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首页> 外文期刊>Chaos, Solitons and Fractals: Applications in Science and Engineering: An Interdisciplinary Journal of Nonlinear Science >Finite-time function projective synchronization control method for chaotic wind power systems
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Finite-time function projective synchronization control method for chaotic wind power systems

机译:混沌风电系统有限时间函数投影同步控制方法

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摘要

Wind power is a rapidly growing renewable energy source that plays an increasingly important role in power systems. However, its dynamic behaviors are complex because of the instability of wind speed, strong coupling, highly nonlinear subsystems, and mass grid connections. Chaotic oscillation is one of the most typical complex dynamic behaviors of wind power systems. This behavior can seriously influence the stable operation of wind power systems and cause great harm. This study proposed a control method for finite-time function projective synchronization on the basis of the chaos synchronization principle and finite-time theory for wind power systems. Wind power systems with or without uncertain parameters were considered. First, we built a high-dimensional wind power system and analyzed its chaotic behaviors. Lyapunov exponents were derived to prove the existence of chaos and bifurcation. Second, we aimed to increase the robustness of the controller by adding parameter observers to the controller. The result helped solve the problem of unknown parameters. If a wind power system comprises unknown parameters, the unknown parameters can be defined as the system's states. An unknown parameter observer was designed to realize the identification of unknown parameters. Third, we proposed a control method for finite-time function projective synchronization. Finite-time stability theory and function projective synchronization theory were used to construct the controller. These theories can ensure the quick synchronization of a chaotic wind power system with a stable wind power system in finite time. Finally, the mathematical proof of the stability theorem was derived, and a corresponding numerical simulation was performed to validate the chaos control method for wind power systems. (C) 2020 Elsevier Ltd. All rights reserved.
机译:风力是一种迅速增长的可再生能源,在动力系统中起着越来越重要的作用。然而,由于风速,强耦合,高度非线性子系统和质量网格连接的不稳定性,其动态行为很复杂。混沌振荡是风电系统最典型的复杂动态行为之一。这种行为可以严重影响风力系统的稳定运行,并造成巨大危害。本研究提出了一种基于混沌同步原理和风电系统有限时间理论的有限时间函数投影同步的控制方法。有或没有参数的风电系统被考虑。首先,我们建立了一项高维风电系统,并分析了其混沌行为。 Lyapunov指数被推导出来证明混乱和分叉的存在。其次,我们旨在通过向控制器添加参数观察者来增加控制器的稳健性。结果有助于解决未知参数的问题。如果风电系统包括未知参数,则可以将未知参数定义为系统状态。设计了一个未知的参数观察者,以实现未知参数的识别。第三,我们提出了一种有限时间函数投影同步的控制方法。有限时间稳定性理论和功能投影同步理论用于构建控制器。这些理论可以确保混沌风电系统在有限时间内具有稳定的风电系统的快速同步。最后,导出稳定定理的数学证据,并进行了相应的数值模拟以验证风电系统的混沌控制方法。 (c)2020 elestvier有限公司保留所有权利。

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