Physico-mechanical Properties of Ecofriendly Bricks using Recycled Polyethylene Terephthalate (PET) and Low-Density Polyethylene (LDPE) Wastes as Binders

Authors

  • Yusuf Olanrewaju Busari University of Ilorin
  • Rachael omotoyosi Idowu Department of Materials & Metallurgical Engineering, University of Ilorin, Nigeria
  • Abdallah Reghioua Laboratory of Applied Chemistry and Environment, Faculty Technology, University of El-Oued, 39000 El Oued, Algeria University
  • kabir suleiman Ajao Department of Materials & Metallurgical Engineering, University of Ilorin, Nigeria
  • Surajudeen Sikiru 4School of Physics and Materials Studies, Faculty of Applied Sciences, Universiti Teknologi Mara, 40450, Shah Alam, Selangor, Malaysia
  • Yusuf Lanre Shuaib-Babata
  • Issah Sadiq Ibrahim Department of Materials & Metallurgical Engineering, University of Ilorin, Nigeria
  • Norlina Binti Mohd Abbas School of Mechanical Engineering, Universiti Teknologi MARA, 40450, Shah Alam, Malaysia
  • James O. Adegbola Department of Materials & Metallurgical Engineering, University of Ilorin, Nigeria
  • Taiwo Yahaya Department of Materials & Metallurgical Engineering, University of Ilorin, Nigeria

Keywords:

Portland cement, PET, LDPE, Brick, Co2 emmissions

Abstract

Soil-cement bricks in Nigeria are preferred for building due to environmental, technical, and economic benefits, while reinforced polymer composites are increasingly popular for their lightweight construction and biodegradability. However, the composition of Portland cement still generates environmental impacts due to CO2 emissions. Thus, this study aimed to produce eco-friendly bricks through a mixture of river sand, recycled polyethene terephthalate (PET) and low-density polyethene (LDPE) wastes that were shredded and melted as binders for the  aggregates to create bricks in various ratios (1:1, 1:2, 1:3) and hybrid of PET and LDPE ratio (1:1:2 and 1:1:4). The bricks were then air-dried and cured to solidify and bricks were evaluated using compressive strength, flexural strength, water absorption, and density measurements. The river sand sample chemical analysis revealed the sand belong to Alumino-Silicate as values for percentage clay contents. The water absorption for recycled binder was within the permissible limit between 0.4%-1.5%. Similarly, the use of both recycles PET and LDPE as a binder with river sand in ratios such as (1:1:2) enhanced the stiffness strength with mean values of 3.6 N/mm2 and 13.4%, while recycled PET as the binder in a ratio (1:3) only significantly improves compressive strength with mean values of 13.6 N/mm2 demonstrating adequate bonding and mechanical robustness.

References

Adiyanto, O., Mohamad, E., Irianto, Jaafar, R., Faishal, M., and Rasyid, M.I. (2023). Optimization of PET Particle-Reinforced Epoxy Resin Composite for Eco-Brick Application Using the Response Surface Methodology. Sustainability (Switzerland), 15 (4271).

Ahmed, S. and Ali, M. (2023). Potential Applications of Different Forms of Recycled Plastics as Construction Materials—A Review. Engineering Proceedings, 53(1).

Ait Salem, A. A., Benchouk, A. and Belayachi, N. (2023). Influence of silica fume on the mechanical, thermal and water absorption behavior of compressed earth bricks. MRS Advances, 8(17), 976–981.

Alkaysi, M. (2016). Strength and Durability of Ultra-High Performance Concrete Materials and Structures. University of Michigan.

Amjad, M. S. and Diaz-Elsayed, N. (2024). Evaluating the environmental impacts of brick production from waste plastic. Manufacturing Letters. The Author(s), 41, 1683–1695.

Arulrajah, A., Perera, S., Wong, Y.C., Horpibulsuk, S., and Maghool, F. (2020). Stiffness and flexural strength evaluation of cement stabilized PET blends with demolition wastes. Construction and Building Materials, 239.

