Research Article
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Year 2021, Volume: 1 Issue: 2, 63 - 78, 30.06.2021
https://doi.org/10.29228/eng.pers.51253

Abstract

References

  • 1. Lü, X., Ji, L., Zu, L., Hou, Y., Huang, C., and Huang, Z. (2007) Experimental study and chemical analysis of n-heptane homoge-neous charge compression ignition combustion with port injection of reaction inhibitors. Combustion and flame. 149(3): p. 261-270.
  • 2. Li, Y., Chen, Y., Wu, G., and Liu, J. (2018) Experimental evalua-tion of water-containing isopropanol-n-butanol-ethanol and gaso-line blend as a fuel candidate in spark-ignition engine. Applied Energy. 219: p. 42-52.
  • 3. Polat, S., Solmaz, H., Yılmaz, E., Calam, A., Uyumaz, A., and Yücesu, H.S. (2020) Mapping of an HCCI engine using negative valve overlap strategy. Energy Sources, Part A: Recovery, Utiliza-tion, and Environmental Effects. 42(9): p. 1140-1154.
  • 4. Uyaroğlu, A., Gürü, M., Kocakulak, T., Uyumaz, A., and Solmaz, H. (2021) Combustion, performance and emission analyses of organic Manganese-Added crambe abyssinica biodiesel in a direct injection diesel engine. Fuel. 297: p. 120770.
  • 5. An, Y., Jaasim, M., Raman, V., Pérez, F.E.H., Sim, J., Chang, J., Im, H.G., and Johansson, B. (2018) Homogeneous charge com-pression ignition (HCCI) and partially premixed combustion (PPC) in compression ignition engine with low octane gasoline. Energy. 158: p. 181-191.
  • 6. Calam, A., Solmaz, H., Yılmaz, E., and İçingür, Y. (2019) Inves-tigation of effect of compression ratio on combustion and ex-haust emissions in A HCCI engine. Energy. 168: p. 1208-1216.
  • 7. Aydoğan, B. (2021) Combustion, Performance and Emissions of Ethanol/n-Heptane Blends in HCCI Engine. Engineering Perspec-tive. 1(1): p. 5.
  • 8. Uyumaz, A., Aydoğan, B., Calam, A., Aksoy, F., and Yılmaz, E. (2020) The effects of diisopropyl ether on combustion, perfor-mance, emissions and operating range in a HCCI engine. Fuel. 265: p. 116919.
  • 9. Calam, A., Aydoğan, B., and 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: p. 117071.
  • 10. Polat, S., Yücesu, H.S., Solmaz, H., Uyumaz, A., Kannan, K., and Shahbakhti, M. (2019) An Experimental Study on the Varia-tion of COVIMEP and Ringing Intensity at Different Air Excess Coefficients in a HCCI Engine, in Internatıonal Symposıum on Automotıve Scıence and Technology-2019: Ankara, Turkey.
  • 11. Solmaz, H., Ardebili, S.M.S., Calam, A., Yılmaz, E., and İpci, D. (2021) Prediction of performance and exhaust emissions of a CI engine fueled with multi-wall carbon nanotube doped biodiesel-diesel blends using response surface method. Energy. p. 120518.
  • 12. Bahng, G., Jang, D., Kim, Y., and Shin, M. (2016) A new tech-nology to overcome the limits of HCCI engine through fuel modi-fication. Applied Thermal Engineering. 98: p. 810-815.
  • 13. Elzahaby, A.M., Elkelawy, M., Bastawissi, H.A.-E., El_Malla, S.M., and Naceb, A.M.M. (2018) Kinetic modeling and experi-mental study on the combustion, performance and emission char-acteristics of a PCCI engine fueled with ethanol-diesel blends. Egyptian Journal of Petroleum. 27(4): p. 927-937.
  • 14. Elkelawy, M., Yu-Sheng, Z., Hagar, A.E.-D., and Yu, J.-Z. (2008) Challenging and future of homogeneous charge compression igni-tion engines; an advanced and novel concepts review. Journal of power and energy systems. 2(4): p. 1108-1119.
  • 15. Taghavifar, H., Nemati, A., and Walther, J.H. (2019) Combustion and exergy analysis of multi-component diesel-DME-methanol blends in HCCI engine. Energy. 187: p. 115951.
  • 16. Bastawissi, H.A.E., Elkelawy, M., Panchal, H., and Sadasivuni, K.K. (2019) Optimization of the multi-carburant dose as an ener-gy source for the application of the HCCI engine. Fuel. 253: p. 15-24.
  • 17. Gainey, B., Yan, Z., and Lawler, B. (2021) Autoignition charac-terization of methanol, ethanol, propanol, and butanol over a wide range of operating conditions in LTC/HCCI. Fuel. 287: p. 119495.
  • 18. 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: p. 199-207.
  • 19. Calam, A. and Aydoğan, B. (2019) Experimental Investigation of Performance Combustion and Emission Characteristics in an HCCI Engine Fuelled Isopropanol and Heptane Fuel Mixtures. Gazi Üniversitesi Fen Bilimleri Dergisi Part C. 7(4): p. 818-833.
  • 20. Awad, O.I., Mamat, R., Ali, O.M., Azmi, W., Kadirgama, K., Yusri, I., Leman, A., and Yusaf, T. (2017) Response surface methodology (RSM) based multi-objective optimization of fusel oil-gasoline blends at different water content in SI engine. Energy Conversion and Management. 150: p. 222-241.
