DocumentCode
901583
Title
A novel excitation scheme for a stand-alone three-phase induction generator supplying single-phase loads
Author
Chan, T.F. ; Lai, L.L.
Author_Institution
Dept. of Electr. Eng., Hong Kong Polytech. Univ., China
Volume
19
Issue
1
fYear
2004
fDate
3/1/2004 12:00:00 AM
Firstpage
136
Lastpage
143
Abstract
This paper presents the operating principle and steady-state analysis of a novel excitation scheme for a stand-alone three-phase induction generator that supplies single-phase loads. The phase windings and excitation capacitances are arranged in the form of the Smith connection and the excitation scheme is referred to as the SMSEIG. In addition to providing the reactive power for self-excitation, the capacitances also act as phase balancers. With this novel excitation scheme, isolated single-phase loads can be supplied with good phase balance in the induction machine, resulting in high efficiency, large power output, and quiet machine operation. Performance analysis is based on the method of symmetrical components, from which the input impedance of the generator can be determined. Numerical solution of a simplified equivalent circuit for the machine variables, namely the excitation frequency and magnetizing reactance, enables the generator performance to be evaluated for any load and speed. With the aid of a phasor diagram, the conditions for achieving perfect phase balance are deduced and a method to compute the capacitances required is developed. Experimental investigations on a 2.2-kW induction machine confirm the feasibility of the SMSEIG.
Keywords
asynchronous generators; capacitance; electric impedance; exciters; load (electric); optimisation; 2.2 kW; SMSEIG; Smith connection; equivalent circuit; excitation capacitance; excitation frequency; excitation scheme; induction machine; input impedance; magnetizing reactance; phase balancer; phase windings; phasor diagram; self-excited induction generator; single-phase loads; stand-alone three-phase induction generator; steady-state analysis; symmetrical components; Capacitance; Costs; Impedance; Induction generators; Induction machines; Induction motors; Performance analysis; Power generation; Power system protection; Stator windings;
fLanguage
English
Journal_Title
Energy Conversion, IEEE Transactions on
Publisher
ieee
ISSN
0885-8969
Type
jour
DOI
10.1109/TEC.2003.822299
Filename
1268129
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