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板下微裂纹和人皮质骨中管腔的作用。

Sub-lamellar microcracking and roles of canaliculi in human cortical bone.

机构信息

Department of Materials Engineering, University of British Columbia, Vancouver, BC, Canada V6T 1Z4.

出版信息

Acta Biomater. 2012 Mar;8(3):1093-100. doi: 10.1016/j.actbio.2011.11.013. Epub 2011 Nov 17.

Abstract

Bone is a tough biological material. It is generally accepted that bone's toughness arises from its unique hierarchical structure, which in turn facilitates distributed microcracking prior to fracture. Yet, there has been limited progress on the detailed roles of the structural elements in the microcracking process. The present study examines the structure-microcracking relations at the lamellar and sub-lamellar levels of human cortical bone subjected to compressive loading. Laser scanning confocal microscopy revealed a clear influence of the local structure and porosity of the Haversian systems' lamellae on microcrack development. In particular, crack initiation and growth under transverse compression were associated with stress concentration at canaliculi. Later stages of microcracking showed extensive sub-lamellar cracks forming cross-hatched patterns and regularly spaced 0.5-1.7 μm apart. The density, size and regularity of the crack patterns suggest enhanced inelastic deformation capacity through cracking control at the level of mineralized collagen fibril bundles. The present study thus improves the current understanding of the nature of inelastic deformation and microcracking in bone and further suggests that bone's resistance to fracture is achieved through microcrack control at multiple length scales.

摘要

骨是一种坚韧的生物材料。人们普遍认为,骨的韧性源于其独特的层次结构,这反过来又有利于在断裂前实现分布式微裂纹扩展。然而,对于结构元素在微裂纹扩展过程中的详细作用,研究进展有限。本研究考察了在压缩载荷下人类皮质骨的层状和亚层状水平的结构-微裂纹关系。激光扫描共聚焦显微镜揭示了哈弗系统层片的局部结构和孔隙率对微裂纹发展的明显影响。特别是,在横向压缩下,裂纹的萌生和扩展与管腔的应力集中有关。微裂纹的后期阶段显示出广泛的亚层状裂纹形成交叉影线图案,并以 0.5-1.7μm 的规则间隔分开。裂纹图案的密度、大小和规则性表明,通过矿化胶原纤维束水平的裂纹控制,提高了弹塑性变形能力。因此,本研究提高了对骨中弹塑性变形和微裂纹本质的现有认识,并进一步表明,骨对断裂的抵抗力是通过在多个长度尺度上控制微裂纹来实现的。

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