Mahdi Hermassi, Saber Krim, Y. Krim, Mohamed Ali Hajjaji, A. Mtibaa, M. Mimouni
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Indeed, the FPGA technology has great advantages like the programmable wired function, the fast computing capability, the shorter design cycle, the integrated processor, the low power consumption and the higher density. The studied system is composed of a wind turbine, a permanent magnet synchronous generator, and two converters (a rectifier and an inverter) linked by a DC bus. The system is connected to the grid through a resistor–inductor filter. The proposed control strategy performances are evaluated by digital simulation utilizing an Xilinx System Generator (XSG) toolbox that guaranties rapid and efficient prototyping of the implemented architecture on the FPGA device. In fact, the hardware architectures of the rectifier vector control and the inverter vector control are designed using the XSG tool. 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引用次数: 1
摘要
本文提出了一种Xilinx Zynq-FPGA(现场可编程门阵列),用于并网变速风能转换系统矢量控制策略的实时硬件实现。为了克服风力发电机控制算法顺序处理带来的重要计算时间和控制环路延迟问题,提出了一种Xilinx Zynq-FPGA,该fpga具有并行处理的特点。实际上,Xilinx Zynq-FPGA的特点是具有并行计算的硬件架构。的确,FPGA技术具有可编程有线功能、快速计算能力、设计周期短、集成处理器、低功耗和高密度等优点。所研究的系统由一个风力发电机、一个永磁同步发电机和两个变流器(一个整流器和一个逆变器)组成,通过直流母线连接。该系统通过一个电阻-电感滤波器与电网相连。利用Xilinx System Generator (XSG)工具箱对所提出的控制策略性能进行了数字仿真评估,以保证在FPGA器件上快速高效地实现所实现架构的原型。实际上,整流矢量控制和逆变矢量控制的硬件架构都是使用XSG工具设计的。实验结果表明,XSG仿真在跟踪和精度方面具有较好的效果。
Xilinx-FPGA for Real-Time Implementation of Vector Control Strategies for a Grid-Connected Variable-Speed Wind Energy Conversion System
This paper proposes a Xilinx Zynq-FPGA (Field Programmable Gate Array) for real time hardware implementation of a vector control strategy for a grid-connected variable-speed wind energy conversion system. In order to overcome the problem of important computation time and the control loop delay due to the sequential processing of the control algorithm for wind generator, a Xilinx Zynq-FPGA is proposed as an alternative solution, thanks to its parallel processing. In fact, the Xilinx Zynq-FPGA is characterized by a hardware architecture with parallel computation. Indeed, the FPGA technology has great advantages like the programmable wired function, the fast computing capability, the shorter design cycle, the integrated processor, the low power consumption and the higher density. The studied system is composed of a wind turbine, a permanent magnet synchronous generator, and two converters (a rectifier and an inverter) linked by a DC bus. The system is connected to the grid through a resistor–inductor filter. The proposed control strategy performances are evaluated by digital simulation utilizing an Xilinx System Generator (XSG) toolbox that guaranties rapid and efficient prototyping of the implemented architecture on the FPGA device. In fact, the hardware architectures of the rectifier vector control and the inverter vector control are designed using the XSG tool. The obtained results demonstrate that the XSG simulation offers better results in terms of tracking and accuracy.