Fundamental phenomena affecting low temperature combustion and HCCI engines, high load limits and strategies for extending these limits
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[1] Eliseo Ranzi,et al. A Wide-Range Kinetic Modeling Study of Oxidation and Combustion of Transportation Fuels and Surrogate Mixtures , 2006 .
[2] John E. Dec,et al. A Computational Study of the Effects of Low Fuel Loading and EGR on Heat Release Rates and Combustion Limits in HCCI Engines , 2002 .
[3] Philippe Dagaut,et al. Experimental study of the oxidation of n-heptane in a jet stirred reactor from low to high temperature and pressures up to 40 atm , 1995 .
[4] Samveg Saxena,et al. Intermediate temperature heat release in an HCCI engine fueled by ethanol/n-heptane mixtures: An experimental and modeling study , 2014 .
[5] John E. Dec,et al. Ethanol Autoignition Characteristics and HCCI Performance for Wide Ranges of Engine Speed, Load and Boost , 2010 .
[6] Fabian Mauss,et al. Supercharged Homogeneous Charge Compression Ignition , 1998 .
[7] Ocktaeck Lim,et al. The Research About the Effects of Thermal Stratification on n-Heptane/iso-Octane-Air Mixture HCCI Combustion Using a Rapid Compression Machine , 2006 .
[8] Bengt Johansson,et al. HCCI Operating Range in a Turbo-charged Multi Cylinder Engine with VVT and Spray-Guided DI , 2009 .
[9] J. R. Smith,et al. Detailed Chemical Kinetic Simulation of Natural Gas HCCI Combustion: Gas Composition Effects and Investigation of Control Strategies , 2001 .
[10] Daniel Dahl,et al. Reducing Pressure Fluctuations at High Loads by Means of Charge Stratification in HCCI Combustion with Negative Valve Overlap , 2009 .
[11] William J. Pitz,et al. 17 – Auto-ignition and chemical kinetic mechanisms of HCCI combustion , 2007 .
[12] Jose Geiger,et al. Controlled Auto Ignition Combustion Process with an Electromechanical Valve Train , 2003 .
[13] William J. Pitz,et al. Ignition of Isomers of Pentane: An Experimental and Kinetic Modeling Study , 2000 .
[14] William J. Pitz,et al. Understanding the Chemical Effects of Increased Boost Pressure under HCCI Conditions , 2008 .
[15] F. Battin‐Leclerc. Detailed chemical kinetic models for the low-temperature combustion of hydrocarbons with application to gasoline and diesel fuel surrogates , 2008 .
[16] Matsuo Odaka,et al. Effects of Fuel Properties on Combustion and Exhaust Emissions of Homogeneous Charge Compression Ignition (HCCI) Engine , 2004 .
[17] Pierre-Alexandre Glaude,et al. Modeling the oxidation of mixtures of primary reference automobile fuels , 2002 .
[18] Takeshi Miyamoto,et al. Approaches to Solve Problems of the Premixed Lean Diesel Combustion , 1999 .
[19] Robert J. Scaringe,et al. On the maximum pressure rise rate in boosted HCCI operation , 2009 .
[20] Huang Zhen,et al. Heat Release Analysis on Combustion and Parametric Study on Emissions of HCCI Engines Fueled with 2-Propanol/n-Heptane Blend Fuels , 2006 .
[21] C. Westbrook,et al. Diesel combustion: an integrated view combining laser diagnostics, chemical kinetics, and empirical validation , 1999 .
[22] Bengt Johansson,et al. Pressure oscillations during rapid HCCI combustion , 2003 .
[23] Maozhao Xie,et al. A novel approach to reduce hydrocarbon emissions from the HCCI engine , 2008 .
[24] Jan Czerwinski,et al. Reactive nitrogen compounds (RNCs) in exhaust of advanced PM–NOx abatement technologies for future diesel applications , 2011 .
[25] Robert W. Dibble,et al. Combustion Timing in HCCI Engines Determined by Ion-Sensor: Experimental and Kinetic Modeling , 2005 .
[26] Hiroyuki Yamada,et al. Kinetic measurements in homogeneous charge compression of dimethyl ether: role of intermediate formaldehyde controlling chain branching in the low-temperature oxidation mechanism , 2005 .
[27] Huang Zhen,et al. Experimental study on the cycle-by-cycle variations of homogeneous charge compression ignition combustion using primary reference fuels and their mixtures , 2007 .
[28] William Cannella,et al. Boosted HCCI Combustion Using Low-Octane Gasoline with Fully Premixed and Partially Stratified Charges , 2012 .
[29] William J. Pitz,et al. Detailed chemical kinetic reaction mechanisms for autoignition of isomers of heptane under rapid compression , 2002 .
[30] Bengt Johansson,et al. The Effect of Intake Temperature in a Turbocharged Multi Cylinder Engine operating in HCCI mode , 2009 .
[31] Choongsik Bae,et al. Effects of valve events on the engine efficiency in a homogeneous charge compression ignition engine fueled by dimethyl ether , 2009 .
[32] Ronald K. Hanson,et al. PLIF Measurements of Thermal Stratification in an HCCI Engine under Fired Operation , 2011 .
