PSI - Issue 66

Antonio R Quiñonero-Moya et al. / Procedia Structural Integrity 66 (2024) 175–180 A. R. Quiñonero-Moya et al. / Structural Integrity Procedia 00 (2025) 000–000

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Giner, E., Belda, R., Arango, C., Vercher-Martínez, A., Tarancón, J. E., Fuenmayor, F. J., 2017. Calculation of the critical energy release rate Gc of the cement line in cortical bone combining experimental tests and finite element models. Engineering Fracture Mechanics, 184, 168–182. Lefèvre, E., Farlay, D., Bala, Y., Subtil, F., Wolfram, U., Rizzo, S., Baron, C., Zysset, P., Pithioux, M., Follet, H., 2019. Compositional and mechanical properties of growing cortical bone tissue: a study of the human fibula. Scientific Reports, 9(1). Li, S., Abdel-Wahab, A., Demirci, E., Silberschmidt, V. V., 2013. Fracture process in cortical bone: X-FEM analysis of microstructured models. International Journal of Fracture, 184(1–2), 43–55. Maghami, E., Josephson, T. O., Moore, J. P., Rezaee, T., Freeman, T. A., Karim, L., Najafi, A. R., 2021. Fracture behavior of human cortical bone: Role of advanced glycation end-products and microstructural features. Journal of Biomechanics, 125. Maghami, E., Najafi, A., 2023. Microstructural fatigue fracture behavior of glycated cortical bone. Medical and Biological Engineering and Computing, 61(11), 3021–3034. Maghami, E., Sadighi, A., Najafi, A. R., 2024. Fracture behavior of human cortical bone with high glycation content under dynamic loading. Journal of the Mechanical Behavior of Biomedical Materials, 155. Pidaparti, R. M. V, Burr, D. B., 1992. Collagen fiber orientation and geometry effects on the mechanical properties of secondary osteons. J. Biomechanics, 25(8), 869–880. Ural, A., Mischinski, S., 2013. Multiscale modeling of bone fracture using cohesive finite elements. Engineering Fracture Mechanics, 103, 141– 152.

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