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Hauptverfasser: Hughes, Robert R., Treisman, James, Arroyo, Alexis Hernandez, Mulholland, Anthony J.
Format: Preprint
Veröffentlicht: 2024
Schlagworte:
Online-Zugang:https://arxiv.org/abs/2406.02312
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author Hughes, Robert R.
Treisman, James
Arroyo, Alexis Hernandez
Mulholland, Anthony J.
author_facet Hughes, Robert R.
Treisman, James
Arroyo, Alexis Hernandez
Mulholland, Anthony J.
contents Magnetic resonance coupling (MRC) is widely used for wireless power transfer (WPT) applications, but little work has explored how MRC phenomena could be exploited for sensing applications. This paper introduces, validates and evaluates the unique multi-resonant phenomena predicted by circuit theory for over-coupled inductive arrays, and presents eigen-formulae for calculating resonant frequencies and voltage modes within passively excited arrays. Finite-element simulations and experimental results demonstrate the validity of the multi-modal resonant principles for strongly-coupled inductor arrays. The results confirm the distinctive multi-modal resonant frequencies these arrays exhibit, corresponding to the specific magnetic excitation "modes" (comparable to vibrational modes in multi-degree-of-freedom systems). The theoretical and finite element models presented offer a framework for designing and optimizing novel inductive sensing arrays, capitalizing on the unique resonant effects of over-coupling and exploiting their potential magnetic field shaping.
format Preprint
id arxiv_https___arxiv_org_abs_2406_02312
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Multimodal Resonance in Strongly Coupled Inductor Arrays
Hughes, Robert R.
Treisman, James
Arroyo, Alexis Hernandez
Mulholland, Anthony J.
Systems and Control
Applied Physics
Magnetic resonance coupling (MRC) is widely used for wireless power transfer (WPT) applications, but little work has explored how MRC phenomena could be exploited for sensing applications. This paper introduces, validates and evaluates the unique multi-resonant phenomena predicted by circuit theory for over-coupled inductive arrays, and presents eigen-formulae for calculating resonant frequencies and voltage modes within passively excited arrays. Finite-element simulations and experimental results demonstrate the validity of the multi-modal resonant principles for strongly-coupled inductor arrays. The results confirm the distinctive multi-modal resonant frequencies these arrays exhibit, corresponding to the specific magnetic excitation "modes" (comparable to vibrational modes in multi-degree-of-freedom systems). The theoretical and finite element models presented offer a framework for designing and optimizing novel inductive sensing arrays, capitalizing on the unique resonant effects of over-coupling and exploiting their potential magnetic field shaping.
title Multimodal Resonance in Strongly Coupled Inductor Arrays
topic Systems and Control
Applied Physics
url https://arxiv.org/abs/2406.02312