Bamigboye, G.O., Ngene, B.U., Ademola, D., and Jolayemi, J.K. (2019). Experimental Study on the Use of Waste Polyethylene Terephthalate (PET) and River Sand in Roof Tile Production. Journal of Physics: Conference Series, 1378(4), 1–10.

Bamigboye, G.O., Nworgu, A.T., Odetoyan, A.O., Kareem, M., Enabulele, D.O., and Bassey, D.E. (2021). Sustainable use of seashells as binder in concrete production: Prospect and challenges. Journal of Building Engineering, 34(2021), 1–17.

Bharadwaaj, S.K., Jaudan, M., Kushwaha, P., Saxena, A., and Saha, B. (2024). Exploring cutting-edge approaches in plastic recycling for a greener future. Results in Engineering, 23(August).

Božič, M., Žibret, L., Kvočka, D., Pranjić, A.M., Gregorc, B., and Ducman, V. (2023). Drava river sediment in clay brick production: Characterization, properties, and environmental performance. Journal of Building Engineering, 71(March).

Carbonell Muñoz, M. Á. (2012). Compatibility of ultra-high performance concrete as repair material: bond characterization with concrete under different loading scenarios’, Master’s Thesis, Michigan Technological University, 168.

Cudzik, J. and Kropisz, K. (2024). Assessment of Utilizing Hard-to-Recycle Plastic Waste from the Packaging Sector in Architectural Design—Case Study for Experimental Building Material. Sustainability (Switzerland), 16(14).

Debele, A.D., Demeke, S., Bekele, T., and Malimo, M. (2024). Recycling and reusing potential of disposable low-density polyethylene plastic waste for flexible paver tile construction for outdoor application. Heliyon. Elsevier Ltd, 10(8).

Fatina Md Sali, N. and Deraman, R. (2019). The selection of optimum water-cement ratio for production of low thermal conductivity cement sand brick with Oil Palm Mesocarp Fibre as admixture. IOP Conference Series: Materials Science and Engineering, 601(1).

Gao, X., Yu, Q. L. and Brouwers, H. J. H. (2016). Assessing the porosity and shrinkage of alkali activated slag-fly ash composites designed applying a packing model. 119, 175–184.

Geyer, R., Jambeck, J. R. and Law, K. L. (2017). Production, use, and fate of all plastics ever made [Producción, uso y destino de todos los plásticos jamás fabricados]. Science Advances, 3(7).

Ghosh, K., Bose, S., Paul, B., and Ghosh, P. (2023). Effect of Silica Sand on the Mechanical and Durability Characteristics of Concrete. in Sil, A., N. Kontoni, D.-P., and Pancharathi, R. K. (eds) Recent Trends in Civil Engineering. Singapore: Springer Nature Singapore, 139–145.

Ghosh, T., Uekert, T., Walzberg, J., and Carpenter, A.C. (2023). Comparing Parallel Plastic-to-X Pathways and Their Role in a Circular Economy for PET Bottles. Advanced Sustainable Systems, 2300068,1–11.

Gounden, K., Mwangi, F.M., Mohan, T.P., and Kanny, K. (2024). The use of recycled high‐density polyethylene waste to manufacture eco‐friendly plastic sand bricks. SPE Polymers, 5(1), 20–34.

Hamada, H.M., Al-Attar, A., Abed, F., Beddu, S., Humada, A.M., Majdi, A., Yousif, S.T., and Thomas, B.S. (2024). Enhancing sustainability in concrete construction: A comprehensive review of plastic waste as an aggregate material. Sustainable Materials and Technologies. Elsevier B.V., 40(February).

Hameed, A.K., Alzuhair, M., A. Hashim, F., and Al Ghaban, A. (2023). Investigation Prosperities Of Brick Mixes with Chemically Depolymerized Waste polyethylene terephthalate Aggregates. Iraqi Journal of Oil and Gas Research (IJOGR), 3(1), 1–14.

Hopewell, J., Dvorak, R. and Kosior, E. (2009). Plastics recycling: Challenges and opportunities. Philosophical Transactions of the Royal Society B: Biological Sciences, 364(1526), 2115–2126.

