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Analysis and practical considerations in implementing multiple transmitters and receivers for wireless power transfer via coupled magnetic resonance.

机译:在实现多个通过耦合磁共振进行无线电力传输的发射器和接收器时的分析和实际考虑。

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摘要

The technology to wirelessly power mobile devices has started to gain momentum especially in industry. Cables have started to become the thing of the past as both wireless power efficiency and communication speeds become viably attractive. The first part of this work gives analysis and practical considerations in implementing multiple transmitters for wireless power transfer via coupled magnetic resonance. Through the multiple transmitter scheme, there is an increase in gain and `diversity' of the transmitted power according to the number of transmit coils. The effect of transmitter resonant coil coupling is also shown. Resonant frequency detuning due to nearby metallic objects is observed and the extent of how much tuning can be done is demonstrated. A practical power line synchronization technique is proposed to synchronize all transmit coils. This reduces additional dedicated synchronization wiring or the addition of an RF front end module. The second part of this study introduces a time division multiplexing (TDM) technique for tightly coupled receivers via the same method of coupled magnetic resonance. Two or more receivers can be powered simultaneously using a single transmit coil. In a tightly coupled receiver scenario, the received power is significantly reduced. Experimental and simulation results implementing TDM show vast improvements in received power in the tightly coupled case. Resonant frequency splitting is eliminated through synchronized detuning between receivers, which divide power equally between receivers at specific time slots. The last chapter gives insight on the capacity of a single-input single-output system at varying distances between receiver and transmitter. It is shown that the highest information rate is achieved at critical coupling.
机译:无线为移动设备供电的技术已开始获得动力,特别是在工业领域。随着无线电力效率和通信速度变得越来越有吸引力,电缆已经开始成为过去。这项工作的第一部分给出了实现多个通过耦合磁共振进行无线电力传输的发射机的分析和实际考虑。通过多发射器方案,根据发射线圈的数量,发射功率的增益和“多样性”增加。还显示了发射器谐振线圈耦合的影响。观察到由于附近金属物体引起的共振频率失谐,并证明了可以进行多少调谐的程度。提出了一种实用的电力线同步技术来同步所有发射线圈。这减少了额外的专用同步布线或增加了RF前端模块。本研究的第二部分介绍了一种通过相同的耦合磁共振方法为紧密耦合接收器提供的时分复用(TDM)技术。可以使用单个发射线圈同时为两个或更多接收器供电。在紧密耦合的接收器场景中,接收功率会大大降低。实施TDM的实验和仿真结果表明,在紧密耦合的情况下,接收功率得到了极大的改善。通过接收器之间的同步失谐消除了谐振频率分裂,后者在特定时隙在接收器之间平均分配功率。上一章深入介绍了在接收器和发送器之间的不同距离下单输入单输出系统的容量。结果表明,在临界耦合下可获得最高的信息速率。

著录项

  • 作者

    Johari, Rizal.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 103 p.
  • 总页数 103
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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