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Extended Finite Element models of introcortical porosity and heterogeneity in cortical bone

机译:皮质骨皮质内孔隙和异质性的扩展有限元模型

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Due to changes in the bone quality during ageing the fracture risk increases. The influence of the different parameters affecting bone quality is not well understood. The Finite Element method offers the opportunity to determine the individual contribution of a parameter by changing single parameters. In this study, the ABAQUS extended Finite Elements Method (xFEM) was applied to simulate the crack propagation in compact bone samples using the quadratic nominal stress as crack criterion. Micro computed tomography images of compact-tension samples machined from a 19 and an 81 years old donor were used to generate Finite Element meshes consisting of linear tetrahedrons via Mimics. Cavities were modelled only in the estimated crack area to avoid a high number of degrees of freedom. Crack area was meshed with a higher number of smaller elements. The other areas were meshed with a small number of larger elements. The changes in the material constants due to the simplification of the model were taken into account by using effective material parameters in these partitions. Our results show that age-related loss in bone toughness results from increased porosity and loss in heterogeneity of material level properties.
机译:由于老化过程中骨骼质量的变化,骨折风险增加。不同参数对骨骼质量的影响尚不清楚。有限元方法提供了通过更改单个参数来确定参数的单独贡献的机会。在这项研究中,使用ABAQUS扩展有限元方法(xFEM),以二次标称应力为裂纹准则来模拟紧凑型骨样品中的裂纹扩展。由19岁和81岁供体加工的紧凑张力样品的显微计算机断层扫描图像用于通过Mimics生成由线性四面体组成的有限元网格。仅在估计的裂纹区域内对腔建模,以避免大量的自由度。裂纹区域与更多的较小元素啮合。其他区域则与少量较大的单元啮合。通过在这些分区中使用有效的材料参数,考虑了由于模型简化而导致的材料常数的变化。我们的结果表明,与年龄相关的骨骼韧性损失是由于孔隙率增加和材料级性能的异质性损失所致。

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