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Dual-Receiver Wearable 6.78 MHz Resonant Inductive Wireless Power Transfer Glove Using Embroidered Textile Coils

机译:双接收器可穿戴6.78 MHz谐振电感无线动力传输手套使用绣花纺织线圈

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The design of dynamic wearable wireless power transfer systems (WPT) possesses multiple challenges that affect the WPT efficiency. The varying operation conditions, such as the coils' coupling, and operation in proximity or through the human body, can affect the impedance matching at the resonant frequency. This paper presents a high-efficiency wearable 6.78 MHz WPT system for smart cycling applications. Resonant inductive coupling using dual-receiver textile coils is proposed for separation-independent WPT, demonstrated in a smart cycling glove, for transferring energy from an on-bicycle generator to smart-textile sensors. The effects of over-coupling in a dynamic WPT system have been investigated analytically and experimentally. The embroidered coils efficiency is studied in space, on- and through-body. The measured results, in space, showaround 90% agreement between the analytical and experimental results. To overcome frequency-splitting in the over-coupling region, an asymmetric dual-receiver architecture is proposed. Empirical tuning of the lumped capacitors is utilized to achieve resonance at 6.78 MHz between the fundamental frequency and the even mode split frequency. Two different coil sizes are utilized to achieve separation-independent efficiency in the tight coupling region on- and off-body, while maintaining a Specific Absorption Rate (SAR) under 0.103 W/kg. The presented system achieves a peak efficiency of 90% and 82% in free space and on-hand respectively, with a minimum efficiency of 50% under loose and tight coupling, demonstrating more than 40% efficiency improvement over a 1:1 symmetric transmit and receive coil at the same separation.
机译:动态可穿戴无线电力传输系统(WPT)的设计具有影响WPT效率的多种挑战。变化的操作条件,例如线圈耦合和接近或通过人体的操作,可以影响谐振频率的阻抗匹配。本文提出了一种高效的可穿戴6.78 MHz WPT系统,用于智能循环应用。建议使用双接收纺织线圈的谐振电感耦合用于独立于独立的WPT,在智能循环手套中证明,用于将能量从自行车发生器转移到智能纺织传感器。在分析和实验上已经在进行动态WPT系统中过耦合的影响。在空间,在身体上进行绣花线圈效率。测量结果,在太空中,在分析和实验结果之间展示了90%的协议。为了克服超耦合区域中的频率分离,提出了不对称的双接收机架构。块状电容器的经验调谐用于在基频和均匀模式分流频率之间实现6.78 MHz的共振。两个不同的线圈尺寸用于在紧密耦合区域内实现独立于离子耦合区域,同时保持在0.103W / kg下的特定吸收率(SAR)。呈现的系统分别在可自由空间和82%的峰值效率下,在松动和紧密的耦合下,最小效率为50%,效率超过40%,超过1:1对称发射接收在相同的分离中的线圈。

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