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The Influence of Anterior Cruciate Ligament Matrix Mechanical Properties on Simulated Whole-Knee Biomechanics
- Source :
- J Biomech Eng
- Publication Year :
- 2020
- Publisher :
- American Society of Mechanical Engineers, 2020.
-
Abstract
- Knee finite element (FE) models are used to study tissue deformation in response to complex loads. Typically, ligaments are modeled using transversely isotropic, hyperelastic material models fitted to tension data along the predominant fiber direction (longitudinal) and, less commonly, to tension data orthogonal to the fiber direction (transverse). Currently, the shear and bulk responses of the anterior cruciate ligament (ACL) are not fitted to experimental data. In this study, a newly proposed material model was fitted to longitudinal tension, transverse tension, and shear experimental data. The matrix transverse tensile, shear, and bulk stiffnesses were then varied independently to determine the impact of each property on knee kinematics and tissue deformation in a whole-knee FE model. The range of values for each parameter was chosen based on published FE studies of the knee. For a knee at full extension under 134 N anterior tibial force (ATF), increasing matrix transverse tensile stiffness, shear stiffness, or bulk stiffness decreased anterior tibial translation (ATT), ACL longitudinal strain, and ACL shear strain. For a knee under 134 N ATF and 1600 N compression, changing the ACL matrix mechanical properties caused variations in ATT and thus changed cartilage deformation contours by changing the point of contact between the femoral and the tibial cartilage. These findings indicate that material models for the ACL must describe matrix material properties to best predict the in vivo response to applied loads.
- Subjects :
- musculoskeletal diseases
Materials science
Knee Joint
Anterior cruciate ligament
0206 medical engineering
Biomedical Engineering
02 engineering and technology
03 medical and health sciences
0302 clinical medicine
Transverse isotropy
Physiology (medical)
Shear stress
medicine
Composite material
Anterior Cruciate Ligament
030222 orthopedics
Tibia
Tension (physics)
Stiffness
Compression (physics)
musculoskeletal system
020601 biomedical engineering
Research Papers
Biomechanical Phenomena
medicine.anatomical_structure
Hyperelastic material
medicine.symptom
Deformation (engineering)
human activities
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- J Biomech Eng
- Accession number :
- edsair.doi.dedup.....2ae66d443d6a22e922f404d51bf5e5c0