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Stress distribution of cementless stems with unique flanges in a rectangular cross-section: thermoelastic stress imaging study
Objective: In this study, thermoelastic stress analysis was conducted to clarify the surface stress distribution of a femur in which a BiCONTACT E stem was inserted. The contact sites between the stem and femur were examined to investigate the association with the range of stress distribution. Mater...
Autores principales: | , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Japanese Association of Rural Medicine
2021
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8016676/ https://www.ncbi.nlm.nih.gov/pubmed/33833833 http://dx.doi.org/10.2185/jrm.2020-058 |
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author | Takehashi, Hironori Nishino, Tomofumi Mishima, Hajime Wada, Hiroshi Yamazaki, Masashi Hyodo, Koji |
author_facet | Takehashi, Hironori Nishino, Tomofumi Mishima, Hajime Wada, Hiroshi Yamazaki, Masashi Hyodo, Koji |
author_sort | Takehashi, Hironori |
collection | PubMed |
description | Objective: In this study, thermoelastic stress analysis was conducted to clarify the surface stress distribution of a femur in which a BiCONTACT E stem was inserted. The contact sites between the stem and femur were examined to investigate the association with the range of stress distribution. Materials and Methods: BiCONTACT E was set up using two synthetic femurs that mimic the morphology and mechanical properties of living bone. Preoperative planning was performed using three-dimensional imaging software. The synthetic bone was placed in a sample holder. After the stem was implanted into the synthetic bone, computed tomography imaging was performed. The contact sites between the stem and the cortical part of the synthetic bone were examined using the imaging software. Subsequently, thermoelastic stress measurements were performed on the sample. Results: The results of thermoelastic stress analysis indicated a minimum change in the sum of principal stresses [Δ (σ(1)+σ(2))] on the medial side and a maximum change in the sum of principal stresses on the lateral side. Thus, no minimum change was observed in the sum of the principal stresses at the maximum proximal part. It is reasonable to assume that the use of a cementless stem can inevitably lead to bone atrophy in the proximal part of the femur. The contact sites between the stem and femur were also investigated, and the results of the study clearly and quantitatively demonstrated the correlation of the contact sites with a range of stress distributions. Conclusion: The surface stress distribution of a femur, in which a BiCONTACT E stem was inserted, was clarified. The contact sites between the stem and femur were also investigated. Furthermore, the correlation between these results and clinical bone response was investigated in this study. |
format | Online Article Text |
id | pubmed-8016676 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | The Japanese Association of Rural Medicine |
record_format | MEDLINE/PubMed |
spelling | pubmed-80166762021-04-07 Stress distribution of cementless stems with unique flanges in a rectangular cross-section: thermoelastic stress imaging study Takehashi, Hironori Nishino, Tomofumi Mishima, Hajime Wada, Hiroshi Yamazaki, Masashi Hyodo, Koji J Rural Med Original Article Objective: In this study, thermoelastic stress analysis was conducted to clarify the surface stress distribution of a femur in which a BiCONTACT E stem was inserted. The contact sites between the stem and femur were examined to investigate the association with the range of stress distribution. Materials and Methods: BiCONTACT E was set up using two synthetic femurs that mimic the morphology and mechanical properties of living bone. Preoperative planning was performed using three-dimensional imaging software. The synthetic bone was placed in a sample holder. After the stem was implanted into the synthetic bone, computed tomography imaging was performed. The contact sites between the stem and the cortical part of the synthetic bone were examined using the imaging software. Subsequently, thermoelastic stress measurements were performed on the sample. Results: The results of thermoelastic stress analysis indicated a minimum change in the sum of principal stresses [Δ (σ(1)+σ(2))] on the medial side and a maximum change in the sum of principal stresses on the lateral side. Thus, no minimum change was observed in the sum of the principal stresses at the maximum proximal part. It is reasonable to assume that the use of a cementless stem can inevitably lead to bone atrophy in the proximal part of the femur. The contact sites between the stem and femur were also investigated, and the results of the study clearly and quantitatively demonstrated the correlation of the contact sites with a range of stress distributions. Conclusion: The surface stress distribution of a femur, in which a BiCONTACT E stem was inserted, was clarified. The contact sites between the stem and femur were also investigated. Furthermore, the correlation between these results and clinical bone response was investigated in this study. The Japanese Association of Rural Medicine 2021-04-01 2021-04 /pmc/articles/PMC8016676/ /pubmed/33833833 http://dx.doi.org/10.2185/jrm.2020-058 Text en ©2021 The Japanese Association of Rural Medicine This is an open-access article distributed under the terms of the Creative Commons Attribution Non-Commercial No Derivatives (by-nc-nd) License. (CC-BY-NC-ND 4.0: http://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Original Article Takehashi, Hironori Nishino, Tomofumi Mishima, Hajime Wada, Hiroshi Yamazaki, Masashi Hyodo, Koji Stress distribution of cementless stems with unique flanges in a rectangular cross-section: thermoelastic stress imaging study |
title | Stress distribution of cementless stems with unique flanges in a rectangular
cross-section: thermoelastic stress imaging study |
title_full | Stress distribution of cementless stems with unique flanges in a rectangular
cross-section: thermoelastic stress imaging study |
title_fullStr | Stress distribution of cementless stems with unique flanges in a rectangular
cross-section: thermoelastic stress imaging study |
title_full_unstemmed | Stress distribution of cementless stems with unique flanges in a rectangular
cross-section: thermoelastic stress imaging study |
title_short | Stress distribution of cementless stems with unique flanges in a rectangular
cross-section: thermoelastic stress imaging study |
title_sort | stress distribution of cementless stems with unique flanges in a rectangular
cross-section: thermoelastic stress imaging study |
topic | Original Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8016676/ https://www.ncbi.nlm.nih.gov/pubmed/33833833 http://dx.doi.org/10.2185/jrm.2020-058 |
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