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首页> 外文期刊>Control Systems Technology, IEEE Transactions on >Multivariable Self-Tuning Feedback Linearization Controller for Power Oscillation Damping
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Multivariable Self-Tuning Feedback Linearization Controller for Power Oscillation Damping

机译:功率振荡阻尼的多变量自整定反馈线性化控制器

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摘要

The objective of this brief is to design a measurement-based self-tuning controller, which does not rely on accurate models and deals with nonlinearities in system response. A special form of neural network (NN) model called feedback linearizable NN (FLNN) compatible with feedback linearization technique is proposed for representation of nonlinear power systems behavior. Levenberg–Marquardt (LM) is applied in batch mode to improve the model estimation. A time-varying feedback linearization controller (FBLC) is employed in conjunction with the FLNN–LM estimator to generate the control signal. Validation of the performance of proposed algorithm is done through the modeling and simulating both normal and heavy loading of transmission lines, when the nonlinearities are pronounced. Case studies on a large-scale 16-machine five-area power system are reported for different power flow scenarios, to prove the superiority of proposed scheme against a conventional model-based controller. A coefficient vector $Lambda$ for FBLC is derived and used online at each time instant, to enhance the damping performance of controller.
机译:本简介的目的是设计一种基于测量的自调整控制器,该控制器不依赖于精确的模型,而是处理系统响应中的非线性问题。提出了一种与反馈线性化技术兼容的称为反馈线性化神经网络(FLNN)的特殊形式的神经网络(NN)模型,用于表示非线性电力系统的行为。 Levenberg–Marquardt(LM)以批处理模式应用,以改进模型估计。时变反馈线性化控制器(FBLC)与FLNN-LM估计器结合使用以生成控制信号。当非线性明显时,通过对传输线的正常负载和重负载进行建模和仿真,可以验证所提出算法的性能。报告了针对不同潮流情况的大型16机五区域电力系统的案例研究,以证明所提出的方案优于传统的基于模型的控制器。导出FBLC的系数矢量$ Lambda $,并在每个时刻在线使用它,以增强控制器的阻尼性能。

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