Title :
Future distribution feeder protection using directional overcurrent elements
Author :
Jones, David ; Kumm, Julia
fDate :
April 28 2013-May 1 2013
Abstract :
Distribution feeder protection could soon be complicated by non-radial flows of real and reactive power available from high penetration distributed generation and potentially from microgrids. Non-directional overcurrent protection may not provide necessary security and sensitivity for faults on remote points of the circuit. Directional supervision is necessary to set overcurrent pickups with adequate sensitivity for remote faults. Setting the directional element by traditional means provides a reliability risk at varying VAR flows within reach of specific types of distributed generation. This paper will demonstrate the limitations of non-directional overcurrent protection and the pitfalls of an improperly configured directional element. A unique solution using directional overcurrent elements further secured by a load encroachment function can solve these problems. This approach has been validated in renewable plant collector circuit protection applications over a wide range of operating conditions.
Keywords :
distributed power generation; overcurrent protection; power distribution protection; reactive power; static VAr compensators; wind power plants; wind turbines; VAR flows; directional element; directional overcurrent elements; directional supervision; distributed generation; distribution feeder protection; load encroachment function; microgrids; nondirectional overcurrent protection; nonradial flows; overcurrent pickups; reactive power; reliability risk; remote faults; renewable plant collector circuit protection applications; Circuit faults; Distributed power generation; Power distribution networks; Reactive power; Relays; Substations; Wind turbines;
Conference_Titel :
Rural Electric Power Conference (REPC), 2013 IEEE
Conference_Location :
Stone Mountain, GA
Print_ISBN :
978-1-4673-5173-7
DOI :
10.1109/REPCon.2013.6681853