非厄米链与等频谱调制定制无线电力传输

IF 5.9
Luyao Wan, Han Zhang, Xian Wu, Yang Xu, Yunhui Li, Yaping Yang, Hong Chen, Zhiwei Guo
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引用次数: 0

摘要

磁共振无线电力传输(WPT)已经成为近场电磁操作的关键技术,可以在从消费电子产品和植入式医疗设备到电动汽车的各种应用中实现无线能量传输。虽然近场耦合促进了这种范式转变,但它带来了固有的限制:耦合强度的指数衰减从根本上限制了传输距离到中短程,而复杂的电力传输路径(例如机械臂)需要以多米诺骨牌式阵列配置继电器线圈。然而,传统的多米诺骨牌架构存在明显的缺点,包括由于多线圈近场耦合导致的有害的频率分裂,负载下系统损耗加剧,以及固有的缺乏对能量传递的精确空间控制。为了克服这些限制,我们引入了一种基于一维非厄米链的定制WPT范式,该范式具有工程等谱调制。通过精确控制沿抛物线剖面的腔间耦合强度,我们获得了等间隔的特征值谱。至关重要的是,频率选择性激励可以在链内的预定位置实现确定性和定制化的能量定位。这种方法不仅为开发先进的WPT系统提供了一个新的平台,特别是用于同时多目标能量输送,而且还加深了对定制耦合和非厄米物理控制的复杂能量传递动力学的基本理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-Hermitian chains with iso-spectral modulation for customized wireless power transfer

Magnetic resonance wireless power transfer (WPT) has emerged as a pivotal technology for near-field electromagnetic manipulation, enabling wire-free energy delivery across diverse applications ranging from consumer electronics and implantable medical devices to electric vehicles. While near-field coupling facilitates this paradigm shift, it imposes inherent constraints: the exponential decay of coupling strength fundamentally limits transfer distance to short-to-mid ranges, and complex power delivery pathways—exemplified by robotic arms—necessitate relay coils configured in domino-like arrays. Conventional domino architectures, however, suffer from significant drawbacks including detrimental frequency splitting due to multi-coil near-field coupling, exacerbated system losses under load, and an inherent lack of precise spatial control over energy delivery. To overcome these limitations, we introduce a customized WPT paradigm based on a one-dimensional non-Hermitian chain with engineered iso-spectral modulation. Through precise control of inter-resonator coupling strengths following a parabolic profile, we achieve an equally spaced eigenvalue spectrum. Crucially, frequency-selective excitation enables deterministic and customized energy localization at predetermined sites within the chain. This approach not only provides a novel platform for developing advanced WPT systems, particularly for simultaneous multi-target energy delivery, but also deepens the fundamental understanding of complex energy transfer dynamics governed by tailored coupling and non-Hermitian physics.

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CiteScore
8.20
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