Title :
A mixed mean-value and crank-based model of a dual-stage turbocharged SI engine for Hardware-In-the-Loop simulation
Author :
Xiaojian Yang ; Zhu, G.G.
Author_Institution :
Michigan State Univ., East Lansing, MI, USA
fDate :
June 30 2010-July 2 2010
Abstract :
Closed loop combustion control of internal combustion engines becomes a necessity to meet today´s fuel economy and emission requirements. Hardware-In-the-Loop (HIL) simulation of engine systems plays an important role in developing and validating real-time engine control systems. Traditionally the engine models used for the HIL simulation are so-called mean value ones that simulate average engine operational behaviors, while the development and validation of closed loop combustion control require crank-based (or event based) feedback signals, such as in-cylinder pressure signals, in an HIL simulator. In this paper, a mixed mean valve and crank-based engine model was developed for a dual-stage turbocharged engine. This engine model contains both cycle-to-cycle combustion information and averaged engine dynamics such as air flow, speed, torque, etc. GT-Power engine model was developed to obtain calibrations for the Simulink real-time engine model built for the real-time HIL simulator.
Keywords :
closed loop systems; combustion; crankcases; fuel economy; fuel systems; internal combustion engines; GT-power engine model; averaged engine dynamic; closed loop combustion control; crank-based feedback signal; cycle-to-cycle combustion information; dual-stage turbocharged SI engine; fuel economy; hardware-in-the-loop simulation; internal combustion engine; mixed mean-value model; Calibration; Control system synthesis; Discrete event simulation; Feedback loop; Fuel economy; Internal combustion engines; Pressure control; Real time systems; Torque; Valves;
Conference_Titel :
American Control Conference (ACC), 2010
Conference_Location :
Baltimore, MD
Print_ISBN :
978-1-4244-7426-4
DOI :
10.1109/ACC.2010.5531459