A 0.18 μ m high-voltage area efficient integrated gate driver for piston engine fuel injection control SoC

Author(s):  
Qinmiao Kang ◽  
Zhifeng Xie ◽  
Yongquan Liu ◽  
Ming Zhou
Author(s):  
Prasad Divekar ◽  
Qingyuan Tan ◽  
Xiang Chen ◽  
Ming Zheng ◽  
Ying Tan

Diesel engine fuel injection control is presented as a feedback based online optimization problem. Extremum seeking (ES) approach is used to address the online optimization formulation. The cost function is synthesized from extensive experimental investigations such that the indicated thermal efficiency of the engine is maximized while minimizing the NOx emissions under external boundary conditions. Knowledge of the physical combustion and emission formation process based on a pre-calibrated non-linear engine model output is used to determine the ES initial control input to minimize the seeking time. The control is demonstrated on a hardware-in-the-loop engine simulator bench.


Author(s):  
Guojin Chen ◽  
Jiawen Wang ◽  
Chang Chen ◽  
Yiming Yuan ◽  
Long Xu

Aiming at the problems of low precision, poor anti-interference and poor follow-up in the control parameters for the diesel engine fuel injection system, this paper studies the control method of the high-pressure common rail electronic control fuel injection system of the diesel engine, constructs the high-pressure common rail fuel injection control system based on the ECU, and establishes the speed segment PID control model of fuel injection quantity, common rail pressure, fuel injection timing and fuel injection rate by using MATLAB/Simulink. The fuel injection quantity and timing are simulated. In order to realize all-round and flexible control of the diesel engine under different working conditions, and to achieve the desired optimal performance in all aspects, the optimization control method of the injection law for the diesel engine is studied. The diesel engine fuel injection control strategy based on speed segment PID and operating parameter adaptation is proposed to realize precise control of the common rail pressure, injection quantity, injection timing and injection rate under different working conditions. The simulation calculation and bench test show that the maximum fluctuation of rail pressure at idle speed is only 5 MPa, and the time to reach stability is only 1.25 s, which greatly improves the control accuracy, anti-interference and follow-up ability of the injection parameters.


1992 ◽  
Author(s):  
Junichi Ishii ◽  
Nobuo Kurihara ◽  
Masami Shida ◽  
Hiromichi Miwa ◽  
Tatsuya Sekido

Author(s):  
M. A Huque ◽  
R. Vijayaraghavan ◽  
M. Zhang ◽  
B. J. Blalock ◽  
L M. Tolbert ◽  
...  

2008 ◽  
Vol 41 (2) ◽  
pp. 9459-9466 ◽  
Author(s):  
Andreas Walter ◽  
Mustafa Murt ◽  
Uwe Kiencke ◽  
Stephen Jones ◽  
Thomas Winkler

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