Hybrid Electric Vehicle Powertrain and Control Strategy Optimization to Maximize the Synergy with a Gasoline HCCI Engine

[1]  Arun Kumar Jaura,et al.  Systems Approach in Achieving Higher Fuel Economy in Hybrid Vehicles , 2000 .

[2]  James C. Keck,et al.  EXPERIMENTAL AND THEORETICAL INVESTIGATION OF TURBULENT BURNING MODEL FOR INTERNAL COMBUSTION ENGINES , 1974 .

[3]  J. Dec,et al.  The Potential of HCCI Combustion for High Efficiency and Low Emissions , 2002 .

[4]  Zoran Filipi,et al.  Control of a Multi-Cylinder HCCI Engine During Transient Operation by Modulating Residual Gas Fraction to Compensate for Wall Temperature Effects , 2007 .

[5]  Xin He,et al.  An experimental and modeling study of iso-octane ignition delay times under homogeneous charge compression ignition conditions , 2005 .

[6]  Thomas Morel,et al.  Model for Heat Transfer and Combustion In Spark Ignited Engines and its Comparison with Experiments , 1988 .

[7]  Dennis N. Assanis,et al.  Model-Based Assessment of Two Variable CAM Timing Strategies for HCCI Engines: Recompression vs. Rebreathing , 2009 .

[8]  Zoran Filipi,et al.  Integrated, Feed-Forward Hybrid Electric Vehicle Simulation in SIMULINK and its Use for Power Management Studies , 2001 .

[9]  Ben Shannon,et al.  Further refinement and validation of a turbulent flame propagation model for spark-ignition engines , 1980 .

[10]  Makoto Yamazaki,et al.  Development of New-Generation Hybrid System THS II - Drastic Improvement of Power Performance and Fuel Economy , 2004 .

[11]  Goro Tamai,et al.  Development of the Hybrid System for the Saturn VUE Hybrid , 2006 .

[12]  Shinobu Ochiai,et al.  Description of the Hybrid Technology Mounted to Production Model , 2001 .

[13]  Noboru Hattori,et al.  Functional Design of a Motor Integrated CVT for a Parallel HEV , 1999 .

[14]  Zoran Filipi,et al.  New Heat Transfer Correlation for an HCCI Engine Derived from Measurements of Instantaneous Surface Heat Flux , 2004 .

[15]  Halim G. Santoso,et al.  Managing SI/HCCI Dual-Mode Engine Operation , 2005 .

[16]  C. L. Gray,et al.  An HCCI Engine: Power Plant for a Hybrid Vehicle , 2004 .

[17]  Bengt Johansson,et al.  Operating range in a Multi Cylinder HCCI engine using Variable Compression Ratio , 2003 .

[18]  Zoran Filipi,et al.  Analysis of Load and Speed Transitions in an HCCI Engine Using 1-D Cycle Simulation and Thermal Networks , 2006 .

[19]  J. M. Novak,et al.  The Prediction of Ignition Delay and Combustion Intervals for a Homogeneous Charge, Spark Ignition Engine , 1978 .

[20]  Danilo J. Santini,et al.  Mass Impacts on Fuel Economies of Conventional vs. Hybrid Electric Vehicles , 2004 .

[21]  Rudolf H. Stanglmaier,et al.  Homogeneous charge compression ignition (HCCI): Benefits, compromises, and future engine applications , 1999 .

[22]  John B. Heywood,et al.  Fuel Economy Benefits and Aftertreatment Requirements of a Naturally Aspirated HCCI-SI Engine System , 2008 .

[23]  Y. Mo,et al.  HCCI heat release rate and combustion efficiency: A couple KIVA multi-zone modeling study , 2008 .