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基于管状模型的线性参数变化风能转换系统预测控制
Tube-Based Linear Parameter-Varying Model Predictive Control for Wind Energy Conversion Systems
| 作者 | Isah A. Jimoh · Taimur Zaman · Mazheruddin Syed · Hong Yue · Graeme Burt · Mohamed Shawky El Moursi |
| 期刊 | IEEE Transactions on Sustainable Energy |
| 出版日期 | 2024年12月 |
| 技术分类 | 风电变流技术 |
| 技术标签 | 储能系统 模型预测控制MPC |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 风力发电系统 双馈感应发电机 线性参数时变模型预测控制 功率提取 鲁棒性能 |
语言:
中文摘要
风能转换系统的最大功率提取与并网传输依赖于高性能控制系统。本文提出一种鲁棒的管状线性参数变化模型预测控制器(TLPVMPC),用于双馈感应发电机(DFIG)系统的转速及定子有功与无功功率控制。将风机与DFIG建模为单一LPV系统,并转化为等效线性时不变(LTI)系统,避免预测矩阵的在线更新。基于LTI表示,设计包含约束收紧的跟踪型名义MPC与扰动补偿控制器的TLPVMPC,结合卡尔曼滤波估计扰动上界以降低保守性。仿真对比滑模控制、LPVMPC与NMPC方法,在模型不确定性及DFIG电压部分故障下,所提方法在功率提取与机械应力抑制方面表现出更强鲁棒性。
English Abstract
Maximum power extraction and transfer from wind energy conversion systems (WECS) to the power grid depends on a high-performance control system. This paper proposes a robust tube-based linear parameter-varying (LPV) model predictive controller (MPC) for rotor speed and stator's active and reactive power control of a Doubly-Fed Induction Generator (DFIG) based WECS. The turbine dynamics and the DFIG is modeled as a single LPV system, which enables the model transformation into an equivalent linear time-invariant (LTI) system to avoid online updates of the prediction matrix. Based on the LTI representation, a tube-based LPV MPC (TLPVMPC) is developed, consisting of a tracking nominal MPC with tightened constraint sets and a disturbance controller. In the proposed method, the disturbance upper bound is estimated by Kalman filtering, which provides less conservative performance. The proposed controller is compared to sliding mode control (SMC), LPVMPC and nonlinear MPC (NMPC) methods. Simulations are conducted under model uncertainties and partial faults in the DFIG control voltages. The results show the robust performance of the proposed controller in power extraction and reduction of mechanical stress build-up compared to the other control methods.
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SunView 深度解读
该文提出的TLPVMPC控制方法对阳光电源的储能变流与风电并网产品具有重要参考价值。其鲁棒控制策略可优化ST系列储能变流器的并网性能,特别是在电网扰动工况下的功率调节能力。LPV建模与扰动补偿技术可用于改进PowerTitan大型储能系统的电网支撑功能,提升系统在弱电网条件下的稳定性。文中提出的约束收紧方法也可应用于SG系列逆变器的MPPT控制优化,降低功率波动。该研究对提升阳光电源产品在复杂电网环境下的控制性能具有创新启发,有助于增强公司在储能与风电领域的技术竞争力。