基于纺织品的射频能量收集和存储,使用具有高有效与物理面积比的超紧凑整流天线

Mahmoud Wagih, N. Hillier, A. Weddell, S. Beeby
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引用次数: 1

摘要

可穿戴射频(RF)天线不需要昂贵或危险的材料,可以很容易地与传统的电子纺织品集成。在本文中,我们研究了超小型线型单极天线在能量收集(EH)应用中的应用,作为一种相对于其物理尺寸最大化整流天线有效收集面积的方法,同时不减少净直流输出。该整流天线工作在915mhz频段,与一个简单的碳基电子纺织超级电容器集成在一起,用于直接能量转换和存储。随后,该集成模块首次演示了如何在距离免授权Powercast发射机1米远的地方为蓝牙低功耗传感器节点无线充电。14.1 mF的超级电容器使用电子纺织整流天线灯丝在83秒内充电至4.14 V,入射功率密度为23.9 μW/cm2,时间平均效率超过40%,使传感器节点在无线射频源停止后维持108秒的工作。与最先进的射频能量采集器相比,所提出的模块在射频到直流功率收集效率方面实现了五倍以上的改进,该效率归一化到采集器的区域。
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Textile-based Radio Frequency Energy Harvesting and Storage using Ultra-Compact Rectennas with High Effective-to-Physical Area Ratio
Wearable Radio Frequency (RF) rectennas do not require expensive or hazardous materials and can be easily integrated with conventional e-textiles. In this paper, we investigate the use of ultra-miniaturized wire-type monopole antennas for energy harvesting (EH) applications, as a method maximizing the effective collection area of a rectenna relative to its physical size, while not reducing the net DC output. The rectenna, operating in the 915 MHz band, is integrated with a simple carbon-based e-textile supercapacitor for direct energy conversion and storage. The integrated module is then demonstrated, for the first time, wirelessly-charging a Bluetooth Low Energy sensor node at over 1 m distance from a license-free Powercast transmitter. The 14.1 mF supercapacitor is charged using the e-textile rectenna filament in 83 s up to 4.14 V, from an incident power density of 23.9 μW/cm2 and a time-averaged efficiency over 40%, enabling the sensor node to sustain operation for 108 s after the wireless RF source is stopped. Compared to state-of-the-art RF energy harvesters, the proposed module achieves over five fold improvement in the RF to DC power harvesting efficiency normalized to the harvester’s area.
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