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MICROSTRUCTURAL ANALYSIS OF PORCINE SKULL BONE SUBJECTED TO IMPACT LOADING

机译:冲击载荷作用下猪头骨的微观结构分析。

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Skull fracture can be a complex process involving various types of bone microstructure. Finite element analysis of the microscopic architecture in the bone allows for a controlled evaluation of the stress wave interactions, micro-crack growth, propagation and eventual coalescence of trabecular fracture. In this paper, the microstructure and mechanics of small-volume sections of a 6-month-old Gottingen Minipig skull were analyzed. MicroCT scans were used to generate finite element models. Various computational methods were investigated for modeling the intricacies contained within the porous microstructure of the trabecular bone. Pores were explicitly meshed in one method, whereas in the second, a mesh was created from a microCT image-informed mapping algorithm that mapped the trabecular porosity from an image stack to a solid volume mesh of the model. From here, all models were subject to uniaxial compression simulations. The output of the simulations allowed for a detailed understanding of the failure mechanics of the skull structure and allowed for comparison between the methods. Fracture typically occurs in the weakest areas where the bone is highly porous and forms a fracture surface throughout the material, which causes the bone to collapse upon itself.
机译:颅骨骨折可能是一个复杂的过程,涉及各种类型的骨微结构。对骨骼中的微观结构进行有限元分析,可以对骨小梁骨折的应力波相互作用,微裂纹生长,传播和最终合并进行可控的评估。本文分析了一个6个月大的哥廷根小型猪头骨的小体积切片的显微组织和力学。 MicroCT扫描用于生成有限元模型。研究了各种计算方法来模拟小梁骨的多孔微结构中包含的复杂性。使用一种方法显式地对孔进行网格划分,而在第二种方法中,使用microCT图像信息映射算法创建网格,该算法将小梁孔隙度从图像堆栈映射到模型的实体网格。从这里开始,所有模型都经过单轴压缩模拟。模拟的输出可以详细了解头骨结构的破坏机理,并可以对方法进行比较。骨折通常发生在骨骼最疏松的最薄弱区域,并在整个材料中形成骨折表面,从而导致骨骼自身塌陷。

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