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基于阻抗特性分析与锁相角前馈的LCC-HVDC送端交流电网稳定性提升
Impedance Characteristic Analysis and Phase-Locked Angle Feedforward-Based Stability Improvement for LCC-HVDC in Sending AC Grid
| 作者 | Haipan Li · Bin Hu · Heng Nian · Yuming Liao · Li Xiong · Zhencheng Liang |
| 期刊 | IEEE Transactions on Sustainable Energy |
| 出版日期 | 2024年10月 |
| 技术分类 | 风电变流技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 风电渗透 次/超同步振荡 LCC - HVDC 阻抗重塑策略 锁相角前馈 |
语言:
中文摘要
随着风电渗透率的提高,送端交流电网中的线换相换流器高压直流输电(LCC-HVDC)系统面临次/超同步振荡(SSSOs)风险,威胁系统稳定。基于阻抗的方法虽有效,但各控制环节对稳定性影响尚不明确,缺乏阻抗重塑的理论指导。本文建立并分析LCC-HVDC的模块化阻抗模型,揭示各控制部分的贡献及交互作用,并提出基于锁相角前馈(PAF)的阻抗重塑策略以削弱交互、提升稳定性。相比虚拟阻抗方法,该方法可避免抑制失效问题。理论与实验结果验证了分析结论及所提策略的有效性。
English Abstract
With the increasing penetration of wind power, the line-commutated converter-based high-voltage direct-current (LCC-HVDC) system in sending AC grid faces a potential risk of sub/super-synchronous oscillations (SSSOs), which threatens the stability of the power system. The impedance-based method is an effective way to analyze and suppress the SSSOs. However, since the effects of each control part in LCC-HVDC on the stability of sending AC grid are not yet well-investigated, there is a lack of theoretical guidance for implementing the impedance reshaping strategy for LCC-HVDC. Therefore, this paper establishes and analyzes the modular impedance model of LCC-HVDC, to elucidate the contribution of each control part and the interaction between different control loops. On this basis, an impedance reshaping strategy based on phase-locked angle feedforward (PAF) is proposed to improve system stability by attenuating the interaction. Compared to the existing virtual impedance-based method, the proposed PAF-based method addresses its possible failure in suppressing the SSSOs of sending AC grid. The theoretical analysis and experimental results validate the aforementioned conclusions and the effectiveness of the proposed impedance reshaping strategy.
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SunView 深度解读
该研究对阳光电源大型储能系统和风电变流器产品线具有重要参考价值。文中提出的基于锁相角前馈(PAF)的阻抗重塑方法,可应用于ST系列储能变流器和大功率风电变流器的控制系统优化,有效提升系统在弱电网条件下的稳定性。特别是对PowerTitan大型储能系统,该方法可以改善其与电网的交互性能,降低次/超同步振荡风险。研究成果可直接指导阳光电源在GFL控制策略和系统阻抗特性设计方面的优化,提升产品在高可再生能源渗透率场景下的适应性。建议将该技术纳入新一代储能变流器和风电变流器的控制算法优化方案中。