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原位微柱压缩揭示了层状骨的优异强度和延展性,但不存在损伤。

In situ micropillar compression reveals superior strength and ductility but an absence of damage in lamellar bone.

机构信息

Institute for Surgical Technology and Biomechanics, University of Bern, Stauffacherstr. 78 CH-3014 Bern, Switzerland.

1] EMPA, Swiss Federal Laboratories for Material Science and Technology, Laboratory of Mechanics of Materials and Nanostructures, Feuerwerkerstr. 39, CH-3602 Thun, Switzerland [2].

出版信息

Nat Mater. 2014 Jul;13(7):740-7. doi: 10.1038/nmat3959. Epub 2014 Jun 8.

Abstract

Ageing societies suffer from an increasing incidence of bone fractures. Bone strength depends on the amount of mineral measured by clinical densitometry, but also on the micromechanical properties of the hierarchical organization of bone. Here, we investigate the mechanical response under monotonic and cyclic compression of both single osteonal lamellae and macroscopic samples containing numerous osteons. Micropillar compression tests in a scanning electron microscope, microindentation and macroscopic compression tests were performed on dry ovine bone to identify the elastic modulus, yield stress, plastic deformation, damage accumulation and failure mechanisms. We found that isolated lamellae exhibit a plastic behaviour, with higher yield stress and ductility but no damage. In agreement with a proposed rheological model, these experiments illustrate a transition from a ductile mechanical behaviour of bone at the microscale to a quasi-brittle response driven by the growth of cracks along interfaces or in the vicinity of pores at the macroscale.

摘要

老龄化社会中骨折的发病率不断上升。骨骼强度不仅取决于临床密度仪测量的矿物质含量,还取决于骨骼层次结构的微力学特性。在这里,我们研究了单骨单位板层和包含多个骨单位的宏观样本在单调和循环压缩下的机械响应。通过在扫描电子显微镜下进行微柱压缩试验、微压痕和宏观压缩试验,对干燥的绵羊骨进行了测试,以确定弹性模量、屈服应力、塑性变形、损伤积累和失效机制。我们发现,分离的板层表现出塑性行为,具有更高的屈服应力和延展性,但没有损伤。与提出的流变学模型一致,这些实验说明了从微观尺度上骨骼的韧性力学行为到宏观尺度上沿界面或在孔隙附近生长的裂纹驱动的准脆性响应的转变。

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