A Virtual Resistance-Capacitance Control Strategy for Mitigating Consecutive Commutation Failures in Weak Receiving-End HVDC Systems

In view of the high susceptibility of weak receiving-end High-Voltage Direct Current (HVDC) systems to consecutive commutation failures during AC faults on the inverter side, a novel virtual resistance-capacitance control strategy is proposed. This strategy is designed to suppress the occurrence of consecutive commutation failures and enhance the stability of weak receiving-end HVDC systems. Incorporating the Voltage Dependent Current Order Limit (VDCOL), this paper analyzes how virtual resistance and capacitance regulate the DC current command by exploiting their respective current-limiting and voltage-stabilizing attributes. A novel VRC-based strategy is then developed to mitigate consecutive commutation failures, complemented by the derivation of the governing equation for the DC current reference value. Subsequently, the analytical formulas for calculating the virtual parameters within the proposed control strategy are derived. Furthermore, the optimal values for the virtual resistance and virtual capacitance are determined to achieve the best suppression performance against commutation failures. Finally, a weak receiving-end LCC-HVDC system model is constructed in the PSCAD/EMTDC environment. The simulation results verify that the proposed virtual resistance-capacitance control strategy effectively suppresses consecutive commutation failures during AC system faults on the inverter side.

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Publication Details

Journal
Energies
Published
2026-10-07
DOI
https://doi.org/10.3390/en19194715
Primary Topic
HVDC Systems and Fault Protection
Type
article
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article

A Virtual Resistance-Capacitance Control Strategy for Mitigating Consecutive Commutation Failures in Weak Receiving-End HVDC Systems

Wei Liu, Mingliang Yang, Shihao Yin, Shixian Hui et al.
Energies
HVDC Systems and Fault Protection
article

A Virtual Resistance-Capacitance Control Strategy for Mitigating Consecutive Commutation Failures in Weak Receiving-End HVDC Systems

Wei Liu, Mingliang Yang, Shihao Yin, Shixian Hui, Guangtao Feng, Bin Zhang, Xiaowei Deng
article en

Abstract

In view of the high susceptibility of weak receiving-end High-Voltage Direct Current (HVDC) systems to consecutive commutation failures during AC faults on the inverter side, a novel virtual resistance-capacitance control strategy is proposed. This strategy is designed to suppress the occurrence of consecutive commutation failures and enhance the stability of weak receiving-end HVDC systems. Incorporating the Voltage Dependent Current Order Limit (VDCOL), this paper analyzes how virtual resistance and capacitance regulate the DC current command by exploiting their respective current-limiting and voltage-stabilizing attributes. A novel VRC-based strategy is then developed to mitigate consecutive commutation failures, complemented by the derivation of the governing equation for the DC current reference value. Subsequently, the analytical formulas for calculating the virtual parameters within the proposed control strategy are derived. Furthermore, the optimal values for the virtual resistance and virtual capacitance are determined to achieve the best suppression performance against commutation failures. Finally, a weak receiving-end LCC-HVDC system model is constructed in the PSCAD/EMTDC environment. The simulation results verify that the proposed virtual resistance-capacitance control strategy effectively suppresses consecutive commutation failures during AC system faults on the inverter side.

EnergiesVol. 19(19)
Yunnan Power Grid Co., Ltd. (China) (CN), Southwest Jiaotong University (CN)
Openalex Percentile: Top 22%
HVDC Systems and Fault Protection
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A Virtual Resistance-Capacitance Control Strategy for Mitigating Consecutive Commutation Failures in Weak Receiving-End HVDC Systems — Wei Liu, Mingliang Yang, et al. · Energies (2026) | TGRS Research Map | TGRS