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

Fuente: arXiv
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Main Authors: Deutschmann, Benjamin J. B., Wilding, Thomas, Larsson, Erik G., Witrisal, Klaus
Format: Preprint
Published: 2022
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author Deutschmann, Benjamin J. B.
Wilding, Thomas
Larsson, Erik G.
Witrisal, Klaus
author_facet Deutschmann, Benjamin J. B.
Wilding, Thomas
Larsson, Erik G.
Witrisal, Klaus
contents 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.
format Preprint
id arxiv_https___arxiv_org_abs_2202_10749
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Location-based Initial Access for Wireless Power Transfer with Physically Large Arrays
Deutschmann, Benjamin J. B.
Wilding, Thomas
Larsson, Erik G.
Witrisal, Klaus
Signal Processing
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.
title Location-based Initial Access for Wireless Power Transfer with Physically Large Arrays
topic Signal Processing
url https://arxiv.org/abs/2202.10749