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Elasticity and Viscoelasticity of Human Tibial Cortical Bone Measured by Nanoindentation

机译:纳米压痕法测定人胫骨皮质骨的弹性和粘弹性

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摘要

Bone is a composite material composed of collagen, carbonated apatite mineral, water, and other non-collagenous proteins. The bone structure inside human body is under constant remodelling. The mechanical properties of bone and their dynamic changes during remodelling are crucial to the health and quality of life. In this study, the elastic and viscoelastic properties of a 73 year-old female cortical bone were investigated at the lamellar level. This was realized by a nanoindentation technique equipped with dynamic loading function. 325 indentations were made in individual Haversian systems and interstitial bone at both dry and wet condition, and under two different loading frequencies. The results showed no statistically significant differences in elastic modulus between Haversian systems and interstitial bone. There were no systematic differences in modulus across the cortex except for a slight drop at the periosteal site. The lamellar structure of both Haversian system and interstitial bone is viscoelastic with water playing a significant role to the properties. When dry bone is re-hydrated, elastic modulus decreases and loss tangent increases.
机译:骨是由胶原蛋白,碳酸磷灰石矿物,水和其他非胶原蛋白组成的复合材料。人体内部的骨骼结构正在不断重塑。骨骼的机械特性及其在重塑过程中的动态变化对于健康和生活质量至关重要。在这项研究中,研究了一个73岁女性皮质骨的层状水平的弹性和粘弹性。这是通过具有动态加载功能的纳米压痕技术实现的。在干燥和潮湿条件下,在两种不同的加载频率下,分别在单个Haversian系统和间质骨骼中制作了325个压痕。结果表明,Haversian系统和间质骨之间的弹性模量没有统计学上的显着差异。除了在骨膜部位略有下降外,整个皮质的模量没有系统的差异。哈弗氏体系和间质骨的层状结构都是粘弹性的,水对性能起重要作用。当干骨重新水化时,弹性模量降低,损耗角正切增加。

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