[33] Francisco Espinosa-Loza,et al. Piston-Liner Crevice Geometry Effect on HCCI Combustion by Multi-Zone Analysis , 2002 .
[34] J. Dec. A Conceptual Model of DI Diesel Combustion Based on Laser-Sheet Imaging* , 1997 .
[35] Dennis L. Siebers,et al. Fuel Effects on Soot Processes of Fuel Jets at DI Diesel Conditions , 2003 .
[36] R. Mccabe,et al. LNT + in situ SCR catalyst system for diesel emissions control , 2012 .
[37] J. Eng,et al. Characterization of Pressure Waves in HCCI Combustion , 2002 .
[38] Song-Charng Kong,et al. Application of detailed chemistry and CFD for predicting direct injection HCCI engine combustion and emissions , 2002 .
[39] Yuzo Aoyagi,et al. Thermodynamic Characteristics of Premixed Compression Ignition Combustions , 2001 .
[40] Benjamin J. Whitaker,et al. Temperature fields during the development of combustion in a rapid compression machine , 2001 .
[41] Stephen Ciatti,et al. Effect of EGR in a Gasoline Operated Diesel Engine in LTC Mode , 2012 .
[42] Dimitrios T. Hountalas,et al. Combustion and exhaust emission characteristics of a dual fuel compression ignition engine operated with pilot Diesel fuel and natural gas , 2004 .
[43] T. Johnson. Diesel Emission Control in Review , 2001 .
[44] Bengt Johansson,et al. Supercharged Homogeneous Charge Compression Ignition (HCCI) with Exhaust Gas Recirculation and Pilot Fuel , 2000 .
[45] N Ladommatos,et al. Understanding of controlled autoignition combustion in a four-stroke gasoline engine , 2001 .
[46] John B. Heywood,et al. Flame photographs in a spark-ignition engine☆ , 1984 .
[47] Hidenori Kosaka,et al. Two-dimensional imaging of ignition and soot formation processes in a diesel flame , 2005 .
[48] Bengt Johansson,et al. Boosting for High Load HCCI , 2004 .
[49] L. Liang,et al. Ethanol oxidation: kinetics of the alpha-hydroxyethyl radical + O2 reaction. , 2009, The journal of physical chemistry. A.
[50] Hanho Yun,et al. High Load HCCI Operation Using Different Valving Strategies in a Naturally-Aspirated Gasoline HCCI Engine , 2011 .
[51] Charles K. Westbrook,et al. Chemical kinetics of hydrocarbon ignition in practical combustion systems , 2000 .
[52] Norbert Peters,et al. Detailed chemistry flamelet modeling of mixed-mode combustion in spark-assisted HCCI engines , 2011 .
[53] Fabian Mauss,et al. Sources of CO emissions in an HCCI engine: A numerical analysis , 2006 .
[54] Bruce G. Bunting,et al. Fuel Composition Effects at Constant RON and MON in an HCCI Engine Operated with Negative Valve Overlap , 2006 .
[55] Hans-Erik Ångström,et al. The Influence of EGR on Auto-ignition Quality of Gasoline-like Fuels in HCCI Engines , 2004 .
[56] Gen Shibata,et al. The Effect of Fuel Properties on Low and High Temperature Heat Release and Resulting Performance of an HCCI Engine , 2004 .
[57] John E. Dec,et al. Investigating the Development of Thermal Stratification from the Near-Wall Regions to the Bulk-Gas in an HCCI Engine with Planar Imaging Thermometry , 2012 .
[58] D L Flowers. LOW COST, HIGH EFFICIENCY, ULTRA LOW NOX ARICE SOLUTION USING HCCI COMBUSTION , 2004 .
[59] M. D. Checkel,et al. Extending the Load Range of a Natural Gas HCCI Engine using Direct Injected Pilot Charge and External EGR , 2009 .
[60] G. Woschni. A Universally Applicable Equation for the Instantaneous Heat Transfer Coefficient in the Internal Combustion Engine , 1967 .
[61] Helga Gabriela Aleme,et al. Determination of flash point and cetane index in diesel using distillation curves and multivariate calibration , 2012 .
[62] Bengt Johansson,et al. Influence of Mixture Quality on Homogeneous Charge Compression Ignition , 1998 .
[63] M. Ribaucour,et al. Comparison of oxidation and autoignition of the two primary reference fuels by rapid compression , 1996 .
[64] John E. Dec,et al. Influence of Fuel Autoignition Reactivity on the High-Load Limits of HCCI Engines , 2008 .
[65] Benjamin J. Whitaker,et al. Thermokinetic interactions leading to knock during homogeneous charge compression ignition , 2002 .
[66] C. Westbrook,et al. A Comprehensive Modeling Study of iso-Octane Oxidation , 2002 .
[67] John E. Dec,et al. Effects of engine speed, fueling rate, and combustion phasing on the thermal stratification required to limit HCCI knocking intensity , 2005 .
[68] Gen Shibata,et al. Auto-Ignition Characteristics of Hydrocarbons and Development of HCCI Fuel Index , 2007 .
[69] Walter Knecht,et al. Diesel engine development in view of reduced emission standards , 2008 .
