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Development of optimal controllers for a DFIG based wind farm in a smart grid under variable wind speed conditions

机译:在可变风速条件下,为智能电网中基于DFIG的风电场开发最佳控制器

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Variations in wind speed cause different transient responses in a Doubly Fed Induction Generator (DFIG)-based wind farm. Transients during grid disturbances, depending on controller parameters, can lead to a system collapse, especially when significant fluctuations exist in wind speed despite the presence of SmartParks (energy storage). When a fault is introduced, the variable frequency converter (VFC) is the most susceptible part in a DFIG. The VFC is controlled by a set of Proportional Integral (PI) controllers. Parameters of PI controllers are very difficult to tune using traditional methods due to nonlinearity in DFIGs and the increasing complexity of smart grids. This paper presents an implementation of a new efficient heuristic approach, the Mean Variance Optimization (MVO) algorithm, on a digital signal processor, for online tuning of PI controllers on the rotor-side converter of a DFIG. With the MVO-optimized PI controllers on the wind farm, the entire smart grid remains stable under grid disturbances for a wide range of wind speeds. The results demonstrate that intelligent controller tuning is critical for optimal operation of DFIG-based wind farms in a smart grid despite the presence of energy storage.
机译:在基于双馈感应发电机(DFIG)的风电场中,风速的变化会导致不同的瞬态响应。电网干扰期间的瞬变,取决于控制器参数,可能导致系统崩溃,尤其是尽管存在SmartParks(储能),但风速存在明显波动时,尤其如此。引入故障后,变频器(VFC)是DFIG中最易受影响的部分。 VFC由一组比例积分(PI)控制器控制。由于DFIG中的非线性和智能电网的复杂性,使用传统方法很难调节PI控制器的参数。本文介绍了一种新的高效启发式方法的实现,该方法是一种数字信号处理器上的均方差优化(MVO)算法,用于在线调节DFIG转子侧转换器上的PI控制器。借助风电场中经过MVO优化的PI控制器,整个智能电网在各种风速的电网干扰下都保持稳定。结果表明,尽管存在能量存储,但智能控制器调整对于智能电网中基于DFIG的风电场的最佳运行至关重要。

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