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考虑LCC-HVDC与新能源电站动态交互的暂态过电压分析与抑制
Analysis and Suppression for Temporary Overvoltage Considering Dynamic Interactions Between LCC-HVDC and Renewable Energy Plants
| 作者 | Xinyu Liu · Jierui Huang · Di Zheng · Huanhai Xin · Tianshu Bi |
| 期刊 | IEEE Transactions on Sustainable Energy |
| 出版日期 | 2025年2月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 暂态过电压 可再生能源 换相失败 控制参数优化 过电压抑制 |
语言:
中文摘要
暂态过电压(TOV)严重制约可再生能源电力的输送与利用,尤其在采用电网换相换流器高压直流(LCC-HVDC)系统送电时。本文通过划分系统暂态过程阶段,揭示换相失败期间送端系统的TOV机理,并量化重复换相失败下交流电压与直流电流的演化特性。进一步分析新能源电站与LCC-HVDC控制参数对TOV的影响,提出参数协同优化方法以抑制过电压;当系统趋于闭锁时,确定最优闭锁时机以降低闭锁引发的TOV。基于典型算例的电磁暂态仿真验证了所提方法的准确性与有效性。
English Abstract
Temporary overvoltage (TOV) severely restricts the development and utilization of renewable power resources (RPRs), especially when RPRs are delivered through the line commutated converter-based high voltage direct current (LCC-HVDC) system. To reveal the TOV mechanism for the sending system during commutation failures (CFs), the transient process of the system is partitioned into different stages, where the evolution of the system trajectories is analyzed. On this basis, the variation of AC voltage and DC current considering complex dynamic interactions between LCC-HVDC and renewable energy Plants (REPs) during repetitive CFs (RCFs) is clearly quantified. After revealing the impact of control parameters of both REPs and the LCC-HVDC on the TOV during RCFs, a collaborative optimization method for control parameters is proposed for TOV suppression. Moreover, when the blocking after the RCF tends to be inevitable, the optimal blocking moment is determined to inhibit the TOV caused by HVDC blocking. The accuracy and effectiveness of the proposed methods are verified with EMT simulations of a typical benchmark system.
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SunView 深度解读
该研究对阳光电源大规模新能源并网系统具有重要应用价值。针对LCC-HVDC换相失败引发的暂态过电压问题,可直接应用于PowerTitan储能系统和SG系列光伏逆变器的控制策略优化。研究提出的参数协同优化方法为阳光电源构网型GFM控制技术提供理论支撑,通过优化储能变流器的电压/无功控制参数与HVDC系统协同配合,可有效抑制换相失败期间的过电压冲击,提升设备安全裕度。最优闭锁时机判定方法可集成至iSolarCloud智能运维平台,实现故障预判与主动保护,降低大型新能源基地送出系统的TOV风险,增强阳光电源产品在特高压直流送端场景的适应性与竞争力。