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Radio Frequency Energy Harvesting and Data Rate Optimization in Wireless Information and Power Transfer Sensor Networks

机译:无线信息和电力传输传感器网络中的射频能量收集和数据速率优化

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摘要

Wireless energy harvesting using radio-frequency (RF) energy is a growing area of research to power in- and/or on-body sensors. However, solutions currently proposed in literature are hard to realize in a dynamic environment representative of the real world. This paper proposes the use of multiple intended RF sources with a harvest-then-transmit protocol to maximize the harvested energy and optimize data rate in wireless information and power transfer sensor networks. The problem of optimizing system timings to simultaneously maximize the harvested energy and network-level achievable data rate is tackled using optimization theory in concert with an RF source selection algorithm for the energy harvesting sensor nodes. With the methods proposed in this paper, it was found that the system achievable data rate and throughput fairness when energy is harvested from up to 5 RF sources can increase by up to 87% and 50%, respectively, compared with solutions when energy is harvested from one source. The proposed algorithm can also increase the system achievable data rate and throughput fairness by up to 72% and 22%, respectively, compared with a system without the algorithm. The findings are significant for designing and realizing future generation sensors powered by energy from multiple intended RF sources in the real world.
机译:使用射频(RF)能量的无线能量收集是为体内和/或体内传感器供电的研究领域。但是,目前在文献中提出的解决方案很难在代表现实世界的动态环境中实现。本文提出了将多个预定的射频源与“先收后发”协议一起使用,以在无线信息和功率传输传感器网络中最大化收集的能量并优化数据速率。使用优化理论,结合用于能量收集传感器节点的RF源选择算法,解决了优化系统时序以同时最大化收集的能量和网络级可达到的数据速率的问题。通过本文提出的方法,发现与从能量收集时的解决方案相比,从多达5个射频源收集能量时,系统可达到的数据速率和吞吐量公平性分别可以提高多达87%和50%。从一个来源。与不使用该算法的系统相比,所提出的算法还可以分别将系统可达到的数据速率和吞吐量公平性分别提高72%和22%。这些发现对于设计和实现由现实世界中多个目标射频源的能量驱动的下一代传感器具有重要意义。

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