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Strain-rate stiffening of cortical bone: observations and implications from nanoindentation experiments

机译:应变率硬化骨密质:观察和影响nanoindentation实验

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While bone mineralization is considered to be responsible for its stiffness, bone durability partially associated with the time-dependent viscoelasticity of matrix proteins is still poorly elucidated. Here we demonstrate a novel mechanism of highly mineralized bone durability almost independent of inherent viscoelastic behaviour along with a protocol for measuring the mechanical properties of mineralized tissues. Strain-rate nanoindentation tests showed substantial stiffening of the highly mineralized calvarial bone, whereas large creep or stress relaxation was observed during constant load or displacement tests, respectively. Based on the lower viscoelasticity of the highly mineralized structure, such large time-dependent response appears to be associated with nanoscale dimensional recovery, rather than viscoelastic behaviour, implying the inverse namely strain-rate dependent dilatant behaviour. This dilatant expansion increased the indenter penetration resistance into the surface, enhancing instantaneous stiffness. The associated stiffening and higher effective elastic modulus were highly strain-rate dependent and more readily observed in more highly mineralized tissues such as the calvarial bone. Such strain-rate stiffening and consequent dimensional recovery may be vital responses of bone tissues against excessive deformation to maintain tissue integrity.
机译:而骨矿化被认为是负责其刚度,骨耐久性与时间相关的部分仍然是粘弹性矩阵的蛋白质糟糕的阐明。高矿化骨耐用性的机制几乎独立于固有的粘弹性行为以及测量的协议机械性能的矿化组织。应变率nanoindentation测试显示大量的加劲高度矿化颅顶的骨头,而大蠕变或压力放松在恒负载或观察位移测试,分别。低高度矿化的粘弹性结构,如此大的时间响应似乎与纳米尺度有关维的复苏,而不是粘弹性行为,即暗示逆应变率相关的扩展行为。膨胀的扩张增加了硬度计压头贯入阻力的表面,提高瞬时刚度。加强和更高的有效弹性模量高应变率依赖和更多吗容易观察到更高的矿化颅顶的骨等组织。应变率硬化和顺向维恢复骨骼组织的反应可能是至关重要的维护组织反对过度变形的完整性。

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