  • 21. Mahla, S.K., Safieddin Ardebili, S.M., Mostafaei, M., Dhir, A., Goga, G., and Chauhan, B.S. (2020) Multi-objective optimization of performance and emissions characteristics of a variable com-pression ratio diesel engine running with biogas-diesel fuel using response surface techniques. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. p. 1-18.
  • 22. Calam, A., İçingür, Y., Solmaz, H., and Yamık, H. (2015) A comparison of engine performance and the emission of fusel oil and gasoline mixtures at different ignition timings. International journal of green energy. 12(8): p. 767-772.
  • 23. Awad, O.I., Ali, O.M., Mamat, R., Abdullah, A., Najafi, G., Kamarulzaman, M., Yusri, I., and Noor, M. (2017) Using fusel oil as a blend in gasoline to improve SI engine efficiencies: A com-prehensive review. Renewable and Sustainable Energy Reviews. 69: p. 1232-1242.
  • 24. Myers, R.H., Montgomery, D.C., Vining, G.G., Borror, C.M., and Kowalski, S.M. (2004) Response surface methodology: a retro-spective and literature survey. Journal of quality technology. 36(1): p. 53-77.
  • 25. Myers, R.H., Khuri, A.I., and Carter, W.H. (1989) Response sur-face methodology: 1966–l988. Technometrics. 31(2): p. 137-157.
  • 26. Xiao, M., Shen, X., Ma, Y., Yang, F., Gao, N., Wei, W., and Wu, D. (2018) Prediction of surface roughness and optimization of cutting parameters of stainless steel turning based on RSM. Math-ematical Problems in Engineering. 2018.
  • 27. Li, Y., Meng, L., Nithyanandan, K., Lee, T.H., Lin, Y., Chia-fon, F.L., and Liao, S. (2016) Combustion, performance and emis-sions characteristics of a spark-ignition engine fueled with iso-propanol-n-butanol-ethanol and gasoline blends. Fuel. 184: p. 864-872.
  • 28. Halis, S., Nacak, Ç., Solmaz, H., Yilmaz, E., and Yucesu, H.S. (2018) Investigation of the effects of octane number on combus-tion characteristics and engine performance in a HCCI engine. Journal of Thermal Science and Technology. 38(2): p. 73-84.
  • 29. Calam, A. and İçingür, Y. (2019) Hava fazlalık katsayısı ve oktan sayısı değişiminin HCCI yanma karakteristiklerine ve motor per-formansına etkileri. Politeknik Dergisi. 22(3): p. 607-618.
  • 30. Xingcai, L., Yuchun, H., Libin, J., Zu Linlin, a., and Zhen, H. (2006) Heat release analysis on combustion and parametric study on emissions of HCCI engines fueled with 2-propanol/n-heptane blend fuels. Energy & fuels. 20(5): p. 1870-1878.
  • 31. Bendu, H. and Murugan, S. (2014) Homogeneous charge com-pression ignition (HCCI) combustion: Mixture preparation and control strategies in diesel engines. Renewable and Sustainable Energy Reviews. 38: p. 732-746.
  • 32. Aydoğan, B. and Calam, A. (2020) Combustion, performance and emission caracteristics of a HCCI engine fuelled with n-butanol/n-heptane blends. International Journal of Automotive Engineering and Technologies. 9(1): p. 1-10.
  • 33. Canakci, M. (2012) Combustion characteristics of a DI-HCCI gasoline engine running at different boost pressures. Fuel. 96: p. 546-555.
  • 34. Maurya, R.K. and Agarwal, A.K. (2014) Experimental investiga-tions of performance, combustion and emission characteristics of ethanol and methanol fueled HCCI engine. Fuel processing tech-nology. 126: p. 30-48.
  • 35. Halbe, M.H., Fain, D.J., Shaver, G.M., Kocher, L., and Koeber-lein, D. (2017) Control-oriented premixed charge compression ignition CA50 model for a diesel engine utilizing variable valve actuation. International Journal of Engine Research. 18(8): p. 847-857.
  • 36. Hakansson, A. (2007) CA50 estimation on HCCI engine using engine speed variations. Lund University: MSc Thesis.
  • 37. Calam, A. (2021) Homojen Dolgulu Sıkıştırma ile Ateşlemeli Bir Motorda n-heptan-Tetrahidrofuran Karışımlarının Yanma, Per-formans ve Emisyonlara Etkisi. Politeknik Dergisi. p. 1-1.
  • 38. Wang, Z., Liu, H., Ma, X., Wang, J., Shuai, S., and Reitz, R.D. (2016) Homogeneous charge compression ignition (HCCI) com-bustion of polyoxymethylene dimethyl ethers (PODE). Fuel. 183: p. 206-213.
  • 39. Zhao, H. (2007) HCCI and CAI engines for the automotive indus-try. Elsevier.
  • 40. Zheng, Z. and Yao, M. (2009) Charge stratification to control HCCI: Experiments and CFD modeling with n-heptane as fuel. Fuel. 88(2): p. 354-365.
  • 41. Bendu, H., Deepak, B., and Murugan, S. (2016) Application of GRNN for the prediction of performance and exhaust emissions in HCCI engine using ethanol. Energy conversion and manage-ment. 122: p. 165-173.
  • 42. Jun, D. and Iida, N. (2004) A study of high combustion efficien-cy and low CO emission in a natural gas HCCI engine. SAE transactions. p. 1306-1316.
  • 43. Dec, J.E. and Yang, Y. (2010) Boosted HCCI for high power without engine knock and with ultra-low NOx emissions-using conventional gasoline. SAE International Journal of Engines. 3(1): p. 750-767.

