Title :
Load resonant and quasiresonant hybrid mode ZVS-PWM high frequency inverter for induction heated foam metal fluid heater
Author :
Kurose, Y. ; Hiraki, Eiji ; Hirota, I. ; Yamashita, H. ; Omori, H. ; Nakaoka, M.
Author_Institution :
Dept. of Electr. & Electron. Eng., Yamaguchi Univ., Japan
Abstract :
This paper presents a novel prototype of phase shift ZVS-PWM controlled high frequency load resonant inverter with loss less capacitor snubbers in addition to active resonant snubber for electromagnetic induction fluid heating appliances. The operating principle and unique features of this soft switching high frequency inverter circuit are described herein. The constant frequency phase shift ZVS-PWM controlled voltage source type high frequency load resonant inverter employing IGBTs is proposed for series capacitor compensated load, which is capable of achieving stable and efficient zero voltage soft commutation over a widely specified power regulation range from full power to low power. The steady state operating performance of this high frequency inverter is evaluated and discussed on the basis of simulation and experimental results for newly developed induction heated dual-pack heater of compact moving fluid heating appliance in the pipeline.
Keywords :
PWM invertors; consumer electronics; electromagnetic induction; induction heating; insulated gate bipolar transistors; resonant invertors; snubbers; IGBTs; ZVS-PWM high frequency inverter; active resonant snubber; consumer power electronics; electromagnetic induction fluid heating appliances; hot water producer; induction heated dual-pack heater; induction heated foam metal fluid heater; load resonant inverter; passive snubbers capacitor; power regulation; quasiresonant hybrid mode; series capacitor compensated load; soft switching high frequency inverter circuit; Capacitors; Electromagnetic heating; Electromagnetic induction; Home appliances; Prototypes; Resonance; Resonant frequency; Resonant inverters; Snubbers; Temperature control;
Conference_Titel :
Power Electronics and Drive Systems, 2003. PEDS 2003. The Fifth International Conference on
Print_ISBN :
0-7803-7885-7
DOI :
10.1109/PEDS.2003.1283087