, 1015-1018.
Williams, E.A. and Williams, P.T. (1997) Analysis of Products Derived from the Fast Pyrolysis of Plastic Waste. Journal of Analytical and Applied Pyrolysis, 40, 347-363. https://doi.org/10.1016/S0165-2370(97)00048-X
Zhao, R., Torley, P. and Halley, P.J. (2008) Emerging Biodegradable Materials: Starch and Protein-Based Bio-Nanocomposites. Journal of Materials Science, 43, 3058-3071. https://doi.org/10.1007/s10853-007-2434-8
Saikia, N. and De Brito, J. (2012) Use of Plastic Waste as Aggregate in Cement Mortar and Concrete Preparation: A Review. Construction and Building Materials, 34, 385-401. https://doi.org/10.1016/j.conbuildmat.2012.02.066
Jibrael, M.A. and Peter, F. (2016) Strength and Behaviour of Concrete Contains Waste Plastic. Journal of Ecosystem and Ecography, 6, 186. https://doi.org/10.4172/2157-7625.1000186
Merbouh, M., Glaoui, B., Mazouz, A. and Belhachemi, M. (2014) Use the Plastic Bag Waste in Cement Concrete. Waste Management Symposium, Istanbul, 28-30 April 2014, 1-6.
Malak, K.R. (2015) Use of Waste Plastic in Concrete Mixture as Aggregate Replacement. International Journal of Education and Information Technologies, 3, 115-118.
Sadiq, M.M. and Khattak, M.R. (2015) Literature Review on Different Plastic Waste Materials use in Concrete. Journal of Emerging Technologies and Innovative Research, 2, 1800-1803.
BS EN 197-1 (2011) Cement Part 1: Composition, Specifications and Conformity Criteria for Common Cements. British Standard Institute, London.
BS EN 12620:2002+A1 (2008) Aggregates for Concrete. British Standard Institute, London.
BS 8500-2 (2015) Specification for Constituent Materials and Concrete. British Standard Institute, London.
ASTM C143/C143M-15a (2015) Standard Test Method for Slump of Hydraulic-Cement Concrete. ASTM International, West Conshohocken.
BS EN 12390-4 (2002) Testing Hardened Concrete: Compressive Strength of Test Specimens.
Ismail, Z.Z. and Al-Hashmi, E.A. (2008) Use of Waste Plastic in Concrete Mixture as Aggregate Replacement. Waste Management, 28, 2041-2047. https://doi.org/10.1016/j.wasman.2007.08.023
Saikia, N. and De Brito, J. (2014) Mechanical Properties and Abrasion Behaviour of Concrete Containing Shredded PET Bottle Waste as a Partial Substitution of Natural Aggregate. Construction and Building Materials, 52, 236-244. https://doi.org/10.1016/j.conbuildmat.2013.11.049
Siddique, R., Khatib, J. and Kaur, I. (2008) Use of Recycled Plastic in Concrete: A Review. Waste Manage, 28, 1835-1852. https://doi.org/10.1016/j.wasman.2007.09.011
Sikalidis, C.A., Zabaniotou, A.A. and Famellos, S.P. (2002) Utilization of Municipal Solid Wastes for Mortar Production. Resources, Conservation and Recycling, 36, 155-167. https://doi.org/10.1016/S0921-3449(02)00018-6
Ferreira, L., Brito, J.D. and Saikia, N. (2012) Influence of Curing Conditions on Mechanical Performance of Concrete Containing Recycled Plastic Aggregate. Construction and Building Materials, 36, 196-204. https://doi.org/10.1016/j.conbuildmat.2012.02.098
Avila, A.F. and Duarte, M.V. (2003) A Mechanical Analysis on Recycled PET/HDPE Composites. Polymer Degradation and Stability, 80, 373-382. https://doi.org/10.1016/S0141-3910(03)00025-9
Silva, R.V., De Brito, J. and Nabajyoti, S. (2013) Influence of Curing Conditions on the Durability-Related Performance of Concrete Made with Selected Plastic Waste Aggregates. Cement and Concrete Composites, 35, 23-31. https://doi.org/10.1016/j.cemconcomp.2012.08.017
Usman, M., Javaid, A. and Panchal, S. (2015) Feasibility of Waste Polythene Bags in Concrete. International Journal of Engineering Trends and Technology, 23, 317-319. https://doi.org/10.14445/22315381/IJETT-V23P259
Ramadevi, K. and Manju, R. (2012) Experimental Investigation on the Properties of Concrete with Plastic PET Fibres as Fine Aggregates. International Journal of Emerging Technology and Advanced Engineering, 2, 42-46.
Frigione, M. (2010) Recycling of PET Bottles as Fine Aggregate in Concrete. Waste Management, 30, 1101-1106. https://doi.org/10.1016/j.wasman.2010.01.030
Albano, C., Camacho, N., Hendez, M., Matheus, A. and Gutierrez, A. (2009) Influence of Content and Particle Size of Waste PET Bottles on Concrete Behaviour at Different Water/Cement Ratio. Waste Management, 29, 2707-2716. https://doi.org/10.1016/j.wasman.2009.05.007
Ramesh, R.L., Asharani, K.M., Dhiraj, K.V.C., Pruthvi, S.D.S. and Sahana, R. (2012) Recycled Plastics Used as Coarse Aggregate for Constructional Concrete. SJB Institute of Technology, Bangalore.
Patil, P.S., Mali, J.R., Tapkire, G.V. and Kumavat, H.R. (2014) Innovative Techniques of Waste Plastic Used in Concrete Mixture. International Journal of Research in Engineering and Technology, 3, 29-32. https://doi.org/10.15623/ijret.2014.0321008
Batayneh, M., Marie, I. and Asi, I. (2007). Use of Selected Waste Materials in Concrete Mixes. Waste Management, 27, 1870-1876. https://doi.org/10.1016/j.wasman.2006.07.026
Choi, Y., Moon, D., kim, Y. and Lachemi, M. (2005). Characteristics of Mortar and Concrete Containing Fine Aggregate Manufactured from Recycled Waste PET Bottles. Construction and Building Material, 23, 2829-2835. https://doi.org/10.1016/j.conbuildmat.2009.02.036
Ghernouti, Y., et al. (2011) Use of Recycled Plastic Bag Waste in the Concrete. Journal of International Scientific Publications: Materials, Methods and Technologies, 8, 480-487.