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首页> 外文期刊>Industrial Electronics, IEEE Transactions on >Input–Output Feedback Linearization and Speed Control of a Surface Permanent-Magnet Synchronous Wind Generator With the Boost-Chopper Converter
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Input–Output Feedback Linearization and Speed Control of a Surface Permanent-Magnet Synchronous Wind Generator With the Boost-Chopper Converter

机译:具有Boost-Chopper转换器的表面永磁同步风力发电机的输入-输出反馈线性化和速度控制

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摘要

A diode bridge rectifier followed by a boost-chopper circuit is a common topology of the generator-side converter for the direct-drive surface-permanent-magnet-synchronous-generator-based wind energy conversion system. Owing to its nonlinearity, it is difficult for the system to maintain good performance within normal operating range under the ordinary proportional-integral control. In this paper, a piecewise nonlinear mathematical model for the whole system, including both generator and converter, is proposed based on the commutation points of the diode bridge rectifier for more accurate controller design. The input-output feedback-linearization-based nonlinear transform for the mathematical model of the system is piecewise made. Then, a speed controller is designed according to the converted linear model, considering the integral of time multiplied by the absolute error. The proposed strategy has the advantages of relatively simple transform of state variables for linearization and developed parameter tuning method. The parameters of the linearized controller for different model intervals are the same. Finally, simulation results indicate that the proposed nonlinear controller is able to reject parameter perturbation to some extent, and experimental results are presented with a 3-kVA prototype, demonstrating that the dynamic performance of the system is improved effectively.
机译:二极管桥式整流器及其后的升压斩波电路是发电机侧变流器的常见拓扑,用于基于直接驱动的表面永磁同步发电机的风能转换系统。由于其非线性,在普通的比例积分控制下,系统很难在正常工作范围内保持良好的性能。本文基于二极管桥式整流器的换向点,提出了包括发电机和变频器在内的整个系统的分段非线性数学模型,以实现更精确的控制器设计。对该系统的数学模型进行了基于输入-输出-反馈-线性化的非线性变换。然后,根据转换后的线性模型设计速度控制器,其中要考虑时间的积分乘以绝对误差。所提出的策略具有相对简单的状态变量转换和线性化的优点。不同模型间隔的线性化控制器的参数相同。最后,仿真结果表明,所提出的非线性控制器能够在一定程度上抑制参数扰动,并以3-kVA原型机给出了实验结果,表明该系统的动态性能得到了有效改善。

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