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A heterogeneous orientation criterion for crack modelling in cortical bone using a phantom-node approach

机译:使用幻影节点方法的皮质骨裂纹建模的非均质取向准则

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Cortical bone can be considered as a heterogeneous composite at microscopic scale, composed of osteons that act as reinforcement fibres embedded in interstitial matrix. Cement lines constitute the interface between osteons and matrix, and they often behave as the weakest links along which microcracks tend to propagate. However, current simulations of crack growth using XFEM combined with usual orientation criteria as implemented in commercial codes do not capture this behaviour: they predict crack paths that do not follow the cement lines surrounding osteons. The reason is that the orientation criterion used in the implementation of XFEM does not take into account the heterogeneity of the material, leading to simulations that differ from experimental results. In this work, a crack orientation criterion for heterogeneous materials based on interface damage prediction in composites is proposed and a phantom node approach has been implemented to model crack propagation. The method has been validated by means of linear elastic fracture mechanics (LEFM) problems obtaining accurate results. The procedure is applied to different problems including several osteons with simplified geometry and an experimental test reported in the literature leading to satisfactory predictions of crack paths.
机译:皮质骨可以认为是微观尺度上的异质复合物,由骨质构成,骨质充当嵌入间质基质的增强纤维。水泥线构成骨与基质之间的界面,并且它们通常表现为微裂纹倾向于沿着其传播的最薄弱的环节。但是,当前使用XFEM结合商业准则中实施的常规取向标准对裂纹扩展进行的模拟无法捕获这种行为:它们预测的裂纹路径不遵循围绕骨的胶结线。原因是在XFEM实施中使用的定向标准未考虑材料的异质性,导致模拟与实验结果不同。在这项工作中,提出了一种基于复合材料界面损伤预测的异质材料裂纹取向准则,并采用了幻象节点方法对裂纹扩展进行建模。该方法已通过线性弹性断裂力学(LEFM)问题进行了验证,从而获得了准确的结果。该程序适用于不同的问题,包括几个具有简化几何形状的骨骼,以及文献中报道的实验测试,可以令人满意地预测裂纹路径。

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