基于双馈感应发电机(DFIG)的风能转换系统(WECS)高鲁棒非线性最优控制

Q3 Computer Science
Toufik Mebkhouta, Amar Golea, Rabia Boumaraf, Toufik Mohamed Benchouia, Djaloul Karboua
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引用次数: 0

摘要

为了提高双馈感应发电机(DFIG)的风能产量,本文提出了双馈感应发电机转速控制(MPPT)和定子有功、无功功率控制的功率最大化建模方法。基于DFIG的风能转换系统的发电质量和性能受到不确定性和外界干扰的影响。因此,系统需要在非线性影响和外界干扰下的高性能控制。本研究为非线性控制(反演)和最优控制(LQR)的结合提供了一种新的贡献和方法。利用非线性策略和稳定性条件,反演控制得到了较好的控制效果,但其主要缺点是对风速的突然变化或任何外部干扰具有较强的鲁棒性,并且对不确定性敏感,不确定性可能导致抖振和不稳定以及超调或欠调。为了克服上述问题,最优控制(LQR)被用于解决非线性控制中的这一缺陷。此外,反演和LQR控制的混合方法可以在风系统运行过程中最困难的情况下实现鲁棒控制,并在抖振、稳定性和其他性能特征方面提供良好的性能,有助于产生高质量的能量。总的来说,将LQR控制与Backstepping集成可以产生更强大、更灵活、更高效的控制系统,同时提高了性能并降低了计算复杂度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A High Robust Optimal Nonlinear Control with MPPT Speed for Wind Energy Conversion System (WECS) Based on Doubly Fed Induction Generator (DFIG)
As part of efforts to improve wind energy production using a doubly fed induction generator (DFIG), this paper presents modeling with power maximization through control of speed (MPPT) and control of stator active and reactive power for doubly fed induction generator. The quality of the generated energy and the performance of wind energy conversion systems (WECS) based on DFIG are affected by uncertainties and external disturbances. Therefore, the system requires high-performance control under the nonlinearity influence and the applied external disturbances. This work provides a new contribution and approach that combines nonlinear control (Backstepping) and optimal control (LQR). Backstepping control has been applied to give a good performance using nonlinear strategy and stability condition, but its main drawback is that it is relatively robust for sudden changes in wind speed or any external disturbances as well as it is sensitive against the uncertainties, which may lead to a chattering and an instability as well as overshoot or undershoot. To overcome the problems mentioned above the optimal control (LQR) has been applied to address this drawback in nonlinear control. Furthermore, it, the hybrid approach of Backstepping and LQR control resulting a robust control under the hardest scenarios during the wind system operating as well as provides a good performance in terms of chattering, stability and other performance characteristics which help to produce a high-quality energy. Overall, integrating LQR control with Backstepping can lead to a more powerful, flexible, and efficient control system with improved performance and reduced computational complexity.
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来源期刊
Periodica polytechnica Electrical engineering and computer science
Periodica polytechnica Electrical engineering and computer science Engineering-Electrical and Electronic Engineering
CiteScore
2.60
自引率
0.00%
发文量
36
期刊介绍: The main scope of the journal is to publish original research articles in the wide field of electrical engineering and informatics fitting into one of the following five Sections of the Journal: (i) Communication systems, networks and technology, (ii) Computer science and information theory, (iii) Control, signal processing and signal analysis, medical applications, (iv) Components, Microelectronics and Material Sciences, (v) Power engineering and mechatronics, (vi) Mobile Software, Internet of Things and Wearable Devices, (vii) Solid-state lighting and (viii) Vehicular Technology (land, airborne, and maritime mobile services; automotive, radar systems; antennas and radio wave propagation).
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