集成了海上风电场的高压直流输电系统中的多介质直流惯性支持方案

IF 3.8 2区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Power Delivery Pub Date : 2024-09-25 DOI:10.1109/TPWRD.2024.3467379
Biyadgie Ayalew;Mohamed Shawky El Moursi;Ahmed Al-Durra;Ehab F. El-Saadany
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引用次数: 0

摘要

本文介绍了基于 HVDC 系统的 MMC 直流惯性支持方案,用于集成海上风电场。所提出的机制有两条能量缓冲路径:通过能量控制器和零序环流(ZSCC)控制器。第一条路径用于在海上风电场内发生交流干扰时支持直流系统。为此,能量控制器的增益根据直流电压偏差和交流功率变化进行在线调整。另一方面,第二条路径的功能是在 HVDC 系统另一侧交流系统发生干扰时,使 MMC 参与支持直流系统。为此,通过虚拟电容器放大直流电压的时间导数来修改 ZSCC 基准。此外,在提供直流惯性支持时,能量偏差被控制在规定范围内。而且,偏差仅出现在瞬态阶段。根据在 MATLAB/SIMULINK 中开发的非线性模型进行模拟分析,验证了所提方案的有效性。
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DC Inertia Support Scheme for MMCs in HVDC Transmission System Integrating Offshore Wind Farm
This paper presents dc inertia support scheme for MMCs used for integrating offshore wind farm based on HVDC system. The proposed mechanism has two energy buffering paths: through the energy controller and the zero sequence circulating current (ZSCC) controller. The first path is used to support the dc system when ac disturbances happen inside the offshore wind farm. For this purpose, the gains of the energy controller are tuned online based on the dc voltage deviation and the ac power change. On the other hand, the function of the second path is to make the MMC engage in the supporting the dc system when disturbance occurs in ac system of other side of the HVDC system. To achieve this, the ZSCC reference is modified by the time derivative of the dc voltage amplified by a virtual capacitor. Furthermore, in the provision of dc inertia support, the energy deviation is contained within the defined range. Also, the deviation is at the transient stage only. The effectiveness of the proposed scheme has been verified using simulation analysis based on the nonlinear model developed in MATLAB/SIMULINK.
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来源期刊
IEEE Transactions on Power Delivery
IEEE Transactions on Power Delivery 工程技术-工程:电子与电气
CiteScore
9.00
自引率
13.60%
发文量
513
审稿时长
6 months
期刊介绍: The scope of the Society embraces planning, research, development, design, application, construction, installation and operation of apparatus, equipment, structures, materials and systems for the safe, reliable and economic generation, transmission, distribution, conversion, measurement and control of electric energy. It includes the developing of engineering standards, the providing of information and instruction to the public and to legislators, as well as technical scientific, literary, educational and other activities that contribute to the electric power discipline or utilize the techniques or products within this discipline.
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