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Publishing Language: Chinese | Open Access

A surplus power absorption strategy in MMC-MTDC systems based on master-slave energy control

Luo WANG1Ning WANG1Qianmao ZHANG1Liangdong QIN1Jianpo ZHANG2Yunrui WU2
Economic Research Institute of State Grid Hebei Electric Power Co., Ltd., Shijiazhuang 050022, China
Department of Electrical Engineering, North China Electric Power University, Baoding 071003, China
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Abstract

Modular multilevel converter based multi-terminal direct current (MMC-MTDC) systems rely on energy-dissipating devices to handle surplus power caused by AC-side faults at the receiving-end, which suffers from poor economic efficiency and significant energy waste. To fully exploit the inherent surplus power absorption capability of MMC-MTDC systems and reduce dependence on energy-dissipating devices. A master-slave energy coordination strategy is proposed for interactive power absorption among multiple converter stations. Firstly, an MMC-MTDC control model is established, and the feasibility of surplus power absorption through energy-based control is analyzed. Subsequently, a three-dimensional energy model of the MMC is introduced to achieve decoupled energy control for each pole of the converter stations. Based on a simplified MMC-MTDC system model, active energy control schemes are designed for different types of converter stations. Furthermore, inspired by the master-slave control concept, a timing-based energy coordination logic is developed to address various AC-side fault scenarios at different receiving-end stations and two categories of surplus power levels, thereby enabling coordinated utilization of available energy margins across multiple converter stations. Finally, a MMC-MTDC system is implemented in PSCAD/EMTDC for simulation validation. Results demonstrate that the proposed strategy effectively coordinates multiple converter stations energy control without requiring energy-dissipating devices. The strategy can adapt to diverse surplus power conditions and successfully achieve fault ride-through.

CLC number: TM73 Document code: A

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Electric Power Engineering Technology
Pages 93-105

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Cite this article:
WANG L, WANG N, ZHANG Q, et al. A surplus power absorption strategy in MMC-MTDC systems based on master-slave energy control. Electric Power Engineering Technology, 2026, 45(1): 93-105. https://doi.org/10.12158/j.2096-3203.2026.01.009

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Received: 25 May 2025
Revised: 09 August 2025
Published: 30 January 2026
© After publication of the article, the authors shall own the right of signature. 2026.

The authors can use or share the published article under the Attribution-Non Commercial 4.0 International (CC BY-NC 4.0) license.