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Fracture and microstructural study of bovine bone under mixed mode I/II loading

机译:混合模式下牛骨骨折和微观结构研究I / II载荷

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Understanding the fracture behavior and associated crack growth mechanism in bone material is an important issue for biomechanics and biomaterial researches. Fracture of bone often takes place due to complex loading conditions which result in combined tensile-shear (i.e. mixed mode) fracture mechanism. Several parameters such as loading type, applied loading direction relative to the bone axis, loading rate, age and etc., may affect the mixed mode fracture resistance and damage mechanism in such materials. In this research, a number of mixed mode I/II fracture experiments are conducted on bovine femur bone using a sub-sized test configuration called "compact beam bend (CBB)" specimen to investigate the fracture toughness of bone under different mode mixities. The specimen is rectangular beam containing a mid-edge crack that is loaded by a conventional three-point bend fixture. The results showed the dependency of bone fracture toughness on the state of mode mixity. The fracture surfaces of broken CBB specimens under different loading conditions were studied via scanning electron microscopy (SEM) observations. Fracture surface of all investigated cases (i.e. pure mode I, pure mode II and mixed mode I/II) exhibited smooth patterns demonstrating brittle fracture of bovine femur. The higher density of vascular channels and micro-cracks initiated in the weakened area surrounded by secondary osteons were found to be the main cause of the decreased bone resistance against crack growth and brittle fracture.
机译:理解在骨材料的断裂行为和相关联的裂纹生长机制是生物力学和生物材料研究的重要课题。骨骨折经常发生由于复杂的载荷条件,这导致组合的拉伸剪切(即混合模式)断裂机理。几个参数,如装载型,相对于骨轴施加装载方向,负荷率,年龄等,可能会影响这种材料中的混合模式的耐断裂性和破坏机理。在这项研究中,一些混合模式I / II断裂实验对牛股骨使用被称为“紧凑光束弯曲(CBB)”的分尺寸的测试配置进行试样调查骨的下不同模式mixities断裂韧性。试样是包含通过常规三点弯曲加载夹具的中间边缘裂纹矩形光束。结果表明:对模式复合比的状态骨的断裂韧性的依赖性。标本破碎CBB的断裂表面下不同的负载条件通过扫描电子显微镜(SEM)的观察研究。的所有调查的情况下断裂表面(即纯模式I中,纯模式II和混合模式I / II)显示出光滑的图案表明牛股骨脆性断裂。血管通道和在由副骨单位包围的弱化区域发起的微裂纹的较高密度被认为是主要原因的骨抵抗裂纹生长和脆性断裂减少。

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