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High Temperature HCCI Critical Compression Ratio of the C1-C4 Alcohol Fuels

Journal Article
2021-01-0511
ISSN: 2641-9645, e-ISSN: 2641-9645
Published April 06, 2021 by SAE International in United States
High Temperature HCCI Critical Compression Ratio of the C1-C4 Alcohol Fuels
Sector:
Citation: Gainey, B., Hoth, A., Waqas, M., Lawler, B. et al., "High Temperature HCCI Critical Compression Ratio of the C1-C4 Alcohol Fuels," SAE Int. J. Adv. & Curr. Prac. in Mobility 3(4):1495-1507, 2021, https://doi.org/10.4271/2021-01-0511.
Language: English

References

  1. Saxena , S. , and Bedoya , I. Fundamental Phenomena Affecting Low Temperature Combustion and HCCI Engines, High Load Limits and Strategies for Extending These Limits Progress in Energy and Combustion Science 39 5 457 488 2013
  2. Najt , P. , and Foster , D. Compression-Ignited Homogeneous Charge Combustion SAE Technical Paper 830264 1983 http://doi.org/10.4271/830264
  3. Dec , J. , Hwang , W.
  4. Snyder , J. , Dronniou , N. , Dec , J. , and Hanson , R. PLIF Measurements of Thermal Stratification in an HCCI Engine Under Fired Operation SAE Int J Engines 4 1 1669 1688 2011 http://doi.org/10.4271/2011-01-1291
  5. Gainey , B. , and Lawler , B. The Role of Alcohol Biofuels in Advanced Combustion: An Analysis Fuel Vol 283 2021
  6. Lawler , B. , Splitter , D. , Szybist , J. , and Kaul , B. Thermally Stratified Compression Ignition: A New Advanced Low Temperature Combustion Mode with Load Flexibility Applied Energy 189 122 132 2017
  7. Gainey , B. , Hariharan , D. , Yan , Z. , and Lawler , B. A Split Injection of Wet Ethanol to Enable Thermally Stratified Compression Ignition Int J Engine Res 21 8 1441 1453 2018
  8. Gainey , B. , Gohn , J. , Hariharan , D. , Rahim-Boldaji , M. , and Lawler , B. Assessing the Impact of Injector Included Angle and Piston Geometry on Thermally Stratified Compression Ignition with Wet Ethanol Applied Energy 262 114528 2020
  9. Noehre , C. , Andersson , M. , Johansson , B. , and Hultqvist , A. Characterization of Partially Premixed Combustion SAE Technical Paper 2006-01-3412 2006
  10. Kolodziej , C. , Kodavasal , J. , Ciatti , S. , Som , S. et al. Achieving Stable Engine Operation of Gasoline Compression Ignition Using 87 AKI Gasoline Down to Idle SAE Technical Paper 2015-01-0832 2015 https://doi.org/10.4271/2015-01-0832
  11. Sjoberg , M. , and Dec , J. Smoothing HCCI Heat-Release Rates Using Partial Fuel Stratification with Two-Stage Ignition Fuels SAE Technical Paper 2006-01-0629 2006
  12. Kolodziej , C. , Sellnau , M. , Cho , K. , and Cleary , D. Operation of a Gasoline Direct Injection Compression Ignition Engine on Naphtha and E10 Gasoline Fuels SAE Int. J. Engines 9 2 2016 https://doi.org/10.4271/2016-01-0759
  13. D. ASTM, 2700 Standard Test Method for Motor Octane Number of Spark-Ignition Engine Fuel American Society for Testing and Materials (ASTM) 2014
  14. A International, Standard Test Method for Research Octane Number of Spark-Ignition Engine Fuel West Conshohocken, PA ASTM 2007
  15. ASTM D613-18a, Standard Test Method for Cetane Number of Diesel Fuel Oil West Conshohocken, PA ASTM International 2018
