Title :
Wide range active and reactive power flow controller for a solid oxide fuel cell power conditioning system
Author :
Park, Sung-Yeul ; Chen, Chien-Liang ; Lai, Jih-Sheng
Author_Institution :
Future Energy Electron. Center, Virginia Polytech. Inst. & State Univ., Blacksburg, VA
Abstract :
A wide-range active and reactive power flow controller is designed to operate the inverter in pure leading, pure lagging, and the mix with active and reactive power conditions. The key to achieving lagging power flow control is to ensure sufficiently high enough dc bus voltage to avoid duty cycle saturation. The key to achieving precision power flow control for a wide-range of power level is to adopt the quasi proportional resonant controller for the current loop and the admittance compensator to cancel the grid voltage induced negative power flow. In this paper, the current loop transfer function has been systematically derived for the controller design purpose. Phasor analysis was adopted to explain the need of dc bus voltage requirement. A 5-kVA grid-tie fuel cell inverter was used as the platform to show current loop controller design and admittance compensation. The proposed controller has been simulated, and the same parameters have been used for a digital signal processor based controller. Both simulation and hardware experimental results well agree with the theoretical analysis.
Keywords :
control system synthesis; electric current control; fuel cell power plants; invertors; load flow control; reactive power control; solid oxide fuel cells; transfer function matrices; active power flow controller; admittance compensation; current loop controller; current loop transfer function; dc bus voltage; digital signal processor; duty cycle saturation; grid-tie fuel cell inverter; power conditioning system; quasi proportional resonant controller; reactive power flow controller; solid oxide fuel cell; Admittance; Control systems; Fuel cells; Inverters; Load flow control; Power conditioning; Proportional control; Reactive power control; Resonance; Solids; Reactive power control; solid oxide fuel cell PCS;
Conference_Titel :
Applied Power Electronics Conference and Exposition, 2008. APEC 2008. Twenty-Third Annual IEEE
Conference_Location :
Austin, TX
Print_ISBN :
978-1-4244-1873-2
Electronic_ISBN :
1048-2334
DOI :
10.1109/APEC.2008.4522836