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Benefits of exhaust gas energy for preheating biodiesel fuel to enhance engine emissions and performance

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The need for alternative fuel instead of conventional fossil fuels (diesel or gasoline) has recently increased for several reasons, including the expected shortage of petroleum fossil fuels and the production of pollution by transportation. Consequently, researchers are interested in finding new alternative fuels. At present, the number of studies on biodiesel as a compression ignition engine fuel has increased. Current studies are mainly concerned with studying the use of exhaust gas temperature to preheat biodiesel fuel before it enters the combustion chamber. A heat exchanger is designed to increase the temperature of the biodiesel fuel prior to the combustion process. The performance characteristics of diesel engines and the emission of pollutants resulting from this modification were investigated under different operating conditions, including different engine loads and speeds. The results showed clear improvements in engine performance, including improved output power, specific fuel consumption and pollutant emissions. The engine power and specific fuel consumption improvements as a result of preheating reached up to 1.3% and 8.27%, respectively. Pollutant emission also decreased obviously, with carbon monoxide and hydrocarbon emission decreases of 12.95% and 12.85%, respectively. However, the emission of nitrogen oxides increased by 4.39%.
Rocznik
Strony
157--167
Opis fizyczny
Bibliogr. 48 poz., rys., tab., wykr.
Twórcy
  • Mechanical Engineering Department, Faculty of Engineering, Minia University, 61111 Minia, Egypt
  • Mechanical Engineering Department, Faculty of Engineering, Minia University, 61111 Minia, Egypt
Bibliografia
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  • 19. Tesfa B, Mishra R, Gu F, Powles N. Prediction models for density and viscosity of biodiesel and their effects on fuel supply system in CI engines. Renewable Energy 2010; 35: 52–60.
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  • 27. Pugazhvadivu M, Sankaranarayanan G. Experimental studies on a diesel engine using mahua oil as fuel. Indian Journal of Science and Technology 2010; 3: 787-791.
  • 28. Du E, Cai L, Huang K, Tang H, Xu X, Tao R. Reducing viscosity to promote biodiesel for energy security and improve combustion efficiency. Fuel 2018; 211: 194–196.
  • 29. Tesfa B, Mishra R, Gu F, Powles N. Prediction models for density and viscosity of biodiesel and their effects on fuel supply system in CI engines. Renewable Energy 2010; 35: 52–60.
  • 30. Ruhul A, Kalam M, Masjuki H, Shahir S , Alabdulkarem A, Teoh Y, How H, Reham S. Evaluating combustion, performance and emission characteristics of Millettia pinnata and Croton megalocarpus biodiesel blends in a diesel engine. Energy 2017; 141: 2362-2376.
  • 31. Murillo S, Míguez J, Porteiro J, Granada E, Morán J. Performance and exhaust emissions in the use of biodiesel in outboard diesel engines. Fuel 2007; 86: 1765-1771.
  • 32. Kumar J, P. Reddy M, K. Reddy H. Effect of Fuel Temperature on Diesel Engine Performance and Emissions using Cotton Seed Based Bio-Diesel and Additive Ac2010a. International Journal of Green Chemistry and Bioprocess 2014; 4: 9-13.
  • 33. Stojkovic IJ, Miladinovic MR, Stamenkovic OS, Bankovic IB, Povrenovic DS, Veljkovic VB. Biodiesel production by methanolysis of waste lard from piglet roasting over quicklime. Fuel 2016; 182: 54–66.
  • 34. Bueno A, Pereira M, Pontes J, Luna F, Jr C. Performance and emissions characteristics of castor oil biodiesel fuel Blends. Applied Thermal Engineering 2017; 125: 559–566.
  • 35. Fadhil A, Al-Tikrity E, Albadree M. Biodiesel production from mixed non-edible oils, castor seed oil and waste fish oil. Fuel 2017; 210: 721–728.
  • 36. Roy M, Wang W, Bujold J. Biodiesel production and comparison of emissions of a DI diesel engine fuelled by biodiesel–diesel and canola oil–diesel blends at high idling operations. Applied Energy 2013; 106: 198–208.
  • 37. An H, Yang WM, Maghbouli A, Chou SK, Chua KJ. Detailed physical properties prediction of pure methyl esters for biodiesel combustion modeling. Applied Energy 2013; 102: 647-656.
  • 38. Muralidharan K, Vasudevan D. Performance, emission and combustion characteristics of a variable compression ratio engine using methyl esters of waste cooking oil and diesel blends. Applied Energy 2011; 88: 59–68.
  • 39. Elsanusi O, Roy M, Sidhu M. Experimental Investigation on a Diesel Engine Fueled by Diesel-Biodiesel Blends and their Emulsions at Various Engine Operating Conditions. Applied Energy 2017; 203: 582–593.
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  • 41. Roy M, Calder J, Wang W, Mangad A, Diniz F. Cold start idle emissions from a modern Tier-4 turbo-charged diesel engine fueled with diesel-biodiesel, diesel-biodiesel-ethanol, and diesel-biodiesel-diethyl ether blends. Applied Energy 2016; 180: 52–65.
  • 42. Baskar P, Senthilkumar A. Effects of oxygen enriched combustion on pollution and performance characteristics of a diesel engine. Engineering Science Technology international Journal 2016; 19: 38–43.
  • 43. Li B, Li Y, Liu H, Liu F, Wang Z, Wang J. Combustion and emission characteristics of diesel engine fueled with biodiesel/PODE blends. Applied Energy 2017; 206: 425–431.
  • 44. He B-Q. Advances in emission characteristics of diesel engines using different biodiesel fuels, Renewable and Sustainable Energy Reviews 2016; 60: 570–586.
  • 45. Roy M, Calder J, Wang W, Mangad A, Diniz F. Emission analysis of a modern Tier 4 DI diesel engine fueled by biodiesel-diesel blends with a cold flow improver (Wintron Synergy) at multiple idling conditions. Applied Energy 2016; 179: 45–54.
  • 46. Hasan M, Rahman M. Performance and emission characteristics of biodiesel–diesel blend and environmental and economic impacts of biodiesel production: A review. Renewable and Sustainable Energy Reviews 2017; 74: 938–948.
  • 47. Yu S, Yin B, Jia H, Wen S, Li X , Yu J. Theoretical and experimental comparison of internal flow and spray characteristics between diesel and biodiesel. Fuel 2017; 208: 20–29.
  • 48. Özener O, Yüksek L, Ergenç AT, Özkan M. Effects of soybean biodiesel on a DI diesel engine performance, emission and combustion characteristics. Fuel 2014; 115: 75–83.
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-dd6a9119-6437-4b32-826c-98b4893d14b0
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