  16. Lopez Pintor , D. , Dec , J. , and Gentz , G. Φ-Sensitivity for LTGC Engines: Understanding the Fundamentals and Tailoring Fuel Blends to Maximize This Property SAE Technical Paper 2019-01-0961 2019 https://doi.org/10.4271/2019-01-0961
  17. Kalghatgi , G. Fuel Anti-Knock Quality - Part I. Engine Studies SAE Technical Paper 2001-01-3584 2001 https://doi.org/10.4271/2001-01-3584
  18. Risberg , P. , Kalghatgi , G. , and Ångstrom , H. Auto-Ignition Quality of Gasoline-Like Fuels in HCCI Engines SAE Technical Paper 2003-01-3215 2003 https://doi.org/10.4271/2003-01-3215
  19. Liu , H. , Yao , M. , Zhang , B. , and Zheng , Z. Influence of Fuel and Operating Conditions on Combustion Characteristics of a Homogenous Charge Compression Ignition Engine Energy & Fuels 23 1422 1430 2009
  20. Shibata , G. , and Urushihara , T. Auto-Ignition Characteristics of Hydrocarbons and Development of HCCI Fuel Index SAE Technical Paper 2007-01-0220 2007 https://doi.org/10.4271/2007-01-0220
  21. Truedsson , I. , Cannella , W. , Johansson , B. , and Tuner , M. Development of New Test Method for Evaluating HCCI Fuel Performance SAE Technical Paper 2014-01-2667 2014 https://doi.org/10.4271/2014-01-2667
  22. Rochstroh , T. , Kolodziej , C. , Goldsborough , S. , Wallner , T. , and Jspersen , M. Insights into Engine Knock: Comparison of Knock Metrics across Ranges of Intake Temperature and Pressure in the CFR Engine SAE Technical Paper 2018-01-0210 https://doi.org/10.4271/2018-01-0210
  23. Waqas , M. Effect of Intake Temperature and Engine Speed on the Auto-ignition Reactivity of the Fuels for HCCI Fuel Rating SAE 2020
  24. EPA Lifecycle Greenhouse Gas Results https://www.epa.gov/fuels-registration-reporting-and-compliance-help/lifecycle-greenhouse-gas-results
  25. Renewable Fuels Association
  26. Zabed , H. , Sahu , J. , Suely , A. , Boyce , A. , and Faruq , G. Bioethanol Production from Renewable Sources: Current Perspectives and Technological Progress Renewable and Sustainable Energy Reviews 71 475 501 2017
  27. Weber , C. , Farwick , A. , Benisch , F. , Brat , D. et al. Trends and Challenges in the Microbial Production of Lignocellulosic Bioalcohol Fuels Applied Microbiology and Biotechnology. 87 1303 1315 2010
  28. Zhang , K. , Sawaya , M.R. , Eisenberg , D.S. , and Liao , J.C. Expanding Metabolism for Biosynthesis of Nonnatural Alcohols Proc Natl Acad Sci 105 52 20653 20658 2008
  29. ASTM D909-18, Standard Test Method for Supercharge Rating of Spark-Ignition Aviation Gasoline West Conshohocken, PA ASTM International 2018
  30. Gainey , B. , Yan , Z. , and Lawler , B. Autoignition Characterization of Methanol, Ethanol, Propanol, and Butanol Over a Wide Range of Operating Conditions in LTC/HCCI Fuel
  31. Ortiz-Soto , E. , Vavra , J. , Babajimopoulos , A. Assessment of Residual Mass Estimation Methods for Cylinder Pressure Heat Release Analysis of HCCI Engines with Negative Valve Overlap Proceedings of the ASME 2011 Internal Combustion Engine Division Fall Technical Conference. ASME 2011 Internal Combustion Engine Division Fall Technical Conference October 2-5 2011 481 490 ASME https://doi.org/10.1115/ICEF2011-60167
