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Future Specification of Automotive LPG Fuels for Modern Turbocharged DI SI Engines with Today’s High Pressure Fuel Pumps

Journal Article
2016-01-2255
ISSN: 1946-3952, e-ISSN: 1946-3960
Published October 17, 2016 by SAE International in United States
Future Specification of Automotive LPG Fuels for Modern Turbocharged DI SI Engines with Today’s High Pressure Fuel Pumps
Sector:
Citation: Krieck, M., Günther, M., Pischinger, S., Kramer, U. et al., "Future Specification of Automotive LPG Fuels for Modern Turbocharged DI SI Engines with Today’s High Pressure Fuel Pumps," SAE Int. J. Fuels Lubr. 9(3):575-592, 2016, https://doi.org/10.4271/2016-01-2255.
Language: English

References

  1. N. N. Future Transport Fuels Report of the European Expert Group on Future Transport Fuels 2011
  2. Heil , V. SNG and LPG from biogenic waste materials - technical feasibility and market potential Fraunhofer Institute for Environmental, Safety and Energy Technology UMSICHT 2011
  3. Kankariya , N. , C , V. , R , M. , L , S. et al. Development of 1.2L MPI Bi-fuel LPG Engine for Indian market application SAE Technical Paper 2009-24-0119 2009 10.4271/2009-24-0119
  4. DIN EN 589 Automotive fuels - LPG - Requirements and test methods German version EN589:2008+A1:2012 Deutsches Institut für Normung e.V. Beuth Verlag GmbH Berlin 2012
  5. Krieck , M. , Günther , M. , Pischinger , S. , Kramer , U. et al. Effects of LPG Fuel Formulations on Knock and Pre-Ignition Behavior of a DI SI Engine SAE Int. J. Engines 9 1 237 251 2016 10.4271/2015-01-1947
  6. Günther M. , Nijs M. , Pischinger S. , Kramer U. Effects of LPG fuel formulations and mixture formation systems on the combustion system of a boosted SI engine 22. Aachen Colloquium Automobile and Engine Technology 2013
  7. Oh , S. , Lee , S. , Choi , Y. , Kang , K. et al. Combustion and Emission Characteristics in a Direct Injection LPG/Gasoline Spark Ignition Engine SAE Technical Paper 2010-01-1461 2010 10.4271/2010-01-1461
  8. Lacey , J. , Poursadegh , F. , Brear , M. , Petersen , P. et al. Optical Characterization of Propane at Representative Spark Ignition, Gasoline Direct Injection Conditions SAE Technical Paper 2016-01-0842 2016 10.4271/2016-01-0842
  9. Krail M. , Schade W. , Fiorello D. , Fermi F. et al. Outlook for Global Transport and Energy Demand Deliverable 3 of TRIAS, Funded by European Commission 6. RTD. Programme 2007
  10. Beer B. , Grant T. , Watson H. , Olaru , H. Life-cycle Emissions Analysis of Fuels for Light Vehicles Report to the Australian Greenhouse Office Australian Government 2004
  11. Boretti , A. and Watson , H. Development of a Direct Injection High Efficiency Liquid Phase LPG Spark Ignition Engine SAE Int. J. Engines 2 1 1639 1649 2009 10.4271/2009-01-1881
  12. Arcoumanics C. A Technical Study on Fuels Technology related to the Auto-Oil II Programme Final Report, Volume II: Alternative Fuels Prepared for European Commission Directorate - General for Energy 2000
  13. N.N. Propane Basics US Department of Energy, Office of Energy Efficiency & Renewable Energy, National Renewable Energy Laboratory, Vehicle Technologies Program 2010
  14. DIN EN 228:2014-10 Automotive fuels - Unleaded petrol - Requirements and test methods German version EN228:2012 Deutsches Institut für Normung e.V. Beuth Verlag GmbH Berlin 2014
  15. N.N Regulation No 83 of the Economic Commission for Europe of the United Nations (UN/ECE) - Uniform provisions concerning the approval of vehicles with regard to the emission of pollutants according to engine fuel requirements Official Journal of the European Union 2012
  16. DIN 51624:2008-02 Automotive fuels - Compressed natural gas - Requirements and test methods Deutsches Institut für Normung e.V. Beuth Verlag GmbH Berlin 2008
  17. Cartellieri W. Erweiterung der Energieerzeugung durch Kraftgase. Teil 1 - Literaturrecherche Forschungsvorhaben 2-235, FVV Forschungsbericht 2-235/1, 81 FVV e.V. Frankfurt am Main 1968
  18. Taucar G. , Cartellieri W. Erweiterung der Energieerzeugung durch Kraftgase. Teil 2 - Untersuchungen am CFR-Motor Forschungsvorhaben 2-235, FVV Forschungsbericht 2-235/2, 82 FVV e.V. Frankfurt am Main 1968
  19. Cartellieri W. , Pfeifer U. Erweiterung der Energieerzeugung durch Kraftgase Teil 3 - Untersuchungen zur Übertragbarkeit der am CFR-Motor gefundenen Ergebnisse auf andere Motoren, Forschungsvorhaben 90 und 102, FVV Forschungsbericht, 120 FVV e.V. Frankfurt am Main 1971
  20. Weber C. , Brumley A. , Felipe D. , Whiston P. et al. 1.6 SCTI: The New EcoBoost DI-Turbo Engine with Central Direct Injection for Ford’s Volume Carlines 19. Aachen Colloquium Automobile and Engine Technology 2010
  21. Thewes , M. , Muther , M. , Brassat , A. , Pischinger , S. et al. Analysis of the Effect of Bio-Fuels on the Combustion in a Downsized DI SI Engine SAE Int. J. Fuels Lubr. 5 1 274 288 2012 10.4271/2011-01-1991
  22. Adomeit , P. , Jakob , M. , Pischinger , S. , Brunn , A. et al. Effect of Intake Port Design on the Flow Field Stability of a Gasoline DI Engine SAE Technical Paper 2011-01-1284 2011 10.4271/2011-01-1284
  23. NIST Thermophysical Properties of Fluid Systems Chemistry WebBook 2015 http://webbook.nist.gov/chemistry/form-ser.html
  24. Center for Applied Thermodynamic Studies University of Idaho, Program Allprops
  25. Richter , D. Mechanik der Gase Springer 2010
  26. Pischinger S. Internal Combustion Engines Volume I Lecture Notes, Institute for Combustion Engines, VKA RWTH Aachen University 7 th 2015

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