4.6 Article

Investigation on the Performance Enhancement and Emission Reduction of a Biodiesel Fueled Diesel Engine Based on an Improved Entire Diesel Engine Simulation Model

Journal

PROCESSES
Volume 9, Issue 1, Pages -

Publisher

MDPI
DOI: 10.3390/pr9010104

Keywords

fuel injection rate; biodiesel fuel; diesel engine; fuel injection system; comprehensive performance

Funding

  1. Natural Science Foundation of Guangxi [2018GXNSFAA281267, 2018GXNSFAA294072]
  2. Guangxi Young and middle-aged college Teachers Basic Research Ability Promotion Project [2020KY39008]

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An improved heat transfer model was developed in AVL-BOOST to enhance the efficiency of a diesel engine fueled with biodiesel, incorporating a five-component biodiesel skeletal mechanism. The model accurately predicted the engine's performance characteristics, with errors less than 2% between experiment and simulation. The nozzle diameter, injection pressure, and injection advance angle were found to be significant factors in the injection system, highlighting the need to choose the injection rate reasonably.
In order to improve the efficiency of the diesel engine and reduce emissions, an improved heat transfer model was developed in an AVL-BOOST environment which is a powerful and user-friendly software for engine steady-state and transient performance analysis. The improved heat transfer model considers the advantages of the Woschni1978 heat transfer model and Honhenberg heat transfer model. In addition, a five-component biodiesel skeletal mechanism containing 475 reactions and 134 species was developed to simulate the fuel spray process and combustion process since it contained methyl linolenate, methyl linoleate, methyl oleate, methyl stearate, and methyl palmitate, which are a majority component in most biodiesel. Finally, the propulsion and load characteristics of a diesel engine fueled with biodiesel fuel were investigated by the improved heat transfer model in term of power, brake specific fuel consumption (BSFC), soot and NOx emissions. Similarly, the effects of the fuel injection rate on the diesel engine's characteristic fueled with biodiesel was studied. The result showed that the errors between experiment and simulation were less than 2%. Thus, the simulation model could predict the propulsion and load characteristics of the diesel engine. The nozzle diameter, injection pressure, and injection advance angle are significant to the injection system. Thus, it is very important to choose the injection rate reasonably.

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