Cargando…

Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications

The implementation of novel coaxial dipole antennas has been shown to be a satisfactory diagnostic platform for the prediction of orthopaedic bone fracture healing outcomes. These techniques require mechanical deflection of implanted metallic hardware (i.e., rods and plates), which, when loaded, pro...

Descripción completa

Detalles Bibliográficos
Autores principales: WOLYNSKI, JAKOB G., ILIĆ, MILAN M., NOTAROŠ, BRANISLAV M., LABUS, KEVIN M., PUTTLITZ, CHRISTIAN M., MCGILVRAY, KIRK C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9307137/
https://www.ncbi.nlm.nih.gov/pubmed/35873899
http://dx.doi.org/10.1109/access.2021.3137718
_version_ 1784752693468725248
author WOLYNSKI, JAKOB G.
ILIĆ, MILAN M.
NOTAROŠ, BRANISLAV M.
LABUS, KEVIN M.
PUTTLITZ, CHRISTIAN M.
MCGILVRAY, KIRK C.
author_facet WOLYNSKI, JAKOB G.
ILIĆ, MILAN M.
NOTAROŠ, BRANISLAV M.
LABUS, KEVIN M.
PUTTLITZ, CHRISTIAN M.
MCGILVRAY, KIRK C.
author_sort WOLYNSKI, JAKOB G.
collection PubMed
description The implementation of novel coaxial dipole antennas has been shown to be a satisfactory diagnostic platform for the prediction of orthopaedic bone fracture healing outcomes. These techniques require mechanical deflection of implanted metallic hardware (i.e., rods and plates), which, when loaded, produce measurable changes in the resonant frequency of the adjacent antenna. Despite promising initial results, the coiled coaxial antenna design is limited by large antenna sizes and nonlinearity in the resonant frequency data. The purpose of this study was to develop two Vivaldi antennas (a.k.a., “standard” and “miniaturized”) to address these challenges. Antenna behaviors were first computationally modeled prior to prototype fabrication. In subsequent benchtop tests, metallic plate segments were displaced from the prototype antennas via precision linear actuator while measuring resultant change in resonant frequency. Close agreement was observed between computational and benchtop results, where antennas were highly sensitive to small displacements of the metallic hardware, with sensitivity decreasing nonlinearly with increasing distance. Greater sensitivity was observed for the miniaturized design for both stainless steel and titanium implants. Additionally, these data demonstrated that by taking resonant frequency data during implant displacement and then again during antenna displacement from the same sample, via linear actuators, that “antenna calibration procedures” could be used to enable a clinically relevant quantification of fracture stiffness from the raw resonant frequency data. These improvements mitigate diagnostic challenges associated with nonlinear resonant frequency response seen in previous antenna designs.
format Online
Article
Text
id pubmed-9307137
institution National Center for Biotechnology Information
language English
publishDate 2022
record_format MEDLINE/PubMed
spelling pubmed-93071372022-07-22 Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications WOLYNSKI, JAKOB G. ILIĆ, MILAN M. NOTAROŠ, BRANISLAV M. LABUS, KEVIN M. PUTTLITZ, CHRISTIAN M. MCGILVRAY, KIRK C. IEEE Access Article The implementation of novel coaxial dipole antennas has been shown to be a satisfactory diagnostic platform for the prediction of orthopaedic bone fracture healing outcomes. These techniques require mechanical deflection of implanted metallic hardware (i.e., rods and plates), which, when loaded, produce measurable changes in the resonant frequency of the adjacent antenna. Despite promising initial results, the coiled coaxial antenna design is limited by large antenna sizes and nonlinearity in the resonant frequency data. The purpose of this study was to develop two Vivaldi antennas (a.k.a., “standard” and “miniaturized”) to address these challenges. Antenna behaviors were first computationally modeled prior to prototype fabrication. In subsequent benchtop tests, metallic plate segments were displaced from the prototype antennas via precision linear actuator while measuring resultant change in resonant frequency. Close agreement was observed between computational and benchtop results, where antennas were highly sensitive to small displacements of the metallic hardware, with sensitivity decreasing nonlinearly with increasing distance. Greater sensitivity was observed for the miniaturized design for both stainless steel and titanium implants. Additionally, these data demonstrated that by taking resonant frequency data during implant displacement and then again during antenna displacement from the same sample, via linear actuators, that “antenna calibration procedures” could be used to enable a clinically relevant quantification of fracture stiffness from the raw resonant frequency data. These improvements mitigate diagnostic challenges associated with nonlinear resonant frequency response seen in previous antenna designs. 2022 2021-12-23 /pmc/articles/PMC9307137/ /pubmed/35873899 http://dx.doi.org/10.1109/access.2021.3137718 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 License. For more information, see https://creativecommons.org/licenses/by/4.0/
spellingShingle Article
WOLYNSKI, JAKOB G.
ILIĆ, MILAN M.
NOTAROŠ, BRANISLAV M.
LABUS, KEVIN M.
PUTTLITZ, CHRISTIAN M.
MCGILVRAY, KIRK C.
Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications
title Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications
title_full Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications
title_fullStr Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications
title_full_unstemmed Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications
title_short Vivaldi Antennas for Contactless Sensing of Implant Deflections and Stiffness for Orthopaedic Applications
title_sort vivaldi antennas for contactless sensing of implant deflections and stiffness for orthopaedic applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9307137/
https://www.ncbi.nlm.nih.gov/pubmed/35873899
http://dx.doi.org/10.1109/access.2021.3137718
work_keys_str_mv AT wolynskijakobg vivaldiantennasforcontactlesssensingofimplantdeflectionsandstiffnessfororthopaedicapplications
AT ilicmilanm vivaldiantennasforcontactlesssensingofimplantdeflectionsandstiffnessfororthopaedicapplications
AT notarosbranislavm vivaldiantennasforcontactlesssensingofimplantdeflectionsandstiffnessfororthopaedicapplications
AT labuskevinm vivaldiantennasforcontactlesssensingofimplantdeflectionsandstiffnessfororthopaedicapplications
AT puttlitzchristianm vivaldiantennasforcontactlesssensingofimplantdeflectionsandstiffnessfororthopaedicapplications
AT mcgilvraykirkc vivaldiantennasforcontactlesssensingofimplantdeflectionsandstiffnessfororthopaedicapplications