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Analysis and Design of enhanced DFT-Based Controller for Selective Harmonic Compensation in Active Power Filters

机译:基于DFT的基于DFT控制的分析与设计,用于有源电力滤波器中的选择性谐波补偿

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Traditional Discrete Fourier Transform (DFT)-based repetitive controller is widely used in active power filters (APF) thanks to its unique merits such as excellent selectivity and simplicity. However, the structure of the only one feedback path results in the same steps of leading angles for all harmonic frequencies. Since the phase response may not be proportional to frequency and the gain of the plant varies with frequency, identical leading angles and gain coefficients can't compensate the phase lag and the gain attenuation effectively at different harmonics. All those facts imply constraints to obtain the best stability margins and performance. The proposed controller provides feedback path and gain coefficient for each harmonic according to the characteristics of the plant respectively. In addition, the correction term is embedded in the forward channel to provide overall phase compensation and correct the plant for better characteristics. As a result, the novel control structure incorporated in sliding DFT can improve the performance greatly. Detailed design consideration is given with focus on stability analysis and transient behavior of the APF. Experimental results validate the effectiveness of the theoretical analysis.
机译:基于传统的离散傅立叶变换(DFT)的重复控制器广泛用于有源电力滤波器(APF),得益于其独特的优点,例如优异的选择性和简单性。然而,唯一一个反馈路径的结构导致所有谐波频率的领先角度的相同步骤。由于阶段响应不得与频率成比例,并且设备的增益随频率而变化,相同的前导角和增益系数不能在不同的谐波上有效地补偿相位滞后和增益衰减。所有这些事实都意味着获得最佳稳定性利润率和性能的限制。所提出的控制器分别提供了根据工厂的特征的每个谐波的反馈路径和增益系数。此外,校正项嵌入前向通道中以提供整体相位补偿并纠正工厂以获得更好的特性。结果,在滑动DFT中结合的新型控制结构可以大大提高性能。详细的设计考虑,重点是APF的稳定性分析和瞬态行为。实验结果验证了理论分析的有效性。

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