Wireless Power Transfer for LoRa Low-Power wide-area Networks (LPWANs)

Makhetha Molefi, E. Markus, A. Abu-Mahfouz
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引用次数: 6

Abstract

LPWANs are emerging to provide solutions for covering very low-power Internet of Things devices and applications which may be distributed over large geographical areas. LPWANs generally consume very low power thus their batteries can last for a very long time. However, the problem with batteries is that they get damaged with time and they eventually run out. Wireless power transfer on the other hand is gaining popularity for long range wireless networks. Motivated by these developments and the challenge of simultaneously conducting wireless power transfer alongside data communication, this paper proposes the use of magnetically coupled resonance wireless power transfer to power LPWAN devices. This approach allows the increase in distance between the transmitter and receiver and also curb the failure probability and degradation encountered by its coupling. The use of shielding materials and flux guidance is also incorporated into the system in order to increase the efficiency of the system. The analytical solutions to ferrite structures as shielding materials is computed with High Frequency Structure Simulator (HFSS). HFSS is used to compute the S-parameters (input power reflection coefficient and forward power transmission coefficient) of the proposed system and magnetic characteristics by plotting electromagnetic field distributions.
LoRa低功耗广域网(lpwan)的无线电力传输
lpwan正在兴起,为覆盖可能分布在大地理区域的极低功耗物联网设备和应用提供解决方案。lpwan通常消耗非常低的功率,因此它们的电池可以持续很长时间。然而,电池的问题是,它们会随着时间的推移而损坏,最终耗尽。另一方面,无线电力传输在远程无线网络中越来越受欢迎。由于这些发展和同时进行无线电力传输与数据通信的挑战,本文提出使用磁耦合谐振无线电力传输来为LPWAN设备供电。这种方法可以增加发射机和接收机之间的距离,也可以抑制其耦合所遇到的故障概率和退化。为了提高系统的效率,还将屏蔽材料和磁导的使用纳入系统中。利用高频结构模拟器(HFSS)计算了铁氧体结构作为屏蔽材料的解析解。HFSS通过绘制电磁场分布来计算系统的s参数(输入功率反射系数和正向功率传输系数)和磁特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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