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Hybrid IPT Topologies with Constant Current or Constant Voltage Output for Battery Charging Applications

机译:具有恒定电流或恒定电压输出的混合IPT拓扑,用于电池充电应用

摘要

The inductive power transfer (IPT) technique in battery charging applications has many advantages compared to conventional plug-in systems. Due to the dependencies on transformer characteristics, loading profile, and operating frequency of an IPT system, it is not a trivial design task to provide the battery the required constant charging current (CC) or constant battery charging voltage (CV) efficiently under the condition of a wide load range possibly defined by the charging profile. This paper analyzes four basic IPT circuits with series-series (SS), series-parallel (SP), parallel-series (PS), and parallel-parallel (PP) compensations systematically to identify conditions for realizing load-independent output current or voltage, as well as resistive input impedance. Specifically, one load-independent current output circuit and one load-independent voltage output circuit having the same transformer, compensating capacitors, and operating frequency can be readily combined into a hybrid topology with fewest additional switches to facilitate the transition from CC to CV. Finally, hybrid topologies using either SS and PS compensation or SP and PP compensation are proposed for battery charging. Fixed-frequency duty cycle control can be easily implemented for the converters.
机译:与传统的插入式系统相比,电池充电应用中的感应功率传输(IPT)技术具有许多优势。由于依赖于IPT系统的变压器特性,负载曲线和工作频率,因此在这种情况下有效地为电池提供所需的恒定充电电流(CC)或恒定电池充电电压(CV)并非微不足道的设计任务。可能由充电曲线定义的宽负载范围。本文系统地分析了四个基本IPT电路,它们具有串联(SS),串联-并联(SP),并联-串联(PS)和并联-并联(PP)补偿,以识别实现与负载无关的输出电流或电压的条件,以及电阻输入阻抗。具体地,具有相同的变压器,补偿电容器和工作频率的一个与负载无关的电流输出电路和一个与负载无关的电压输出电路可以容易地组合成具有最少附加开关的混合拓扑,以促进从CC到CV的过渡。最后,提出了使用SS和PS补偿或SP和PP补偿的混合拓扑来为电池充电。可以很容易地对转换器执行固定频率的占空比控制。

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