Design of 3.3 kW wireless battery charger for electric vehicle application considering bifurcation

K. Aditya, V. Sood
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引用次数: 5

Abstract

Bifurcation in a resonant inductive power transfer (RIPT) system causes hard switching of the primary side inverter, decrease in efficiency and loss of control stability. Bifurcation can be avoided by either selecting complicated control strategies or by calculating the parameters of RIPT system in such a way that the system has only one resonant frequency for the entire expected range of load and coupling variations. Many control methods to tackle the bifurcation issue have been covered in the literature. This paper aims at handling the bifurcation by proposing an analytical design procedure. A fabricated system, based on the parameters calculated using presented design steps, avoids the bifurcation phenomenon for the entire coupling and load variations. A 3.3 kW wireless charger setup using series-series compensated RIPT (SS-RIPT) system and 2-phase interleaved boost power factor correction (PFC) as a front end converter has been designed using the proposed method as an example. Simulation results using MATLAB are presented to verify the proposed design methodology.
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考虑分岔的3.3 kW电动汽车无线充电器设计
谐振式电感功率传输(RIPT)系统的分岔导致一次侧逆变器的硬开关,效率降低,控制稳定性下降。通过选择复杂的控制策略或通过计算RIPT系统的参数,使系统在整个负载和耦合变化的预期范围内只有一个谐振频率,可以避免分岔。许多控制方法,以解决分岔问题已经涵盖在文献中。本文旨在通过提出一种分析设计程序来处理这种分岔。根据所提出的设计步骤计算的参数,制造出的系统避免了整个耦合和载荷变化的分岔现象。以该方法为例,设计了采用串联补偿RIPT (SS-RIPT)系统和两相交错升压功率因数校正(PFC)作为前端转换器的3.3 kW无线充电器。最后给出了MATLAB仿真结果来验证所提出的设计方法。
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