Title :
Injection quantity control for GDI engines
Author :
Guo Shuai ; Xin Baiyu ; Hu Yunfen ; Chen Hong
Author_Institution :
State Key Lab. of Automotive Simulation & Control, Jilin Univ., Changchun, China
Abstract :
To improve fuel economy and reduce emissions, direct injection technology with precise fuel injections is widely used for gasoline engines, because quantitative precise fuel injection, as well as multi injection during one combustion revolution, is fit for the whole engine speed range. This paper designs a PID controller of fuel injection quantity for gasoline direct injection (GDI). Firstly, a mathematical model of an injector, which is used for controller validation, is established mainly based on fluid dynamic; Secondly, a map of fuel injection quantity corresponding with engine demands (according to engine speed and rail pressure) is calibrated by using the high-fidelity engine software enDYNA through experiments. Then, a PID controller is aimed to track the given value of fuel injection quantity. Tuning controller parameters are chosen by randomized algorithm according to the criteria of performance. Simulation results show that the designed control scheme is effective.
Keywords :
air pollution control; combustion; control engineering computing; fluid dynamics; fuel economy; fuel systems; internal combustion engines; randomised algorithms; three-term control; GDI engine; PID controller design; combustion revolution; controller parameter tuning; controller validation; emission reduction; enDYNA software; engine demands; fluid dynamics; fuel economy improvement; fuel injection quantity controller; gasoline direct injection; gasoline engines; high-fidelity engine software; mathematical model; multiinjection; quantitative precise fuel injection; randomized algorithm; Camshafts; Engines; Mathematical model; Petroleum; Rails; Valves; GDI engine; PID controller; injection quantity; map calibration;
Conference_Titel :
Control and Decision Conference (CCDC), 2013 25th Chinese
Conference_Location :
Guiyang
Print_ISBN :
978-1-4673-5533-9
DOI :
10.1109/CCDC.2013.6561571