DocumentCode :
15391
Title :
Size Reduction in Low-Frequency Square-Wave Ballasts for High-Intensity Discharge Lamps Using Soft-Saturation Magnetic Material and Digital Control Techniques
Author :
Schnell, Ryan W. ; Zane, Regan A. ; Azcondo, Francisco J.
Author_Institution :
Dept. of Electr., Comput., & Energy Eng., Univ. of Colorado, Boulder, CO, USA
Volume :
28
Issue :
2
fYear :
2013
fDate :
Feb. 2013
Firstpage :
1036
Lastpage :
1046
Abstract :
This paper presents an approach to reduce the size of low-frequency square-wave (LFSW) ballasts by using a single stage for resonant ignition and LFSW operation together with soft-saturation magnetic material and digital control techniques. Inductor design constraints are developed to leverage the nonlinear inductor behavior and achieve both size reduction and desirable performance in lamp ignition, warm-up, and normal operation modes. The digital controller provides multiple functions, including 1) a phase-controlled resonant sweep to achieve reliable lamp ignition and device protection with zero-voltage switching despite the nonlinear tank inductance, 2) lamp ignition detection and rapid transition to LFSW mode for lamp warm-up, 3) fast LFSW polarity transitions with optimal timing control for acoustic resonance free operation, and 4) two-loop feedback control. A fast current control loop limits and stabilizes the lamp current and rejects large ripple from the power factor correction (PFC) stage in order to reduce the size of the PFC output capacitor. A slow power control loop rejects variations in the lamp characteristics during warm-up and lamp aging. Experimental results are presented showing successful ignition and operation of a 150-W high-intensity discharge lamp.
Keywords :
control system synthesis; digital control; discharge lamps; electric current control; feedback; lamp accessories; optimal control; phase control; power control; power factor correction; soft magnetic materials; zero voltage switching; LFSW operation; PFC output capacitor; ZVS; acoustic resonance free operation; device protection; digital control techniques; fast current control loop; high-intensity discharge lamp; inductor design constraints; lamp aging; lamp current; lamp ignition detection; low-frequency square-wave ballasts; nonlinear inductor behavior; nonlinear tank inductance; normal operation modes; optimal timing control; phase-controlled resonant sweep; power 150 W; power factor correction stage; resonant ignition; size reduction; slow power control loop; soft-saturation magnetic material; two-loop feedback control; warm-up modes; zero-voltage switching; Electronic ballasts; High intensity discharge lamps; Ignition; Impedance; Inductors; Logic gates; Resonant frequency; Acoustic resonance (AR); electronic ballast; high-intensity discharge (HID); low frequency square wave (LFSW); phase control; soft saturation;
fLanguage :
English
Journal_Title :
Power Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8993
Type :
jour
DOI :
10.1109/TPEL.2012.2202129
Filename :
6210393
Link To Document :
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