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Joint Energy Harvesting and Communication Analysis for Perpetual Wireless Nanosensor Networks in the Terahertz Band

机译:太赫兹频段永久无线纳米传感器网络的联合能量收集和通信分析

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Wireless nanosensor networks (WNSNs) consist of nanosized communicating devices, which can detect and measure new types of events at the nanoscale. WNSNs are the enabling technology for unique applications such as intrabody drug delivery systems or surveillance networks for chemical attack prevention. One of the major bottlenecks in WNSNs is posed by the very limited energy that can be stored in a nanosensor mote in contrast to the energy that is required by the device to communicate. Recently, novel energy harvesting mechanisms have been proposed to replenish the energy stored in nanodevices. With these mechanisms, WNSNs can overcome their energy bottleneck and even have infinite lifetime (perpetual WNSNs), provided that the energy harvesting and consumption processes are jointly designed. In this paper, an energy model for self-powered nanosensor motes is developed, which successfully captures the correlation between the energy harvesting and the energy consumption processes. The energy harvesting process is realized by means of a piezoelectric nanogenerator, for which a new circuital model is developed that can accurately reproduce existing experimental data. The energy consumption process is due to the communication among nanosensor motes in the terahertz band (0.1-10 THz). The proposed energy model captures the dynamic network behavior by means of a probabilistic analysis of the total network traffic and the multiuser interference. A mathematical framework is developed to obtain the probability distribution of the nanosensor mote energy and to investigate the end-to-end successful packet delivery probability, the end-to-end packet delay, and the achievable throughput of WNSNs. Nanosensor motes have not been built yet and, thus, the development of an analytical energy model is a fundamental step toward the design of WNSNs architectures and protocols.
机译:无线纳米传感器网络(WNSN)由纳米级通信设备组成,可以在纳米级检测和测量新型事件。 WNSN是用于独特应用程序的使能技术,例如体内药物输送系统或用于预防化学攻击的监视网络。与设备通信所需的能量相比,WNSN的主要瓶颈之一是可以存储在纳米传感器微粒中的能量非常有限。最近,已经提出了新颖的能量收集机制来补充存储在纳米器件中的能量。通过这些机制,只要能量收集和消耗过程是共同设计的,WNSN可以克服其能量瓶颈,甚至具有无限的寿命(永久性WNSN)。在本文中,建立了自供电纳米传感器微粒的能量模型,该模型成功地捕获了能量收集与能量消耗过程之间的相关性。能量收集过程是通过压电纳米发电机实现的,为此开发了一种新的电路模型,可以精确地复制现有的实验数据。能量消耗过程是由于太赫兹频段(0.1-10 THz)中纳米传感器微粒之间的通信所致。所提出的能量模型通过对总网络流量和多用户干扰的概率分析来捕获动态网络行为。建立了数学框架以获得纳米传感器微粒能量的概率分布,并研究端对端成功的数据包传递概率,端对端数据包延迟和WNSN的可实现吞吐量。纳米传感器的微粒尚未建立,因此,分析能量模型的开发是迈向WNSNs体系结构和协议设计的基本步骤。

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