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利用互感的磁集成双陷波器滤波器,用于降低高速铁路牵引逆变器中的电流谐波。

Magnetic integrated double-trap filter utilizing the mutual inductance for reducing current harmonics in high-speed railway traction inverters.

作者信息

Al-Barashi Maged, Wang Yongjun, Lan Bin, Bhutta Muhammad Shoaib

机构信息

School of Aeronautics and Astronautics, Guilin University of Aerospace Technology, Guilin, 541004, China.

School of Automobile Engineering, Guilin University of Aerospace Technology, Guilin, 541004, China.

出版信息

Sci Rep. 2024 May 2;14(1):10058. doi: 10.1038/s41598-024-60877-y.

DOI:10.1038/s41598-024-60877-y
PMID:38698137
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11065895/
Abstract

Current harmonics are generated at the switching frequency and its multiples when the traction converters are modulated. To address this, multi-trap filters are introduced, which are capable of selectively eliminating these specific harmonics to the limits set by IEEE 519-2014. This targeted removal significantly reduces the need for high total inductance, thereby allowing for a more compact filter design. Comparatively, to traditional inductor-capacitor-inductor (LCL) filters, more magnetic cores are needed for trap inductors. Furthermore, the traction systems have not been examined in conjunction with multi-trap filters. To reduce the filter size and investigate its application in traction converters, this paper presents an integrated double-trap LCL (DTLCL) filter. A tiny capacitor is connected in parallel with the grid-side inductor to form one LC-trap. In addition, another LC-trap is formed by connecting the equivalent trap inductor, introduced through the magnetic coupling between inverter-side and grid-side inductors, in series with the filter capacitor. The presented filters' features are thoroughly analyzed, and the design method has been developed. Finally, the simulation and hardware-in-the-loop (HIL) experiment results validate the proposed method's viability and efficacy. Compared to the discrete windings, the integrated ones enable a size decrease of two cores. Furthermore, the proposed filters can meet IEEE 519-2014 criteria with 0.3% for all the current switching harmonics and total harmonic distortion (THD) of 2.36% of the grid-side current.

摘要

当牵引变流器被调制时,会在开关频率及其倍数频率处产生电流谐波。为了解决这个问题,引入了多陷波滤波器,它能够将这些特定谐波选择性地消除到IEEE 519-2014规定的限值。这种有针对性的消除大大减少了对高总电感的需求,从而允许采用更紧凑的滤波器设计。相比之下,与传统的电感-电容-电感(LCL)滤波器相比,陷波电感需要更多的磁芯。此外,尚未结合多陷波滤波器对牵引系统进行研究。为了减小滤波器尺寸并研究其在牵引变流器中的应用,本文提出了一种集成双陷波LCL(DTLCL)滤波器。一个小电容与电网侧电感并联形成一个LC陷波。此外,通过逆变器侧和电网侧电感之间的磁耦合引入的等效陷波电感与滤波电容串联形成另一个LC陷波。对所提出滤波器的特性进行了深入分析,并开发了设计方法。最后,仿真和硬件在环(HIL)实验结果验证了所提方法的可行性和有效性。与离散绕组相比,集成绕组可使磁芯尺寸减小两个。此外,所提出的滤波器对于所有电流开关谐波均可满足IEEE 519-2014标准,电网侧电流的总谐波失真(THD)为2.36%。

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