基于智能反射表面辅助毫米波功率信标的无线电力传输

Wei Meng, Xinxin He, Yuanyang Li, Huarui Wu, Changchuan Yin
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引用次数: 4

摘要

无线电力传输(WPT)可以通过电磁波为分布式设备提供持续的电力供应。毫米波(mmWave)波束形成的窄波束可以集中发射功率,大大提高WPT的能量利用率。然而,毫米波传播容易受到阻塞和遭受更高的路径损耗,导致器件在无视线(NLOS)状态下收获的低功率强度。本文提出了一种基于智能反射面(IRS)的无线传感器网络分段定向WPT方案,其中功率信标(PB)将能量传输到选定充电扇区的设备,IRS部署在每个扇区,以获得较高的无源波束形成增益,并提供额外的有效反射路径,从而大幅提高WPT效率。我们的目标是通过共同优化PB处的发射预编码器和IRS处的反射相移来最大化设备接收的加权和功率,并受到每个设备各自能量收集的约束。为了解决这一非凸问题,提出了一种高效的次优解求解算法。仿真结果表明,与两种基准方法相比,该方案的加权和功率分别提高了15%和26%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wireless Power Transfer via Intelligent Reflecting Surface-Assisted Millimeter Wave Power Beacons
Wireless power transfer (WPT) can provide sustainable power supply to the distributed devices via electromagnetic (EM) waves. The narrow beams formed by millimeter wave (mmWave) beam can concentrate the transmission power and greatly improve the energy efficiency of WPT. However, the mmWave propagation is susceptible to blockage and suffers higher path-loss, resulting in low power intensity harvested by the devices in no line of sight (NLOS) state. In this paper, we propose a sectorized directional WPT scheme for wireless sensor network (WSN) assisted by the emerging intelligent reflecting surface (IRS), where power beacon (PB) transfers energy to the devices in selected charging sectors, and the IRS is deployed in each sector to achieve high passive beamforming gain and provide additional effective reflection paths to enhance WPT efficiency drastically. We aim to maximize the weighted sum-power received by devices via jointly optimizing the transmit precoders at the PB and reflect phase shifts at the IRS, subject to the individual energy harvesting constraints of each device. To solve this non-convex problem, an efficient algorithm to find a sub-optimal solution is proposed. Simulation results show that the proposed scheme can increase the weighted sum-power by 15% and 26% compared to the two baseline methods.
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