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引用次数: 2

摘要

采用恒流恒压(CCCV)充电方案,可以延长电池寿命,提高充电效率。在电池充电应用中,使用超稀疏矩阵整流器(USMR)比桥式整流电路有许多优点,因为它具有最少的开关数量,并且通过适当的开关策略具有可控制位移角的正弦输入电流。因此,可以实现统一的功率因数。本文介绍了USMR在电池充电应用中的应用,利用空间矢量调制(SVM)为USMR提供正弦输入电流。此外,控制输出电流或电压有利于充电过程中的充电控制,以保持电池寿命。CCCV充电方案的三种模式是涓流模式、恒流模式和恒压模式。通过控制整流器的调制指数m来控制整流器的输出直流电压,从而控制输出直流电流。输入侧LC低通电源滤波器用于滤除输入电流中由于开关频率而产生的谐波。该充电器适用于大功率高充电电压系统,可提高充电效率。仿真结果表明,所提出的控制方案能够在单位功率因数下实现正弦输入电流。同时,随着充电电流的增大,输入线路电流的总谐波畸变减小。
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Ultra sparse matrix rectifier for battery charging application
Charging batteries with constant-current/constant-voltage (CCCV) scheme prolongs the battery life and improve the charging efficiency. In battery charging applications, using ultra-sparse matrix rectifier (USMR) has many advantages over the bridge rectifier circuits as it has minimum number of switches, it possesses sinusoidal input currents with controllable displacement angle by proper switching strategy. So, a unity power factor can be achieved. This paper presents the use of USMR in battery charging applications using of space vector modulation (SVM) to provide sinusoidal input currents for USMR. Also controlling of output current or voltage facilitates charging control during charging scheme to preserve the battery life. The three modes of CCCV charging scheme are trickle mode, constant current mode, and constant voltage mode. The output dc voltage of the rectifier is controlled by controlling the modulation index m for the rectifier, hence the output dc current is consequently controlled. The input side LC low-pass power filter is designed to filter out the harmonics in the input currents due to switching frequency. This type of charger is candidated for high power high charging voltage systems to improve the charging efficiency. The simulation results show that the proposed control scheme achieves sinusoidal input current with a unity power factor. Also, the total harmonic distortion in the input line current decreases as the charging current increases.
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