首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Effect of modifications in mineralized collagen fibril and extra-fibrillar matrix material properties on submicroscale mechanical behavior of cortical bone
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Effect of modifications in mineralized collagen fibril and extra-fibrillar matrix material properties on submicroscale mechanical behavior of cortical bone

机译:矿化胶原纤维和超纤维基质材料特性对皮质骨亚晶体力学行为的影响

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摘要

A key length scale of interest in assessing the fracture resistance of bone is the submicroscale which is composed of mineralized collagen fibrils (MCF) and extra-fibrillar matrix (EFM). Although the processes through which the submicroscale constituents of bone contribute to the fracture resistance in bone have been identified, the extent of the modifications in submicroscale mechanical response due to the changes in individual properties of MCFs and EFM has not been determined. As a result, this study aims to quantify the influence of individual MCF and EFM material property modifications on the mechanical behavior (elastic modulus, ultimate strength, and resistance to failure) of bone at the submicroscale using a novel finite element modeling approach that incorporate 3D networks of MCFs with three different orientations as well as explicit representation of EFM. The models were evaluated under tensile loading in transverse (representing MCF separation) and longitudinal (representing MCF rupture) directions. The results showed that the apparent elastic modulus at the submicroscale under both loading directions for all orientations was only affected by the change in the elastic modulus of MCFs. MCF separation and rupture strengths were mainly dependent on the ultimate strength of EFM and MCFs, respectively, with minimal influence of other material properties. The extent of damage during MCF separation increased with increasing ultimate strength of EFM and decreased with increasing fracture energy of EFM with minimal contribution from elastic modulus of MCFs. For MCF rupture, there was an almost one-to-one linear relationship between the percent change in fracture energy of MCFs and the percent change in the apparent submicroscale fracture energy. The ultimate strength and elastic modulus of MCFs had moderate to limited influence on the MCF rupture fracture energy. The results of this study quantified the extent of changes that may be seen in the energy dissipation processes during MCF rupture and separation relative to the changes in the individual constituents of the tissue. This new knowledge significantly contributes to improving the understanding of how the material property alterations at the submicroscale that can occur due to diseases, age-related changes, and treatments affect the fracture processes at larger length scales.
机译:评估骨骨折抗性的关键长度令人兴趣的是由矿化胶原纤维(MCF)和超纤维状基质(EFM)组成的亚亚微血管尺寸。虽然已经鉴定了骨骨亚微血管成分对骨折抗性抗骨折抗性的过程,但由于MCF和EFM的各个性质的变化,亚晶体机械响应的修饰的程度尚未确定。结果,本研究旨在使用新的有限元建模方法来量化单个MCF和EFM材料性能修饰的影响,使用包含3D的新型有限元模拟方法MCF的网络具有三种不同的方向以及EFM的显式表示。在横向(表示MCF分离)和纵向(表示MCF破裂)方向上的拉伸负载下评估模型。结果表明,在所有取向的加载方向下,亚亚尺度的表观弹性模量仅受MCF弹性模量的变化的影响。 MCF分离和破裂强度主要取决于EFM和MCF的最终强度,其其他材料特性的影响最小。 MCF分离期间的损坏程度随着EFM的最终强度而增加,随着EFM的增加而降低,MCF的弹性模量的贡献最小贡献。对于MCF破裂,MCF的裂缝能量的变化百分比几乎一对一的线性关系以及表观亚颌骨折痕能量的百分比变化。 MCFS的最终强度和弹性模量与MCF破裂骨折能量的影响中等为受限。该研究的结果量化了在MCF破裂期间可以在能量耗散过程中可以看出的变化程度,相对于组织的各个组分的变化。这种新知识显着有助于改善由于疾病,年龄相关变化和治疗而发生的亚亚尺度的材料性能改变如何影响骨折过程。

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