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| 作者 | Mahzad Gholamian · Omid Beik |
| 期刊 | IEEE Transactions on Industry Applications |
| 出版日期 | 2024年10月 |
| 技术分类 | 风电变流技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 混合发电机 风力发电机 无功功率控制 中压直流电网 双环控制 |
语言:
中文摘要
本文介绍了一种专为风力发电机(WT)转换系统中的混合发电机(HG)量身定制的无功功率控制方法。风力发电机通过多端直流(MTDC)电网中的无源整流级与中压直流(MVDC)集电网络相连。中压直流电网收集风力发电机的电能并将其输送至海上变电站,在那里,直流 - 直流转换器将电压升高,以便传输至定电压高压直流(HVDC)电网。混合发电机具有九相定子绕组,由两个转子组成,即永磁(PM)转子和绕线励磁(WF)转子。两个转子安装在同一轴上并以相同速度旋转。在每个转速下,永磁转子会感应出固定的定子电压,而绕线励磁转子感应的电压可通过控制流入绕线励磁绕组的直流电流进行调节。本文介绍了一种无功功率控制方法,该方法通过双环绕线励磁转子控制实现,能够对混合发电机和风力发电机的无功功率进行有效管理。所提出的控制系统既适用于单台风力发电机,也适用于多端直流电网中的并联风力发电机。解析模型通过仿真结果得到验证,而缩小比例的实验室原型混合发电机的测试结果则验证了仿真的准确性。
English Abstract
This article introduces a reactive power control tailored for a hybrid generator (HG) in a wind turbine (WT) conversion system. The WT is interfaced to a medium-voltage DC (MVDC) collector grid via a passive rectification stage in a multiterminal DC (MTDC) grid. The MVDC grid collects the power from WTs and sends it to an offshore substation, where DC-DC converters step-up the voltage for transmission to a fixed-voltage high-voltage DC (HVDC) grid. The HG has a 9-phase stator winding and comprises of two rotors, a permanent magnet (PM) rotor, and a wound field (WF) rotor. Both rotors are mounted on the same shaft and rotate at the same speed. At each speed the PM rotor induces a fixed stator voltage, while the induced voltage due to WF rotor is adjustable by controlling a DC current into the WF winding. The paper introduces a reactive power control that is implemented through a dual-loop WF rotor control enabling an effective management of the HG and WT reactive power. The proposed control system is developed for individual WTs and for parallel WTs in a MTDC grid. Analytical modelling are verified by simulation results, while test results from a scale-down laboratory prototype HG validate the simulations.
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SunView 深度解读
该研究的无功功率控制策略对阳光电源的储能和风电变流产品具有重要参考价值。特别是其中的多端直流接口控制方法,可应用于ST系列储能变流器和大型储能系统的电网支撑功能优化。通过协调机侧与网侧变流器的控制思路,能够提升阳光电源GFM/GFL控制技术在复杂电网条件下的性能。该技术可用于完善PowerTitan储能系统的无功补偿能力,增强产品在风光储一体化项目中的竞争力。建议在现有VSG控制基础上,融合该文的无功精确调节方法,进一步提高储能变流器的电网适应性。