一种用于增强低频无线电力传输应用的电子可重构磁超表面

IF 6.9 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Martina Falchi;Angelica Masi;Pierpaolo Usai;Agostino Monorchio;Danilo Brizi
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引用次数: 0

摘要

谐振感应无线电力传输(WPT)为向消费者、工业和医疗设备供电提供了一种实用的解决方案。然而,如果人们对磁场分布的动态和任意控制感兴趣,传统的WPT系统面临着严重的局限性。因此,我们的论文探讨了用于低频WPT应用的电子可重构5×5磁超表面的设计和实现,工作频率为3 MHz。可重构阵列是由在其近场区域工作的谐振发射线圈激发的。通过分析方法,可以任意驱动超表面操作,获得单元电流分布,从而最佳地重塑所需应用的磁场。此外,该方法还可以精确测定每个单元胞的容性负载,从而有效地合成超表面响应。然后,通过在每个单元内集成变容二极管来完成可重构过程,根据分析方法输出提供跨元表面电流模式的实时控制。最后,给出了一个制造原型的数值模拟和实验测量,充分展示了该系统在任意配置之间有效切换的能力,既可以将磁场集中在特定区域,也可以产生均匀分布。这种动态适应性解决了WPT中重要的挑战,例如减少对齐灵敏度和距离上的效率损失,同时增强了灵活性、可靠性和安全性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Electronically Reconfigurable Magnetic Metasurface for Enhanced Low-Frequency Wireless Power Transfer Applications
Resonant inductive Wireless Power Transfer (WPT) offers a practical solution for supplying energy to consumer, industrial and medical devices. However, conventional WPT systems face severe limitations if one is interested to the dynamic and arbitrary control of the magnetic field distribution. Consequently, our paper explores the design and implementation of an electronically reconfigurable 5×5 magnetic metasurface for low-frequency WPT applications, operating at 3 MHz. The reconfigurable array is excited by a resonant transmitting coil operating in its near-field region. Through an analytical approach, the metasurface operation can be arbitrarily driven, obtaining the unit-cells current distribution which optimally reshapes the magnetic field for a desired application. In addition, the method also enables the precise determination of capacitive loads of each unit-cell for effectively synthetizing the metasurface response. Then, the reconfigurability process is accomplished by integrating varactor diodes within each unit-cell, providing real-time control of the currents pattern across the metasurface according to the analytical approach outputs. Finally, numerical simulations and experimental measurements on a fabricated prototype are presented, fully demonstrating the system's capability to efficiently switch between arbitrary configurations, either concentrating the magnetic field in specific areas or creating a uniform distribution. This dynamic adaptability addresses important challenges in WPT, such as reduction in alignment sensitivity and efficiency loss over distance, with enhanced flexibility, reliability, and safety.
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来源期刊
CiteScore
10.70
自引率
0.00%
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审稿时长
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