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INVESTIGATION OF EFFECTS ON FUEL CONSUMPTION AND EXHAUST EMISSIONS BY USING BIOETHANOL GASOLINE MIXTURE IN AN ENGINE WITH ULTRASONIC FUEL SYSTEM

ABSTRACT
This study compared the fuel consumption and exhaust emissions of a spark-ignition engine using a carburetor fuel system, an injection fuel system, and an ultrasonic fuel system. When using gasoline only, the ultrasonic fuel system showed a 31% decrease in fuel consumption compared to the carburetor system and a 15% decrease compared to the injection system. When adding 10% bioethanol to the gasoline, fuel consumption increased in all three systems, with the ultrasonic system showing the largest increase of 10%. Exhaust emissions were also measured, and the ultrasonic system showed a significant decrease in CO, HC, and NOx compared to the carburetor and injection systems, with the largest decrease in CO emissions. The addition of bioethanol to the fuel resulted in reducing exhaust emission values in all three systems, with the ultrasonic system showing the largest decrease in CO and HC emissions compared to the carburetor and injection systems, but with an increase in NOx emissions compared to the injection system. When comparing three fuel systems, it was observed that injection fuel systems have the highest CO2 values. Although the addition of alcohol to the fuel does not cause a significant change in CO2 emission values for injection and ultrasonic fuel systems, an increase is observed in the carburetor fuel system. Overall, the ultrasonic fuel system showed promising results for reducing fuel consumption and improving exhaust emissions.
KEYWORDS
PAPER SUBMITTED: 2023-03-18
PAPER REVISED: 2023-06-16
PAPER ACCEPTED: 2023-06-24
PUBLISHED ONLINE: 2023-08-05
DOI REFERENCE: https://doi.org/10.2298/TSCI230318163O
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2024, VOLUME 28, ISSUE Issue 2, PAGES [811 - 822]
REFERENCES
  1. Atmanli, A., Effects of a Cetane Improver on Fuel Properties and Engine Characteristics of a Diesel Engine Fueled with the Blends of Diesel, Hazelnut Oil and Higher Carbon Alcohol, Fuel, 172 (2016), May, pp. 209-217
  2. Banani, R., et al., Waste Frying Oil with High Levels of Free Fatty Acids as One of the Prominent Sources of Biodiesel Production, J. Mater. Environ. Sci, 6 (2015), 4, pp. 1178-1185
  3. Stojiljković, D., et al., Mixtures of Bioethanol and Gasoline as a Fuel for SI Engines, Thermal science, 13 (2009), 3, pp. 219-228
  4. Manisalidis, I., et al., Environmental and Health Impacts of Air Pollution: A Review, Frontiers in Public Health, 8 (2020), 14
  5. Yasar, F., et al., Change in Calculated Carbon Aromaticity Index (CCAI) Depending on Cetane Indexes of Biodiesel Fuels of Different Origin, Proceedings, Global Energy Conference (GEC), 2022, Batman, Turkey, pp. 352-356
  6. Alves, B. F., et al., Influence of Solvent Solubility Parameter on the Performance of EVA Copolymers as Pour Point Modifiers of Waxy Model-Systems, Fuel, 258 (2019), 116196
  7. Reitz, R. D. Duraisamy, G., Review of High Efficiency and Clean Reactivity Controlled Compression Ignition (RCCI) Combustion in Internal Combustion Engines, Progress in Energy and Combustion Science, 46 (2015), Feb., pp. 12-71
  8. Gautam, M., Martin, D. W., Combustion Characteristics of Higher-Alcohol/Gasoline Blends, Proceedings of the Institution of Mechanical Engineers, Part A: J. of Power and Energy, 214 (2000), 5, pp. 497-511
  9. Munuswamy, D. B., et al., Critical Review on Effects of Alcohols and Nanoadditives on Performance and Emission in Low-Temperature Combustion Engines: Advances and Perspectives, Energy & Fuels, 36 (2022), 14, pp. 7245-7268
  10. Okcu, M., et al., Effects of Isopropanol-Butanol-Ethanol (IBE) on Combustion Characteristics of a RCCI Engine Fueled by Biodiesel Fuel, Sustainable Energy Technologies and Assessments, 47 (2021), 101443
  11. Altun, S., et al., Exhaust Emissions from a Spark-Ignition Engine Operating on Iso-Propanol and Unleaded Gasoline Blends, Technology, 13 (2010) 3, pp. 183-188
  12. Kul, B. S., Ciniviz, M., Assessment of Waste Bread Bioethanol-Gasoline Blends in Respect to Combustion Analysis, Engine Performance and Exhaust Emissions of a SI Engine, Fuel, 277 (2020), 118237