[70] M. Shahbakhti,et al. Characterizing the cyclic variability of ignition timing in a homogeneous charge compression ignition engine fuelled with n-heptane/iso-octane blend fuels , 2008 .
[71] Bengt Johansson,et al. Optical Diagnostics of Laser-Induced and Spark Plug-Assisted Hcci Combustion , 2005 .
[72] Charles J. Mueller,et al. Recent progress in the development of diesel surrogate fuels , 2009 .
[73] Hua Zhao,et al. CHARACTERISTICS OF HOMOGENEOUS CHARGE COMPRESSION IGNITION (HCCI) COMBUSTION AND EMISSIONS OF n-HEPTANE , 2005 .
[74] T. J. Held,et al. An experimental and computational study of methanol oxidation in the intermediate-and high-temperature regimes , 1994 .
[75] Tiziano Faravelli,et al. Experimental data and kinetic modeling of primary reference fuel mixtures , 1996 .
[76] Li Jiang,et al. Understanding the Dynamic Evolution of Cyclic Variability at the Operating Limits of HCCI Engines with Negative Valve Overlap , 2012 .
[77] Bengt Johansson,et al. The effect of swirl on spark assisted compression ignition (SACI) , 2007 .
[78] Zoran Filipi,et al. Hybrid Electric Vehicle Powertrain and Control Strategy Optimization to Maximize the Synergy with a Gasoline HCCI Engine , 2011 .
[79] N. Wermuth,et al. Enhancing Light Load HCCI Combustion in a Direct Injection Gasoline Engine by Fuel Reforming During Recompression , 2009 .
[80] John E. Dec,et al. Isolating the Effects of Fuel Chemistry on Combustion Phasing in an HCCI Engine and the Potential of Fuel Stratification for Ignition Control , 2004 .
[81] Koji Yamane,et al. Combustion Improvement and Control for a Natural Gas HCCI Engine by the Internal EGR by Means of Intake-valve Pilot-opening , 2006 .
[82] G. Bruneaux,et al. Combustion structure of free and wall-impinging diesel jets by simultaneous laser-induced fluorescence of formaldehyde, poly-aromatic hydrocarbons, and hydroxides , 2008 .
[83] Kamal Kumar,et al. ULTRA-DILUTE COMBUSTION OF PRIMARY REFERENCE FUELS , 2007 .
[84] P. Gaffuri,et al. Autoignition Chemistry of the Hexane Isomers : An Experimental nd Kinetic Modeling Sudy , 2007 .
[85] Norimasa Iida,et al. A study on combustion control by using internal and external EGR for HCCI engines fuelled with DME , 2006 .
[86] Andrew C. Matheaus,et al. Fuel Requirements for HCCI Engine Operation , 2003 .
[87] Ronald K. Hanson,et al. Shock tube ignition measurements of iso-octane/air and toluene/air at high pressures , 2005 .
[88] Morgan Heikal,et al. Evaluation of HCCI for Future Gasoline Powertrains , 2003 .
[89] Robert W. Dibble,et al. A Multi-Zone Model for Prediction of HCCI Combustion and Emissions , 2000 .
[90] G. Adomeit,et al. Self-ignition of diesel-relevant hydrocarbon-air mixtures under engine conditions , 1996 .
[91] Jiro Senda,et al. Demonstrating the Potential of Mixture Distribution Control for Controlled Combustion and Emissions Reduction in Premixed Charge Compression Ignition Engines , 2009 .
[92] Nicolas Jeuland,et al. Engine and Fuel Related Issues of Gasoline CAI (Controlled Auto-Ignition) Combustion , 2003 .
[93] Frederick L. Dryer,et al. The reaction kinetics of dimethyl ether. II: Low‐temperature oxidation in flow reactors , 2000 .
[94] John E. Dec,et al. An Investigation of Thermal Stratification in HCCI Engines Using Chemiluminescence Imaging , 2006 .
[95] C. Westbrook,et al. A comprehensive detailed chemical kinetic reaction mechanism for combustion of n-alkane hydrocarbons from n-octane to n-hexadecane , 2009 .
[97] Mani Sarathy,et al. Detailed Kinetic Modeling of Conventional Gasoline at Highly Boosted Conditions and the Associated Intermediate Temperature Heat Release , 2012 .
[98] T. J. Wallington,et al. Diesel vehicles and sustainable mobility in the U.S , 2013 .
[99] Kenji Kawai,et al. Trial of New Concept Diesel Combustion System - Premixed Compression-Ignited Combustion - , 1999 .
[100] Bengt Johansson,et al. The Effect of Cooled EGR on Emissions and Performance of a Turbocharged HCCI Engine , 2003 .
[101] John E. Dec,et al. Combined Effects of Fuel-Type and Engine Speed on Intake Temperature Requirements and Completeness of Bulk-Gas Reactions for HCCI Combustion , 2003 .
[102] Rsg Rik Baert,et al. Experimental study into a hybrid PCCI/CI concept for next-generation heavy-duty diesel engines , 2012 .
[103] Benjamin J. Whitaker,et al. The relationship of knock during controlled autoignition to temperature inhomogeneities and fuel reactivity , 2002 .
