整流器(神经网络)
电感器
功率因数
电气工程
电子工程
电磁干扰
拓扑(电路)
总谐波失真
电感
三相
电磁干扰
降压式变换器
滤波器(信号处理)
计算机科学
电压
物理
工程类
随机神经网络
机器学习
人工神经网络
循环神经网络
作者
Lukas Schrittwieser,Michael Leibl,Michael Haider,Friedrich Thony,Johann W. Kolar,Thiago Batista Soeiro
标识
DOI:10.1109/tpel.2018.2817074
摘要
DC power distribution systems for data centers, industrial applications, and residential areas are expected to provide higher efficiency, higher reliability, and lower cost compared to ac systems and have been an important research topic in recent years. In these applications, an efficient power factor correction (PFC) rectifier, supplying the dc distribution bus from the conventional three-phase ac mains, is typically required. This paper analyzes the three-phase, buck-type, unity power factor SWISS Rectifier for the realization of an ultrahigh-efficiency PFC rectifier stage with a 400-V rms line-to-line ac input voltage and a 400-V dc output voltage. It is shown that the mains current total harmonic distortion of the rectifier can be improved significantly by interleaving two converter output stages. Furthermore, the dc output filter is implemented using a current-compensated integrated common-mode coupled inductor, which ensures equal current sharing between the interleaved half bridges and provides common-mode electromagnetic interference (EMI) filter inductance. Based on a theoretical analysis of the coupled inductor's magnetic properties, the necessary equations and the design procedure for selecting semiconductors, magnetic cores, the number of turns, and the EMI filter are discussed. Based on these results, an ultrahigh-efficient 8-kW 4-kW·dm -3 (66-W·in -3 ) laboratory-scale prototype converter using 1.2-kV SiC MOSFETs is designed. Measurements taken on the prototype confirm a full power efficiency of 99.16% and a peak efficiency of 99.26%, as well as the compliance to CISPR 11 Class B conducted emission limits.
科研通智能强力驱动
Strongly Powered by AbleSci AI