Kihyung Lee and Rolf D Reitz 2004 Meas. Sci. Technol. 15 509 doi:10.1088/0957-0233/15/3/003
Kihyung Lee1 and Rolf D Reitz2
Show affiliationsHomogeneous charge compression ignition (HCCI) combustion provides extremely low levels of pollutant emissions, and thus is an attractive alternative for future IC engines. In order to achieve a uniform mixture distribution within the engine cylinder, the characteristics of the fuel spray play an important role in the HCCI engine concept. It is well known that high-pressure common rail injection systems, mainly used in diesel engines, achieve poor mixture formation because of the possibility of direct fuel impingement on the combustion chamber surfaces.
This paper describes spray characteristics of a low-pressure common rail injector which is intended for use in an HCCI engine. Optical diagnostics including laser diffraction and phase Doppler methods, and high-speed camera photography, were applied to measure the spray drop diameter and to investigate the spray development process. The drop sizing results of the laser diffraction method were compared with those of a phase Doppler particle analyser (PDPA) to validate the accuracy of the experiments. In addition, the effect of fuel properties on the spray characteristics was investigated using n-heptane, Stoddard solvent (gasoline surrogate) and diesel fuel because HCCI combustion is sensitive to the fuel composition. The results show that the injector forms a hollow-cone sheet spray rather than a liquid jet, and the atomization efficiency is high (small droplets are produced). The droplet SMD ranged from 15 to 30 µm. The spray break-up characteristics were found to depend on the fuel properties. The break-up time for n-heptane is shorter and the drop SMD is smaller than that of Stoddard solvent and diesel fuel.
89.60.-k Environmental studies
47.55.Kf Multiphase and particle-laden flows
06.30.Bp Spatial dimensions (e.g., position, lengths, volume, angles, and displacements)
Issue 3 (March 2004)
Received 11 June 2003, accepted for publication 6 January 2004, in final form 3 December 2003
Published 26 January 2004
Kihyung Lee and Rolf D Reitz 2004 Meas. Sci. Technol. 15 509
2009 Phys. Educ. 44 659
L Sakhnovich 2002 Inverse Problems 18 1525
D Gottlieb and V Halpern 1976 J. Phys. F: Met. Phys. 6 2333
2009 J. Radiol. Prot. 29 549
A C Rose-Innes 1985 Phys. Educ. 20 272
A van de Walle and M Asta 2002 Modelling Simul. Mater. Sci. Eng. 10 521
James M Nester 2004 Class. Quantum Grav. 21 S261
Yin Lu et al 2010 Eur. J. Phys. 31 47
Melanie David et al 2006 J. Phys.: Condens. Matter 18 1137