Continuous commutation failure suppression strategy in hybrid multi-infeed HVDC transmission system
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TM722

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The National Natural Science Foundation of China (General Program, Key Program, Major Research Plan)

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    Abstract:

    For the wide application of high voltage direct current (HVDC) transmission engineering,the continuous commutation failure of line commutated converter HVDC (LCC-HVDC) has a seriously negative impact on the stable operation of the power system. Therefore,in order to mitigate the continuous commutation failure of LCC-HVDC in hybrid multi-feed HVDC system,from the perspective of increasing the LCC-HVDC commutation voltage,a coordinated control strategy for hybrid multi-infeed HVDC systems is proposed in this paper. According to the real-time reactive power shortage of the conventional DC,the reactive power and active power of voltage source converter HVDC (VSC-HVDC) output are dynamically adjusted by this strategy,thereby changing the transient stable operating point of VSC-HVDC. Through the coordinated control of this strategy,the continuous commutation failure of LCC-HVDC is suppressed and the transmission capacity of the active power of the DC transmission system is greatly improved. Finally,a simulation model of the hybrid dual-infeed HVDC system is built in PSCAD/EMTDC,and the effectiveness of the coordinated control strategy is verified.

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ZHONG Mingming, XIA Chengjun, LI Shoutao, HUANG Chuyin, LI Chengxiang. Continuous commutation failure suppression strategy in hybrid multi-infeed HVDC transmission system[J]. Electric Power Engineering Technology,2022,41(2):20-28.

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History
  • Received:September 28,2021
  • Revised:December 23,2021
  • Adopted:May 27,2021
  • Online: March 24,2022
  • Published: March 28,2022
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