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Year 2021, Volume: 1 Issue: 1, 6 - 10, 31.03.2021
https://doi.org/10.29228/sciperspective.47890

Abstract

References

  • 1. Abdelmalek, Z., Alamian, R., Shadloo, M. S., Maleki, A., and Karimipour, A. (2021). Numerical study on the performance of a homogeneous charge compression ignition engine fueled with different blends of biodiesel, Journal of Thermal Analysis and Calorimetry, 143, 2695-2705.
  • 2. Parthasaraty, M., Ramkumar, S., Lalvani, I. J., Elumalai, P.V., Dhinesh, B., Krishnamoorty, R., and Thiyagarajan. (2020). Per-formance analysis of HCCI engine powered by tamanu methyl ester with various inlet air temperature and exhaust gas recircula-tion ratios, Fuel, 282, 118833.
  • 3. Alemahdi, N., and Tuner, M. (2020). The effects os 2-ethyl-hexyl nitrate on HCCI combustion properties to compansate ethanol addition to gasoline, Fuel, 270, 117569.
  • 4. Calam, A. (2020) Study on the combustion characteristics of acetone/n-heptane blend and RON50 reference fuels in an HCCI engine at different compression ratios, Fuel, 271, 117646.
  • 5. Solmaz, H. (2020). A comparative study on the usage og fusel oil and reference fuels in an HCCI engine at different compression ratios, Fuel, 273, 117775.
  • 6. Uyumaz, A. (2020). Experimental evaluation of linseed oil biodi-esel/diesel fuel blends on combustion, perforamnce and emission characteristics in a DI diesel engine, Fuel, 267, 117150.
  • 7. Çınar, C., Uyumaz, A., Polat, S., Yılmaz, E., Can, Ö., & Solmaz, H. (2016). Combustion and performance characteristics of an HCCI engine utilizing trapped residual gas via reduced valve lift. Applied Thermal Engineering, 100, 586-594.
  • 8. Uyumaz, A. (2015). An experimental investigation into combus-tion and performance characteristics of an HCCI gasoline engine fueled with n-heptane, isopropanol and n-butanol fuel blends at different inlet air temperatures. Energy Conversion and Manage-ment, 98, 199-207.
  • 9. Polat, S., Solmaz, H., Yılmaz, E., Calam, A., Uyumaz, A., & Yü-cesu, H. S. (2019). Mapping of an HCCI engine using negative valve overlap strategy. Energy Sources, Part A: Recovery, Utiliza-tion, and Environmental Effects, 1-15.
  • 10. Solmaz, H. (2015). Combustion, performance and emission cha-racteristics of fusel oil in a spark ignition engine, Fuel Processing Technology, 133, 20-28.
  • 11. Aydoğan, B. (2020). Combustion characteristics, performance and emissions of an acetone/n-heptane fuelled homogenous charge compression ignition (HCCI) engine, Fuel, 275, 117840.
  • 12. Aydoğan, B. (2020). Experimental investigation of tetrahydrofu-ran combustion in homogenous charge compression ignition (HCCI) engine: Effects of excess air coefficient, engine speed and inlet air temperature, Journal of the Energy Institute, 93, 1163-1176.
  • 13. Calam, A., Solmaz, H., Yılmaz, E., & İçingür, Y. (2019). Investi-gation of effect of compression ratio on combustion and exhaust emissions in A HCCI engine. Energy, 168, 1208-1216.
  • 14. Çınar, C., Uyumaz, A., Polat, S., Yılmaz, E., Can, Ö., & Solmaz, H. (2016). Combustion and performance characteristics of an HCCI engine utilizing trapped residual gas via reduced valve lift. Applied Thermal Engineering, 100, 586-594.
  • 15. Uyumaz, A. (2015). An experimental investigation into combus-tion and performance characteristics of an HCCI gasoline engine fueled with n-heptane, isopropanol and n-butanol fuel blends at different inlet air temperatures. Energy Conversion and Manage-ment, 98, 199-207.
  • 16. Calam, A. (2020). Effects of the fusel oil usage in HCCI engine on combustion, performance and emission. Fuel, 262, 116503.
  • 17. Calam, A., Aydoğan, B., & Halis, S. (2020). The comparison of combustion, engine performance and emission characteristics of ethanol, methanol, fusel oil, butanol, isopropanol and naphtha with n-heptane blends on HCCI engine. Fuel, 266, 117071.
  • 18. Polat, S., Solmaz, H., Yılmaz, E., Calam, A., Uyumaz, A., & Yü-cesu, H. S. (2019). Mapping of an HCCI engine using negative valve overlap strategy. Energy Sources, Part A: Recovery, Utiliza-tion, and Environmental Effects, 1-15.
  • 19. Uyumaz, A., Aydoğan, B., Calam, A., Aksoy, F., & Yılmaz, E. (2020). The effects of diisopropyl ether on combustion, perfor-mance, emissions and operating range in a HCCI engi-ne. Fuel, 265, 116919.
  • 20. Calam, A., Solmaz, H., Yılmaz, E., & İçingür, Y. (2019). Investi-gation of effect of compression ratio on combustion and exhaust emissions in A HCCI engine. Energy, 168, 1208-1216.
  • 21. Polat, S. (20209. An experimental investigation on combustion, performance and ringing operation characteristics of a low comp-ression ratio early direct injection HCCI engine with ethanol fuel blends, Fuel, 277, 118092, 2020.
  • 22. Gawale, G. R., and Srinivasulu, G. N. (2020). Experimental in-vestigtion of ethanol/diesel and ethanol/biodiesel on dual fuel mode HCCI engine for different engine load conditions, Fuel, 263, 116725.
  • 23. Taghavifar, H., Nemati, A., and Walther, J. H. (2019). Combus-tion and exergy analysis of multi-component diesel-DME-methanol blends in HCCI engine, Energy, 187, 115951.
  • 24. Gharehghani, A. (2019). Load limits of an HCCI engine fueled with natural gas, ethanoli and methanol, fuel, 239, 1001-1014.
  • 25. Bendu, H., and Sivalingam, M. (2016). Experimental investiga-tion on the effect of charge temperature ethanol fueled HCCI combustion engine, journal of Mechanical Science and Techno-logy, 30(10), 4791-4799.