Experimental investigation and optimization of HCCI engine fueled by isopropanol and heptane mixture

Year 2021, Volume: 1 Issue: 2, 63 - 78, 30.06.2021
https://doi.org/10.29228/eng.pers.51253

Abstract

Nowadays optimization is increasing in experiments on the engine tests studies. In this study, the test fuel obtained by mixing isopropanol with n-heptane fuel under various engine conditions in HCCI mode was examined combustion, performance and emissions. The study was carried out both experimentally and statistically. Set as engine parameters, different engine speed, test fuel with isopropanol (IP20-IP40) and excess air ratio for experimental study. Engine speed is 800 rpm - 1200 rpm, excess air ratio is 1.6 and 2.8, and isopropanol ratio in test fuel of 20% and 40%. From the experiment, investigations were made on effective torque, indicated mean effective pressure, indicated thermal efficiency, maximum pressure increase rate, start of combustion (SOC), combustion duration, COVIMEP, HC, CO and NOx. Before the experiments, experimental series were determined with Response Surface Method, Central Compound Design matrix. Experiments were carried out with the experimental series obtained and the data were analysed. Counter charts, ANOVA results and quartic models were obtained by entering the combustion, performance and output of the HCCI engine into the RSM interface. Then, the targeted response parameters were entered and optimization was made to determine the optimum input parameter. Response parameters under optimum operating conditions Effective Torque 11.438 Nm, IMEP 4.366 bar, MPRR 2.747 bar/°CA, COVIMEP 4.364%, CA10 2.315 °CA, CA50 7 °CA, CA10-CA90 36.245 °CA, UHCs 324.562 ppm, CO 0.0118% and NOx 2.549 ppm were determined.