  13. Suslick, K. S., Sonochemistry, Science, 247 (1990), 4949, pp. 1439-1445
  14. Jamrozik, A., et al., Effect of Diesel-Biodiesel-Ethanol Blend on Combustion, Performance, and Emissions Characteristics on a Direct Injection Diesel Engine, Thermal Science, 21 (2017), 1B, pp. 591-604
  15. Nibin, M., et al., Experimental Studies to Improve the Performance, Emission and Combustion Characteristics of Wheat Germ Oil Fuelled CI Engine Using Bioethanol Injection in PCCI Mode, Fuel, 285 (2021), 119196
  16. Ozer, S., et al., Effects of Liquefed Petroleum Gas Use in a Turbocharged Stratified Injection Engine Using Ethanol/Gasoline as Pilot Fuel, Thermal Science, 25 (2021), Special Issue 1, pp. 189-99
  17. Abdel-Rahman, A. A., Osman, M. M., Experimental Investigation on Varying the Compression Ratio of SI Engine Working Under Different Ethanol-Gasoline Fuel Blends, International Journal of Energy Research, 21 (1997), 1, pp. 31-40
  18. Ameri, M., et al., Technical Comparison of a CHP Using Various Blends of Gasohol in an IC Engine, Renewable Energy, 33 (2008), 7, pp. 1469-1474
  19. ***, Apace Research Ltd, Intensive Field Trial of Ethanol/Petrol Blend in Vehicles, 1998, ERDC Project No. 2511
  20. Yang, W., et al., Experimental Study of the Bioethanol Substitution Rate and the Diesel Injection Strategies on Combustion and Emission Characteristics of Dual-Fuel-Direct-Injection (DFDI) Engine, Journal of the Energy Institute, 106 (2023), 101153
  21. Zhang, J., Meguid, S. A., Piezoelectricity of 2D Nanomaterials: Characterization, Properties, and Applications, Semiconductor Science and Technology, 32 (2017), 4, 043006
  22. Tressler, J. F., et al., Piezoelectric Sensors and Sensor Materials, Journal of Electroceramics, 2, (1998), Dec., pp. 257-272
  23. Avvaru, B., et al., Ultrasonic Atomization: Effect of Liquid Phase Properties, Ultrasonics, 44 (2006), 2, pp. 146-158
  24. Suslick, K. S., Nyborg, W. L., Ultrasound: Its Chemical, Physical and Biological Effects, Science, 243 (1989), 4897, 1499
  25. Ramisetty, K. A., et al., Investigations Into Ultrasound Induced Atomization, Ultrasonics sonochemistry, 20 (2013), 1, pp. 254-264
  26. Šarković, D., Babović, V., Construction and Functioning of an Efficient Ultrasonic Atomizer, Kragujevac Journal of Sciences (2002), 24, pp. 41-55
  27. Eknadiosyants, O. K. Role of Cavitation in the Process of Liquid Atomization in an Ultrasonic Fountain, Sov, Phys. Acoust, 14 (1968), 1, pp. 80-84
  28. Rayleigh W. J. S., The Theory of Sound. Vol. 2, Dover Publications, Mineola, N. Y., USA, 1945, p. 344
  29. Kudo, T., et al., Effect of Ultrasonic Frequency on Size Distributions of Nanosized Mist Generated by Ultrasonic Atomization, Ultrasonics Sonochemistry, 37 (2017), July, pp. 16-22
  30. Fırat, M., et al., Experimental Investigation on Combustion and Emission Characteristics of Reactivity Controlled Compression Ignition Engine Powered with Iso-Propanol/Biodiesel Blends, Propulsion and Power Research, 11 (2022), 2, pp. 224-239
  31. Fırat, M., et al., Comparison of Ethanol/Diesel Fuel Dual Direct Injection (DI2) Strategy with Reactivity Controlled Compression Ignition (RCCI) in a Diesel Research Engine, Energy, 255 (2022), 124556
  32. Altun, S., et al., Comparison of Direct and Port Injection of Methanol in a RCCI Engine Using Diesel and Biodiesel as High Reactivity Fuels, Process Safety and Environmental Protection, 174 (2023), June, pp. 681-693
  33. Altun, S., et al., A Study of Oxygen-Enriched Reactivity-Controlled Compression Ignition Combustion in a Diesel Research Engine Under Varying Loadings and Premixed Ratios, Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, doi.org/10.1080/15567036.2021.2020380, 2021
  34. Cars, U. P., Use of Mıd-Range Ethanol/Gasolıne Blends in Unmodıfıed Passenger Cars and Lıght Duty Trucks, Report, Minnesota Center for Automotive Research, Minnesota State University, Mankato, Minn., USA, 1999
  35. Turner, D., et al., Combustion Performance of Bio-Ethanol at Various Blend Ratios in a Gasoline Direct Injection Engine, Fuel, 90 (2011), 5, pp. 1999-2006

© 2024 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International licence