Vulnerability assessment of high-voltage direct current transmission systems to cyberattacksOACSCD
High-voltage direct current(HVDC) transmission systems demonstrate significant advantages in long-distance and high-capacity power transmission. Voltage-source converter-based HVDC(VSC-HVDC), with its flexible power flow control and independent active/reactive power regulation capabilities, has been increasingly adopted in large-scale transmission projects. However, the stable operation of HVDC systems relies heavily on reliable communication and control systems, making their cybersecurity vulnerabilities a critical concern. This study focuses on the cyberattacks targeting two-terminal VSC-HVDC systems. We systematically analyze the control architecture and identify vulnerable attack points, and then conduct experimental attacks including denial-of-service(Do S), time-delay,false data injection(FDI), and hybrid attacks, targeting these vulnerable nodes. To enhance the experimental authenticity, the real-time simulation experiments were performed on the OPAL-RT OP5707 XG platform. The experiments involved both individual and simultaneous cyberattacks on the two converter stations, yielding a series of attack-induced effects.The results demonstrate that cyberattacks can induce severe consequences including DC over-voltage, power transmission failure, and system oscillations, all of which pose substantial threats to grid security and stable operation. These findings highlight the urgent need for further cybersecurity enhancement in HVDC control systems.
Rong Guo;Mengxiang Liu;Ruilong Deng
State Key Laboratory of Industrial Control Technology and College of Control Science and Engineering,Zhejiang University,Hangzhou 310027,ChinaState Key Laboratory of Industrial Control Technology and College of Control Science and Engineering,Zhejiang University,Hangzhou 310027,China School of Electrical and Electronic Engineering,University of Sheffield,Sheffield S102TN,United KingdomState Key Laboratory of Industrial Control Technology and College of Control Science and Engineering,Zhejiang University,Hangzhou 310027,China
信息技术与安全科学
CyberattackHigh-voltage direct currentVoltage-source converterVulnerability assessment
《Security and Safety》 2025 (4)
P.22-42,21
supported in part by the National Natural Science Foundation of China under Grant 62293503,62293500,62293502in part by the Natural Science Foundation of Zhejiang Province under Grant LR23F030001in part by the Frontier Technologies R&D Program of Jiangsu under Grant BF2024065in part by the State Key Laboratory of Industrial Control Technology under Grant ICT2024A13,ICT2025C04in part by the Xiaomi Foundationin part by the Fundamental Research Funds for the Central Universities 226-2025-00165
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