Analysis of subsynchronous oscillation characteristics of photovoltaic virtual synchronous generators integrated with MMC-HVDC
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1.School of Automation & Electrical Engineering, Lanzhou Jiaotong University, Lanzhou 730070, P. R. China;2.Pingdingshan Yao Meng Power Generation Co., Ltd., Pingdingshan, Henan 467031, P. R. China

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TM721

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    Abstract:

    To address the issue of subsynchronous oscillation (SSO) arising when photovoltaic virtual synchronous generators (VSG_PV) transmit power through modular multi-level converter-based high-voltage direct current (MMC-HVDC) systems, a linearized mathematical model of the system is developed. An improved virtual synchronous control strategy is proposed. Using the eigenvalue analysis method, the study reveals that, under power disturbances, several factors-including the active and reactive control links, virtual inductance, MMC-HVDC bridge arm inductance, and current vector control loop-significantly affect the damping and frequency characteristics of SSO in the VSG-PV system. These findings are validated through simulation on the PSCAD/EMTDC platform. Results show that the integration of the VSG function introduces a sub-synchronous oscillation mode in which both the photovoltaic VSG and MMC-HVDC participate during power disturbances in the outgoing system. On the VSG side, an excessively large active frequency modulation coefficient Kf or a too-small virtual inductance Lv can lead to system instability; on the MMC-HVDC side, increasing the integral coefficient of the voltage loop Ki4 may induce system instability, whereas increasing the bridge arm inductance Lg enhances system stability.

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刘国庆,李彦哲,刘源涛,王颖.光伏虚拟同步发电机经高压直流输电送出系统稳定性研究[J].重庆大学学报,2025,48(9):21~36

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History
  • Received:September 26,2023
  • Revised:
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  • Online: October 13,2025
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