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A 36-Pulse Diode-Bridge Rectifier Using Dual Passive Harmonic Reduction Methods at DC Link

机译:在直流链路上使用双重无源谐波抑制方法的36脉冲二极管桥式整流器

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摘要

In order to simultaneously reduce the harmonics of input line current and ripple of load voltage in multipulse diode-bridge rectifier, this paper proposes a 36-pulse rectifier using dual passive harmonic reduction methods at dc link. The proposed rectifier combines a 12-pulse rectifier and a multiwinding interphase reactor (IPR). The primary winding of the multiwinding IPR and two diodes constitute the double-tapped IPR, which is named as the first harmonic reduction method; the secondary winding of the multiwinding IPR and a single-phase diode-bridge rectifier formulate the second harmonic reduction method. When the multiwinding IPR is designed optimally, the pulse number of load voltage and step number of input line current can be increased from 12 to 24 by using the first method and from 24 to 36 by using the second method. The operation of the multiwinding IPR is analyzed, and the optimal turn ratio of the multiwinding IPR is obtained from the perspective of minimizing the total harmonic distortion of input line current. When the multiwinding IPR is designed optimally, both the pulse number of load voltage and step number of input line current are 36 per power supply cycle. Compared with the 12-pulse rectifier, in the proposed rectifier, the harmonics of input line current and ripple of load voltage are reduced significantly. The proposed rectifier is simpler and easier to realize than other methods. Some simulation and experiments are carried out to validate the theoretical analysis.
机译:为了同时降低多脉冲二极管桥式整流器中输入线电流的谐波和负载电压的纹波,本文提出了一种在直流环节采用双无源谐波降低方法的36脉冲整流器。提出的整流器结合了12脉冲整流器和多绕组相间电抗器(IPR)。多绕组IPR的初级绕组和两个二极管构成了双抽头IPR,这被称为一次谐波降低方法。多绕组IPR的次级绕组和单相二极管桥式整流器构成了二次谐波降低方法。当优化设计多绕组IPR时,使用第一种方法可以将负载电压的脉冲数和输入线电流的步数从12增加到24,而使用第二种方法可以将负载电压的脉冲数和输入线电流的步数从24增加到36。分析了多绕组IPR的工作原理,并从最小化输入线电流的总谐波失真的角度获得了多绕组IPR的最佳匝数比。优化设计多绕组IPR时,每个电源周期负载电压的脉冲数和输入线电流的步数均为36。与12脉冲整流器相比,该整流器可显着降低输入线电流的谐波和负载电压的纹波。提出的整流器比其他方法更容易实现。进行了一些仿真和实验以验证理论分析。

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