Title :
High-efficiency low-stress electronic dimming ballast for multiple fluorescent lamps
Author :
Wu, Tsai-Fu ; Liu, Yuan-Chyuan ; Wu, Yong-Jing
Author_Institution :
Dept. of Electr. Eng., Nat. Chung-Cheng Univ., Chia-Yi, Taiwan
fDate :
1/1/1999 12:00:00 AM
Abstract :
An electronic dimming ballast with a lead-lag tank operation (LLTO) having the properties of high efficiency and low stress is introduced in this paper. The ballast is configured with a voltage-fed half-bridge series-resonant parallel-loaded inverter (SRPLI) acting as a lamp driver. It is loaded with resonant tanks which are designed and operated to be capacitive and inductive to theoretically achieve both zero-voltage switching (ZVS) and zero current switching (ZCS) and to eliminate the reactive current circulating through the switches, resulting in low switching and conduction losses. Moreover, the merit of a successive lamp ignition can be attained with the proposed operation scheme so that current stress imposed on the switches can be reduced. With the plasma model of fluorescent lamps, the analysis, operating principle, and dimming control strategy of the electronic ballast are described in detail. On the other hand, the limitations of the proposed scheme are pointed out. Computer simulation results and experimental measurements are used to verify the theoretical prediction and analytical discussion
Keywords :
bridge circuits; fluorescent lamps; invertors; lamp accessories; lighting control; resonant power convertors; switching circuits; ZCS; ZVS; capacitive operation; computer simulation; high-efficiency; inductive operation; lamp driver; lead-lag tank operation; low conduction losses; low switching losses; low-stress electronic dimming ballast; multiple fluorescent lamps; plasma model; reactive current circulation; resonant tanks; successive lamp ignition; voltage-fed half-bridge series-resonant parallel-loaded inverter; zero current switching; zero-voltage switching; Driver circuits; Electronic ballasts; Ignition; Inverters; Plasma measurements; Resonance; Stress; Switches; Zero current switching; Zero voltage switching;
Journal_Title :
Power Electronics, IEEE Transactions on