[104] Rolf D. Reitz,et al. Light-Duty Reactivity Controlled Compression Ignition Combustion Using a Cetane Improver , 2012 .
[105] Fabian Mauss,et al. NOx and N2O formation in HCCI engines , 2005 .
[106] Thomas W. Ryan,et al. HCCI Operation of a Dual-Fuel Natural Gas Engine for Improved Fuel Efficiency and Ultra-Low NOx Emissions at Low to Moderate Engine Loads , 2001 .
[107] William J. Pitz,et al. Oxidation of automotive primary reference fuels at elevated pressures , 1999 .
[108] John E. Dec,et al. Improving Efficiency and Using E10 for Higher Loads in Boosted HCCI Engines , 2012 .
[109] Roald N. Leif,et al. Detailed HCCI Exhaust Speciation and the Sources of Hydrocarbon and Oxygenated Hydrocarbon Emissions. , 2008 .
[110] Murray J. Thomson,et al. A Computational Study of the Effect of Fuel Reforming, EGR and Initial Temperature on Lean Ethanol HCCI Combustion , 2004 .
[111] Sotirios Mamalis,et al. Optimal Use of Boosting Configurations and Valve Strategies for High Load HCCI - A Modeling Study , 2012 .
[112] Christopher A. Sharp,et al. Technical Advantages of Urea SCR for Light-Duty and Heavy-Duty Diesel Vehicle Applications , 2004 .
[113] Zhi Wang,et al. Experimental study of fuel stratification for HCCI high load extension , 2011 .
[114] John M. Simmie,et al. The oxidation and ignition of dimethylether from low to high temperature (500–1600 K): Experiments and kinetic modeling , 1998 .
[115] Takeshi Miyamoto,et al. The Effects of Mixture Formation on Premixed Lean Diesel Combustion Engine , 1998 .
[116] Samveg Saxena,et al. Maximizing Power Output in an Automotive Scale Multi-Cylinder Homogeneous Charge Compression Ignition (HCCI) Engine , 2011 .
[117] Hua Zhao,et al. Evaluating the EGR-AFR Operating Range of a HCCI Engine , 2005 .
[118] H. Im,et al. The propagation of a laminar reaction front during end-gas auto-ignition , 2012 .
[119] Kohtaro Hashimoto,et al. Effect of Ethanol on the HCCI Combustion , 2007 .
[120] Dennis N. Assanis,et al. Comparing Enhanced Natural Thermal Stratification Against Retarded Combustion Phasing for Smoothing of HCCI Heat-Release Rates , 2004 .
[121] John B. Heywood,et al. ON THE ROAD IN 2020 - A LIFE-CYCLE ANALYSIS OF NEW AUTOMOBILE TECHNOLOGIES , 2000 .
[122] Robert W. Dibble,et al. 1.9-Liter Four-Cylinder HCCI Engine Operation with Exhaust Gas Recirculation , 2001 .
[123] Jerald A. Caton,et al. Effects of operating parameters on nitrogen oxides emissions for a natural gas fueled homogeneous charged compression ignition engine (HCCI): Results from a thermodynamic model with detailed chemistry , 2012 .
[124] C. Lee,et al. Improved emission characteristics of HCCI engine by various premixed fuels and cooled EGR , 2006 .
[125] V. Warth,et al. Progress toward a unified detailed kinetic model for the autoignition of alkanes from C4 to C10 between 600 and 1200 K , 2005 .
[126] Nick Collings,et al. Gasoline Fuelled Partially Premixed Compression Ignition in a Light Duty Multi Cylinder Engine: A Study of Low Load and Low Speed Operation , 2009 .
[127] William J. Pitz,et al. A WIDE RANGE MODELING STUDY OF DIMETHYL ETHER OXIDATION , 1997 .
[128] Robert W. Dibble,et al. Prediction of carbon monoxide and hydrocarbon emissions in iso-octane HCCI engine combustion using multizone simulations , 2002 .
[129] Daniel Dahl,et al. Valve Profile Adaptation, Stratification, Boosting and 2-Stroke Strategies for Raising Loads of Gasoline HCCI Engines , 2012 .
[130] Wayne Moore,et al. HCCI Load Expansion Opportunities Using a Fully Variable HVA Research Engine to Guide Development of a Production Intent Cam-Based VVA Engine: The Low Load Limit , 2012 .
[131] Masoud Mashkournia,et al. Knock Detection and Control in an HCCI Engine Using DWT , 2011 .
[132] Hans-Erik Ångström,et al. A Method of Defining Ignition Quality of Fuels in HCCI Engines , 2003 .
[133] John B. Heywood,et al. Fuel Economy Benefits and Aftertreatment Requirements of a Naturally Aspirated HCCI-SI Engine System , 2008 .
[134] Tie Li,et al. Characteristics of Smokeless Low Temperature Diesel Combustion in Various Fuel-Air Mixing and Expansion of Operating Load Range , 2009 .
[135] D. Assanis,et al. A computational study and correlation of premixed isooctane air laminar reaction fronts diluted with EGR , 2012 .
[136] Dennis L. Siebers,et al. Soot Formation in Diesel Fuel Jets Near the Lift-Off Length , 2006 .
