Modeling the Effects of Variable Intake Valve Timing on Diesel HCCI Combustion at Varying Load, Speed, and Boost Pressures

Homogeneous charge compression ignition (HCCI) operated engines have the potential to provide the efficiency of a typical diesel engine, with very low NO x and particulate matter emissions. However, one of the main challenges with this type of operation in diesel engines is that it can be difficult to control the combustion phasing, especially at high loads. In diesel HCCI engines, the premixed fuel-air charge tends to ignite well before top dead center, especially as load is increased, and a method of delaying the ignition is necessary. The development of variable valve timing (WT) technology may offer an important advantage in the ability to control diesel HCCI combustion. WT technology can allow for late intake valve closure (IVC) times, effectively changing the compression ratio of the engine. This can decrease compression temperatures and delay ignition, thus allowing the possibility to employ HCCI operation at higher loads. Furthermore, fully flexible valve trains may offer the potential for dynamic combustion phasing control over a wide range of operating conditions. A multidimensional computational fluid dynamics model is used to evaluate combustion event phasing as both IVC times and operating conditions are varied. The use of detailed chemical kinetics, based on a reduced n-heptane mechanism, provides ignition and combustion predictions and includes low-temperature chemistry. The use of IVC delay is demonstrated to offer effective control of diesel HCCI combustion phasing over varying loads, engine speeds, and boost pressures. Additionally, as fueling levels are increased, charge mixture properties are observed to have a significant effect on combustion phasing. While increased fueling rates are generally seen to advance combustion phasing, the reduction of specific heat ratio in higher equivalence ratio mixtures can also cause noticeably slower temperature rise rates, affecting ignition timing and combustion phasing. Variable intake valve timing may offer a promising and flexible control mechanism for the phasing of diesel HCCI combustion. Over a large range of boost pressures, loads, and engine speeds, the use of delayed IVC is shown to sufficiently delay combustion in order to obtain optimal combustion phasing and increased work output, thus pointing towards the possibility of expanding the current HCCI operating range into higher load points.

[1]  Takeshi Miyamoto,et al.  Approaches to Solve Problems of the Premixed Lean Diesel Combustion , 1999 .

[2]  Gary Kirkpatrick,et al.  Controlled Combustion in an IC-Engine with a Fully Variable Valve Train , 2001 .

[3]  A. A. Amsden,et al.  KIVA-3V: A Block-Structured KIVA Program for Engines with Vertical or Canted Valves , 1997 .

[4]  John E. Dec,et al.  Smoothing HCCI Heat-Release Rates Using Partial Fuel Stratification with Two-Stage Ignition Fuels , 2006 .

[5]  Hans-Erik Ångström,et al.  Integrated Simulation and Engine Test of Closed Loop HCCI Control by aid of Variable Valve Timings , 2003 .

[6]  Francisco Espinosa-Loza,et al.  Analysis of the Effect of Geometry Generated Turbulence on HCCI Combustion by Multi-Zone Modeling , 2005 .

[7]  Noboru Miyamoto,et al.  Expansion of the Operating Range with In-Cylinder Water Injection in a Premixed Charge Compression Ignition Engine , 2002 .

[8]  R. Reitz,et al.  Modeling the Effects of Fuel Spray Characteristics on Diesel Engine Combustion and Emission , 1998 .

[9]  John E. Dec,et al.  An Investigation of Thermal Stratification in HCCI Engines Using Chemiluminescence Imaging , 2006 .

[10]  John E. Dec,et al.  A computational study of the effect of fuel type on ignition time in homogenous charge compression ignition engines , 2000 .

[11]  R. Reitz,et al.  Development and Validation of a Reduced Reaction Mechanism for HCCI Engine Simulations , 2004 .

[12]  Bengt Johansson,et al.  HCCI Combustion Phasing in a Multi Cylinder Engine Using Variable Compression Ratio , 2002 .

[13]  Nebojsa Milovanovic,et al.  Influence of the Variable Valve Timing Strategy on the Control of a Homogeneous Charge Compression (HCCI) Engine , 2004 .

[14]  Yoshinaka Takeda,et al.  Emission Characteristics of Premixed Lean Diesel Combustion with Extremely Early Staged Fuel Injection , 1996 .

[15]  Bertrand Gatellier,et al.  Development of the High Power NADI™ Concept Using Dual Mode Diesel Combustion to Achieve Zero NOx and Particulate Emissions , 2002 .

[16]  Rolf D. Reitz,et al.  Mechanism of Soot and NOx Emission Reduction Using Multiple-injection in a Diesel Engine , 1996 .