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Fibrillar level fracture in bone beyond the yield point

机译:骨的原纤维水平骨折超过屈服点

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摘要

The nanoscale deformation and fracture mechanisms of parallel fibered bone are investigated using a novel combination of in-situ tensile testing to failure combined with high brilliance synchrotron X-ray scattering. The technique enables the simultaneous measurement of strain at two length scales – in the mineralized collagen fibrils (~100 nm diameter) along with the macroscopic strain (~1 mm diameter). Under constant rate tensile loading, we find that fibril strain saturates beyond the macroscopic yield point of bone at ~0.5 %, providing a correlation between the failure mechanisms at the nanoscale and the bulk structural properties. When bone stretched beyond the yield point is unloaded back to zero stress, the fibrils are contracted relative to their original state. We examine the findings in the context of a fiber – matrix shearing model at the nanometer level.
机译:研究了平行纤维骨的纳米级变形和断裂机理,采用了一种新的结合原位拉伸断裂的方法,并结合了高亮度同步加速器X射线散射。该技术可以同时测量两个长度范围内的应变-矿化的胶原纤维(直径约100 nm)以及宏观应变(直径约1 mm)。在恒定速率的拉伸载荷下,我们发现原纤维应变在约0.5%的范围内超出了骨的宏观屈服点,从而在纳米级的破坏机理与整体结构特性之间提供了相关性。当拉伸到超过屈服点的骨骼卸载回零应力时,原纤维相对于其原始状态收缩。我们在纳米级的纤维-基体剪切模型的背景下检验了发现。

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