[137] J. Keck,et al. Turbulent flame propagation and combustion in spark ignition engines , 1983 .
[138] Daniel K. Carder,et al. Cost of lower NOx emissions: Increased CO2 emissions from heavy-duty diesel engines , 2007 .
[139] Lucien Koopmans,et al. A Four Stroke Camless Engine, Operated in Homogeneous Charge Compression Ignition Mode with Commercial Gasoline , 2001 .
[140] John E. Dec,et al. Smoothing HCCI Heat-Release Rates Using Partial Fuel Stratification with Two-Stage Ignition Fuels , 2006 .
[141] Zhen Huang,et al. Experimental study on the auto-ignition and combustion characteristics in the homogeneous charge compression ignition (HCCI) combustion operation with ethanol/n-heptane blend fuels by port injection , 2006 .
[142] Tomonori Urushihara,et al. A Study of a Gasoline-fueled Compression Ignition Engine ∼ Expansion of HCCI Operation Range Using SI Combustion as a Trigger of Compression Ignition ∼ , 2005 .
[143] Paul M. Najt,et al. Investigations into the Effects of Thermal and Compositional Stratification on HCCI Combustion – Part II: Optical Engine Results , 2009 .
[144] Bradley T. Zigler,et al. An experimental investigation of the sensitivity of the ignition and combustion properties of a single-cylinder research engine to spark-assisted HCCI , 2011 .
[145] Sungwook Park,et al. Numerical Study on Combustion and Emission Characteristics of Homogeneous Charge Compression Ignition Engines Fueled with Biodiesel , 2010 .
[146] D. Blundell,et al. The thermal effect of internal exhaust gas recirculation on controlled auto ignition , 2003 .
[147] Bengt Johansson,et al. The Effect of Piston Topland Geometry on Emissions of Unburned Hydrocarbons from a Homogeneous Charge Compression Ignition (HCCI) Engine , 2001 .
[148] John E. Dec,et al. Characterizing the Development of Thermal Stratification in an HCCI Engine Using Planar-Imaging Thermometry , 2009 .
[149] Günter Karl Fraidl,et al. CSI - Controlled Auto Ignition - the Best Solution for the Fuel Consumption - Versus Emission Trade-Off? , 2003 .
[150] John M. Simmie,et al. The influence of fuel structure on combustion as demonstrated by the isomers of heptane: a rapid compression machine study , 2005 .
[151] Masakazu Eguchi,et al. Nissan's New Multivalve DI Diesel Engine Series , 1998 .
[152] H. Ando,et al. Chemical Kinetics Study on Effect of Pressure and Fuel, O 2 and N 2 Molar Concentrations on Hydrocarbon Ignition Process , 2012 .
[153] Atsushi Teraji,et al. A Study of Rich Flame Propagation in Gasoline SI Engine Based on 3-D Numerical Simulations , 2011 .
[154] Jun Wang,et al. Experimental and Statistical Comparison of Engine Response as a Function of Fuel Chemistry and Properties in CI and HCCI Engines , 2012 .
[155] G. Kalghatgi,et al. Combustion Limits and Efficiency in a Homogeneous Charge Compression Ignition Engine , 2006 .
[156] L. Kirsch,et al. The autoignition of hydrocarbon fuels at high temperatures and pressures—Fitting of a mathematical model , 1977 .
[157] C. L. Gray,et al. An HCCI Engine: Power Plant for a Hybrid Vehicle , 2004 .
[158] Robert M. Wagner,et al. On the Nature of Cyclic Dispersion in Spark Assisted HCCI Combustion , 2006 .
[159] Paul C. Miles,et al. The Influence of Charge Dilution and Injection Timing on Low-Temperature Diesel Combustion and Emissions , 2005 .
[160] Tiziano Faravelli,et al. A wide-range modeling study of n-heptane oxidation , 1995 .
[161] A. Megaritis,et al. An investigation into propane homogeneous charge compression ignition (HCCI) engine operation with residual gas trapping , 2005 .
[162] Scott B. Fiveland,et al. Compression Ratio Influence on Maximum Load of a Natural Gas Fueled HCCI Engine , 2002 .
[163] Roland Karrelmeyer,et al. Analysis of the Combustion Mode Switch Between SI and Gasoline HCCI , 2012 .
[164] Norimasa Iida,et al. Effect of degree of unmixedness on HCCI combustion based on experiment and numerical analysis , 2006 .
[165] Wei Chen,et al. Study on the Ignition, Combustion and Emissions of HCCI Combustion Engines Fueled With Primary Reference Fuels , 2005 .
[166] John E. Dec,et al. An investigation into lowest acceptable combustion temperatures for hydrocarbon fuels in HCCI engines , 2005 .
[167] Bengt Johansson,et al. A Turbocharged Dual-Fuel HCCI Engine , 2001 .
[168] Eric L. Petersen,et al. n-Butane: Ignition delay measurements at high pressure and detailed chemical kinetic simulations , 2010 .
[169] Shuji Kimura,et al. New Combustion Concept for Ultra-Clean and High-Efficiency Small DI Diesel Engines , 1999 .
