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Design of Metamaterial Based Efficient Wireless Power Transfer System Utilizing Antenna Topology for Wearable Devices

机译:可穿戴设备天线拓扑结构的超石料高效无线电力传输系统设计

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摘要

In this article, the design of an efficient wireless power transfer (WPT) system using antenna-based topology for the applications in wearable devices is presented. To implement the wearable WPT system, a simple circular patch antenna is initially designed on a flexible felt substrate by placing over a three-layer human tissue model to utilize as a receiving element. Meanwhile, a high gain circular patch antenna is also designed in the air environment to use as a transmitter for designing the wearable WPT link. The proposed WPT system is built to operate at the industrial, scientific and medical (ISM) band of 2.40–2.48 GHz. In addition, to improve the power transfer efficiency (PTE) of the system, a metamaterial (MTM) slab built with an array combination of 3 × 3 unit cells has been employed. Further, the performance analysis of the MTM integrated system is performed on the different portions of the human body like hand, head and torso model to present the versatile applicability of the system. Moreover, analysis of the specific absorption rate (SAR) has been performed in different wearable scenarios to show the effect on the human body under the standard recommended limits. Regarding the practical application issues, the performance stability analysis of the proposed system due to the misalignment and flexibility of the Rx antenna is executed. Finally, the prototypes are fabricated and experimental validation is performed on several realistic wearable platforms like three-layer pork tissue slab, human hand, head and body. The simulated and measured result confirms that by using the MTM slab, a significant amount of the PTE improvement is obtained from the proposed system.
机译:在本文中,提出了使用基于天线的拓扑结构的高效无线电力传输(WPT)系统的设计,用于可穿戴设备中的应用。为了实现可穿戴WPT系统,通过放置三层人组织模型以利用作为接收元件,最初在柔性毡衬底上设计简单的圆形贴片天线。同时,高增益圆形贴片天线也设计在空气环境中,用作用于设计可穿戴WPT链路的发射器。拟议的WPT系统是在2.40-2.48 GHz的工业,科学和医疗(ISM)频段的工业,科学和医疗(ISM)频段。另外,为了提高系统的电力传输效率(PTE),已经采用了用阵列组合构建的3×3单元电池组合的超材料(MTM)板。此外,MTM集成系统的性能分析是在人体的不同部分,如手,头和躯干模型,以呈现系统的多功能适用性。此外,在不同的可穿戴场景中进行了特定吸收率(SAR)的分析,以在标准推荐的限制下显示对人体的影响。关于实际应用问题,执行由于RX天线的错位和灵活性,所提出的系统的性能稳定性分析。最后,原型是制造的,在几个现实可穿戴平台上进行实验验证,如三层猪肉组织板,人手,头部和身体。模拟和测量结果证实,通过使用MTM板,从所提出的系统获得大量的PTE改进。

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