Combustion, Performance and Emissions of Ethanol n-Heptane Blends in HCCI Engine

Year 2021, Volume: 1 Issue: 1, 6 - 10, 31.03.2021
https://doi.org/10.29228/sciperspective.47890

Abstract

The aim of this study was to investigate the effects of the ethanol on combustion, performance and emission characteristics of a single cylinder, port fuel injection HCCI engine was investigated. 15% ethanol and 85% n-heptane were blended. N-heptane was used as reference fuel. The experiments were performed at 1200 rpm and fix inlet air temperature of 60 oC. The parameters such as in-cylinder pressure, heat release rate, CA50, CA10, ringing intensity, indicated thermal efficiency were detected. Beside this, the emissions of CO and HC were also given in the study. The experimental results showed that E15 didn’t significantly effect in-cylinder pressure and heat release rate and there have been slight increase compared to n-heptane. CA50 was retarded about 1.5 oCA and indicated thermal efficiency in-creased about 3% with E15 at λ=2.5. Ringing intensity increased about 30% and HC emission decreased with the addi-tion of 15% ethanol and 85% n-heptane fuel

References

  • 1. Abdelmalek, Z., Alamian, R., Shadloo, M. S., Maleki, A., and Karimipour, A. (2021). Numerical study on the performance of a homogeneous charge compression ignition engine fueled with different blends of biodiesel, Journal of Thermal Analysis and Calorimetry, 143, 2695-2705.
  • 2. Parthasaraty, M., Ramkumar, S., Lalvani, I. J., Elumalai, P.V., Dhinesh, B., Krishnamoorty, R., and Thiyagarajan. (2020). Per-formance analysis of HCCI engine powered by tamanu methyl ester with various inlet air temperature and exhaust gas recircula-tion ratios, Fuel, 282, 118833.
  • 3. Alemahdi, N., and Tuner, M. (2020). The effects os 2-ethyl-hexyl nitrate on HCCI combustion properties to compansate ethanol addition to gasoline, Fuel, 270, 117569.
  • 4. Calam, A. (2020) Study on the combustion characteristics of acetone/n-heptane blend and RON50 reference fuels in an HCCI engine at different compression ratios, Fuel, 271, 117646.
  • 5. Solmaz, H. (2020). A comparative study on the usage og fusel oil and reference fuels in an HCCI engine at different compression ratios, Fuel, 273, 117775.
  • 6. Uyumaz, A. (2020). Experimental evaluation of linseed oil biodi-esel/diesel fuel blends on combustion, perforamnce and emission characteristics in a DI diesel engine, Fuel, 267, 117150.
  • 7. Çınar, C., Uyumaz, A., Polat, S., Yılmaz, E., Can, Ö., & Solmaz, H. (2016). Combustion and performance characteristics of an HCCI engine utilizing trapped residual gas via reduced valve lift. Applied Thermal Engineering, 100, 586-594.
  • 8. Uyumaz, A. (2015). An experimental investigation into combus-tion and performance characteristics of an HCCI gasoline engine fueled with n-heptane, isopropanol and n-butanol fuel blends at different inlet air temperatures. Energy Conversion and Manage-ment, 98, 199-207.
  • 9. Polat, S., Solmaz, H., Yılmaz, E., Calam, A., Uyumaz, A., & Yü-cesu, H. S. (2019). Mapping of an HCCI engine using negative valve overlap strategy. Energy Sources, Part A: Recovery, Utiliza-tion, and Environmental Effects, 1-15.
  • 10. Solmaz, H. (2015). Combustion, performance and emission cha-racteristics of fusel oil in a spark ignition engine, Fuel Processing Technology, 133, 20-28.
  • 11. Aydoğan, B. (2020). Combustion characteristics, performance and emissions of an acetone/n-heptane fuelled homogenous charge compression ignition (HCCI) engine, Fuel, 275, 117840.
