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Rapid Wireless Capacitor Charging Using a Multi-Tapped Inductively-Coupled Secondary Coil

机译:使用多抽头电感耦合二次线圈快速无线电容充电

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摘要

This paper presents an inductive coupling system designed to wirelessly charge ultra-capacitors used as energy storage elements. Although ultra-capacitors offer the native ability to rapidly charge, it is shown that standard inductive coupling circuits only deliver maximal power for a specific load impedance which depends on coil geometries and separation distances. Since a charging ultra-capacitor can be modeled as an increasing instantaneous impedance, maximum power is thus delivered to the ultra-capacitor at only a single point in the charging interval, resulting in a longer than optimal charging time. Analysis of inductive coupling theory reveals that the optimal load impedance can be modified by adjusting the secondary coil inductance and resonant tuning capacitance. A three-tap secondary coil is proposed to dynamically modify the optimal load impedance throughout the capacitor charging interval. Measurement results show that the proposed architecture can expand its operational range by up to 2.5 × and charge a 2.5 F ultra-capacitor to 5 V upwards of 3.7 × faster than a conventional architecture.
机译:本文提出了一种电感耦合系统,旨在对用作储能元件的超级电容器进行无线充电。尽管超级电容器具有快速充电的固有能力,但事实证明,标准电感耦合电路仅针对特定负载阻抗提供最大功率,具体负载阻抗取决于线圈的几何形状和分隔距离。由于可以将充电超级电容器建模为增加的瞬时阻抗,因此最大功率仅在充电间隔中的单个点处传递到超级电容器,从而导致比最佳充电时间更长的充电时间。电感耦合理论的分析表明,可以通过调节次级线圈电感和谐振调谐电容来修改最佳负载阻抗。提出了一种三抽头次级线圈,用于在整个电容器充电间隔内动态修改最佳负载阻抗。测量结果表明,所提出的架构可以将其工作范围扩大至2.5倍,并且可以将2.5 F的超级电容器充电至比传统架构快3.7倍的5V。

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