Title :
Steady state analysis of a novel single phase induction generator for renewable energy conversion
Author :
Liyanage, Diana ; Rajakaruna, Sumedha
Author_Institution :
Dept. of Electr. & Comput. Eng., Curtin Univ., Perth, WA, Australia
fDate :
Sept. 28 2014-Oct. 1 2014
Abstract :
This paper presents the equivalent circuit and steady state behaviour of a recently introduced single phase generator configuration of a three phase squirrel cage induction machine. One winding of the three phase machine is used for real and reactive power control of the machine while remaining two windings are connected in series to form the output terminals to which the variable consumer load and a fixed excitation capacitor are connected. Starting from abc reference frame model, the paper derives dynamic equations of the system in both α-β and d-q reference frames. Complete set of steady state equations are then derived in α-β reference frame model before proposing a novel steady state equivalent circuit. The steady state behaviour of the machine is analysed using Matlab Simulink under different conditions of load, rotor speed, excitation capacitance and voltage applied to the controlled winding. Comparison of the steady state values obtained from transient model and respective results obtained from the equivalent circuit shows the accuracy of the derived steady state model.
Keywords :
asynchronous generators; equivalent circuits; machine control; machine windings; reactive power control; renewable energy sources; squirrel cage motors; α-β reference frames; Matlab Simulink; controlled winding; d-q reference frames; dynamic equations; excitation capacitance; fixed excitation capacitor; machine windings; reactive power control; renewable energy conversion; rotor speed; single phase generator configuration; single phase induction generator; steady state analysis; steady state equivalent circuit; three phase squirrel cage induction machine; variable consumer load; Capacitance; Generators; Mathematical model; Rotors; Stators; Steady-state; Voltage control; Equivalent Circuit; Induction Generator; Steady State Model;
Conference_Titel :
Power Engineering Conference (AUPEC), 2014 Australasian Universities
Conference_Location :
Perth, WA
DOI :
10.1109/AUPEC.2014.6966587