Article ID Journal Published Year Pages File Type
651056 Experimental Thermal and Fluid Science 2016 10 Pages PDF
Abstract

•Effect of fuel injection parameters on performance, combustion and emission characteristics in a diesel fuelled HCCI engine is studied experimentally.•Multiple pulse injection is better than injecting the fuel in a single pulse in diesel HCCI engine as it leads to lower emissions and higher thermal efficiency.•Multiple diesel injection mode HCCI yielded higher thermal efficiency by about (15%) when compared to SP injection (11%) at an IMEP of about 3 bar.•Multiple diesel injection mode HCCI yielded in lower hydrocarbon and smoke emissions by about 56% and 24% respectively, compared to those of SP injection.

Homogeneous charge compression ignition (HCCI) engines have the potential to operate with low nitric oxide (NOx) and soot emissions. Diesel HCCI engines pose challenges related to too early combustion, high combustion rates and wall wetting of the fuel. Injecting diesel in pulses has been shown to improve combustion in these engines. In this work, diesel injected in five timed pulses has been investigated in a compression ignition (CI) engine operating in HCCI mode. The influence of varying the first, middle and last injection pulse durations alone, in sequence, while maintaining all the other injection pulse durations equal has been studied. In addition, the influence of the injection timing of the last injection pulse was also studied. A comparison of the results has been made with HCCI operation using diesel injection in a single pulse at an injection timing of 100° CA before top dead centre (TDC) and also with the conventional compression ignition mode of operation under similar outputs. The results show that, multiple pulse (MP) injection is better than injecting the fuel in a single pulse (SP) as it leads to lower emissions and higher thermal efficiency. This is because of better combustion phasing and higher heat release rates.

Related Topics
Physical Sciences and Engineering Chemical Engineering Fluid Flow and Transfer Processes
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