基于功率衰减周期评估的风力涡轮发电机快速频率响应自适应惯性控制

IF 8.6 1区 工程技术 Q1 ENERGY & FUELS IEEE Transactions on Sustainable Energy Pub Date : 2024-09-11 DOI:10.1109/TSTE.2024.3459729
Mahdi Heidari;Lei Ding;Mostafa Kheshti;Xiaowei Zhao;Vladimir Terzija
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引用次数: 0

摘要

风力发电机组的快速频率响应是通过向电网注入增量功率然后减小功率来避免过减速并确保转子转速恢复的安全性。二次频率深度(SFDs)是这种功率降低的结果,在突然频率瞬变期间具有挑战性,可能导致低频负载脱落,或导致停电的级联事件。为了解决这一问题,本文提出了一种用于wtg的自适应惯性控制(AIC)方案,旨在最大限度地提高频率最低点而不引起SFD。该方法是通过评估wtg在快速频率响应时的功耗降低周期而发展起来的。本分析研究了a) wtg注入不同份额的扰动大小(sods)和b)功率注入的延迟/延迟对系统频率的影响。根据这一分析,提出了AIC在生产过剩期间注入最大可能的SoDS,并在SFDs禁用的情况下,在指定的最优功率降低期间成功稳定和恢复转子转速。这是通过根据wtg在生产过剩阶段注入的SoDS自适应调整减产期的AIC来实现的。此外,对AIC进行了修改以适应风速偏差。为了评估AIC的性能,将AIC与现有的13种惯性控制方案和最大功率点跟踪控制进行了比较,并在各种情况下使用Digsilent PowerFactory中的风力集成IEEE 39总线系统和实时实验测试进行了全面验证。结果证实了AIC在不产生SFD的情况下实现频率最低点最大改善方面的有效性。
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Adaptive Inertial Control for Wind Turbine Generators in Fast Frequency Response Based on the Power Reduction Period Assessment
Fast frequency response of wind turbine generators (WTGs) is achieved by injecting incremental power to the grid followed by power reductions to avoid over-deceleration and ensure secure rotor speed recovery. Second frequency deeps (SFDs) are the results of such power reductions that are challenging during abrupt frequency transients that may lead to under-frequency load shedding, or cascading events leading to blackouts. To address this issue, this paper presents an adaptive inertial control (AIC) scheme for WTGs designed to maximize the improvement in frequency nadir without causing SFD. The proposed method is developed through an assessment of power reduction period of WTGs during fast frequency response. This analysis investigates the impacts on the system frequency of a) injecting different shares of disturbance size (SoDSs) by WTGs and b) latency/delay in power injection. Derived from this analysis, the AIC is proposed to inject the maximum possible SoDS during the over-production period and successfully stabilize and recover the rotor speed during the assigned optimal power reduction period with SFDs disabled. This is achieved by adaptively adjusting the AIC in the reduction period based on the SoDS injected by WTGs during the over-production stage. Also, the AIC is modified to adapt against wind speed deviations. To evaluate the performance of the AIC, a comprehensive verification is carried out by comparing AIC with thirteen existing inertial control schemes and maximum power point tracking control in various cases using wind-integrated IEEE 39-bus system in Digsilent PowerFactory and real-time experimental tests. The results confirm the effectiveness of AIC in terms of achieving maximum improvement in frequency nadir without generating SFD.
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来源期刊
IEEE Transactions on Sustainable Energy
IEEE Transactions on Sustainable Energy ENERGY & FUELS-ENGINEERING, ELECTRICAL & ELECTRONIC
CiteScore
21.40
自引率
5.70%
发文量
215
审稿时长
5 months
期刊介绍: The IEEE Transactions on Sustainable Energy serves as a pivotal platform for sharing groundbreaking research findings on sustainable energy systems, with a focus on their seamless integration into power transmission and/or distribution grids. The journal showcases original research spanning the design, implementation, grid-integration, and control of sustainable energy technologies and systems. Additionally, the Transactions warmly welcomes manuscripts addressing the design, implementation, and evaluation of power systems influenced by sustainable energy systems and devices.
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