ID | 67597 |
FullText URL | |
Author |
Enomoto, Shota
Institute for Promotion of Education and Campus Life, Okayama University
Oda, Toshiaki
Graduate School of Education, Hyogo University of Teacher Education
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Abstract | We investigated the influence of Achilles tendon (AT) geometry on local-strain magnitude and distribution during loading, using finite element analysis. We calculated the following eight AT parameters for 18 healthy men: thickness and width of the most distal part, minimum cross-sectional area (mCSA), and most proximal part; length; and position of the mCSA. To investigate the effect of AT geometry on the magnitude and distribution of local strain, we created three-dimensional numerical models by changing the AT parameter values for every one standard deviation (SD) in the range of ±2 SD. A 4000 N lengthening force was applied to the proximal surface of all the models. The mean first principal strain (FPS) was determined every 3% of the length. The highest FPS in each model was mainly observed in the proximal regions; the 86–89% site (the most proximal site was set at 100%) had the highest number of models with the highest FPS (nine models). The highest FPS was observed in the model with a distal thickness of −2 SD, which was 27.1% higher than that of the standard model observed in the 2–5% site. Therefore, the AT geometry influences local-strain magnitude and distribution during loading.
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Keywords | computational model
Mooney-Rivlin model
soft tissue
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Published Date | 2023-12-04
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Publication Title |
Biomechanics
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Volume | volume3
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Issue | issue4
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Publisher | MDPI
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Start Page | 583
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End Page | 595
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ISSN | 2673-7078
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Content Type |
Journal Article
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language |
English
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OAI-PMH Set |
岡山大学
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Copyright Holders | © 2023 by the authors.
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File Version | publisher
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DOI | |
Web of Science KeyUT | |
Related Url | isVersionOf https://doi.org/10.3390/biomechanics3040047
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License | https://creativecommons.org/licenses/by/4.0/
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Citation | Enomoto, S.; Oda, T. Estimation of the Effects of Achilles Tendon Geometry on the Magnitude and Distribution of Local Strain: A Finite Element Analysis. Biomechanics 2023, 3, 583-595. https://doi.org/10.3390/biomechanics3040047
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Funder Name |
Japan Society for the Promotion of Science
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助成番号 | JP 22K17719
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