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A Precise and Adaptive Algorithm for Interharmonics Measurement Based on Iterative DFT

机译:基于迭代DFT的谐波测量精确自适应算法

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摘要

A precise and adaptive algorithm for interharmonics detection based on iterative discrete Fourier transform (DFT) is proposed. First, an objective function is defined as the squared error between the transform of the signal in rectangular window based on kernel function, and the Fourier transform of the signal in infinite time domain. Then, the kernel function is obtained by solving the differential equation which minimizes the objective function. On this basis, the transform of the signal in rectangular window based on kernel function is obtained. Moreover, practical formulas to calculate the parameters of harmonics and interharmonics in electric power systems are presented. The proposed method has three distinguished features, first, it is able to measure interharmonics in time because the sampling time is only six periods of fundamental wave, second, it is not affected by asynchronous sampling, and third, it is only slightly affected by white noise. In addition, the frequency resolution can be adjusted adaptively by changing the number of frequency points. Some simulation examples are given to demonstrate the precision, effectiveness, feasibility, and robustness of iterative DFT algorithm.
机译:提出了一种基于迭代离散傅里叶变换(DFT)的精确自适应谐波检测算法。首先,将目标函数定义为基于核函数的矩形窗口中的信号变换与无限时域中的信号的傅立叶变换之间的平方误差。然后,通过求解最小化目标函数的微分方程获得核函数。在此基础上,获得了基于核函数的矩形窗信号的变换。此外,提出了计算电力系统谐波和间谐波参数的实用公式。所提出的方法具有三个显着特征,首先,由于采样时间仅为基波的六个周期,因此能够及时测量间谐波;其次,它不受异步采样的影响;其次,仅受白色影响很小。噪声。另外,可以通过改变频率点的数量来自适应地调整频率分辨率。给出了一些仿真实例,以说明迭代DFT算法的精度,有效性,可行性和鲁棒性。

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