论文标题

基于位置的无线电力传输的初始访问物理较大的阵列

Location-based Initial Access for Wireless Power Transfer with Physically Large Arrays

论文作者

Deutschmann, Benjamin J. B., Wilding, Thomas, Larsson, Erik G., Witrisal, Klaus

论文摘要

射频(RF)无线电源传输(WPT)是6G用例的有前途的技术。它使无电池能量中性(EN)设备的大量但可持续的部署以前所未有的规模进行。对6G的最新研究正在探索直至THZ光谱的高工作频率,在该频谱中,具有较大光圈的天线阵列能够​​形成狭窄的“激光”梁。在低于10的GHz频率下,考虑在近距离阵列中工作的物理上较大的天线阵列。传输球形波前,功率可以集中在焦点而不是光束上,这允许有效且辐射安全的WPT。我们制定了一个包括镜头组件和弥漫性散射的多径通道模型,以在现实的室内场景中找到WPT功率预算。可以通过几何模型预测镜面成分。这用于同时通过多个光束传输电源,增加了可用的功率预算并扩大了初始访问距离。我们表明,利用这种“光束多样性”可以减少初始访问EN设备所需的褪色余量。

Radio frequency (RF) wireless power transfer (WPT) is a promising technology for 6G use cases. It enables a massive, yet sustainable deployment of batteryless energy neutral (EN) devices at unprecedented scale. Recent research on 6G is exploring high operating frequencies up to the THz spectrum, where antenna arrays with large apertures are capable of forming narrow, "laser-like" beams. At sub-10 GHz frequencies, physically large antenna arrays are considered that are operating in the array near field. Transmitting spherical wavefronts, power can be focused in a focal point rather than a beam, which allows for efficient and radiation-safe WPT. We formulate a multipath channel model comprising specular components and diffuse scattering to find the WPT power budget in a realistic indoor scenario. Specular components can be predicted by means of a geometric model. This is used to transmit power via multiple beams simultaneously, increasing the available power budget and expanding the initial access distance. We show that exploiting this "beam diversity" reduces the required fading margin for the initial access to EN devices.

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