Hardware FPGA implementation of an intelligent vector control technique of three-phase rectifier for wind turbine connected to the grid

Mahdi Hermassi, Saber Krim, Y. Krim, Mohamed Ali Hajjaji, A. Mtibaa, M. Mimouni
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Abstract

In this work, a comprehensive study of various wind energy conversion system control methodologies is proposed more precisely a comparative study of an intelligent vector control technique of a three-phase rectifier for a wind turbine linked to the grid. Its goal is to ensure a stable control technique that performs well in the face of external perturbations. The system under consideration consists of two converters connected by the DC bus, a permanent magnet synchronous generator, and a wind turbine. A resistor–inductor filter connects the system to the grid. In our system, we use a vector control strategy which is generally based on a proportional–integral controller. However, because of the control sensitivity to external disturbances and parameter modifications, a control method based on a Fuzzy Logic-Control (FLC) mode has been developed. Such a technique provides high performances, like the insensitivity to system non-linearity. Indeed, this study emphasizes the significance of implementing the proposed FLC utilizing the Field-Programmable Gate Array (FPGA). Because of obvious parallelism provided by the FPGA, the fundamental advantage of the FPGA implementation is the growth of the control loop latency. This suggested control algorithm’s performance is investigated utilizing digital simulation through the use of a Xilinx System Generator (XSG) tool, in addition to the implementation with a Zynq-FPGA. In reality, the XSG tool is used to design the hardware structures of the rectifier vector control. The collected results demonstrate that FLC simulation provides superior tracking and precision.
并网风电机组三相整流器智能矢量控制技术的硬件FPGA实现
在这项工作中,对各种风能转换系统控制方法进行了全面研究,更精确地对连接到电网的风力涡轮机的三相整流器的智能矢量控制技术进行了比较研究。它的目标是确保一种稳定的控制技术,在面对外部扰动时表现良好。所考虑的系统由两个由直流母线连接的变流器、一个永磁同步发电机和一个风力涡轮机组成。一个电阻-电感滤波器将系统与电网连接起来。在我们的系统中,我们使用矢量控制策略,该策略通常基于比例积分控制器。然而,由于控制对外部干扰和参数修改的敏感性,提出了一种基于模糊逻辑控制(FLC)模式的控制方法。该技术具有对系统非线性不敏感等优点。事实上,这项研究强调了利用现场可编程门阵列(FPGA)实现所提出的FLC的重要性。由于FPGA提供了明显的并行性,FPGA实现的根本优势是控制环路延迟的增长。除了使用Zynq-FPGA实现外,还通过使用Xilinx System Generator (XSG)工具利用数字仿真研究了该建议的控制算法的性能。在实际中,采用XSG工具设计整流器矢量控制的硬件结构。实验结果表明,FLC仿真具有良好的跟踪性能和精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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