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A Single-Stage Dynamically Compensated IPT Converter With Unity Power Factor and Constant Output Voltage Under Varying Coupling Condition

机译:单级动态补偿IPT转换器,具有单级功率因数和变化耦合条件下的恒定输出电压

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摘要

Leakage and magnetizing inductances of a loosely coupled transformer are constantly changing due to the relative positions of the primary and secondary transformer windings in inductive power transfer systems. In order to counteract the nonnegligible inductances and extract desirable characteristics from the system, various compensation networks have been proposed to obtain unity input power factor and constant output voltage for minimum reactive power and ease of control for battery charging or other power electronic applications. However, most of the existing control methods with fixed compensation networks, which are usually designed for a specific coupling coefficient, have failed to fulfill both requirements simultaneously due to the mismatch between the resonant frequencies of the networks after the deviation of the designed coupling condition. In this article, a dynamic series/series-parallel compensation network based on a switch-controlled capacitor is proposed to rematch the series- and parallel-resonant frequencies of the network such that the magnetizing inductance can be adaptively compensated for different sizes of air gap/misalignment. By doing so, the requirements of load-independent output voltage and unity input power factor can be simultaneously fulfilled, while zero-voltage switching on the primary bridge is still maintained under different coupling conditions by a single-stage converter. An experimental prototype with the air gap ranging from 10-16 cm is built to verify the idea.
机译:由于电感动力传输系统中的主变压器绕组和次级变压器绕组的相对位置,松散耦合变压器的泄漏和磁化电感始终变化。为了抵消来自系统的非阻级电感和提取理想的特性,已经提出了各种补偿网络,以获得Unity输入功率因数和用于最小无功功率的恒定输出电压,并且对电池充电或其他电力电子应用的易于控制。然而,通常设计用于特定耦合系数的固定补偿网络的大多数现有控制方法,该方法由于在设计的耦合条件的偏差之后网络的谐振频率与网络的谐振频率之间的不匹配而进行了同时满足两个要求。在本文中,提出了一种基于开关控制电容的动态串联/串联补偿网络,以重复网络的串联和并联谐振频率,使得磁化电感可以自适应地补偿不同尺寸的气隙/错位。通过这样做,可以同时满足负载无关的输出电压和单位输入功率因数的要求,而通过单级转换器仍然保持在主桥上的零电压接通仍然保持在不同的耦合条件下。建立一个带气隙的实验原型,以验证这个想法。

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