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Adaptive neuro-fuzzy controller for static VAR compensator to damp out wind energy conversion system oscillation

机译:静态无功补偿器的自适应神经模糊控制器可抑制风能转换系统的振荡

摘要

Wind shear and tower shadow produce a periodic pulse reduction in mechanical torque captured from wind energy resulting in wind energy conversion system (WECS) active power oscillations. In this study, an adaptive neuro-fuzzy controller for static VAR compensator, used in power networks integrated with WECS, is presented to address the torque oscillation problem. The proposed controller consists of a radial basis function neural network representing a third-order auto-regressive and moving average system model and performing the prediction, and a main controller with adaptive neuro-fuzzy inference system providing the damping signal. A modified two-area four-machine power network with WECS integration is applied to validate the proposed implementation, compared with conventional lead/lag compensation. Time-domain simulations prove that the proposed controller can provide a damping signal to improve the active power oscillation and system dynamic stability, influenced by torque oscillations under WECSs synchronised operating condition.
机译:风切变和塔影使从风能捕获的机械转矩产生周期性的脉冲减小,从而导致风能转换系统(WECS)产生有功功率振荡。在这项研究中,提出了一种用于静态无功补偿器的自适应神经模糊控制器,该控制器用于与WECS集成的电力网络中,以解决转矩振荡问题。拟议的控制器由代表三阶自回归和移动平均系统模型并执行预测的径向基函数神经网络,以及带有自适应神经模糊推理系统的主控制器提供阻尼信号组成。与传统的超前/滞后补偿相比,采用了经过修改的具有WECS集成的两区域四机电网来验证所提出的实施方案。时域仿真证明,所提出的控制器可以提供阻尼信号,以改善有功功率振荡和系统动态稳定性,这受WECS同步运行条件下的转矩振荡影响。

著录项

  • 作者

    Huang H; Chung CY;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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