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Assessment of compressive failure process of cortical bone materials using damage-based model
Theng Pin Ng1, S S R Koloor1, J R P Djuansjah1
1Faculty of Mechanical Engineering, University Teknologi Malaysia, 81310 Skudai, Johor, Malaysia.
Journal of the Mechanical Behavior of Biomedical Materials
|November 9, 2016
Summary
This study models cortical bone failure using a brittle damaged plasticity model. The findings reveal how damage initiates and progresses, aiding in predicting bone failure under compression.
Area of Science:
- Biomechanics
- Materials Science
- Orthopedics
Background:
- Cortical bone failure is influenced by aging, osteoporosis, trauma, and physiological activities.
- The precise mechanisms of damage evolution and yield criteria in cortical bone remain unclear.
- Understanding these mechanisms is crucial for accurate failure analysis of bone materials.
Purpose of the Study:
- To assess the structural response and progressive failure of cortical bone.
- To utilize a brittle damaged plasticity model for simulating bone failure.
- To investigate the relationship between damage evolution and mechanical properties.
Main Methods:
- Performed compressive tests on bovine femur specimens to gather mechanical data.
- Developed a finite element (FE) model simulating elastic-to-damage behavior.
- Validated the FE model by comparing simulated and experimental load-displacement responses.
Main Results:
- FE simulations showed compressive damage initiating in the central region with maximum plastic strain.
- Damage propagation correlated with decreased structural compressive stiffness and significant strain energy dissipation.
- The compressive damage rate parameter influences failure prediction accuracy.
Conclusions:
- The brittle damaged plasticity model effectively simulates cortical bone's elastic-to-damage behavior.
- Damage initiation and propagation patterns were identified and linked to mechanical property degradation.
- Matching the compressive damage rate to experimental data improves failure prediction.
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