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Total Harmonic Distortion and Output Current Optimization Method of Inductive Power Transfer System for Power Loss Reduction

机译:电力损耗减少电感电力传输系统的总谐波失真和输出电流优化方法

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摘要

Inductive power transfer (IPT) system is widely used in material handling. A typical structure of the system takes an H-bridge inverter with an inductor-capacitor-inductor (LCL) resonant filter to realize a constant track current supplying changeless energy to the second side. However, the output voltage total harmonic distortion (THD) of the inverter increases, which causes the increase of output current circulation, when using voltage width control method to eliminate source voltage fluctuating. Therefore, a two-stage converter is proposed to optimize the output current circulation. The two-stage IPT system is composed of a boost converter cascaded with an H-bridge resonant inverter. The boost converter is employed to provide a higher and stable DC bus voltage. The H-bridge resonant inverter operates in a fixed width with a constant switching frequency. With the proposed topology, the THD of the high frequency voltage maintains the minimum value to realize minimum output current circulation in the LCL filter. The soft switching is realized to reduce the losses. Furthermore, expressions of coil and track model are presented by combining the theoretical analysis and finite element analysis (FEA). The experimental results show that over 76.6% efficiency is demonstrated in conditions of an 800 W load at the 14% source voltage fluctuation and the maximum efficiency was 78.6%. The range of efficiency variation was 2% compared to a full-bridge system with voltage pluse-width control of which was 4.6%.
机译:电感电力传输(IPT)系统广泛用于材料处理。系统的典型结构采用H桥式逆变器,具有电感 - 电容器电感器(LCL)谐振滤波器,以实现向第二侧提供不变能量的恒定轨道电流。然而,当使用电压宽度控制方法消除源极电压波动时,变频器的输出电压总谐波(THD)增加,这导致输出电流循环的增加。因此,提出了一种两级转换器以优化输出电流循环。两级IPT系统由带有H桥谐振逆变器级联的Boost转换器组成。升压转换器用于提供更高且稳定的直流母线电压。 H桥谐振逆变器以固定宽度运行,具有恒定的开关频率。利用所提出的拓扑,高频电压的THD保持最小值,以实现LCL滤波器中的最小输出电流循环。实现软切换以减少损耗。此外,通过组合理论分析和有限元分析(FEA)来提出线圈和轨道模型的表达。实验结果表明,在14%源极电压波动下800W负荷的条件下,在800W负荷的条件下证明了超过76.6%的效率,最高效率为78.6%。与具有电压水平宽度控制的全桥系统相比,效率变化范围为2%,为4.6%。

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