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Enabling Magnetic Beamforming in MIMO Wireless Power Transfer Using Reconfigurable Metasurface

机译:使用可重新配置的MEDasurface在MIMO无线电力传输中启用磁波束成形

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Wireless power transfer (WPT) has been widely used in IoT applications, such as mobile device charging, biomedical implants communication, and RFID field. Maximizing the power transfer efficiency (PTE) becomes one of the most crucial problems for designing the WPT systems. Magnetic induction (MI) beamforming has been proposed recently to maximize the PTE for the near field MIMO WPT systems. However, conventional magnetic beamforming in WPT systems usually requires accurate magnetic channel estimation, both amplitude and phase control of the charging source, which can not be achieved in an extreme environment. In this paper, we propose a novel magnetic induction beamforming scheme in MIMO WPT system using a reconfigurable metasurface. Instead of controlling the source currents or voltages, the reconfigurable metasurface can achieve near field beamforming only by varying the capacitor and resistance in specific coil array units. The beamforming is modeled as a discrete optimization problem and solved by using the Simulate Anneal (SA) method. Through the analytical and COMSOL simulation results, our proposed beamforming scheme can achieve approximately two times PTE of the conventional beamforming method in a 40 cm charging distance.
机译:无线电源传输(WPT)已广泛用于IOT应用,例如移动设备充电,生物医学植入物通信和RFID字段。最大化功率传输效率(PTE)成为设计WPT系统的最重要问题之一。最近提出了磁感应(MI)波束成形,以最大化近场MIMO WPT系统的PTE。然而,WPT系统中的传统磁波形形成通常需要精确的磁信道估计,充电源的幅度和相位控制,这在极端环境中不能实现。在本文中,我们使用可重新配置的元表面提出了MIMO WPT系统中的新型磁感应波束形成方案。代替通过控制源电流或电压,可以通过改变电容器和特定线圈阵列单元的电阻来实现近场波束成形。波束成形被建模为离散优化问题,并通过使用模拟退火(SA)方法来解决。通过分析和COMSOL仿真结果,我们所提出的波束成形方案可以在40cm充电距离中实现传统波束形成方法的大约两倍PTE。

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