References

  • 1. Lü, X., Ji, L., Zu, L., Hou, Y., Huang, C., and Huang, Z. (2007) Experimental study and chemical analysis of n-heptane homoge-neous charge compression ignition combustion with port injection of reaction inhibitors. Combustion and flame. 149(3): p. 261-270.
  • 2. Li, Y., Chen, Y., Wu, G., and Liu, J. (2018) Experimental evalua-tion of water-containing isopropanol-n-butanol-ethanol and gaso-line blend as a fuel candidate in spark-ignition engine. Applied Energy. 219: p. 42-52.
  • 3. Polat, S., Solmaz, H., Yılmaz, E., Calam, A., Uyumaz, A., and Yücesu, H.S. (2020) Mapping of an HCCI engine using negative valve overlap strategy. Energy Sources, Part A: Recovery, Utiliza-tion, and Environmental Effects. 42(9): p. 1140-1154.
  • 4. Uyaroğlu, A., Gürü, M., Kocakulak, T., Uyumaz, A., and Solmaz, H. (2021) Combustion, performance and emission analyses of organic Manganese-Added crambe abyssinica biodiesel in a direct injection diesel engine. Fuel. 297: p. 120770.
  • 5. An, Y., Jaasim, M., Raman, V., Pérez, F.E.H., Sim, J., Chang, J., Im, H.G., and Johansson, B. (2018) Homogeneous charge com-pression ignition (HCCI) and partially premixed combustion (PPC) in compression ignition engine with low octane gasoline. Energy. 158: p. 181-191.
  • 6. Calam, A., Solmaz, H., Yılmaz, E., and İçingür, Y. (2019) Inves-tigation of effect of compression ratio on combustion and ex-haust emissions in A HCCI engine. Energy. 168: p. 1208-1216.
  • 7. Aydoğan, B. (2021) Combustion, Performance and Emissions of Ethanol/n-Heptane Blends in HCCI Engine. Engineering Perspec-tive. 1(1): p. 5.
  • 8. Uyumaz, A., Aydoğan, B., Calam, A., Aksoy, F., and Yılmaz, E. (2020) The effects of diisopropyl ether on combustion, perfor-mance, emissions and operating range in a HCCI engine. Fuel. 265: p. 116919.
  • 9. Calam, A., Aydoğan, B., and 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: p. 117071.
  • 10. Polat, S., Yücesu, H.S., Solmaz, H., Uyumaz, A., Kannan, K., and Shahbakhti, M. (2019) An Experimental Study on the Varia-tion of COVIMEP and Ringing Intensity at Different Air Excess Coefficients in a HCCI Engine, in Internatıonal Symposıum on Automotıve Scıence and Technology-2019: Ankara, Turkey.
  • 11. Solmaz, H., Ardebili, S.M.S., Calam, A., Yılmaz, E., and İpci, D. (2021) Prediction of performance and exhaust emissions of a CI engine fueled with multi-wall carbon nanotube doped biodiesel-diesel blends using response surface method. Energy. p. 120518.
  • 12. Bahng, G., Jang, D., Kim, Y., and Shin, M. (2016) A new tech-nology to overcome the limits of HCCI engine through fuel modi-fication. Applied Thermal Engineering. 98: p. 810-815.
  • 13. Elzahaby, A.M., Elkelawy, M., Bastawissi, H.A.-E., El_Malla, S.M., and Naceb, A.M.M. (2018) Kinetic modeling and experi-mental study on the combustion, performance and emission char-acteristics of a PCCI engine fueled with ethanol-diesel blends. Egyptian Journal of Petroleum. 27(4): p. 927-937.
  • 14. Elkelawy, M., Yu-Sheng, Z., Hagar, A.E.-D., and Yu, J.-Z. (2008) Challenging and future of homogeneous charge compression igni-tion engines; an advanced and novel concepts review. Journal of power and energy systems. 2(4): p. 1108-1119.
