Control design of a four-Terminal thyristor converter system

Oluwafemi Emmanuel Oni, Tobiloba Somefun, Omowunmi Mary Longe

Research output: Contribution to journalConference articlepeer-review

Abstract

The growing need for efficient long-distance power transmission and large-scale integration of renewable energy has accelerated the development of multiterminal high-voltage direct current (MTHVDC) systems. This study examines a +500 kV four-Terminal Line-Commutated Converter (LCC)-based monopolar MTHVDC system as a solution for bulk power transfer and grid interconnection. The system's capability to dynamically regulate power flow across multiple terminals is analysed using PSCAD simulations under varying current order conditions. Results highlight the influence of rectifier firing angle variations (2-15) and inverter conduction angle fluctuations (140-150) on system stability. Observed transient voltage ripples, caused by inverter extinction angle oscillations, underscore the need for advanced filtering techniques. Findings emphasize the importance of semiconductor advancements in mitigating commutation failures and harmonic distortions, particularly in weak AC grids with high renewable energy penetration. Future research should refine real-Time control strategies and enhance the robustness of MTHVDC systems for improved reliability in large-scale transmission networks.

Original languageEnglish
Article number03002
JournalE3S Web of Conferences
Volume638
DOIs
Publication statusPublished - 16 Jul 2025
Event4th International Conference on Electronics, Engineering Physics and Earth Science, EEPES 2025 - Hybrid, Alexandroupolis, Greece
Duration: 18 Jun 202520 Jun 2025

ASJC Scopus subject areas

  • General Environmental Science
  • General Energy
  • General Earth and Planetary Sciences

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