首页> 外文会议>Proceedings of 2015 International Conference on Electrical and Information Technology >Extended Kalman filter used to estimate speed rotation for sensorless MPPT of wind conversion chain based on a PMSG
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Extended Kalman filter used to estimate speed rotation for sensorless MPPT of wind conversion chain based on a PMSG

机译:扩展卡尔曼滤波器用于估计基于PMSG的风力转换链无传感器MPPT的转速旋转

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摘要

This paper presents an innovative method of determining the value of the optimum wind power employed to design a sensorless Maximum Power Point Tracking (MPPT) algorithm of a wind conversion chain with a Permanent Magnet Synchronous Generator (PMSG) using two estimators: the Extended Kalman Filter (EKF) to estimate rotation speed and the extremum seeking to estimate the coefficient including turbine parameters. The model of Wind Energy Conversion System (WECS) consists of a wind turbine, two-mass drive train, PMSG, and power converter supplying a DC load. The proposed method based on sensorless wind speed, air density and turbine parameters, generates the outputs to be used in the Field Oriented Control (FOC) requiring implementation of an active rectifier and also in the MPPT block. At first, we show the advantage of using a FOC of the PMSG. Then we describe the EKF and the extremum seeking method. Simulations on Matlab-Simulink can be found at the end of the paper, confirming the performance of the proposed approach.
机译:本文提出了一种确定最佳风能值的创新方法,该方法用于设计具有两个估算器的永磁同步发电机(PMSG)的风力转换链的无传感器最大功率点跟踪(MPPT)算法:扩展卡尔曼滤波器(EKF)来估计转速,而极值试图去估计包括涡轮机参数在内的系数。风能转换系统(WECS)的模型由风力涡轮机,两质量传动系统,PMSG和提供直流负载的功率转换器组成。所提出的基于无传感器风速,空气密度和涡轮机参数的方法可生成输出,以用于需要实施有源整流器的磁场定向控制(FOC)以及MPPT模块。首先,我们展示了使用PMSG的FOC的优势。然后我们描述了EKF和极值搜索方法。在本文末尾可以找到有关Matlab-Simulink的仿真,证实了该方法的性能。

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