Experimental Comparison of Catalytic and Non-Catalytic Pyrolysis of Mixed Plastic Waste for Enhanced Pyrolysis Oil Production in a Fixed-Bed Reactor
DOI:
https://doi.org/10.33003/fjs-2026-1018-5626Keywords:
Mixed plastic waste, Catalytic pyrolysis, Fixed-bed reactor, Pyrolysis oil, Waste to energy, Sustainable waste managementAbstract
The increasing generation of mixed plastic waste (MPW) has become a major environmental challenge due to inadequate waste management practices and the non-biodegradable nature of plastics. This study experimentally investigated the performance of catalytic and non-catalytic pyrolysis for converting mixed plastic waste collected from Agbor Town, Delta State, Nigeria, into liquid hydrocarbon fuel using a laboratory scale fixed bed reactor. The feedstock, comprising PET, HDPE, PVC, LDPE, PP, PS, and other post-consumer plastics, was characterized through proximate and ultimate analyses before pyrolysis. The results revealed low moisture (0.215%) and ash (0.212%) contents, high volatile matter (98.35%), and high carbon content (82.86%), indicating excellent fuel potential. Comparative experiments demonstrated that catalyst-assisted pyrolysis consistently enhanced pyrolysis oil production, yielding a mean oil output of 2.552 kg compared with 2.408 kg for non-catalytic pyrolysis. This result represents an average improvement of 5.98%. The catalyst also increased the maximum oil yield from 4.16 to 4.98 kg and exhibited greater effectiveness at higher feedstock loadings. These findings demonstrate that catalytic pyrolysis is an efficient and sustainable waste to energy technology. Besides, catalytic pyrolysis can improve pyrolysis oil recovery, thereby reduce environmental pollution, and promote circular economy principles for effective municipal plastic waste management in developing countries.
References
Ali, S.S., Elsamahy, T., Koutra, E., Kornaros, M., El-Sheekh, M., Abdelkarim, E.A., Zhu, D., Sun, J. (2021). Degradation of Conventional Plastic Wastes in the Environment: A Review on Current Status of Knowledge and Future Perspectives of Disposal. Sci. Total Environ., 771, 144719.
Armenise, S., SyieLuing, W., Ramírez-Velasquez, J. M., Launay, F., Wuebben, D., Ngadi, N., Rams, J., & Munoz, M. (2021). Plastic waste recycling via pyrolysis: A bibliometric survey and literature review. Journal of Analytical and Applied Pyrolysis, 158, Article 105265. https://doi.org/10. 1016/j.jaap.2021.105265
Askham, C., Pauna, V. H., Boulay, A. M., Fantke, P., Jolliet, O., Lavoie, J., Booth, A. M., Coutris, C., Verones, F., Weber, M., & Vijver, M. G. (2023). Generating environmental sampling and testing data for micro-and nanoplastics for use in life cycle impact assessment. Science of The Total Environment, 859, Article 160038. https://doi.org/10.1016/j.scitotenv. 2022.160038
Ayeleru, O.O., Dlova, S., Akinribide, O.J., Ntuli, F., Kupolati, W.K., Marina, P.F., Blencowe, A., Olubambi, P.A. (2020). Challenges of Plastic Waste Generation and Management in Sub-Saharan Africa: A Review. Waste Manag., 110, 24–42.
Azike, R.U., Orhorhoro, E.K., & Fashanu, O. (2022). Analysis and evaluation of a developed municipal solid waste shredding machine for Okada Community, Nigeria. Journal of International Environmental Application and Science, 17(3), 104-114.
Bahareh, H., Ashkan, Nabavi-Pelesaraei (2025). Systematic review on environmental impact assessment of incineration technologies. Energy Conversion and Management, 26, 101039. https://doi.org/10.1016/j.ecmx.2025.101039
Baran, B. (2020). Plastic waste as a challenge for sustainable development and circularity in the European Union. Ekonomia I Prawo. Economics and Law, 19(1), 7-20. https://doi.org/10.12775/EiP.2020.001
Devasahayam, S., Bhaskar Raju, G., Mustansar Hussain, C. (2019). Utilization and recycling of end of life plastics for sustainable and clean industrial processes including the iron and steel industry. Materials Science for Energy Technologies, 2(3), 634–646
Ding, K., Liu, S., Huang, Y., Liu, S., Zhou, N., Peng, P. (2019). Catalytic microwave-assisted pyrolysis of plastic waste over NiO and HY for gasoline-range hydrocarbons production. Energ. Conver. Manage, 196, 1316–25
Du, S., Valla, J.A., Parnas, R.S., Bollas, G.M. (2016). Conversion of Polyethylene Terephthalate Based Waste Carpet to Benzene-Rich Oils through Thermal, Catalytic, and Catalytic Steam Pyrolysis. ACS Sustain. Chem. Eng., 4, 2852–2860.
