Influence of anatomical geometry and fiber dispersion on Achilles tendon Mechanics : A finite element modelling approach
(2026) In Journal of Biomechanics 204.- Abstract
Tendons adapt their structure and mechanical behavior in response to mechanical loading, where mechanical stimuli, such as strain, are believed to play a pivotal role. Recent studies employing finite element modeling have provided detailed insights into the distribution of strain across tendon structures under various loading conditions. However, most researchers have adopted highly simplified geometries, which are unable to capture the inherent strain heterogeneity in tendons, thereby emphasizing the need for anatomically accurate models. The current study explores how both geometry and fiber orientation impact tendon strain heterogeneity using anatomically detailed finite element models of rat Achilles tendons. To achieve this,... (More)
Tendons adapt their structure and mechanical behavior in response to mechanical loading, where mechanical stimuli, such as strain, are believed to play a pivotal role. Recent studies employing finite element modeling have provided detailed insights into the distribution of strain across tendon structures under various loading conditions. However, most researchers have adopted highly simplified geometries, which are unable to capture the inherent strain heterogeneity in tendons, thereby emphasizing the need for anatomically accurate models. The current study explores how both geometry and fiber orientation impact tendon strain heterogeneity using anatomically detailed finite element models of rat Achilles tendons. To achieve this, phase-contrast enhanced synchrotron X-ray tomography images were used to obtain the tendon geometry and fiber orientation. Two different types of geometrical models, based on anatomical segmentation and simplified cylindrical with straight fiber distribution, were analyzed to understand the effect of geometry under cyclic loads. The force time responses, maximum principal strain distributions, and fluid velocities were analyzed to understand the effect of geometry. Similar parameters were analyzed for the anatomical model using straight fibers and dispersed fibers using both the average global and locally mapped fiber distribution to understand the effect of fiber orientation and dispersion. The results reveal that geometry and fiber orientation significantly affect the tendon's mechanical behavior. The anatomical models resulted in greater strain heterogeneity, with maximum principal strain varying from (0.070 ± 0.020) compared to the cylindrical model (0.058 ± 0.015), and including the dispersed fiber orientation (global and local) increased the velocity of the fluid pushed out from the tendon during loading. This may have implications for mechanobiological predictions of tendon function.
(Less)
- author
- Pydi, Yeswanth S.
LU
; Pierantoni, Maria
LU
; Gustafsson, Anna
LU
and Isaksson, Hanna
LU
- organization
-
- Biomechanics Group (research group)
- LTH Profile Area: Engineering Health
- Division for Biomedical Engineering
- LU Profile Area: Proactive Ageing
- LU Profile Area: Light and Materials
- LTH Profile Area: Nanoscience and Semiconductor Technology
- NanoLund: Centre for Nanoscience
- Building Bone Killing Bugs (research group)
- publishing date
- 2026-07
- type
- Contribution to journal
- publication status
- published
- subject
- keywords
- 3D fiber orientation analysis, Anatomical tendon model, Fiber-reinforced model, Finite element analysis, Poro-elasticity
- in
- Journal of Biomechanics
- volume
- 204
- article number
- 113358
- publisher
- Elsevier
- external identifiers
-
- pmid:42134257
- scopus:105038921502
- ISSN
- 0021-9290
- DOI
- 10.1016/j.jbiomech.2026.113358
- language
- English
- LU publication?
- yes
- id
- 336ca8a2-7bc1-4a9e-b82d-ca64c740ceb9
- date added to LUP
- 2026-07-10 13:16:23
- date last changed
- 2026-09-04 18:18:23
@article{336ca8a2-7bc1-4a9e-b82d-ca64c740ceb9,
abstract = {{<p>Tendons adapt their structure and mechanical behavior in response to mechanical loading, where mechanical stimuli, such as strain, are believed to play a pivotal role. Recent studies employing finite element modeling have provided detailed insights into the distribution of strain across tendon structures under various loading conditions. However, most researchers have adopted highly simplified geometries, which are unable to capture the inherent strain heterogeneity in tendons, thereby emphasizing the need for anatomically accurate models. The current study explores how both geometry and fiber orientation impact tendon strain heterogeneity using anatomically detailed finite element models of rat Achilles tendons. To achieve this, phase-contrast enhanced synchrotron X-ray tomography images were used to obtain the tendon geometry and fiber orientation. Two different types of geometrical models, based on anatomical segmentation and simplified cylindrical with straight fiber distribution, were analyzed to understand the effect of geometry under cyclic loads. The force time responses, maximum principal strain distributions, and fluid velocities were analyzed to understand the effect of geometry. Similar parameters were analyzed for the anatomical model using straight fibers and dispersed fibers using both the average global and locally mapped fiber distribution to understand the effect of fiber orientation and dispersion. The results reveal that geometry and fiber orientation significantly affect the tendon's mechanical behavior. The anatomical models resulted in greater strain heterogeneity, with maximum principal strain varying from (0.070 ± 0.020) compared to the cylindrical model (0.058 ± 0.015), and including the dispersed fiber orientation (global and local) increased the velocity of the fluid pushed out from the tendon during loading. This may have implications for mechanobiological predictions of tendon function.</p>}},
author = {{Pydi, Yeswanth S. and Pierantoni, Maria and Gustafsson, Anna and Isaksson, Hanna}},
issn = {{0021-9290}},
keywords = {{3D fiber orientation analysis; Anatomical tendon model; Fiber-reinforced model; Finite element analysis; Poro-elasticity}},
language = {{eng}},
publisher = {{Elsevier}},
series = {{Journal of Biomechanics}},
title = {{Influence of anatomical geometry and fiber dispersion on Achilles tendon Mechanics : A finite element modelling approach}},
url = {{http://dx.doi.org/10.1016/j.jbiomech.2026.113358}},
doi = {{10.1016/j.jbiomech.2026.113358}},
volume = {{204}},
year = {{2026}},
}