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The Influence of Using Biodiesel Prepared from Cresson Oil on Emissions and Performance of CI Engines

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The experimental study was conducted to investigate the effect of using Cresson oil biodiesel on CI engine emissions and performance. This research aimed to examine how using innovative biodiesel blend formulations made from Cresson oil affected the performance and emissions of CI engines. The proportion of Cresson oil biodiesel added to conventional Iraqi diesel fuel into volume amounted to 10%, 20%, 40%, 60%, 80%, and 100%. The engine compression ratio was set to 18, and the fuel injection timing was set at 23º bTDC. The experiments show that this biodiesel reduces the thermal efficiency, heat release, delay time, and cylinder pressure of the engine while increasing the exhaust temperature (EGT) and brake-specific fuel consumption (BSFC). There has been an increase in emissions of nitrogen oxides (NOX) and carbon dioxide (CO2), in addition to a reduction in emissions of carbon monoxide (CO), soot, and unburned hydrocarbons (HC).
Słowa kluczowe
Rocznik
Strony
84--98
Opis fizyczny
Bibliogr. 48 poz., rys., tab.
Twórcy
  • Mechanical Engineering Department, College of Engineering, Mustansiriyah University, Baghdad, Iraq
  • Mechanical Engineering Department, College of Engineering, Kerbala University, Karbala, Iraq
  • Mechanical Engineering Department, College of Engineering, Mustansiriyah University, Baghdad, Iraq
Bibliografia
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  • 23. Liaquat, A.M., Masjuki, H.H., Kalam, M.A., Fattah, I.R., Hazrat, M.A., Varman, M., Shahabuddin, M. 2013. Effect of coconut biodiesel blended fuels on engine performance and emission characteristics. Procedia Engineering, 56, 583–590.
  • 24. Lin, C.Y., Lin, H.A. 2006. Diesel engine performance and emission characteristics of biodiesel produced by the peroxidation process. Fuel, 85(3), 298–305.
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  • 28. Mohammed, E.K., Nemit-Allah, M.A. 2013. Experimental investigations of ignition delay period and performance of a diesel engine operated with Jatropha oil biodiesel. Alexandria Engineering Journal, 52(2), 141–149.
  • 29. Monirul, I.M., Masjuki, H.H., Kalam, M.A., Mosarof, M.H., Zulkifli, N.W.M., Teoh, Y.H., How, H. G. 2016. Assessment of performance, emission and combustion characteristics of palm, jatropha and Calophyllum inophyllum biodiesel blends. Fuel, 181, 985-995.
  • 30. Monirul, I.M., Masjuki, H.H., Kalam, M.A., Mosarof, M.H., Zulkifli, N.W.M., Teoh, Y.H., How, H.G. 2016. Assessment of performance, emission and combustion characteristics of palm, jatropha and Calophyllum inophyllum biodiesel blends. Fuel, 181, 98–-995.
  • 31. Muralidharan, K., Vasudevan, D. 2011. Performance, emission and combustion characteristics of a variable compression ratio engine using methyl esters of waste cooking oil and diesel blends. Applied Energy, 88(11), 3959–3968.
  • 32. Murtdha S. Imran, Hayder J.Kurji, Jaafar Ali Mahdi, Roaa Bdulhusein, Abdulsahib. 2023. Exhaust waste energy harvesting by using a thermoelectric generator with a water heat exchanger. Journal of Engineering Science and Technology, 18(4), 2020–2034.
  • 33. Ng, J.H., Ng, H.K., Gan, S. 2011. Engine-out characterization using speed–load mapping and reduced test cycle for a light-duRoskilly, A.P., Nanda, S.K., Wang, Y.D., Chirkowski, J. 2008. The performance and the gaseous emissions of two small marine craft diesel engines fuelled with biodiesel. Applied Thermal Engineering, 28(8–9), 872–880.
  • 34. Ogunkunle, O., Ahmed, N.A. 2019. Performance evaluation of a diesel engine using blends of optimized yields of sand apple (Parinari polyandra) oil biodiesel. Renewable Energy, 134, 1320–1331.
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  • 36. Özener, O., Yüksek, L., Ergenç, A.T., Özkan, M. 2014. Effects of soybean biodiesel on a DI diesel engine performance, emission and combustion characteristics. Fuel, 115, 875–883.
  • 37. Ozsezen, A.N., Canakci, M., Turkcan, A., Sayin, C. 2009. Performance and combustion characteristics of a DI diesel engine fueled with waste palm oil and canola oil methyl esters. Fuel, 88(4), 629–636.
  • 38. Puhan, S., Nagarajan, G., Vedaraman, N., Ramabramhmam, B.V. 2007. Mahua oil (Madhuca indica oil) derivatives as a renewable fuel for diesel engine systems in India: A performance and emissions comparative study. International Journal of Green Energy, 4(1), 89–104.
  • 39. Radhi, R.M., Imran, M.S. 2016. Effect of Using Dual Fuel on Compression ignition engine performance.
  • 40. Raheman, H., Ghadge, S.V. 2008. Performance of diesel engine with biodiesel at varying compression ratio and ignition timing. Fuel, 87(12), 2659–2666.
  • 41. Ramesh, D., Sampathrajan, A. 2008. Investigations on performance and emission characteristics of the diesel engine with jatropha biodiesel and its blends. Agricultural Engineering International: CIGR Journal. http://dx.doi.org/10.1155/2013/163829
  • 42. Rashedul, H.K., Masjuki, H.H., Kalam, M.A., Ashraful, A.M. 2017. Performance and emission of a CI engine using antioxidant-treated biodiesel. Journal of Clean Energy Technologies, 5(1), 1–5.
  • 43. Rodríguez, R.P., Sierens, R., Verhelst, S. 2011. Ignition delay in a palm oil and rapeseed oil biodiesel fuelled engine and predictive correlations for the ignition delay period. Fuel, 90(2), 766–772.
  • 44. Roskilly, A.P., Nanda, S.K., Wang, Y.D., Chirkowski, J. 2008. The performance and the gaseous emissions of two small marine craft diesel engines fuelled with biodiesel. Applied Thermal Engineering, 28(89), 872-880.
  • 45. Savariraj, S., Ganapathy, T., Saravanan, C.G. 2013. Performance, emission and combustion characteristics of fish-oil biodiesel engine. European Journal of Applied Engineering and Scientific Research, 2(3), 26–32.
  • 46. Shahabuddin, M., Liaquat, A.M., Masjuki, H.H., Kalam, M.A., Mofijur, M. 2013. Ignition delay, combustion and emission characteristics of diesel engines fueled with biodiesel. Renewable and Sustainable Energy Reviews, 21, 623–632.
  • 47. Singh, B., Shukla, S.K. 2016. Experimental analysis of combustion characteristics on a variable compression ratio engine fuelled with biodiesel (castor oil) and diesel blends. Biofuels, 7(5), 471–477. http://dx.doi.org/10.1080/17597269.2016.1163210.
  • 48. Su, J., Zhu, H., Bohac, S.V. 2013. Particulate matter emission comparison from conventional and premixed low-temperature combustion with diesel, biodiesel and biodiesel-ethanol fuels. Fuel, 113, 221–227.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0b87acc9-1fb9-4000-8bf2-f9093088203b
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