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Numerical simulation on the effects of n-butanol combined with intake dilution on engine knock

Author

Listed:
  • Feng, Hongqing
  • Suo, Xinghan
  • Xiao, Shuwen
  • Chen, Xiaofan
  • Zhang, Zhisong
  • Gao, Ning
  • Zheng, Zunqing

Abstract

The improvement in thermal efficiency of GDI engine is severely limited by knocking. The effects of n-butanol combined with intake dilution on engine knock and thermal efficiency were studied in this paper. The results show that the combustion activity of n-butanol containing OH functional group can be improved by blending a small amount, and then the detonation intensity and thermal efficiency can be improved. When a high proportion of n-butanol is mixed, the knock strength and thermal efficiency will be reduced due to the effect of low calorific value and latent heat of vaporization. In particular, the maximum value is reached when 15% n-butanol is employed. The spontaneous combustion tendency is reduced by intake dilution, and the influence degree is reduced in the order of EGR dilution, compound dilution and air dilution, which is caused by the different amount of CO2 in the three dilution gases. When RA = 1.2 and RA-E = 1.2, the knock intensity of GDI engine burning Bu15 is reduced by 96.3% and 98.4%, respectively. Therefore, when n-butanol combined with composite dilution is selected, the occurrence of knocking can be suppressed, while ensuring high thermal efficiency. Current study can provide theoretical guidance for knock suppression of GDI engines.

Suggested Citation

  • Feng, Hongqing & Suo, Xinghan & Xiao, Shuwen & Chen, Xiaofan & Zhang, Zhisong & Gao, Ning & Zheng, Zunqing, 2023. "Numerical simulation on the effects of n-butanol combined with intake dilution on engine knock," Energy, Elsevier, vol. 271(C).
  • Handle: RePEc:eee:energy:v:271:y:2023:i:c:s0360544223003122
    DOI: 10.1016/j.energy.2023.126918
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    References listed on IDEAS

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    1. Tornatore, Cinzia & Marchitto, Luca & Valentino, Gerardo & Esposito Corcione, Felice & Merola, Simona Silvia, 2012. "Optical diagnostics of the combustion process in a PFI SI boosted engine fueled with butanol–gasoline blend," Energy, Elsevier, vol. 45(1), pages 277-287.
    2. Lee, Sunyoup & Park, Seunghyun & Kim, Changgi & Kim, Young-Min & Kim, Yongrae & Park, Cheolwoong, 2014. "Comparative study on EGR and lean burn strategies employed in an SI engine fueled by low calorific gas," Applied Energy, Elsevier, vol. 129(C), pages 10-16.
    3. Chen, Lin & Wei, Haiqiao & Chen, Ceyuan & Feng, Dengquan & Zhou, Lei & Pan, Jiaying, 2019. "Numerical investigations on the effects of turbulence intensity on knocking combustion in a downsized gasoline engine," Energy, Elsevier, vol. 166(C), pages 318-325.
    4. Lattimore, Thomas & Wang, Chongming & Xu, Hongming & Wyszynski, Miroslaw L. & Shuai, Shijin, 2016. "Investigation of EGR Effect on Combustion and PM Emissions in a DISI Engine," Applied Energy, Elsevier, vol. 161(C), pages 256-267.
    5. Kim, Tae Young & Park, Cheolwoong & Oh, Seungmook & Cho, Gyuback, 2016. "The effects of stratified lean combustion and exhaust gas recirculation on combustion and emission characteristics of an LPG direct injection engine," Energy, Elsevier, vol. 115(P1), pages 386-396.
    6. Jung, Dongwon & Lee, Sejun, 2018. "An investigation on the potential of dedicated exhaust gas recirculation for improving thermal efficiency of stoichiometric and lean spark ignition engine operation," Applied Energy, Elsevier, vol. 228(C), pages 1754-1766.
    7. Park, Cheolwoong & Kim, Sungdae & Kim, Hongsuk & Moriyoshi, Yasuo, 2012. "Stratified lean combustion characteristics of a spray-guided combustion system in a gasoline direct injection engine," Energy, Elsevier, vol. 41(1), pages 401-407.
    8. Wei, Haiqiao & Feng, Dengquan & Pan, Jiaying & Shao, Aifang & Pan, Mingzhang, 2017. "Knock characteristics of SI engine fueled with n-butanol in combination with different EGR rate," Energy, Elsevier, vol. 118(C), pages 190-196.
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