[170] Gen Shibata,et al. Correlation of Low Temperature Heat Release With Fuel Composition and HCCI Engine Combustion , 2005 .
[171] Hanho Yun,et al. Improvement on Cylinder-to-Cylinder Variation Using a Cylinder Balancing Control Strategy in Gasoline HCCI Engines , 2010 .
[172] Wai K. Cheng,et al. On HCCI Engine Knock , 2007 .
[173] William J. Pitz,et al. The Autoignition Chemistry of Paraffinic Fuels and Pro-Knock and Anti-Knock Additives: A Detailed Chemical Kinetic Study , 1991 .
[174] Zoran Filipi,et al. New Heat Transfer Correlation for an HCCI Engine Derived from Measurements of Instantaneous Surface Heat Flux , 2004 .
[175] C. Westbrook,et al. Kinetic modeling of gasoline surrogate components and mixtures under engine conditions , 2011 .
[176] Hanho Yun,et al. Extending the High Load Operating Limit of a Naturally-Aspirated Gasoline HCCI Combustion Engine , 2010 .
[177] D. Assanis,et al. Bridging the Gap between HCCI and SI: Spark-Assisted Compression Ignition , 2011 .
[178] Norimasa Iida,et al. Combustion Analysis of Natural Gas in a Four Stroke HCCI Engine Using Experiment and Elementary Reactions Calculation , 2003 .
[179] Hajime Ishii,et al. Exhaust Purification of Diesel Engines by Homogeneous Charge with Compression Ignition Part 1: Experimental Investigation of Combustion and Exhaust Emission Behavior Under Pre-Mixed Homogeneous Charge Compression Ignition Method , 1997 .
[180] Bengt Johansson,et al. Supercharging HCCI to Extend the Operating Range in a Multi-Cylinder VCR-HCCI Engine , 2003 .
[181] Lucien Koopmans,et al. Cycle to Cycle Variations: Their Influence on Cycle Resolved Gas Temperature and Unburned Hydrocarbons from a Camless Gasoline Compression Ignition Engine , 2002 .
[182] Hanho Yun,et al. Development of Robust Gasoline HCCI Idle Operation Using Multiple Injection and Multiple Ignition (MIMI) Strategy , 2009 .
[183] Bengt Johansson,et al. Transient Control of a Multi Cylinder HCCI Engine During a Drive Cycle , 2005 .
[184] Zoran Filipi,et al. Characterizing the thermal sensitivity of a gasoline homogeneous charge compression ignition engine with measurements of instantaneous wall temperature and heat flux , 2005 .
[185] Samveg Saxena,et al. A Sequential Chemical Kinetics-CFD-Chemical Kinetics Methodology to Predict HCCI Combustion and Main Emissions , 2012 .
[186] Naoki Shimazaki,et al. Combustion and Emission Characteristics of Premixed Lean Diesel Combustion Engine , 1997 .
[187] John E. Dec,et al. An Investigation of the Relationship Between Measured Intake Temperature, BDC Temperature, and Combustion Phasing for Premixed and DI HCCI Engines , 2004 .
[188] Yoshinaka Takeda,et al. Emission Characteristics of Premixed Lean Diesel Combustion with Extremely Early Staged Fuel Injection , 1996 .
[189] John E. Dec,et al. Boosted HCCI for high power without engine knock and with ultra-low NOx emissions - Using conventional gasoline , 2010 .
[190] P. K. Mallick,et al. Cost-Benefit Analysis of Thermoplastic Matrix Composites for Structural Automotive Applications , 2002 .
[191] Nicholas P. Cernansky,et al. Potential of Thermal Stratification and Combustion Retard for Reducing Pressure-Rise Rates in HCCI Engines, Based on Multi-Zone Modeling and Experiments , 2005 .
[192] Maria Nehse,et al. Kinetic modeling of the oxidation of large aliphatic hydrocarbons , 1996 .
[193] Jian Li,et al. Research and Development of Controlled Auto-Ignition (CAI) Combustion in a 4-Stroke Multi-Cylinder Gasoline Engine , 2001 .
[194] Hideo Kawamura,et al. Research on the Influence of Hydrogen and Carbon Monoxide on Methane HCCI Combustion , 2005 .
[195] Peerawat Saisirirat,et al. Effects of Ethanol, n-Butanol — n-Heptane Blended on Low Temperature Heat Release and HRR Phasing in Diesel-HCCI , 2009 .
[196] Norimasa Iida,et al. A study of high combustion efficiency and low co emission in a natural gas HCCI engine , 2004 .
[197] William J. Pitz,et al. The effects of pressure, temperature, and concentration on the reactivity of alkanes: Experiments and modeling in a rapid compression machine , 1998 .
[198] Robert W. Dibble,et al. Combustion: Physical and Chemical Fundamentals, Modelling and Simulation, Experiments, Pollutant Formation , 1996 .
[199] E Aiyoshizawa. Development of new 4-valve/cylinder small DI diesel engine , 1999 .
[200] Bengt Johansson,et al. Operating Conditions Using Spark Assisted HCCI Combustion During Combustion Mode Transfer to SI in a Multi-Cylinder VCR-HCCI Engine , 2005 .
