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基于直驱PMSG风力发电机系统恢复过程中的快速功率调节方法
Fast Power Regulation Method During System Restoration for D-PMSG-Based Wind Turbines
| 作者 | Guohang Huang · Sheng Huang · Juan Wei · Hesong Cui · Lei Liu · Xueting Cheng |
| 期刊 | IEEE Transactions on Sustainable Energy |
| 出版日期 | 2024年9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 | 风力发电机 动能存储 快速功率调节 系统恢复 直驱永磁同步发电机 |
语言:
中文摘要
桨距动作速度是限制风力发电机功率爬坡速率的主要因素之一。通过在风轮、叶片和发电机转子中存储动能,可在减少桨距调节的情况下实现更快的功率调控,适用于 blackout 后系统恢复等需快速注入功率的场景。本文提出一种适用于直驱永磁同步风力发电机(D-PMSG)的新型快速功率调节方法,提前完成耗时的桨距角减小过程,并在外部系统恢复前储备动能,从而在系统恢复初期即实现最大功率输出。分析了D-PMSG风机的可行运行边界及其对外部系统的最大功率支撑能力,避免高动能储备引起的变流器调制问题。该方法可显著提升功率响应速度并最大化输出能力。
English Abstract
The speed of the pitch action is one of the primary constraints that limit the power ramp rate of wind turbines (WTs). By storing kinetic energy (KE) within the wind wheel, blades, and generator rotor, the output power of the WT can be regulated more rapidly with less pitch action. This capability is beneficial in specific situations where additional power injection is required by the external system, such as during the system restoration process after a blackout. In this paper, a novel fast power regulation method for direct-drive PMSG-based (D-PMSG-based) WTs is proposed. This method allows for the early completion of the most time-consuming pitch reduction process and ensures that KE can be stored within the WT before the external system becomes available. As a result, the WT will be able to achieve maximum power output before the system restoration is fully completed. The potential operation boundary and the maximum external power support capability of D-PMSG-based WTs are analyzed. By following the operation boundary, converter modulation problem caused by high KE reserve can be avoided. The proposed fast power regulation method can significantly reduce the power increase speed and maximize the output power capability of D-PMSG-base WTs.
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SunView 深度解读
该快速功率调节技术对阳光电源储能和风电产品线具有重要参考价值。通过动能储备和桨距预调节实现的快速功率响应机制,可应用于ST系列储能变流器的黑启动和系统恢复功能优化。其动能管理思路可借鉴到PowerTitan储能系统的功率调节策略中,提升大规模储能电站的一次调频性能。该方法对变流器功率边界的分析也可用于完善阳光电源风电变流器的过载能力设计。建议在ST2000/3000等大功率储能产品中验证该技术,进一步提升阳光储能产品在电网恢复支撑方面的竞争力。