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风电变流技术 储能系统 ★ 5.0

基于误差的主动抗扰功率控制在大型风力机变桨执行器性能退化故障下的应用

Error-Based Active Disturbance Rejection Power Control for Large-Scale Wind Turbines Under Pitch Actuator Performance Degradation Failure

作者 Ziyang Chen · Tingna Shi · Yanfei Cao · Peng Song
期刊 IEEE Transactions on Sustainable Energy
出版日期 2025年6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 风力发电系统 恒功率控制 容错控制策略 低频风扰动 功率输出稳定性
语言:

中文摘要

针对大型风力发电系统在变桨执行器性能退化与多重干扰耦合作用下恒功率控制的难题,本文提出一种基于误差的主动抗扰容错控制策略(E-ADRC)。该方法采用双环复合控制结构,包含抗扰跟踪环与容错补偿环。改进的E-ADRC算法显著提升了对低频风扰动的抑制能力;容错环利用桨距角残差生成独立补偿信号,有效抑制执行器故障引起的转速跟踪偏差与气动不平衡。硬件在环实验验证了该策略在提升功率稳定性、降低结构疲劳损伤方面的优越性。

English Abstract

This study addresses the critical challenge of constant power control for large-scale wind energy conversion system under the combined effects of pitch actuator degradation and multiple disturbances. In the paper, a novel fault-tolerant control strategy based on error-based active rejection control (E-ADRC) is proposed. The approach incorporates a composite control architecture, comprising a disturbance rejection tracking loop and a fault-tolerant compensation loop. Within the tracking loop, an enhanced E-ADRC algorithm is suggested which not only retains the robustness and ease of implementation of traditional E-ADRC but also significantly improves the attenuation of low-frequency wind disturbances—the turbine’s primary disruption. The fault-tolerant compensation loop applies independent control signals, derived from pitch angle residuals, to each faulty actuator, mitigating the extra fault disturbances in rotor speed tracking dynamics. This dual-loop structure enables the turbine to restore high-stability power output after a fault. Furthermore, the fault-tolerant compensation mechanism ensures that, even in cases of part of the three actuators failure, the previously misaligned pitch angles are synchronized, effectively suppressing the detrimental aerodynamic imbalance and reducing adverse loads. The superiority of this approach in enhancing power output stability and reducing structure fatigue damage have been validated through a refined hardware-in-the-loop test.
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SunView 深度解读

该研究提出的基于误差的主动抗扰控制策略(E-ADRC)对阳光电源的储能与风电产品线具有重要参考价值。首先,E-ADRC的双环复合控制结构可优化ST系列储能变流器的功率稳定性控制,特别是在电网波动工况下的响应特性。其次,该方法在执行器故障容错方面的创新,可应用于PowerTitan大型储能系统的关键部件监测与故障补偿。此外,文中提出的低频扰动抑制技术也可借鉴应用于SG系列逆变器的电网适应性控制。通过引入类似的抗扰跟踪与故障补偿机制,有望提升阳光电源产品在复杂工况下的运行可靠性与控制精度。