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Controller Design of DFIG Based Wind Turbine by Using Evolutionary Soft Computational Techniques

机译:基于DFIG的风力发电机的进化软计算控制器设计。

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This manuscript illustrates the controller design for a doubly fed induction generator based variable speed wind turbine by using a bioinspired scheme. This methodology is based on exploiting two proficient swarm intelligence based evolutionary soft computational procedures. The particle swarm optimization (PSO) and bacterial foraging optimization (BFO) techniques are employed to design the controller intended for small damping plant of the DFIG. Wind energy overview and DFIG operating principle along with the equivalent circuit model is adequately discussed in this paper. The controller design for DFIG based WECS using PSO and BFO are described comparatively in detail. The responses of the DFIG system regarding terminal voltage, current, active-reactive power, and DC-Link voltage have slightly improved with the evolutionary soft computational procedure. Lastly, the obtained output is equated with a standard technique for performance improvement of DFIG based wind energy conversion system.
机译:该手稿通过生物启发方案说明了基于双馈感应发电机的变速风力发电机的控制器设计。这种方法是基于开发两个基于群智能的进化软计算程序。粒子群优化(PSO)和细菌觅食优化(BFO)技术用于设计用于DFIG小型阻尼装置的控制器。本文充分讨论了风能概述和DFIG的工作原理以及等效电路模型。比较详细地描述了使用PSO和BFO的基于DFIG的WECS的控制器设计。随着进化的软计算过程,DFIG系统在端子电压,电流,有功-无功功率和直流母线电压方面的响应已略有改善。最后,获得的输出等于用于提高基于DFIG的风能转换系统性能的标准技术。

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