Karali Aikaterina, Kao Alexander P, Zekonyte Jurgita, Blunn Gordon, Tozzi Gianluca
Zeiss Global Centre, School of Mechanical and Design Engineering, University of Portsmouth, Portsmouth, UK.
Elettra - Sincrotrone Trieste S.C.p.A, Italy.
J Mech Behav Biomed Mater. 2021 Mar;115:104298. doi: 10.1016/j.jmbbm.2020.104298. Epub 2021 Jan 1.
The overall mechanical behaviour of cortical bone is strongly dependant on its microstructure. X-ray computed tomography (XCT) has been widely used to identify the microstructural morphology of cortical tissue (i.e. pore network, Haversian and Volkmann's canals). However, the connection between microstructure and mechanics of cortical bone during plastic deformation is unclear. Hence, the purpose of this study is to provide an in-depth evaluation of the interplay of plastic strain building up in relation to changes in the canal network for cortical bone tissue. In situ step-wise XCT indentation was used to introduce a localised load on the surface of the tissue and digital volume correlation (DVC) was employed to assess the three-dimensional (3D) full-field plastic strain distribution in proximity of the indent. It was observed that regions adjacent to the imprint were under tensile strain, whereas the volume underneath experienced compressive strain. Canal loss and disruption was detected in regions of higher compressive strains exceeding -20000 με and crack formation occurred in specimens where Haversian canals were running parallel to the indentation tip. The results of this study outline the relationship between the micromechanical and structural behaviour of cortical bone during plastic deformation, providing information on cortical tissue fracture pathways.
皮质骨的整体力学行为强烈依赖于其微观结构。X射线计算机断层扫描(XCT)已被广泛用于识别皮质组织的微观结构形态(即孔隙网络、哈弗斯管和福尔克曼管)。然而,皮质骨在塑性变形过程中微观结构与力学之间的联系尚不清楚。因此,本研究的目的是深入评估皮质骨组织中塑性应变积累与管网络变化之间的相互作用。采用原位逐步XCT压痕法在组织表面施加局部载荷,并利用数字体积相关技术(DVC)评估压痕附近的三维(3D)全场塑性应变分布。观察到印记附近的区域处于拉伸应变状态,而其下方的体积则经历压缩应变。在压缩应变超过-20000με的较高区域检测到管的损失和破坏,并且在哈弗斯管与压痕尖端平行的标本中出现了裂纹形成。本研究结果概述了皮质骨在塑性变形过程中的微观力学与结构行为之间的关系,提供了关于皮质组织骨折途径的信息。