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Fault Location Estimator Design
Details
Fault location in distribution system is critical issue to increase the availability of power supply by reducing the time of interruption for maintenance in electric utility companies. In this thesis fault location estimator for power distribution system using artificial neural network is developed for line to ground, line to line, line to line to ground and three phase to ground faults in distribution system. To develop this estimator one of rural radial power distribution feeder in Ethiopia, Oromia, Assela substation Gumguma line feeder is used as a test feeder. This feeder is simulated using ETAP software to generate data for different fault condition, with different fault resistance and loading conditions, which is the fault phase voltage and current. It is found that artificial neural networks are one of the alternate options in fault estimator design for distribution system where sufficient distribution network data are available with narrow fault location distance range from the substation. This has benefits in assisting for maintenance plan, saving efforts in fault location finding and economical benefits by reducing interruption time.
Autorentext
Samuel Shawel Tessema tem um BSc. Licenciado em Engenharia Eléctrica pelo Instituto de Tecnologia da Universidade Jimma e um Mestrado em Engenharia Electrotécnica pelo Instituto de Tecnologia de Addis Abeba. Actualmente está a trabalhar como Chefe do Planeamento de Sistemas Fora da Rede na Empresa de Electricidade.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09786202093040
- Genre Elektrotechnik
- Sprache Englisch
- Anzahl Seiten 104
- Größe H220mm x B150mm x T7mm
- Jahr 2019
- EAN 9786202093040
- Format Kartonierter Einband
- ISBN 6202093048
- Veröffentlichung 25.02.2019
- Titel Fault Location Estimator Design
- Autor Samuel Shawel Tessema
- Untertitel for Power Distribution System Using Artificial Neural Networks
- Gewicht 173g
- Herausgeber LAP LAMBERT Academic Publishing