  • 15. Taghavifar, H., Nemati, A., and Walther, J.H. (2019) Combustion and exergy analysis of multi-component diesel-DME-methanol blends in HCCI engine. Energy. 187: p. 115951.
  • 16. Bastawissi, H.A.E., Elkelawy, M., Panchal, H., and Sadasivuni, K.K. (2019) Optimization of the multi-carburant dose as an ener-gy source for the application of the HCCI engine. Fuel. 253: p. 15-24.
  • 17. Gainey, B., Yan, Z., and Lawler, B. (2021) Autoignition charac-terization of methanol, ethanol, propanol, and butanol over a wide range of operating conditions in LTC/HCCI. Fuel. 287: p. 119495.
  • 18. 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: p. 199-207.
  • 19. Calam, A. and Aydoğan, B. (2019) Experimental Investigation of Performance Combustion and Emission Characteristics in an HCCI Engine Fuelled Isopropanol and Heptane Fuel Mixtures. Gazi Üniversitesi Fen Bilimleri Dergisi Part C. 7(4): p. 818-833.
  • 20. Awad, O.I., Mamat, R., Ali, O.M., Azmi, W., Kadirgama, K., Yusri, I., Leman, A., and Yusaf, T. (2017) Response surface methodology (RSM) based multi-objective optimization of fusel oil-gasoline blends at different water content in SI engine. Energy Conversion and Management. 150: p. 222-241.
  • 21. Mahla, S.K., Safieddin Ardebili, S.M., Mostafaei, M., Dhir, A., Goga, G., and Chauhan, B.S. (2020) Multi-objective optimization of performance and emissions characteristics of a variable com-pression ratio diesel engine running with biogas-diesel fuel using response surface techniques. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. p. 1-18.
  • 22. Calam, A., İçingür, Y., Solmaz, H., and Yamık, H. (2015) A comparison of engine performance and the emission of fusel oil and gasoline mixtures at different ignition timings. International journal of green energy. 12(8): p. 767-772.
  • 23. Awad, O.I., Ali, O.M., Mamat, R., Abdullah, A., Najafi, G., Kamarulzaman, M., Yusri, I., and Noor, M. (2017) Using fusel oil as a blend in gasoline to improve SI engine efficiencies: A com-prehensive review. Renewable and Sustainable Energy Reviews. 69: p. 1232-1242.
  • 24. Myers, R.H., Montgomery, D.C., Vining, G.G., Borror, C.M., and Kowalski, S.M. (2004) Response surface methodology: a retro-spective and literature survey. Journal of quality technology. 36(1): p. 53-77.
  • 25. Myers, R.H., Khuri, A.I., and Carter, W.H. (1989) Response sur-face methodology: 1966–l988. Technometrics. 31(2): p. 137-157.
  • 26. Xiao, M., Shen, X., Ma, Y., Yang, F., Gao, N., Wei, W., and Wu, D. (2018) Prediction of surface roughness and optimization of cutting parameters of stainless steel turning based on RSM. Math-ematical Problems in Engineering. 2018.
  • 27. Li, Y., Meng, L., Nithyanandan, K., Lee, T.H., Lin, Y., Chia-fon, F.L., and Liao, S. (2016) Combustion, performance and emis-sions characteristics of a spark-ignition engine fueled with iso-propanol-n-butanol-ethanol and gasoline blends. Fuel. 184: p. 864-872.
  • 28. Halis, S., Nacak, Ç., Solmaz, H., Yilmaz, E., and Yucesu, H.S. (2018) Investigation of the effects of octane number on combus-tion characteristics and engine performance in a HCCI engine. Journal of Thermal Science and Technology. 38(2): p. 73-84.
  • 29. Calam, A. and İçingür, Y. (2019) Hava fazlalık katsayısı ve oktan sayısı değişiminin HCCI yanma karakteristiklerine ve motor per-formansına etkileri. Politeknik Dergisi. 22(3): p. 607-618.
