Title :
Proportional-Integral (PI) Compensator Design of Duty-Cycle-Controlled Buck LED Driver
Author_Institution :
Dept. of Control & Instrum. Eng., Pukyong Nat. Univ., Busan, South Korea
Abstract :
A discrete time-domain modeling and design for the duty-cycle-controlled buck light-emitting diode (LED) driver is presented in this paper. The discrete time-domain equation representing the buck LED driver is derived and linearized about the equilibrium state. Also the switching control law, the proportional-integral (PI) compensator is used here as an example of the error amplifier, is linearized about the equilibrium state. The linearized buck LED driver and the control law are then combined to arrive at a linearized duty-cycle-controlled buck LED driver. The root-locus method is employed to analyze the dynamic performance of the closed-loop system. Based on the modeling result, a practical design equation for the PI compensator is derived. Experimental results are presented to verify the validity of the proposed PI compensator design.
Keywords :
PI control; closed loop systems; driver circuits; light emitting diodes; linear systems; power amplifiers; power convertors; root loci; time-domain analysis; PI compensator design; closed loop system; discrete time-domain equation; discrete time-domain model design; duty cycle controlled buck LED driver; light emitting diode driver; proportional-integral compensator design; root-locus method; switching control law; Equations; Light emitting diodes; Mathematical model; Switches; Time-domain analysis; Transient response; Discrete time-domain modeling; duty-cycle-controlled buck light-emitting diode (LED) driver; error amplifier; proportional-integral (PI) compensator design; root-locus stability analysis;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2014.2341253