4.7 Article

An Accelerated Distance Protection of Transmission Lines Emanating From MMC-HVdc Stations

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JESTPE.2021.3058154

Keywords

Protective relaying; Power transmission lines; Fault currents; Impedance; Resistance; Transmission line measurements; Acceleration; Accelerated distance protection; modular multilevel converter-based high-voltage direct current (MMC-HVdc) station; new zone 1 protection criterion; projected reference impedance; response time (RT)

Funding

  1. National Natural Science Foundation of China [51707193]
  2. Fundamental Research Funds for the Central Universities [2020YQJD01]
  3. Yue Qi Young Scholar Project of China University of Mining and Technology (Beijing)

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The study introduces a new protection criterion for power systems based on projected reference impedance, aimed at accurately distinguishing internal and external faults, reducing fault response time, and ensuring high-speed operation of distance relays.
Compared with synchronous generators, modular multilevel converter-based high voltage direct current (MMC-HVdc) stations have unique fault behaviors, potentially impeding the correct operations of distance relays of lines connecting MMC-HVdc stations. To minimize the adverse effect caused by the fault resistance and MMC-HVdc stations, a new zone 1 protection criterion based on projected reference impedance is presented. According to the polarity of direction factor and the amplitude comparison of projected reference and measured impedances, the internal and external faults can be accurately distinguished. To shorten the response time of distance relays for the faults occurring in transmission lines emanating from MMC-HVdc stations, especially for the faults in the protection deadzone of zone 1, an accelerated distance protection based on the new zone 1 protection criterion is presented, ensuring that distance relays at two ends can clear the internal faults at high speed. Furthermore, the proposed protection scheme remains unaffected by fault resistance and operates well under different fault locations. The performance of the proposed scheme is assessed by more than 2100 digital simulations.

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