DocumentCode
2345120
Title
Effects on short circuit level of PV grid-connected systems under unintentional islanding
Author
Phuttapatimok, Samatcha ; Sangswang, Anawach ; Kirtikara, Krissanapong
Author_Institution
Dept. of Electr. Eng., King Mongkut´´s Univ. of Technol., Bangkok
fYear
2008
fDate
24-27 Nov. 2008
Firstpage
928
Lastpage
932
Abstract
Most distribution networks are designed to operate in radial mode without having distributed generation (DG) penetration into the networks. The increasing DG penetration has resulted in bi-directional power flow that affects the operation of conventional feeder protection. This paper focuses on the fault contribution of a distributed generation, specifically PV grid-connected system in an event of unintentional islanding. An experimental setup is created using a 6 kW off-the-shelf grid-connected inverter to emulate the event of a fault occurred on a distribution feeder. A hardware setup is prepared according to the IEEE standard for realistic results. The experimental results have shown that, without violating the specified criteria in the standard, the grid-connected inverter takes times to detect an islanding condition and stop energizing. Based on the obtained results, a simple model is adopted to capture and explained the system behavior under unintentional islanding. While different models can adequately explain the system behaviors, they results in different short circuit levels when incorporated into a power flow study. This observation introduces the possibility of selecting and/or upgrading protective devices in a distribution system.
Keywords
distributed power generation; fault diagnosis; invertors; load flow; photovoltaic power systems; power grids; power system interconnection; IEEE standard; PV grid-connected systems; bidirectional power flow; distributed generation; feeder protection; grid-connected inverter; off-the-shelf grid-connected inverter; power 6 kW; short circuit level; short circuit levels; unintentional islanding; Circuit faults; Costs; Distributed control; Fault currents; Hardware; Inverters; Personnel; Power system modeling; Power system protection; Rotating machines;
fLanguage
English
Publisher
ieee
Conference_Titel
Sustainable Energy Technologies, 2008. ICSET 2008. IEEE International Conference on
Conference_Location
Singapore
Print_ISBN
978-1-4244-1887-9
Electronic_ISBN
978-1-4244-1888-6
Type
conf
DOI
10.1109/ICSET.2008.4747140
Filename
4747140
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