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A Genetic Algorithm-Based Low Voltage Ride-Through Control Strategy for Grid Connected Doubly Fed Induction Wind Generators

机译:并网双馈感应风力发电机基于遗传算法的低压穿越控制策略

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摘要

This paper proposes a new computational intel ligence-based control strategy, to enhance the low voltage ride-through capability of grid-connected wind turbines (WTs) with doubly fed induction generators (DFIGs). Grid codes world-wide require that WTs should supply reactive power to the grid during and after the fault, in order to support the grid voltage. The conventional crowbar-based systems that were initially applied in order to protect the rotor-side converter at the occurrence of grid faults, do not fulfill this requirement, as during the connection of the crowbar, the DFIG behaves as a squirrel cage machine, absorbing reactive power from the grid. This drawback led to the design of control systems that eliminate or even avoid the use of the crowbar. In order to conform to the above-mentioned requirement, this paper proposes a coordinated control strategy of the DFIG converters during a grid fault, managing to ride-through the fault without the use of any auxiliary hardware. The coordination of the two controllers is achieved via a fuzzy controller which is properly tuned using genetic algorithms. To validate the proposed control strategy, a case study of a 1.5-MW DFIG supplying a relatively weak electrical system is carried out by simulation.
机译:本文提出了一种基于智能计算的新型控制策略,以提高带有双馈感应发电机(DFIG)的并网风力涡轮机(WT)的低压穿越能力。全世界的电网法规要求WT在故障期间和故障之后向电网提供无功功率,以支持电网电压。最初应用的常规基于撬棍的系统是为了在发生电网故障时保护转子侧变流器,因此无法满足此要求,因为在连接撬棍期间,DFIG表现为鼠笼式机器,吸收了电网的无功功率。这个缺点导致设计了消除甚至避免使用撬棍的控制系统。为了满足上述要求,本文提出了电网故障时DFIG变频器的协调控制策略,无需使用任何辅助硬件就可以克服故障。两个控制器的协调是通过一个模糊控制器实现的,该控制器使用遗传算法进行了适当的调整。为了验证所提出的控制策略,通过仿真对以相对弱的电气系统供电的1.5 MW DFIG进行了案例研究。

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