Durogbitan, A.A. (2019). Evaluation of Impact of Solid Wastes and its Potential as a Source of Renewable Energy: A Case Study from Minna and his Environs, Nigeria. ACTA Scientific Agriculture, 3(5), 145-152
Eki, T.A., Ifechukwude, C.O., Felix, A.A. (2021). Thermal and catalytic pyrolysis of waste polypropylene plastic using spent FCC catalyst, Environmental Technology & Innovation, 22,101455. https://doi.org/10.1016/j.eti.2021.101455
Emifoniye, E.U., Erameh, A.A., Orhorhoro, E.K. (2025). Investigation of proximate and ultimate analysis of household generated plastic waste for feasible design of a pyrolysis pilot plant. World Journal of Advanced Engineering Technology and Sciences, 15(01), 2107-2118. https://doi.org/10.30574/wjaets.2025.15.1.0416
Erameh, A.A., Emifoniye, E.U., Orhorhoro, E.K. (2025). Conceptualization and Design Analysis of a Pyrolysis Pilot Plant for the Management of Plastic Waste Generation in Okada Town. Advances in Engineering Design Technology, 7 (4), 83 – 103. https://doi.org/10.5281/zenodo.18035415
Erhinyodavwe, O., Orhorhoro, E.K., Amize, H (2025). Categorization of Plastic Waste Generated for Conceptualization of Pyrolysis Plant Development in Agbor Town, Delta State, Nigeria. J. Appl. Sci. Environ. Manage. 29 (6) 1890-189. https://dx.doi.org/10.4314/jasem.v29i6.20
Fu, G., Wang, Z., Zhang, Y., Huang, Z., Liu, J., Zhou, J., Cen, K. (2016). Effect of Raw Material Sources on Activated Carbon Catalytic Activity for HI Decomposition in the Sulfur-Iodine Thermochemical Cycle for Hydrogen Production. Int. J. Hydrogen Energy, 41, 7854–7860.
Idumah, C.I., Nwuzor, I.C. (2019). Novel Trends in Plastic Waste Management. SN Appl. Sci., 1, 1402.
Kibria, M.G., Masuk, N.I., Safayet, R., Nguyen, H.Q., Mourshed, M. (2023). Plastic Waste: Challenges and Opportunities to Mitigate Pollution and Effective Management. Int. J. Environ. Res., 17, 20.
Miandad, R., Rehan, M., Barakat, M.A. (2019). Catalytic pyrolysis of plastic waste: moving toward pyrolysis based biorefineries. Frontiers in Energy Research, 7
Marczewski, M., Kami´ nska, E., Marczewska, H., Godek, M., Rokicki, G., Sokołowski, J. (2013). Catalytic Decomposition of Polystyrene. The Role of Acid and Basic Active Centers. Appl. Catal. B Environ., 129, 236–246. [
OECD (2022). Global Plastics Outlook: Economic Drivers, Environmental Impacts and Policy Options, OECD Publishing, Paris. https://doi.org/10.1787/de747aef-en
Orhorhoro, E.K. (2025a). A review of plastic waste management for a sustainable environment: Composition and approaches. European Journal of Sustainable Development Research, 9(3), em0314. https://doi.org/10.29333/ejosdr/16359
Orhorhoro, E.K., Erameh, A.A., Emifoniye, E.U. (2025b). Assessment of the Effectiveness of a Miniature Pyrolysis Pilot Plant Developed to Manage Plastic Waste Generated in Ovia North-East LGA, Nigeria. Advanced Engineering Forum, 58, 139-156. https://doi.org/10.4028/p-3mInKG
Orhorhoro, E.K., Ngbeneme, A., Noweghoweman, W.O. (2026). Failure Analysis and Thermo-Structural Design Simulation of a Cylindrical Dual-Chamber Solid Waste Incinerator. African Journal of Advances in Sciences and Technology Research, 23(1), 17-34. https://doi.org/10.62154/ajastr.2026.023.01012
Pal, S., Kumar, A., Sharma, A.K., Ghodke, P.K., Pandey, S., Patel, A. (2022). Recent Advances in Catalytic Pyrolysis of Municipal Plastic Waste for the Production of Hydrocarbon Fuels. Processes, 10, 1497
Peng, Y., Wang, Y., Ke, L., Dai, L., Wu, Q., Cobb, K. (2022). A review on catalytic pyrolysis of plastic wastes to high-value products. Energ Conver Manage, 254, 115243
Qureshi, M.S., Oasmaa A., Pihkola H. (2020). Pyrolysis of plastic waste: Opportunities and challenges. J. Anal Appl Pyrolysis, 152,104804
Rodríguez, E., Guti´ errez, A., Palos, R., Vela, F.J., Arandes, J.M., Bilbao, J. (2019). Fuel production by cracking polyolefins pyrolysis waxes under fluid catalytic cracking (FCC) operating conditions. Waste Manag., 93, 162– 172.
Sekar, M., Ponnusamy, V.K., Pugazhendhi, A., Nizetic, S., & Praveenkumar, T. (2022). Production and utilization of pyrolysis oil from solid plastic wastes: A review on pyrolysis process and influence of reactors design. J. Environ Manage., 302, 114046.
Sun, K., Huang, Q., Meng, X., Chi, Y., Yan, J. (2018). Catalytic Pyrolysis of Waste Polyethylene into Aromatics by H3PO4-Activated Carbon. Energy Fuels, 32, 9772–9781.
United Nations Fast Facts—What Is Plastic Pollution? —United Nations Sustainable Development. Available online: https://www.un.org/sustainabledevelopment/blog/2023/08/explainer-what-is-plastic-pollution/ (accessed on 6 April 2024)
Uzoejinwa, B. B., He, X., Wang, S., Abomohra A., Hu, Y. and Wang, Q. (2018). Co-pyrolysis of Biomass and Waste Plastics as a Thermochemical Conversion Technology for High-grade Biofuel Production: Recent Progress and Future Directions elsewhere Worldwide. Energy Conversion and Management, 163, 468-492
Zhao, Y., Wang, W., Jing, X., Gong, X., Wen, H., Deng, Y. (2020). Catalytic Cracking of Polypropylene by Using Fe-SBA-15 Synthesized in an Acid-Free Medium for Production of Light Hydrocarbon Oils. J. Anal. Appl. Pyrolysis, 146, 104755.
Zhang, Y., Duan, D., Lei, H., Villota, E., Ruan, R. (2019). Jet Fuel Production from Waste Plastics via Catalytic Pyrolysis with Activated Carbons. Appl. Energy, 251, 113337
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