[201] Christopher Nelson. Heavy Truck Engine Program , 2009 .
[202] Hui Xie,et al. Expanding the Low Load Limit of HCCI Combustion Process Using EIVO Strategy in a 4VVAS Gasoline Engine , 2012 .
[203] Bengt Johansson,et al. Balancing Cylinder-to-Cylinder Variations in a Multi-Cylinder VCR-HCCI Engine , 2004 .
[204] Eric Nafziger,et al. Load Expansion of Stoichiometric HCCI Using Spark Assist and Hydraulic Valve Actuation , 2010 .
[205] A. Babajimopoulos,et al. A computational study and correlation of premixed isooctane–air laminar reaction front properties under spark ignited and spark assisted compression ignition engine conditions , 2011 .
[206] C. Westbrook,et al. A Comprehensive Modeling Study of n-Heptane Oxidation , 1998 .
[207] Emmanuel P Kasseris. Comparative analysis of automotive powertrain choices for the near to mid-term future , 2006 .
[208] Hua Zhao. Hcci and Cai Engines for the Automotive Industry , 2007 .
[209] Xin He,et al. An experimental and modeling study of iso-octane ignition delay times under homogeneous charge compression ignition conditions , 2005 .
[210] John B. Heywood,et al. Flame initiation in a spark-ignition engine , 1986 .
[211] Margaret S. Wooldridge,et al. A multi-mode combustion diagram for spark assisted compression ignition , 2010 .
[212] Stephen Ciatti,et al. Low Cetane Fuels in Compression Ignition Engine to Achieve LTC , 2011 .
[213] Bengt Johansson,et al. Investigation of the Early Flame Development in Spark Assisted HCCI Combustion Using High Speed Chemiluminescence Imaging , 2007 .
[214] Ocktaeck Lim,et al. An Investigation of the Effect of Thermal Stratification on HCCI Combustion by using Rapid Compression Machine , 2007 .
[215] D. J. Rose,et al. Fundamental features of hydrocarbon autoignition in a rapid compression machine , 1993 .
[216] John E. Dec,et al. Boosted HCCI - Controlling Pressure-Rise Rates for Performance Improvements using Partial Fuel Stratification with Conventional Gasoline , 2011 .
[217] Tanet Aroonsrisopon,et al. Experimental Investigation into the Effects of Direct Fuel Injection During the Negative Valve Overlap Period in an Gasoline Fueled HCCI Engine , 2007 .
[218] Sebastian Mosbach,et al. HCCI Combustion Control Using Dual-Fuel Approach: Experimental and Modeling Investigations , 2012 .
[219] Francisco Espinosa-Loza,et al. Fuel and Additive Characterization for HCCI Combustion , 2003 .
[220] Bruce G. Bunting,et al. The Effects of Fuel Composition and Compression Ratio on Thermal Efficiency in an HCCI Engine , 2007 .
[221] Philippe Gilbert,et al. An experimental and numerical analysis of the HCCI auto-ignition process of primary reference fuels, toluene reference fuels and diesel fuel in an engine, varying the engine parameters , 2008 .
[222] Chih-Jen Sung,et al. Dilution limits of n-butane/air mixtures under conditions relevant to HCCI combustion , 2004 .
[223] John B. Heywood,et al. Two-stage ignition in HCCI combustion and HCCI control by fuels and additives , 2003 .
[224] Dennis N. Assanis,et al. Knock In Various Combustion Modes in a Gasoline-Fueled Automotive Engine , 2011 .
[225] Gautam Kalghatgi,et al. Auto-Ignition Quality of Practical Fuels and Implications for Fuel Requirements of Future SI and HCCI Engines , 2005 .
[226] Martin Tuner,et al. Pressure Sensitivity of HCCI Auto-Ignition Temperature for Primary Reference Fuels , 2012 .
[227] Francisco Espinosa-Loza,et al. Spatial Analysis of Emissions Sources for HCCI Combustion at Low Loads Using a Multi-Zone Model , 2004 .
[228] Wei Chen,et al. A fundamental study on the control of the HCCI combustion and emissions by fuel design concept combined with controllable EGR. Part 2. Effect of operating conditions and EGR on HCCI combustion , 2005 .
[229] Robert W. Dibble,et al. An Investigation of the Effect of Fuel-Air Mixedness on the Emissions from an HCCI Engine , 2002 .
[230] Jialin Yang,et al. Development of a Gasoline Engine System Using HCCI Technology - The Concept and the Test Results , 2002 .
[231] D. Splitter,et al. Experiments and Modeling of Dual-Fuel HCCI and PCCI Combustion Using In-Cylinder Fuel Blending , 2009 .
[232] John E. Dec,et al. Advanced compression-ignition engines—understanding the in-cylinder processes , 2009 .
[233] William J. Pitz,et al. Chemical kinetic modeling study of shock tube ignition of heptane isomers , 2001 .
[234] John E. Dec,et al. A Parametric Study of HCCI Combustion - the Sources of Emissions at Low Loads and the Effects of GDI Fuel Injection , 2003 .
[235] Johney B. Green,et al. Modeling Cyclic Variability in Spark-Assisted HCCI , 2007 .