  • 12. Aydoğan, B. (2020). Experimental investigation of tetrahydrofu-ran combustion in homogenous charge compression ignition (HCCI) engine: Effects of excess air coefficient, engine speed and inlet air temperature, Journal of the Energy Institute, 93, 1163-1176.
  • 13. Calam, A., Solmaz, H., Yılmaz, E., & İçingür, Y. (2019). Investi-gation of effect of compression ratio on combustion and exhaust emissions in A HCCI engine. Energy, 168, 1208-1216.
  • 14. Çınar, C., Uyumaz, A., Polat, S., Yılmaz, E., Can, Ö., & Solmaz, H. (2016). Combustion and performance characteristics of an HCCI engine utilizing trapped residual gas via reduced valve lift. Applied Thermal Engineering, 100, 586-594.
  • 15. Uyumaz, A. (2015). An experimental investigation into combus-tion and performance characteristics of an HCCI gasoline engine fueled with n-heptane, isopropanol and n-butanol fuel blends at different inlet air temperatures. Energy Conversion and Manage-ment, 98, 199-207.
  • 16. Calam, A. (2020). Effects of the fusel oil usage in HCCI engine on combustion, performance and emission. Fuel, 262, 116503.
  • 17. Calam, A., Aydoğan, B., & Halis, S. (2020). The comparison of combustion, engine performance and emission characteristics of ethanol, methanol, fusel oil, butanol, isopropanol and naphtha with n-heptane blends on HCCI engine. Fuel, 266, 117071.
  • 18. Polat, S., Solmaz, H., Yılmaz, E., Calam, A., Uyumaz, A., & Yü-cesu, H. S. (2019). Mapping of an HCCI engine using negative valve overlap strategy. Energy Sources, Part A: Recovery, Utiliza-tion, and Environmental Effects, 1-15.
  • 19. Uyumaz, A., Aydoğan, B., Calam, A., Aksoy, F., & Yılmaz, E. (2020). The effects of diisopropyl ether on combustion, perfor-mance, emissions and operating range in a HCCI engi-ne. Fuel, 265, 116919.
  • 20. Calam, A., Solmaz, H., Yılmaz, E., & İçingür, Y. (2019). Investi-gation of effect of compression ratio on combustion and exhaust emissions in A HCCI engine. Energy, 168, 1208-1216.
  • 21. Polat, S. (20209. An experimental investigation on combustion, performance and ringing operation characteristics of a low comp-ression ratio early direct injection HCCI engine with ethanol fuel blends, Fuel, 277, 118092, 2020.
  • 22. Gawale, G. R., and Srinivasulu, G. N. (2020). Experimental in-vestigtion of ethanol/diesel and ethanol/biodiesel on dual fuel mode HCCI engine for different engine load conditions, Fuel, 263, 116725.
  • 23. Taghavifar, H., Nemati, A., and Walther, J. H. (2019). Combus-tion and exergy analysis of multi-component diesel-DME-methanol blends in HCCI engine, Energy, 187, 115951.
  • 24. Gharehghani, A. (2019). Load limits of an HCCI engine fueled with natural gas, ethanoli and methanol, fuel, 239, 1001-1014.
  • 25. Bendu, H., and Sivalingam, M. (2016). Experimental investiga-tion on the effect of charge temperature ethanol fueled HCCI combustion engine, journal of Mechanical Science and Techno-logy, 30(10), 4791-4799.
There are 25 citations in total.

Details

Primary Language English
Subjects Automotive Combustion and Fuel Engineering
Journal Section Articles
Authors

Bilal Aydoğan 0000-0002-7928-5867

Publication Date March 31, 2021
Published in Issue Year 2021 Volume: 1 Issue: 1

Cite

APA Aydoğan, B. (2021). Combustion, Performance and Emissions of Ethanol n-Heptane Blends in HCCI Engine. Engineering Perspective, 1(1), 6-10. https://doi.org/10.29228/sciperspective.47890