利用啁啾波形进行无线能量传输,并为物联网网络提供联合子带选择和最大最小功率控制

IF 5.3 2区 计算机科学 Q1 TELECOMMUNICATIONS
Arijit Roy;Salil Kashyap;Ratnajit Bhattacharjee
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引用次数: 0

摘要

无线能量传输技术(WET)是在能量受限的无线网络中延长传感器工作时间的一种可行方法。特别是对于物联网(IoT)和机器对机器通信等低功耗应用,迄今为止,大多数现有研究都侧重于使用固定频率波形进行 WET。在本文中,我们研究了叠加啁啾波形在下行链路 (DL) WET 方面的潜力,这些波形通过正交子带从一个多天线接入点 (AP) 传到一组传感器,同时满足峰值功率约束。为此,我们首先提出了叠加啁啾波形的一般设计,并建立了优化 WET 所需的关键属性。我们利用阶次统计推导出基于 DL WET 的新型闭式分析表达式,该表达式基于叠加啁啾和固定频率波形的平均接收能量,而固定频率波形是根据每个传感器的估计信道增益为其独立选择的子带,我们还考虑了线性和非线性能量采集模型,评估了平均采集能量 (HE)。对于叠加啁啾和基于固定频率的 DL-WET,我们以闭合形式推导出最大-最小最优功率控制系数,以确保与接入点距离不同的传感器获得相同的能量。作为基准,我们提出了考虑完美信道知识的相应分析。通过我们的分析和数值结果,对于所考虑的设置,我们证明并阐明了基于啁啾的叠加 WET 在选定的子带和最大最小功率控制下,与由一组固定频率余弦信号组成的多正弦波形相比,平均 HE 性能提高了 40%,与固定频率波形相比,能量传输的工作范围扩大了约 17.5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wireless Energy Transfer Using Chirp Waveform With Joint Subband Selection and Max-Min Power Control for IoT Networks
Wireless energy transfer (WET) is a promising method to extend the operation time of sensors in energy-constrained wireless networks. Specially, for the low-power applications such as the Internet-of-Things (IoT) and machine-to-machine communications, most of the existing works have so far focused on using fixed-frequency waveforms for WET. In this paper, we investigate the potential of superposed chirp waveforms for downlink (DL) WET from a multi-antenna access point (AP) to a group of sensors over orthogonal subbands while satisfying the peak power constraint. To this end, we first propose the general design of superposed chirp waveforms and establish key properties required to optimize WET. We derive novel closed-form analytical expressions using order statistics for average received energy based on DL WET via superposed chirps and via fixed-frequency waveforms over subbands selected independently for each sensor based on their estimated channel gain, and evaluate average harvested energy (HE) considering both linear and nonlinear energy harvesting models. For both superposed chirps and fixed-frequency based DL-WET, we then derive max-min optimal power control coefficients in closed-form to ensure that the sensors placed at different distances from the AP receive the same amount of energy. As a benchmark, we present the corresponding analysis considering perfect channel knowledge. Through our analytical and numerical results, for the considered setup, we prove and elucidate that superposed chirp-based WET over select subbands and under max-min power control provides an improvement of 40% in average HE performance as compared to multisine waveforms consisting of a set of fixed-frequency cosine signals, and extends the operating range of energy transfer by about 17.5% over fixed-frequency waveforms.
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来源期刊
IEEE Transactions on Green Communications and Networking
IEEE Transactions on Green Communications and Networking Computer Science-Computer Networks and Communications
CiteScore
9.30
自引率
6.20%
发文量
181
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