Imseeh, W.H., Alshibli, K.A., Kenesei, P., and Sharma, H. (2023). Influence of Crystalline Structure on Strength Anisotropy of Silica Sand. in Pasternak, E. and Dyskin, A. (eds) Multiscale Processes of Instability, Deformation and Fracturing in Geomaterials. Cham: Springer Nature Switzerland, 87–98.

Modi, P. I., Gajjar, R. K. and Sharma, A. K. (2023). Development of novel un-fired masonry unit manufactured using silica-rich sandstone mining and cutting waste. Journal of Building Engineering. Elsevier Ltd, 79(September).

Murmu, A. L. and Patel, A. (2018). Towards sustainable bricks production: An overview. Construction and Building Materials. Elsevier Ltd, 165,112–125.

Nnorom, O. O., Onuegbu, G. C. and Nwanonenyi, S. C. (2023). Physico-mechanical properties of sand-plastic interlocking paving brick. Journal of Thermoplastic Composite Materials, 37(1), 192–205.

Peisino, L.E., Barbero-Barrera, M. del M., García-Castro, C.B., Kreiker, J., and Gaggino, R. (2024). Assessment of the mechanical and physical characteristics of PET bricks with different aggregates. Journal of Environmental Management, 357(November 2023).

Radkovský, F., Gawronová M. Merta V., Lichý P., Kroupová I., Kielar S., Folta M., Bradáˇc J., and Kocich R. (2022). Effect of the Composition of Hybrid Sands on the Change in Thermal Expansion. Materials, 15(17).

Ragaert, K., Delva, L. and Van Geem, K. (2017). Mechanical and chemical recycling of solid plastic waste. Waste Management. Elsevier Ltd, 69, 24–58.

Ramos Huarachi, D.A., Gonçalves, G., de Francisco, A.C., Canteri, M.H.G., and Piekarski, C.M. (2020). Life cycle assessment of traditional and alternative bricks: A review. Environmental Impact Assessment Review. Elsevier, 80(April).

Shinohara K. , Yanagisawa M. and Makida Y. (2019). Direct Observation of Long-Chain Branches in a Low-Density Polyethylene. Scientific Reports. Springer US, 9(1), 1–5.

Shuaib-Babata, Y. L. and Abdulrahaman, A. N. (2018). Evaluation of Chemical and Physico-Mechanical Properties of some Nigeria Natural Clays Samples for Foundry Applications. FUOYE Journal of Engineering and Technology, 3(2).

Sidar, C., Visar, A., Sahu, S., Anish, S., Meravi, M.S., and Garg, D.A.K. (2024). Utilization of Waste Materials for Making Plastic Bricks. International Journal of Scientific Research in Engineering & Technology, 4(April), 149–154.

Singh, A., Srivastava, A.K., Singh, G., Singh, A.D., Singh, H.K., Kumar, A., and Singh, G.K. (2023). Utilization of Plastic Waste for Developing Composite Bricks and Enhancing Mechanical Properties: A Review on Challenges and Opportunities. Advances in Polymer Technology, 6867755, 1-24.

Social Context Assessment by the Nigeria NPAP: National Gender, Equity and Inclusion Analysis of the Plastic Value Chain and Impacts of Plastic Pollution (2023). https://weforum.ent.box.com/s/q6fxebe7ez6tm9v2wx2f5nk7v1efmr12

Tai, Y.-S., El-Tawil, S., Meng, B., and Hansen, W. (2020). Parameters Influencing Fluidity of UHPC and Their Effect on Mechanical and Durability Properties. Journal of Materials in Civil Engineering, 32(10).

Wahid, S. A., Rawi, S. M. and Desa, N. M. (2015). Utilization of Plastic Waste in Foundry Sand Bricks. Journal for Basic and Applied Scientific Research, 5(IV), 35–44.

Wille, K. and Boisvert-cotulio, C. (2015). Material efficiency in the design of ultra-high performance concrete. Construction and Building Materials. Elsevier Ltd, 86, 33–43.

Yadav, R.J., Solanki, S., Saharna, S., Bhardwaj, J., and Ramvijay (2020). Pyrolysis of Waste Plastic into Fuel. International Journal of Recent Technology and Engineering (IJRTE), 9(1), 2600–2605.

Published

2024-12-29

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