Title :
DC Transmission Grid With Low-Speed Protection Using Mechanical DC Circuit Breakers
Author :
Hajian, Masood ; Lu Zhang ; Jovcic, Dragan
Author_Institution :
Electr. Eng. Dept., Univ. of Aberdeen, Aberdeen, UK
Abstract :
This paper introduces a dc transmission grid with fault-tolerant inductor-capacitor-inductor (LCL) voltage-source converters (VSCs) and using a slow protection system based on mechanical dc circuit breakers (CBs). LCL VSC inherently regulates dc fault current to levels that converters can sustain for prolonged periods which avoids insulated-gate bipolar transistor tripping and brings significant advantage to security and reliability aspects. Simple mechanical dc CBs are used at dc busbars and connecting points of each dc cable, in the same manner as it is normal practice used with ac transmission protection. The protection logic is based on differential methods which gives excellent selectivity and reliability. The fault clearing time is in the order of 30-60 ms which allows for reliable protection decision making. The simulation results obtained from a four-terminal dc grid modeled on the PSCAD platform confirm successful dc fault isolation and grid recovery for a range of severe dc fault scenarios.
Keywords :
DC transmission networks; LC circuits; circuit breakers; fault currents; fault diagnosis; fault tolerance; power grids; power system protection; AC transmission protection; DC fault current; DC transmission grid; LCL VSC; PSCAD platform; differential methods; fault isolation; fault-tolerant inductor-capacitor-inductor; insulated-gate bipolar transistor; low-speed protection; mechanical DC circuit breakers; protection logic; protection system; voltage-source converters; Circuit breakers; Circuit faults; Delays; Fault currents; Optical fiber cables; Power conversion; Circuit breaker (CB); HVDC transmission; converters; fault detection; fault tolerance; protection;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2014.2371618