Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators

This paper introduces a novel printed-circuit-board (PCB) resonator for 13.56MHz wireless power transfer (WPT) applications, offering a significant advancement by eliminating the need for additional discrete capacitors, thus facilitating high-frequency energy transmission with high Q values. An appr...

Full description

Saved in:
Bibliographic Details
Main Author: Shang, Shuye
Other Authors: Yun Yang
Format: Thesis-Master by Coursework
Language:English
Published: Nanyang Technological University 2024
Subjects:
Online Access:https://hdl.handle.net/10356/175950
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-175950
record_format dspace
spelling sg-ntu-dr.10356-1759502024-05-10T15:49:51Z Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators Shang, Shuye Yun Yang School of Electrical and Electronic Engineering yun.yang@ntu.edu.sg Engineering Wireless power transfer This paper introduces a novel printed-circuit-board (PCB) resonator for 13.56MHz wireless power transfer (WPT) applications, offering a significant advancement by eliminating the need for additional discrete capacitors, thus facilitating high-frequency energy transmission with high Q values. An appropriate equivalent circuit model is developed to optimize the PCB-based coil, with a comparative experimental study highlighting its performance against traditional circular planar helical coils. By adopting square polygonal configurations, the study refines the equivalent model with accuracy, supported by simulation and experimental validation. Addressing the design challenges of self-resonant PCB resonators in high-frequency WPT systems, particularly achieving targeted self-resonant frequencies (SRF) and high quality factors (Q) amid complex electromagnetic interactions, a reference-point-directed optimization approach utilizing unsupervised feature embedding is proposed. This method significantly enhances the Q factor by 122.6% over manual designs and achieves precise SRFs with reduced reliance on extensive data and computational resources, as demonstrated through design cases and hardware experiments. This streamlined approach marks a progress in the efficiency and design methodology of PCB resonators for WPT applications. Master's degree 2024-05-10T01:29:06Z 2024-05-10T01:29:06Z 2024 Thesis-Master by Coursework Shang, S. (2024). Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators. Master's thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/175950 https://hdl.handle.net/10356/175950 en application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
Wireless power transfer
spellingShingle Engineering
Wireless power transfer
Shang, Shuye
Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators
description This paper introduces a novel printed-circuit-board (PCB) resonator for 13.56MHz wireless power transfer (WPT) applications, offering a significant advancement by eliminating the need for additional discrete capacitors, thus facilitating high-frequency energy transmission with high Q values. An appropriate equivalent circuit model is developed to optimize the PCB-based coil, with a comparative experimental study highlighting its performance against traditional circular planar helical coils. By adopting square polygonal configurations, the study refines the equivalent model with accuracy, supported by simulation and experimental validation. Addressing the design challenges of self-resonant PCB resonators in high-frequency WPT systems, particularly achieving targeted self-resonant frequencies (SRF) and high quality factors (Q) amid complex electromagnetic interactions, a reference-point-directed optimization approach utilizing unsupervised feature embedding is proposed. This method significantly enhances the Q factor by 122.6% over manual designs and achieves precise SRFs with reduced reliance on extensive data and computational resources, as demonstrated through design cases and hardware experiments. This streamlined approach marks a progress in the efficiency and design methodology of PCB resonators for WPT applications.
author2 Yun Yang
author_facet Yun Yang
Shang, Shuye
format Thesis-Master by Coursework
author Shang, Shuye
author_sort Shang, Shuye
title Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators
title_short Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators
title_full Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators
title_fullStr Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators
title_full_unstemmed Design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators
title_sort design and modeling of high-frequency printed circuit board-based inductive type wireless power resonators
publisher Nanyang Technological University
publishDate 2024
url https://hdl.handle.net/10356/175950
_version_ 1800916100738711552