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Misfire Behavior and Mitigations of Passive Pre-chambers at Low-Load Operation in an Optically Accessible Gasoline Engine

Journal Article
03-15-03-0016
ISSN: 1946-3936, e-ISSN: 1946-3944
Published September 14, 2021 by SAE International in United States
Misfire Behavior and Mitigations of Passive Pre-chambers at Low-Load
                    Operation in an Optically Accessible Gasoline Engine
Sector:
Citation: Lee, D., Swanson, C., Yu, X., and Qiao, L., "Misfire Behavior and Mitigations of Passive Pre-chambers at Low-Load Operation in an Optically Accessible Gasoline Engine," SAE Int. J. Engines 15(3):335-348, 2022, https://doi.org/10.4271/03-15-03-0016.
Language: English

References

  1. Graham , L.A. , Sheri , L.B. , and Paul , R. Nitrous Oxide Emissions from Light Duty Vehicles Atmospheric Environment 43 2009 2031 2045 http://doi.org/10.1016/j.atmosenv.2009.01.002 (12)
  2. Biswas , S. and Qiao , L. Prechamber Hot Jet Ignition of Ultra-Lean H2/Air Mixtures: Effect of Supersonic Jets and Combustion Instability SAE Int. J. Engines 9 3 2016 1584 1592 https://doi.org/10.4271/2016-01-0795
  3. Biswas , S. , Tanvir , S. , Wang , H. , and Qiao , L. On Ignition Mechanisms of Premixed CH 4 /Air and H 2 /Air Mixtures Using a Hot Turbulent Jet Generated by Prechamber Combustion Applied Thermal Engineering 106 2016 925 837
  4. Biswas , S. and Qiao , L. A Numerical Investigation of Ignition of Ultra-Lean Premixed H 2 /Air Mixtures by Pre-Chamber Supersonic Hot Jet SAE Int. J. Engines 10 5 2017 2231 2247 https://doi.org/10.4271/2017-01-9284
  5. Biswas , S. and Qiao , L. Ignition of Ultra-Lean H 2 /Air Mixtures by Multiple Turbulent Hot Jets Generated by Pre-chamber Combustion Applied Thermal Engineering 132 2018 102 114
  6. Biswas , S. and Qiao , L. Combustion Instabilities of Ultra-Lean Premixed H 2 /Air Mixtures by Pre-Chamber Turbulent Jet Ignition AIAA Journal of Propulsion and Power 34 5 2018 1166 1177
  7. Biswas , S. and Qiao , L. Ignition of Ultra-Lean Premixed H 2 /Air by an Impinging Hot Jet Applied Energy 228 2018 954 964
  8. Bunce , M.P. , Chinnathambi , P. , and Blaxill , H.R. The Effects of Pre-Chamber-Initiated Lean-Burn Combustion on Engine Efficiency and Emissions IMechE Conference 2015
  9. Attard , W. , Toulson , E. , Fraser , E. , and Parsons , P. A Turbulent Jet Ignition Pre-Chamber Combustion System for Large Fuel Economy Improvements in a Modern Vehicle Powertrain SAE Technical Paper 2010-01-1457 2010 http://doi.org/10.4271/2010-01-1457
  10. Attard , W. , Kohn , J. , and Parsons , P. Ignition Energy Development for a Spark Initiated Combustion System Capable of High Load, High Efficiency and Near Zero NOx Emissions SAE Int. J. Engines 3 2 2010 481 496 https://doi.org/10.4271/2010-32-0088
  11. Attard , W. and Blaxill , H. A Gasoline Fueled Pre-Chamber Jet Ignition Combustion System at Unthrottled Conditions SAE Technical Paper 2012-01-0386 2012 http://doi.org/10.4271/2012-01-0386
  12. Yu , X. , Zhang , A. , Baur , A. , and Engineer , N. The Impact of Pre-Chamber Design on Part Load Efficiency and Emissions of a Miller Cycle Light Duty Gasoline Engine SAE Technical Paper 2021-01-0479 2021 http://doi.org/10.4271/2021-01-0479
  13. Sadanandan , R. , Markus , D. , Schiessl , R. , Maas , U. et al. Detailed Investigation of Ignition by Hot Gas Jets Proc. Combust. Inst. 31 2007 719 726
  14. Toulson , E. , Huisjen , A. , Chen , X. , Squibb , C. et al. Visualization of Propane and Natural Gas Spark Ignition and Turbulent Jet Ignition Combustion SAE Int. J. Engines 5 4 2012 1821 1835 https://doi.org/10.4271/2012-32-0002
  15. Toulson , E. , Watson , H. , and Attard , W. Gas Assisted Jet Ignition of Ultra-Lean LPG in a Spark Ignition Engine SAE Technical Paper 2009-01-0506 2009 http://doi.org/10.4271/2009-01-0506
  16. Gholamisheeri , M. , Wichman , I.S. , and Toulson , E. A Study of the Turbulent Jet Flow Field in a Methane Fueled Turbulent Jet Ignition (TJI) System Combust. Flame 183 2017 194 206
