Waveform-aware ambient RF energy harvesting

Joshua F. Ensworth, Stewart J. Thomas, Seunghwan Shin, M. Reynolds
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引用次数: 18

Abstract

In this paper we suggest a new class of RF energy harvesters, which we call “waveform aware harvesters”. In contrast to traditional rectenna designs, which are usually designed for high efficiency with continuous wave (CW) signals, waveform aware harvesters are RF to DC converters which are optimized for their performance with non-CW signals. We suggest that waveform aware harvesters may have significant advantages in ambient energy harvesting, where the available RF energy is in the form of communication waveforms of a variety of types. We present an initial proof-of-concept demonstration of a waveform aware harvester optimized for harvesting energy from 2.4 GHz Wi-Fi (802.11b/g) signals with a realistic traffic model. Under realistic traffic conditions, 802.11b/g client transmissions are bursty, with a high peak-to-average ratio and a low duty cycle. We demonstrate optimized recovery of harvested energy from single 802.11b/g transmission bursts on the order of 1 ms in duration. We present an expression for maximizing usable energy stored in an energy reservoir given a signal model and parameters of the energy-harvester circuit. In contrast to other work where assumptions of CW sources lead to the desirability of a large storage capacitor, our approach considers the existing communication signal model and optimizes capacitor size to maximize the stored usable energy for a short transmission burst.
波形感知环境射频能量收集
本文提出了一种新型的射频能量采集器,我们称之为“波形感知采集器”。传统的整流天线设计通常是为了处理连续波(CW)信号的高效率而设计的,而波形感知采集器则是针对处理非连续波信号的性能进行了优化的RF - DC转换器。我们认为波形感知收割机可能在环境能量收集方面具有显着优势,其中可用的射频能量以各种类型的通信波形的形式存在。我们提出了一种波形感知采集器的初步概念验证演示,该采集器针对2.4 GHz Wi-Fi (802.11b/g)信号进行了优化,并具有现实的流量模型。在实际流量条件下,802.11b/g客户端传输是突发的,具有高峰值平均比和低占空比。我们演示了从单个802.11b/g传输爆发中收集能量的优化恢复,持续时间约为1毫秒。在给定能量收集电路的信号模型和参数的情况下,给出了能量存储器中可用能量最大化的表达式。与其他工作中对连续波源的假设导致需要大型存储电容器相比,我们的方法考虑了现有的通信信号模型,并优化了电容器的尺寸,以最大限度地提高短传输突发存储的可用能量。
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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