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Battery Equalization by Fly-Back Transformers with Inductance, Capacitance and Diode Absorbing Circuits

机译:具有电感,电容和二极管吸收电路的反激式变压器实现电池均衡

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Battery equalization can increase batteries’ life cycle, utilization, and reliability. Compared with battery equalization topologies based on resistance or energy storage components, the topologies based on transformers have the advantages of high balancing current and efficiency. However, the existence of switching losses will reduce the reliability and service life span of the equalization circuit. Aiming at resolving this problem, a new battery equalization topology by fly-back transformer with an absorbing circuit is proposed in this paper. Compared with other transformer-based topologies, it can decrease switching losses because the voltage/current spike is solved by the absorbing circuit which is composed of inductance, capacitance and diode (LCD), and it can also maintain a high balancing current of about 1.8 A and high efficiency of about 89%, while the balancing current and efficiency of other topologies were usually 1.725 A/1.5 A and 80%/80.4%. The working principle of the balancing topology and the process of soft switching are analyzed and calculated in the frequency domain. Due to the addition of the LCD absorbing circuit, soft switching can be realized to reduce the switching losses while the high equalization speed and efficiency are still maintained. The corresponding control strategy of the balancing topology is also proposed and the timely balancing is achieved. The theoretical analysis is verified by simulation and experimental results.
机译:电池均衡可以延长电池的使用寿命,利用率和可靠性。与基于电阻或储能组件的电池均衡拓扑相比,基于变压器的拓扑具有高平衡电流和效率的优势。但是,开关损耗的存在会降低均衡电路的可靠性和使用寿命。为了解决这个问题,本文提出了一种新的带有吸收电路的反激式变压器均衡电池的拓扑结构。与其他基于变压器的拓扑相比,它可以减少开关损耗,因为电压/电流尖峰由包含电感,电容和二极管(LCD)的吸收电路解决,并且还可以维持约1.8的高平衡电流A和约89%的高效率,而其他拓扑的平衡电流和效率通常为1.725 A / 1.5 A和80%/ 80.4%。在频域上对平衡拓扑的工作原理和软切换过程进行了分析和计算。由于增加了LCD吸收电路,因此可以实现软开关以减少开关损耗,同时仍保持较高的均衡速度和效率。提出了相应的平衡拓扑控制策略,实现了及时的平衡。仿真和实验结果验证了理论分析的正确性。

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