Modeling, simulation and control of grid connected Permanent Magnet Generator (PMG)-based small wind energy conversion system

M. Arifujjaman
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引用次数: 39

Abstract

A small scale wind energy conversion system has tremendous diversity of use and operating conditions, and consequently is evolving rapidly along with the large scale wind energy conversion system for generation of electricity in either stand-alone or grid connected applications. In recent years, the grid connected small wind turbine industry is primarily dominated by the Permanent Magnet Generator (PMG) machines. The power conditioning systems for grid connection of the PMG-based system requires a rectifier, boost converter and a grid-tie inverter. Such system should be based on an appropriate control strategy to control the aerodynamic power during high wind speed, maximum power production, and maximum power flow to the grid at all operating conditions. This paper presents mathematical modeling and control strategy for the grid connected PMG-based small wind turbine systems. Furling control and expected dynamics are adopted with the wind turbine for aerodynamic power control, while the optimum speed of the PMG is followed to ensure maximum power production. A novel controller is derived from the optimum speed information that promise maximum power flow to the grid by controlling the boost converter output voltage and current through the duty cycle. It is found that the proposed modeling and control strategy is feasible and results are verified through simulation.
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基于并网永磁发电机(PMG)的小型风能转换系统建模、仿真与控制
小型风能转换系统具有巨大的使用和运行条件的多样性,因此随着大型风能转换系统在独立发电或并网应用中的发展而迅速发展。近年来,并网小型风力发电机组行业主要以永磁发电机(PMG)为主。基于pmg的系统并网功率调节系统需要一个整流器、升压变换器和并网逆变器。该系统应基于适当的控制策略,控制各工况下高风速、最大功率、最大功率入网时的气动功率。本文提出了基于pmmg的并网小型风力发电系统的数学建模和控制策略。风力机采用卷动控制和期望动力学进行气动功率控制,并遵循PMG的最优转速以保证输出最大功率。通过控制升压变换器在整个占空比的输出电压和电流,从最优速度信息中得到一种新的控制器,从而保证向电网输送最大的功率。仿真结果表明,所提出的建模和控制策略是可行的。
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