Title :
New Hybrid Control Technique to Improve Light Load Efficiency While Meeting the Hold-up Time Requirement for Two-Stage Server Power
Author :
Yen-Shin Lai ; Zih-Jie Su ; Wen-Shyue Chen
Author_Institution :
Center for Power Electron. Technol., Nat. Taipei Univ. of Technol., Taipei, Taiwan
Abstract :
The main theme of this paper is to propose a new hybrid control technique to improve the light load efficiency and meet the hold-up time requirement of the server power without additional sensors or auxiliary circuits. The server power consists of a power factor corrector (PFC) and a phase-shift full-bridge converter. The proposed hybrid control technique online controls the dc-link bus voltage of PFC to retain the maximum duty operation of the phase-shift full-bridge converter. Therefore, the efficiency under light load condition can be improved which is contributed by the reduction of circulating loss and switching losses of the converter. To meet the hold-up time requirement, the dc-link bus voltage is controlled to its nominal value under heavy load conditions. The specifications of the server power supply include: ac input voltage = 110/220 V, dc output voltage = 12 V, and output power = 480 W. The experimental results show that the efficiency can be improved up to 3% under light load conditions and meet the hold-up time requirement under whole load conditions. These results confirm the effectiveness of the proposed hybrid control technique.
Keywords :
power convertors; power factor correction; voltage control; PFC; circulating loss reduction; dc-link bus voltage control; heavy load conditions; hold-up time requirement; hybrid control technique; light load efficiency improvement; maximum duty operation; phase-shift full-bridge converter; power 480 W; power factor corrector; switching losses reduction; two-stage server power; voltage 110 V; voltage 12 V; voltage 220 V; Capacitors; DC-DC power converters; Inductors; Reactive power; Servers; Voltage control; Zero voltage switching; Hold-up time; phase-shift full-bridge (PSFB) converter; power factor corrector (PFC); zero-voltage switching (ZVS);
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2013.2283747