  17. Attard , W. , Toulson , E. , Huisjen , A. , Chen , X. et al. Spark Ignition and Pre-Chamber Turbulent Jet Ignition Combustion Visualization SAE Technical Paper 2012-01-0823 2012 https://doi.org/10.4271/2012-01-0823
  18. Gentz , G. , Thelen , B.C. , Gholamisheeri , M. , Litke , P. et al. A Study of the Influence of Orifice Diameter on a Turbulent Jet Ignition System through Combustion Visualization and Performance Characterization in a Rapid Compression Machine Appl. Therm. Eng. 81 2015 399 411
  19. Shah , P.T. and Johansson , B. Effect of Pre-Chamber Volume and Nozzle Diameter on Pre-Chamber Ignition in Heavy Duty Natural Gas Engines SAE Technical Paper 2015-01-0867 2015 http://doi.org/10.4271/2015-01-0867
  20. Thelen , B.C. and Toulson , E. A Computational Study of the Effects of Spark Location on the Performance of a Turbulent Jet Ignition System SAE Technical Paper 2016-01-0608 2016 http://doi.org/10.4271/2016-01-0608
  21. Yu , X. , Zhang , A. , Baur , A. , Voice , A. et al. Statistical Quantification of Knock with Spark Ignition and Pre-chamber Jet Ignition in a Light Duty Gasoline Engine Proceedings of the ASME 2020 Internal Combustion Engine Division Fall Technical Conference ICEF2020 1 21 2020
  22. Zhang , A. , Zhang , Y. , Yu , X. , Engineer , N. et al. Numerical Investigation of Pre-Chamber Jet Combustion in a Light-Duty Gasoline Engine Proceedings of the ASME 2020 Internal Combustion Engine Division Fall Technical Conference ICEF2020 1 13 2020
  23. Bunce , M.P. , Peters , N.D. , Pothuraju Subramanyam , S.K. , and Blaxill , H.R. Assessing the Low Load Challenge for Jet Ignition Engine Operation Internal Combustion Engines and Powertrain Systems for Future Transport 2019 2019 11 12
  24. Moiz , A. , Som , S. , Bravo , L. , and Lee , S. Experimental and Numerical Studies on Combustion Model Selection for Split Injection Spray Combustion SAE Technical Paper 2015-01-0374 2015 http://doi.org/10.4271/2015-01-0374
  25. He , L. , Jingyuan , L. , Xiumin , Y. , Mengliang , L. et al. Numerical Study on Combustion and Emission Characteristics of a PFI Gasoline Engine with Hydrogen Direct-Injection Energy Procedia 158 2019 1449 1454
  26. Senecal , P.K. , Pomraning , E. , Richards , K.J. , Briggs , T.E. et al. Multi-Dimensional Modeling of Direct-Injection Diesel Spray Liquid Length and Flame Lift-Off Length Using CFD and Parallel Detailed Chemistry SAE Transactions 112 2003 1331 1351
  27. Liu , Y.-D. , Jia , M. , Xie , M.-Z. , and Pang , B. Enhancement on a Skeletal Kinetic Model for Primary Reference Fuel Oxidation by Using a Semidecoupling Methodology Energy Fuels 26 12 2012 7069 7083
  28. Siano , D. , Valentino , G. , Bozza , F. , Iacobacci , A. et al. A Non-Linear Regression Technique to Estimate from Vibrational Engine Data the Instantaneous In-Cylinder Pressure Peak and Related Angular Position SAE Technical Paper 2016-01-2178 2016 http://doi.org/10.4271/2016-01-2178
  29. Przybyla , G. , Szlek , A. , Haggith , D. , and Sobiesiak , A. Fuelling of Spark Ignition and Homogeneous Charge Compression Ignition Engines with Low Calorific Value Producer Gas Energy 116 3 2016 1464 1478 https://doi.org/10.1016/j.energy.2016.06.036
  30. Li , H.L. , Neill , W.S. , and Chippior , W. 2007
  31. Nemoianu , L. , Pana , C. , Negurescu , N. , Cernat , A. et al. Study of the Cycle Variability at an Automotive Diesel Engine Fueled with LPG MATEC Web of Conference 112 2017 10006
  32. Huang , Z.H. , Liu , L.X. , Jiang , D.M. , Ren , Y. et al. Study on Cycle-by-Cycle Variations of Combustion in a Natural-Gas Direct-Injection Engine Proc. IMechE Part D: J. Automobile Engineering 222 2008 1657 1667
  33. Marchitto , L. , Tornatore , C. , and Teodosio , L. Individual Cylinder Combustion Optimization to Improve Performance and Fuel Consumption of a Small Turbocharged SI Engine Energies 13 2020 5548

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