DocumentCode :
64826
Title :
Impact of HVDC Transmission System Topology on Multiterminal DC Network Faults
Author :
Kontos, E. ; Pinto, R. Teixeira ; Rodrigues, S. ; Bauer, P.
Author_Institution :
Dept. of Electr. Sustainable Energy, Delft Univ. of Technol., Delft, Netherlands
Volume :
30
Issue :
2
fYear :
2015
fDate :
Apr-15
Firstpage :
844
Lastpage :
852
Abstract :
This paper compares how a dc fault affects a multiterminal dc (MTdc) network depending on the HVDC transmission system topology. To this end, a six-step methodology is proposed for the selection of the necessary dc fault protection measures. The network consists of four voltage-source converters converters radially connected. The converters natural fault response to a dc fault for the different topologies is studied using dynamic simulation models. For clearing of the dc faults, four different dc breaker technologies are compared based on their fault interruption time, together with a current direction fault detection method. If necessary, the converters are reinforced with limiting reactors to decrease the peak value and rate of rise of the fault currents providing sufficient time for the breakers to isolate the fault without interrupting the MTdc network operation. The study shows that the symmetric monopolar topology is least affected by dc contingencies. Considering bipolar topologies, the bipolar with metallic return exhibits better fault response compared to the one with ground return. Topologies with ground or metallic return require full semiconductor or hybrid breakers with reactors to successfully isolate a dc fault.
Keywords :
HVDC power transmission; fault currents; fault diagnosis; power convertors; power system faults; DC fault protection measure; HVDC transmission system topology; MTDC network; bipolar topology; breaker technology; dynamic simulation model; fault current; fault detection method; fault interruption time; fault isolation; fault response; multiterminal DC network fault; symmetric monopolar topology; voltage-source converter; Circuit faults; HVDC transmission; Network topology; Power conversion; Switches; Topology; Control systems; HVDC circuit breakers; HVDC converters; HVDC transmission; fault currents; multiterminal networks; voltage-source converters (VSCs);
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2014.2357056
Filename :
6969842
Link To Document :
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