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Design and Implementation of Partial M-Type Zero Voltage Resonant Circuit Interleaved Bidirectional DC-DC Converter (Energy Storage and Load Sharing)

机译:部分M型零电压谐振电路交错双向DC-DC转换器的设计与实现(能量存储和负载共享)

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Today the development of battery charging technology on BES (Battery Emergency Supply) is increasing rapidly. A wide range of power converters are used either buck converter, boost converter, buck boost converter, ZETA converter, CUK converter and so on. The technology development is done to produce the battery charger as efficiently as possible. However, the use of these converters can only be used for battery charging only while for load sharing still requires a converter again so that the resulting voltage is constant. In addition some converters still generate losses on the switching process. Bidirectional DC-DC Converter is an appropriate topology to be used as battery charging and load sharing converter with automatic switching using automatic switch. To improve efficiency, Bidirectional DC-DC Converter uses an interleaved topology that connects in parallel two similar topologies. In addition to avoiding the occurrence of spikes during switching then this converter also uses ZVRC circuit (Zero Voltage Resonant Circuit) M-Type. Voltage source used is supply from PLN that is equal to 220 VAC-50 Hz. The voltage is lowered and rectified using a transformer and also a rectifier to 24 VDC then down again using interleaved buck mode. The magnitude of the battery input voltage will be adjusted based on the SOC (State Of Charge) battery used. The output voltage to supply the BES (Battery Emergency Supply) load is 24 VDC and obtained from the interleaved boost mode output.
机译:今天,BES(电池应急供应)的电池充电技术的开发正在迅速增加。各种电源转换器使用降压转换器,升压转换器,降压升压转换器,Zeta转换器,CUK转换器等。该技术开发是为了尽可能高效地生产电池充电器。然而,这些转换器的使用只能用于电池充电,仅在负载共享时仍需要再次需要转换器,使得所得到的电压是恒定的。此外,一些转换器仍然在交换过程中产生损耗。双向DC-DC转换器是一种适当的拓扑,用作电池充电和负载共用转换器,使用自动开关自动切换。为了提高效率,双向DC-DC转换器使用并行连接两个类似拓扑的交错拓扑。除了在切换过程中避免尖峰的发生之外,该转换器还使用ZVRC电路(零电压谐振电路)M型。使用的电压源从PLN供电,等于220 Vac-50 Hz。使用变压器降低并整流电压,并且还使用整流器至24 Vdc,然后再次使用交错的降压模式向下。基于所使用的SOC(充电状态),将调整电池输入电压的大小。为提供BES(电池应急供应)负载的输出电压为24 VDC,并从交错的升压模式输出获得。

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