  32. Gainey , B. , Longtin , J.P. , and Lawler , B. A Guide to Uncertainty Quantification for Experimental Engine Research and Heat Release Analysis SAE J. Engines 2019 https://doi.org/10.4271/03-12-05-0033
  33. Borgqvist , P. , Tunestal , P. , and Johansson , B. Comparison of Negative Valve Overlap (NVO) and Rebreathing Valve Strategies on a Gasoline PPC Engine at Low Load and Idle Operating Conditions SAE Int. J. Engines 6 1 366 378 2013 https://doi.org/10.4271/2013-01-0902
  34. Gorzelic , P. , Hellström , E. , Stefanopoulou , A. , Jiang , L. Model-Based Feedback Control for an Automated Transfer out of SI Operation During SI to HCCI Transitions in Gasoline Engines Proceedings of the 5th Annual Dynamic Systems and Control Conference 2012 Fort Lauderdale, FL
  35. Westbrook , C. , and Curran , H. Mathematical Modelling of Gas-Phase Complex Reaction Systems: Pyrolysis and Combustion: Chapter 7 Detailed Kinetics of Fossil and Renewable Fuel Combustion Elsevier 2019 ISBN: 9780128195796
  36. Weber , B.W. , and Sung , C.-J. Comparative Autoignition Trends in Butanol Isomers at Elevated Pressure Energy Fuels 27 1688e98 2013
  37. Desants , J. , Bermudez , V. , Lopez , J. , and Lopez-Pintor , D. A New Method o Predict High and Low-Temperature Ignition Delays Under Transient Thermodynamic Conditions and Its Experimental Validation Using a Rapid Compression-Expansion Machine Energy Conversion and Management 123 512 522 2016
  38. Kumar , K. , and Sung , C. Autoignition of Methanol: Experiments and Computations Wiley
  39. Mittal , G. , Burke , S. , Davies , V. , and Parajuli , B. Metcalfe, W. Autignition of Ethanol in a Rapid Compression Machine Combustion and Flame 161 1164 1171 2014
  40. Noorani , K. , Akih-Kumgeh , A. , and Bergthorson , J. Comparative High Temperature Shock Tube Ignition of C1-C4 Primary Alcohols Energy Fuels 24 5834 5843 2010
  41. Mack , J. , Schuler , D. , Butt , R. , and Dibble , R. Experimental Investigation of Butanol Isomer Combustion in Homogeneous Charge Compression Ignition (HCCI) Engines Applied Energy 165 612 626 2016
  42. Johnson , M. , and Goldsborough , S. A Shock Tube Study of n- and Iso-Propanol Ignition Energy Fuels 5886 5898 2009
  43. Sarathy , S. , Owald , P. , Hansen , N. , and Kohse-Hoinghaus , K. Alcohol Combustion Chemistry Progress in Energy and Combustion Science 44 40 102 2014
  44. Weber , B. , and Sung , C. Comparative Autoignition Trends in Butanol Isomers at Elevated Pressure Energy Fuels 27 3 1688 1698 2013
  45. Yanowitz , J. , Ratcliff , M. , McCormick , R. , Taylor , J. , and Murphy , M. Compendium of Experimental Cetane Numbers NREL/TP-5400-61693 2017
  46. Foong , T. , Morganti , K. , Brear , M. , da Silva , G. et al. The Effect of Charge Cooling on the RON of Ethanol/Gasoline Blends SAE Int. J. Fuels Lubr. 6 1 34 43 2013 10.4271/2013-01-0886
  47. Sluder , C. , Szybist , J. , McCormick , R. , Ratcliff , M. , and Zigler , B. Exploring the Relationship Between Octane Sensitivity and Heat-of-Vaporization SAE Int. J. Fuels. Lubr. https://doi.org/10.4271/2016-01-0836
  48. Sjoberg , M. , and Dec , J. Ethanol Autoignition Characteristics and HCCI Performance for Wide Ranges of Engine Speed, Load and Boost SAE Int J Engines 3 1 84 106 2010 https://doi.org/10.4271/2010-01-0338

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