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Sending-end voltage fluctuation mechanism and suppression under commutation failures in LCC-HVDC systems

  • Hongxi Yang
  • , Chenguang Yan
  • , Yichun Wang
  • , Ying Liu
  • , Zhangheng Liu
  • , Qinzhi Liu
  • , Weixiang Wang
  • , Hao Liu
  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

Inverter commutation failures (CFs) in LCC-HVDC systems can cause severe sending-end voltage fluctuations. However, owing to the reliance of analysis methods on average-concept-based power quantities, the transient behavior of the sending-end voltage during inverter CFs remains elusive, hindering the advancement of its suppression strategy. Given this, this paper proposes a power-free quantitative analysis method and a targeted suppression strategy for sending-end voltage fluctuations. Specifically, from the transient perspective, the expression for the instantaneous sending-end voltage is derived, which reveals the decisive role of the amplitude term and phase term of the outfeed-current-induced voltage drop. On this basis, in the constructed space of the amplitude term K, phase term ψ and RMS sending-end voltage Up, the operating curves of the DC system after inverter CFs are analyzed in detail. According to the variations in the dominant terms that lead to voltage fluctuations, the postfault process is divided into five stages, and a corresponding targeted control strategy is proposed. Simulations under different fault conditions in PSCAD/EMTDC verify the correctness of this quantitative analysis method and the effectiveness of the proposed suppression strategy.

Original languageEnglish
Article number112078
JournalElectric Power Systems Research
Volume249
DOIs
StatePublished - Dec 2025

Keywords

  • Commutation failure
  • Quantitative analysis
  • Sending-end AC system
  • Suppression strategy
  • Voltage fluctuation

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