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首页> 外文期刊>Journal of Materials Research >Digital Image Correlation Shows Localized Deformation Bands In Inelastic Loading Of Fibrolamellar Bone
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Digital Image Correlation Shows Localized Deformation Bands In Inelastic Loading Of Fibrolamellar Bone

机译:数字图像相关性显示纤维状骨的无弹性载荷中的局部变形带

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摘要

Irreversible or plastic deformation in bone is associated with both permanent plastic strain as well as localized microdamage. Whereas mechanisms at the molecular and mesoscopic level have been proposed to explain aspects of irreversible deformation, a quantitative correlation of mechanical yielding, microstructural deformation, and macroscopic plastic strain does not exist. To address this issue, we developed and applied a two-dimensional image correlation technique to the tensile deformation of bovine fibrolamellar bone, to determine the spatial distribution of strain fields at the length scale of 10 μm to 1 mm in bone during irreversible tensile deformation. We find that tensile deformation is relatively homogeneous in the elastic regime and starts at the yield point, showing regions of locally higher strain. Multiple regions of high deformation can exist at the same time over a length scale of 1 to 10 mm. Macroscopic fracture always occurs at one of the locally highly deformed regions, but the selection of which region cannot be predicted. Locally, strain rates can be enhanced by a factor of 3 to 10 over global strain rates in the highly deformed zones and are lower but always positive in all other regions. Light microscopic imaging shows the onset of structural "banding" in the regions of high deformation, which is most likely correlated to microstructural damage at the inter- and intrafibrillar level.
机译:骨中不可逆或塑性变形与永久性塑性应变以及局部微损伤有关。虽然已经提出了分子和介观水平的机理来解释不可逆变形的方面,但不存在机械屈服,微观结构变形和宏观塑性应变的定量相关性。为了解决这个问题,我们开发了二维图像相关技术并将其应用于牛纤维状小梁的拉伸变形,以确定不可逆拉伸变形过程中在10μm到1 mm长度尺度上的应变场的空间分布。我们发现拉伸变形在弹性状态下相对均匀,并且从屈服点开始,显示出局部较高的应变区域。高度变形的多个区域可以同时存在,长度范围为1至10 mm。宏观断裂总是发生在局部高度变形的区域之一,但是无法预测哪个区域的选择。就局部而言,在高度变形的区域中,应变率可以比全局应变率提高3到10倍,并且在所有其他区域都较低,但始终为正值。光学显微成像显示高变形区域出现结构“条带”,这很可能与原纤维内和原纤维内的微结构损伤有关。

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