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使用实际组件评估能量收集和唤醒无线电辅助场景中的机器对机器通信。

M2M Communication Assessment in Energy-Harvesting and Wake-Up Radio Assisted Scenarios Using Practical Components.

机构信息

Lab. of Electronics and Communications Engineering, Tampere University of Technology, FI-33720 Tampere, Finland.

205 Dreese Laboratory, Department of Electrical and Computer Engineering, The Ohio State University, 2015 Neil Avenue, Columbus, OH 43210-1272, USA.

出版信息

Sensors (Basel). 2018 Nov 16;18(11):3992. doi: 10.3390/s18113992.

Abstract

Techniques for wireless energy harvesting (WEH) are emerging as a fascinating set of solutions to extend the lifetime of energy-constrained wireless networks, and are commonly regarded as a key functional technique for almost perpetual communications. For example, with WEH technology, wireless devices are able to harvest energy from different light sources or Radio Frequency (RF) signals broadcast by ambient or dedicated wireless transmitters to support their operation and communications capabilities. WEH technology will have increasingly wider range of use in upcoming applications such as wireless sensor networks, Machine-to-Machine (M2M) communications, and the Internet of Things. In this paper, the usability and fundamental limits of joint RF and solar cell or photovoltaic harvesting based M2M communication systems are studied and presented. The derived theoretical bounds are in essence based on the Shannon capacity theorem, combined with selected propagation loss models, assumed additional link nonidealities, diversity processing, as well as the given energy harvesting and storage capabilities. Fundamental performance limits and available capacity of the communicating link are derived and analyzed, together with extensive numerical results evaluated in different practical scenarios, including realistic implementation losses and state-of-the-art printed supercapacitor performance figures with voltage doubler-based voltage regulator. In particular, low power sensor type communication applications using passive and semi-passive wake-up radio (WuR) are addressed in the study. The presented analysis principles and results establish clear feasibility regions and performance bounds for wireless energy harvesting based low rate M2M communications in the future IoT networks.

摘要

无线能量收集 (WEH) 技术作为一种延长能量受限无线网络寿命的迷人解决方案,正逐渐受到关注,被普遍认为是几乎永久通信的关键功能技术。例如,利用 WEH 技术,无线设备能够从不同的光源或环境或专用无线发射器广播的射频 (RF) 信号中收集能量,以支持其运行和通信能力。WEH 技术将在即将到来的应用中得到越来越广泛的应用,如无线传感器网络、机器对机器 (M2M) 通信和物联网。在本文中,研究并提出了基于联合 RF 和太阳能电池或光伏收集的 M2M 通信系统的可用性和基本限制。所得到的理论边界本质上基于香农容量定理,结合了选定的传播损耗模型、假设的附加链路非理想性、分集处理以及给定的能量收集和存储能力。推导并分析了通信链路的基本性能限制和可用容量,以及在不同实际场景中评估的广泛数值结果,包括现实实现损耗和基于电压倍增器的电压调节器的最新印刷超级电容器性能。特别地,该研究解决了使用无源和半无源唤醒无线电 (WuR) 的低功率传感器类型通信应用。所提出的分析原理和结果为未来物联网网络中基于无线能量收集的低速率 M2M 通信建立了明确的可行性区域和性能边界。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e3c/6263911/64fe0135561b/sensors-18-03992-g001.jpg

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