DocumentCode
17819
Title
Modeling and Stability Analysis of a Direct-Drive Direct-Grid Slip–Synchronous Permanent-Magnet Wind Generator
Author
Potgieter, Johannes H. J. ; Kamper, Maarten J.
Author_Institution
Dept. of Electr. & Electron. Eng., Univ. of Stellenbosch, Stellenbosch, South Africa
Volume
50
Issue
3
fYear
2014
fDate
May-June 2014
Firstpage
1738
Lastpage
1747
Abstract
In order to simplify and increase the reliability of wind generators, a new type of a direct-drive directly grid-connected wind generator known as a slip-synchronous permanent-magnet generator (SS-PMG) is proposed. It consists of two integrated generating units, i.e., a directly turbine-connected slip PMG unit and a directly grid-connected PM synchronous generator unit. The main aim of this paper is to determine if this generator is stable under transient wind turbine and grid conditions. A transfer function model is developed to evaluate the dynamic performance of the wind generator system. The transient response of a single 15-kW grid-connected system is evaluated. It is shown that the generator is very stable under transient turbine torque conditions. Furthermore, it acts as a filter to prevent voltage flickering due to oscillatory turbine pulsations. A very important design aspect to take into account is the torque ripple characteristics of the slip PM generator as torque ripple can be transferred to the grid current under certain conditions. Simulated and dynamically measured results are shown for a series of 15-kW SS-PMG prototypes.
Keywords
motor drives; permanent magnet generators; power grids; reliability; stability; synchronous generators; torque motors; wind turbines; SS-PMG; direct drive direct grid; directly grid-connected PM synchronous generator unit; grid conditions; grid-connected system; integrated generating units; power 15 kW; reliability; slip synchronous permanent magnet wind generator; stability analysis; torque ripple; transfer function; transient response; transient turbine torque conditions; transient wind turbine; turbine-connected slip PMG unit; Generators; Mathematical model; Rotors; Stators; Torque; Transient analysis; Wind turbines; Dynamic response; Permanent magnet generator; Power systems; Stability; Wind power generation; permanent-magnet generator (PMG); power systems; stability; wind power generation;
fLanguage
English
Journal_Title
Industry Applications, IEEE Transactions on
Publisher
ieee
ISSN
0093-9994
Type
jour
DOI
10.1109/TIA.2013.2283019
Filename
6605545
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