[236] Joshua R. Smith,et al. A Sequential Fluid-mechanic Chemical-kinetic Model of Propane HCCI Combustion , 2001 .
[237] Blake A. Simmons,et al. Characteristics of Isopentanol as a Fuel for HCCI Engines , 2010 .
[238] Zhi Wang,et al. Study of the Effect of Spark Ignition on Gasoline HCCI Combustion , 2006 .
[239] Daniel L. Flowers,et al. 18 – Overview of modeling techniques and their application to HCCI/CAI engines , 2007 .
[240] J Yang,et al. Expanding the operating range of homogeneous charge compression ignition-spark ignition dual-mode engines in the homogeneous charge compression ignition mode , 2005 .
[241] Zhen Huang,et al. Experimental study and chemical analysis of n-heptane homogeneous charge compression ignition combustion with port injection of reaction inhibitors , 2007 .
[242] Samveg Saxena. Maximizing Power Output in Homogeneous Charge Compression Ignition (HCCI) Engines and Enabling Effective Control of Combustion Timing , 2011 .
[243] J. Zádor,et al. Kinetics of elementary reactions in low-temperature autoignition chemistry , 2011 .
[244] John E. Dec,et al. Tailoring HCCI heat-release rates with partial fuel stratification: Comparison of two-stage and single-stage-ignition fuels , 2011 .
[245] Yuzo Aoyagi,et al. The effect of knock on heat loss in homogeneous charge compression ignition engines , 2002 .
[246] Hui Xie,et al. Effects of Active Species in Residual Gas on Auto-Ignition in a HCCI Gasoline Engine , 2012 .
[247] Amir A. M. Oliveira,et al. Autoignition of gasoline surrogate mixtures at intermediate temperatures and high pressures: Experimental and numerical approaches , 2009 .
[248] Dionissios N. Assanis,et al. Combustion regime of a reacting front propagating into an auto-igniting mixture , 2011 .
[249] Paul M. Najt,et al. Investigations into the Effects of Thermal and Compositional Stratification on HCCI Combustion – Part I: Metal Engine Results , 2009 .
[250] Wei Liu,et al. Characterization of knocking combustion in HCCI DME engine using wavelet packet transform , 2010 .
[251] Takeshi Miyamoto,et al. Combustion and Emission Characteristics of Multiple Stage Diesel Combustion , 1998 .
[252] Bradley T. Zigler,et al. A Multi-Axis Imaging Study of Spark-Assisted Homogeneous Charge Compression Ignition Phenomena in a Single-Cylinder Research Engine , 2007 .
[253] T. Grundy,et al. Progress in Astronautics and Aeronautics , 2001 .
[254] Dimitrios T. Hountalas,et al. Improvement and validation of a multi-zone model for HCCI engine combustion concerning performance and emissions , 2008 .
[255] Zhen Huang,et al. Premixed low-temperature combustion of blends of diesel and gasoline in a high speed compression ignition engine , 2011 .
[256] D. Splitter,et al. Fuel reactivity controlled compression ignition (RCCI): a pathway to controlled high-efficiency clean combustion , 2011 .
[257] Stefan Pischinger,et al. Thermodynamical and Mechanical Approach Towards a Variable Valve Train for the Controlled Auto Ignition Combustion Process , 2005 .
[258] N. P. Komninos,et al. Investigating the importance of mass transfer on the formation of HCCI engine emissions using a multi-zone model , 2009 .
[259] Per Risberg,et al. A method of defining the auto-ignition quality of gasoline-like fuels in HCCI engines , 2003 .
[260] Haiyong Peng,et al. Study of low emission homogeneous charge compression ignition (HCCI) engine using combined internal and external exhaust gas recirculation (EGR) , 2006 .
[261] Tang-Wei Kuo,et al. Experimental metrics for identifying origins of combustion variability during spark-assisted compression ignition , 2008 .
[262] Alasdair Cairns,et al. The Effects of Combined Internal and External Exhaust Gas Recirculation on Gasoline Controlled Auto-Ignition , 2005 .
[263] Wei Chen,et al. A fundamental study on the control of the HCCI combustion and emissions by fuel design concept combined with controllable EGR. Part 1. The basic characteristics of HCCI combustion , 2005 .
[264] John E. Dec,et al. Comparing late-cycle autoignition stability for single- and two-stage ignition fuels in HCCI engines , 2007 .
[265] William Cannella,et al. Partial Fuel Stratification to Control HCCI Heat Release Rates: Fuel Composition and Other Factors Affecting Pre-Ignition Reactions of Two-Stage Ignition Fuels , 2011 .
[266] Joshua R. Smith,et al. HCCI Engine Control by Thermal Management , 2000 .
[267] Tiziano Faravelli,et al. A wide-range modeling study of iso-octane oxidation , 1997 .
[268] Gautam Kalghatgi,et al. The Available and Required Autoignition Quality of Gasoline - Like Fuels in HCCI Engines at High Temperatures , 2004 .
[269] William R. Leppard,et al. The Autoignition Chemistries of Primary Reference Fuels, Olefin/Paraffin Binary Mixtures, and Non-Linear Octane Blending , 1992 .