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A Novel Multi-port Bi-directional Inductive Power Transfer System with Simultaneous Main and Auxiliary Battery Charging Capability

机译:具有主电池和辅助电池同时充电能力的新型多端口双向感应电力传输系统

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When the battery in an electric vehicle (EV) is charged by an inductive power transfer (IPT) system, in general, the transmitted power is charged to the main battery used for the traction system on the EV at first. Next, the auxiliary battery is charged by the stored energy in the main battery through an isolated DC–DC converter. This causes an increase in the number of the power conversion stage and devices used. Therefore, this paper proposes a novel multi-port bi-directional IPT system that is able to charge both of the main and the auxiliary batteries simultaneously. In the proposed system, the number of power conversion stage and the devices used in it, specifically two diodes and two inductors, can be reduced. In addition, the design method of the novel system and the method for controlling the transmission power are described. Furthermore, the characteristics of the transmission power and efficiency (i.e. power loss) of the resonant circuit are derived from the theoretical analysis, and then the validity of the theoretical analysis is verified by the experiments. From the experiments, in Primary-side Coupled Mode, the maximum percentage errors were 7.2 % and 0.8 % in the transmission power and the resonant circuit loss, respectively, when the total transmission power to the main and auxiliary batteries was 1100 W. In Primary-side Non-coupled Mode, the percentage errors were 0.1 % and 23 % in the charging power and the resonant circuit loss, respectively, when the charging power of the auxiliary battery was 100 W. From the above, the validity of the theoretical analysis was verified.
机译:通常,当电动汽车(EV)中的电池通过感应功率传输(IPT)系统充电时,首先将传输的功率充电到EV上用于牵引系统的主电池上。接下来,辅助电池通过隔离的DC-DC转换器由主电池中存储的能量充电。这导致所使用的功率转换级和设备的数量增加。因此,本文提出了一种新颖的多端口双向IPT系统,该系统能够同时为主电池和辅助电池充电。在提出的系统中,可以减少功率转换级的数量以及其中使用的设备,特别是两个二极管和两个电感器。另外,描述了新颖系统的设计方法和用于控制发射功率的方法。此外,从理论分析中得出谐振电路的传输功率和效率(即功率损耗)的特性,然后通过实验验证了理论分析的有效性。根据实验,在一次侧耦合模式下,当主电池和辅助电池的总传输功率为1100 W时,传输功率和谐振电路损耗的最大百分比误差分别为7.2%和0.8%。侧非耦合模式,当辅助电池的充电功率为100 W时,充电功率和谐振电路损耗的百分比误差分别为0.1%和23%。从以上所述,理论分析的有效性已验证。

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