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Mineralized collagen fibril network spatial arrangement influences cortical bone fracture behavior

机译:矿化胶原纤维网络空间排列影响皮质骨折行为

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摘要

Abstract Bone is a hierarchical material exhibiting different fracture mechanisms at each length scale. At the submicroscale, the bone is composed of mineralized collagen fibrils (MCF). At this scale, the fracture processes in cortical bone have not been extensively studied in the literature. In this study, the influence of MCF size and orientation on the fracture behavior of bone under both transverse and longitudinal loading was investigated using novel 3D models of MCF networks with explicit representation of extra-fibrillar matrix. The simulation results showed that separation between MCFs was the main cause of damage and failure under transverse loading whereas under longitudinal loading, the main damage and failure mechanism was MCF rupture. When the MCF network was loaded in the transverse direction the mechanical properties increased as the orientation of fibrils deviated farther from the main fibril orientation whereas the opposite trend was observed under longitudinal loading. The fracture energy was much larger in longitudinal than transverse loading. MCF diameter variation did not affect the mechanical properties under longitudinal loading but led to higher mechanical properties with increasing MCF diameter under transverse loading. The new modeling framework established in this study generate unique information on the effect of MCF network spatial arrangement on the fracture behavior of bone at the submicroscale which is not currently possible to measure via experiments. This unique information may improve the understanding of how structural alterations at the submicroscale due to disease, age-related changes, and treatments affect the fracture processes at larger length scales.
机译:摘要骨是在每个长度尺度上表现出不同骨折机制的分层材料。在亚微米尺度,骨骼由矿化胶原纤维(MCF)组成。在这种规模中,在文献中没有广泛研究皮质骨中的断裂过程。在该研究中,使用MCF网络的新型3D模型,研究了MCF尺寸和取向对横向和纵向负载下骨折的骨折行为的影响,具有超纤维状基质的明确表示。仿真结果表明,MCF之间的分离是在纵向负载下造成损伤和失效的主要原因,而在纵向负载下,主要损坏和失效机制是MCF破裂。当MCF网络装载在横向方向上时,机械性能随着原纤维的取向而增加,而在纵向负载下观察到相反的趋势。骨折能量在纵向较大比横向载荷较大。 MCF直径变化不会影响纵向负载下的机械性能,但导致横向负载下的MCF直径增加更高的机械性能。在本研究中建立的新建模框架产生了关于MCF网络空间排列对骨灰尺度骨折行为的影响的独特信息,目前无法通过实验测量。这种独特的信息可以改善对由于疾病,年龄相关变化和治疗的潜在患者的结构改变如何影响骨折过程。

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