Title :
A Nonlinear Optimal Control Approach Based on the Control-Lyapunov Function for an AC/DC Converter Used in Electric Vehicles
Author :
Pahlevaninezhad, Majid ; Das, Pritam ; Drobnik, Josef ; Moschopoulos, Gerry ; Jain, Praveen K. ; Bakhshai, Alireza
Author_Institution :
ePOWER, Queens Univ., Kingston, ON, Canada
Abstract :
AC/DC converters used in electric vehicles generally consist of two stages: an input power factor correction (PFC) boost AC/DC stage that converts input AC voltage to an intermediate DC voltage and reduces input current harmonics injected to the grid, and a DC/DC converter that provides high-frequency galvanic isolation. Since there is a low-frequency ripple (second harmonic of the input ac line frequency) in the output voltage of the PFC AC/DC boost converter, the voltage loop in the conventional control system typically has a very low bandwidth to avoid distorting the input current waveform. This causes the conventional PFC controller to have slow dynamics against load variations. This paper presents a new control approach that regulates the input power of the converter instead of the output voltage by using an optimal nonlinear control approach based on the Control-Lyapunov Function (CFL). In this paper, it is shown that the proposed controller is able to eliminate the low bandwidth voltage control loop in the conventional PFC controller, thus allowing the front-end AC/DC boost PFC converter to operate with faster dynamic response than with the conventional controller approach. Experimental results from a 3 kW AC/DC converter are presented in the paper to validate the proposed control method and its superior performance.
Keywords :
AC-DC power convertors; DC-DC power convertors; Lyapunov methods; dynamic response; electric vehicles; machine control; nonlinear control systems; optimal control; power factor correction; voltage control; CFL; DC/DC converter; PFC AC/DC boost converter; PFC controller; control system; control-Lyapunov function; current harmonics; current waveform; dynamic response; electric vehicle; high-frequency galvanic isolation; input AC line frequency; input AC voltage; input power factor correction; intermediate DC voltage; load variation; low bandwidth voltage control loop; low-frequency ripple; nonlinear optimal control; optimal nonlinear control; power 3 kW; second harmonic; Batteries; Control systems; DC-DC power converters; Harmonic analysis; Power harmonic filters; Stability analysis; Voltage control; AC/DC converter; CCM; DC/DC converter; DCM; control-lyapunov function; full-bridge converter; lie derivatives; nonlinear systems; power factor correction (PFC); zero voltage switching (ZVS);
Journal_Title :
Industrial Informatics, IEEE Transactions on
DOI :
10.1109/TII.2012.2193894