The effect of displacement on air-diluted multi-cylinder HCCI engine performance

The main benefit of HCCI engines compared to SI engines is improved fuel economy. The drawback is the diluted combustion with a substantially smaller operating range if not some kind of supercharging is used. The reasons for the higher brake efficiency in HCCI engines can be summarized in lower pumping losses and higher thermodynamic efficiency, due to higher compression ratio and higher ratio of specific heats if air is used as dilution. In the low-load operating range, where HCCI today is mainly used, other parameters as friction losses, and cooling losses have a large impact on the achieved brake efficiency. To initiate the autoignition of the in-cylinder charge a certain temperature and pressure have to be reached for a specific fuel. In an engine with high in-cylinder cooling losses the initial charge temperature before compression has to be higher than on an engine with less heat transfer. The heat transfer to the combustion chamber walls is affected by parameters such as area-to-volume ratio and in-cylinder gas motion, i.e., turbulence. In this paper the performance of three multi-cylinder HCCI engines with different displacements are compared. The engines are a five-cylinder 1.6dmu3 VCR engine, a four-cylinder 2.0dmu3 engine, and a six-cylinder 11.7dmu3 truck engine. All engines are port fuel injected and run with a RON91/MON82 gasoline. Combustion phasing is mainly controlled with inlet air temperature. The engines have about the same indicated efficiency but different brake efficiency. The truck engine has 32.3% brake efficiency at 2 bar BMEP, followed by the 2.0dmu3 engine with 29.8%, and the 1.6dmu3 VCR engine with only 24.4%. (Less)

[1]  Bengt Johansson,et al.  HCCI Combustion Phasing with Closed-Loop Combustion Control Using Variable Compression Ratio in a Multi Cylinder Engine , 2003 .

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

[3]  Yukiyasu Tanaka,et al.  A Study on Gasoline Engine Combustion by Observation of Intermediate Reactive Products during Combustion , 1979 .

[4]  Francisco Espinosa-Loza,et al.  Piston-Liner Crevice Geometry Effect on HCCI Combustion by Multi-Zone Analysis , 2002 .

[5]  Bengt Johansson,et al.  HCCI Closed-Loop Combustion Control Using Fast Thermal Management , 2004 .

[6]  S. H. Jo,et al.  Active Thermo-Atmosphere Combustion (ATAC) - A New Combustion Process for Internal Combustion Engines , 1979 .

[7]  Bengt Johansson,et al.  A Turbocharged Dual-Fuel HCCI Engine , 2001 .

[8]  Bengt Johansson,et al.  Transient Control of a Multi Cylinder HCCI Engine During a Drive Cycle , 2005 .

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

[10]  Atsushi Teraji,et al.  Study of High Load Operation Limit Expansion for Gasoline Compression Ignition Engines , 2006 .

[11]  Bengt Johansson,et al.  Balancing Cylinder-to-Cylinder Variations in a Multi-Cylinder VCR-HCCI Engine , 2004 .

[12]  D. Assanis,et al.  Homogeneous Charge Compression Ignition (HCCI) Engines , 2003 .

[13]  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 .

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

[15]  Martin L. Willi,et al.  System Efficiency Issues for Natural Gas Fueled HCCI Engines in Heavy-Duty Stationary Applications , 2002 .

[16]  Bengt Johansson,et al.  Supercharging HCCI to Extend the Operating Range in a Multi-Cylinder VCR-HCCI Engine , 2003 .

[17]  Olof Erlandsson Early Swedish Hot-Bulb Engines - Efficiency and Performance Compared to Contemporary Gasoline and Diesel Engines , 2002 .

[18]  Yasuo Takagi,et al.  Factors limiting the improvement in thermal efficiency of S. I. engine at higher compression ratio , 1987 .

[19]  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 .

[20]  Jari Hyvönen The Performance of a Multi Cylinder HCCI Engine using Variable Compression Ratio and Fast Thermal Management , 2005 .