  • 30. Xingcai, L., Yuchun, H., Libin, J., Zu Linlin, a., and Zhen, H. (2006) Heat release analysis on combustion and parametric study on emissions of HCCI engines fueled with 2-propanol/n-heptane blend fuels. Energy & fuels. 20(5): p. 1870-1878.
  • 31. Bendu, H. and Murugan, S. (2014) Homogeneous charge com-pression ignition (HCCI) combustion: Mixture preparation and control strategies in diesel engines. Renewable and Sustainable Energy Reviews. 38: p. 732-746.
  • 32. Aydoğan, B. and Calam, A. (2020) Combustion, performance and emission caracteristics of a HCCI engine fuelled with n-butanol/n-heptane blends. International Journal of Automotive Engineering and Technologies. 9(1): p. 1-10.
  • 33. Canakci, M. (2012) Combustion characteristics of a DI-HCCI gasoline engine running at different boost pressures. Fuel. 96: p. 546-555.
  • 34. Maurya, R.K. and Agarwal, A.K. (2014) Experimental investiga-tions of performance, combustion and emission characteristics of ethanol and methanol fueled HCCI engine. Fuel processing tech-nology. 126: p. 30-48.
  • 35. Halbe, M.H., Fain, D.J., Shaver, G.M., Kocher, L., and Koeber-lein, D. (2017) Control-oriented premixed charge compression ignition CA50 model for a diesel engine utilizing variable valve actuation. International Journal of Engine Research. 18(8): p. 847-857.
  • 36. Hakansson, A. (2007) CA50 estimation on HCCI engine using engine speed variations. Lund University: MSc Thesis.
  • 37. Calam, A. (2021) Homojen Dolgulu Sıkıştırma ile Ateşlemeli Bir Motorda n-heptan-Tetrahidrofuran Karışımlarının Yanma, Per-formans ve Emisyonlara Etkisi. Politeknik Dergisi. p. 1-1.
  • 38. Wang, Z., Liu, H., Ma, X., Wang, J., Shuai, S., and Reitz, R.D. (2016) Homogeneous charge compression ignition (HCCI) com-bustion of polyoxymethylene dimethyl ethers (PODE). Fuel. 183: p. 206-213.
  • 39. Zhao, H. (2007) HCCI and CAI engines for the automotive indus-try. Elsevier.
  • 40. Zheng, Z. and Yao, M. (2009) Charge stratification to control HCCI: Experiments and CFD modeling with n-heptane as fuel. Fuel. 88(2): p. 354-365.
  • 41. Bendu, H., Deepak, B., and Murugan, S. (2016) Application of GRNN for the prediction of performance and exhaust emissions in HCCI engine using ethanol. Energy conversion and manage-ment. 122: p. 165-173.
  • 42. Jun, D. and Iida, N. (2004) A study of high combustion efficien-cy and low CO emission in a natural gas HCCI engine. SAE transactions. p. 1306-1316.
  • 43. Dec, J.E. and Yang, Y. (2010) Boosted HCCI for high power without engine knock and with ultra-low NOx emissions-using conventional gasoline. SAE International Journal of Engines. 3(1): p. 750-767.
There are 43 citations in total.

Details

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

Seyed Mohammad Safieddin Ardebili

Çağatay Nacak

Tolga Kocakulak

Mustafa Babagiray

Publication Date June 30, 2021
Published in Issue Year 2021 Volume: 1 Issue: 2

Cite

APA Safieddin Ardebili, S. M., Nacak, Ç., Kocakulak, T., Babagiray, M. (2021). Experimental investigation and optimization of HCCI engine fueled by isopropanol and heptane mixture. Engineering Perspective, 1(2), 63-78. https://doi.org/10.29228/eng.pers.51253