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The Influence of Olive Oil Waste as a Biofuel on the Exhaust Gases of the Internal Combustion Engine

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Future options for addressing the depletion of fossil fuels and reducing pollution from internal combustion engines may include biofuel as an alternative fuel. This study aims to experimentally and statistically assess the effect of using diesel-biofuel blends on the emissions of a single-cylinder direct-injection engine. Using recycled olive oil, a chemical Tran’s esterification process was used to create biofuel. The experimental results were contrasted with those of a one-dimensional engine model for exhaust emissions and torque, which showed high agreement between test and numerical data. In order to comprehend the factors that affect the engine’s reaction to variations in fuel composition, the thermodynamic characteristics of the engine for various blends were also supplied. According to the investigation, a mixture with 20% of the volume fraction of oleic acid methyl ester olive-based biofuel and 80% of the volume fraction of pure diesel can be an effective fuel alternative for cleaner exhaust emissions while offering almost the same performance.
Słowa kluczowe
Rocznik
Strony
322--328
Opis fizyczny
Bibliogr. 17 poz., rys.
Twórcy
  • College of Engineering, AL-Qasim Green University, Babylon 51031, Iraq
  • College of Engineering, AL-Qasim Green University, Babylon 51031, Iraq
Bibliografia
  • 1. Abed, K., El Morsi, A. K., Sayed, M. M., El Shaib, A. & Gad, M. 2018. Effect of waste cooking-oil biodiesel on performance and exhaust emissions of a diesel engine. J Egyptian journal of petroleum, 27, 985–989.
  • 2. Alagumalai, A., Mahian, O., Hollmann, F., Zhang, W. 2021. Environmentally benign solid catalysts for sustainable biodiesel production: A critical review. J Science of The Total Environment, 144856.
  • 3. Bórawski, P., Bełdycka-Bórawska, A., Szymańska, E.J., Jankowski, K.J., Dubis, B., Dunn, J.W. 2019. Development of renewable energy sources market and biofuels in The European Union. J Journal of cleaner production, 228, 467–484.
  • 4. Ketata, A., Driss, Z. 2021a. Characterization of double-entry turbine coupled with gasoline engine under in-and out-phase admission. J Energy, 121447.
  • 5. Ketata, A., Driss, Z. 2021b. New FORTRAN meanline code for investigating the volute to rotor interspace effect on mixed flow turbine performance. J Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, 09544089211007023.
  • 6. Ketata, A., Driss, Z., Abid, M.S. 2020. Impact of the wastegate opening on radial turbine performance under steady and pulsating flow conditions. J Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 234, 652–668.
  • 7. Kulkarni, M.G., Dalai, A.K. 2006. Waste cooking oil an economical source for biodiesel: a review. J Industrial engineering chemistry research, 45, 2901–2913.
  • 8. Lin, C.-Y., Lu, C. 2021. Development Perspectives Of Promising Lignocellulose Feedstocks For production of advanced generation biofuels: A review. J Renewable Sustainable Energy Reviews, 136, 110445.
  • 9. Millo, F., Vlachos, T., Piano, A. 2021. Physicochemical and mutagenic analysis of particulate matter emissions from an automotive diesel engine fuelled with fossil and biofuel blends. J Fuel, 285, 119092.
  • 10. Moussa, O., Ketata, A., Driss, Z., Coelho, P. 2019. In-Cylinder Aero-Thermal Simulation of Compression Ignition Engine: Using a Layering Meshing Approach. J Journal of Applied Fluid Mechanics, 12, 1651–1665.
  • 11. Moyo, L., Iyuke, S., Muvhiiwa, R., Simate, G., Hlabangana, N. 2021. Application of response surface methodology for optimization of biodiesel production parameters from waste cooking oil using a membrane reactor. J South African Journal of Chemical Engineering, 35, 1–7.
  • 12. Al-Aseebee M.D.F., Akol A.M., Naje A.S. 2023. Performance Evaluation of Tractor Engine Using Waste Vegetable Oil Biodiesel for Agricultural Purpose. Ecological Engineering & Environmental Technology, 24(2), 224–230.
  • 13. Al-Aseebee M.D.F., Rashid A.H., Naje A.S. 2022. Ecofriendly enhancement of engine performance using biofuel palm stearin. Materials Today: Proceedings, In press.
  • 14. Narwane, V.S., Yadav, V.S., Raut, R.D., Narkhede, B.E., Gardas, B.B. 2021. Sustainable development challenges of the biofuel industry in India based on integrated MCDM approach. J Renewable Energy, 164, 298–309.
  • 15. Prabhakar, S., Elder, M. 2009. Biofuels and resource use efficiency in developing Asia: back to basics. J Applied Energy, 86, 30–36.
  • 16. Roy, M.M., Islam, M.S., Alam, M.N. 2021. Biodiesel from Crude tall oil and its NOx and aldehydes emissions in a diesel engine fueled by biodiesel-diesel blends with water emulsions. J Processes, 9, 126.
  • 17. Zhou, A., Thomson, E. 2009. The development of biofuels in Asia. J Applied Energy, 86, 11–20.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-c70ca2f0-1b27-4e83-9d69-bc98571ab961
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