Fracture behavior of human cortical bone with high glycation content under dynamic loading
The present study simulates the fracture behavior of diabetic cortical bone with high levels of advanced glycation end-products (AGEs) under dynamic loading. We consider that the increased AGEs in diabetic cortical bone degrade the materials heterogeneity of cortical bone through a reduction in crit...
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Veröffentlicht in: | Journal of the mechanical behavior of biomedical materials 2024-07, Vol.155, p.106577-106577, Article 106577 |
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Sprache: | eng |
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Zusammenfassung: | The present study simulates the fracture behavior of diabetic cortical bone with high levels of advanced glycation end-products (AGEs) under dynamic loading. We consider that the increased AGEs in diabetic cortical bone degrade the materials heterogeneity of cortical bone through a reduction in critical energy release rates of the microstructural features. To simulate the initiation and propagation of cracks, we implement a phase field fracture framework on 2D models of human tibia cortical microstructure. The simulations show that the mismatch between the fracture properties (e.g., critical energy release rate) of osteons and interstitial tissue due to high AGEs contents can change crack growth trajectories. The results show crack branching in the cortical microstructure under dynamic loading is affected by the mismatches related to AGEs. In addition, we observe cortical features such as osteons and cement lines can prevent multiple cracking under dynamic loading even with changing the mismatches due to high AGEs. Furthermore, under dynamic loading, some toughening mechanisms can be activated and deactivated with different AGEs contents. In conclusion, the current findings present that the combination of the loading type and materials heterogeneity of microstructural features can change the fracture response of diabetic cortical bone and its fragility.
•Dynamic fracture of glycated cortical bone for different samples is simulated.•Elevated AGEs contents reduce the fracture tolerance of cortical microstructure.•Increased AGEs with age can adversely influence toughening mechanisms.•Dynamic and quasi-static fracture mechanisms in glycated bone are compared.
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ISSN: | 1751-6161 1878-0180 |
DOI: | 10.1016/j.jmbbm.2024.106577 |