首页> 外文期刊>Journal of Biomechanics >Elastic properties of cancellous bone derived from finite element models of parameterized microstructure cells.
【24h】

Elastic properties of cancellous bone derived from finite element models of parameterized microstructure cells.

机译:松质骨的弹性特性源自参数化微结构单元的有限元模型。

获取原文
获取原文并翻译 | 示例
           

摘要

Evaluation of constitutive properties of cancellous bone and their relationships to microstructural parameters is a crucial issue in analysis of stresses and strains in bone tissues and simulation of their remodelling. Known limitations of experimental methods as well as of the micro-FE techniques make the analysis and homogenization of 'equivalent' trabecular microstructures an advantageous tool for this task. In this study, parameterized orthotropic constitutive models of cancellous bone are derived from finite element analysis of repeatable microstructure cells. Two cell types are analysed: cube- and prism-based. The models are fully three-dimensional, have realistic curvilinear shapes and are parameterized with three shape parameters. Variation of the parameters allows to imitate most of the typical microstructure patterns observed in real bones, along with variety of intermediate geometries. Finite element models of cells are generated by a special-purpose structured mesh generator for any arbitrary set of shape parameter values. Six static numerical tests are performed for an exhaustive number of parameter value sets (microstructure instances). Multi-point boundary conditions imposed on the models ensure mutual fitting of deformed neighbouring cells. Values of computed stresses allow to determine all coefficients of elastic orthotropic stiffness matrix. Results have a form of tabularized functions of elastic constants versus the shape parameters. Comparison of the results with micro-FE data obtained for a large set of cancellous bone specimens proves a good agreement, though evidently better in the case of the prism-based cell model.
机译:评估松质骨的本构性质及其与微结构参数的关系是分析骨组织中的应力和应变以及模拟其重塑的关键问题。实验方法以及微型有限元分析技术的已知局限性使得“等效”小梁微结构的分析和均质化成为完成此任务的有利工具。在这项研究中,松散骨的参数化正交异性本构模型是从可重复的微结构细胞的有限元分析中得出的。分析了两种细胞类型:基于立方体和基于棱柱的。这些模型是完全三维的,具有逼真的曲线形状,并使用三个形状参数进行了参数化。参数的变化允许模仿在真实骨骼中观察到的大多数典型微观结构图案,以及各种中间几何形状。单元的有限元模型是由专用结构化网格生成器针对任意一组形状参数值生成的。对大量的参数值集(微观结构实例)执行了六个静态数值测试。施加在模型上的多点边界条件可确保变形的相邻单元格相互拟合。计算的应力值允许确定弹性正交各向异性刚度矩阵的所有系数。结果具有表格形式的弹性常数与形状参数的函数关系。将结果与从大量松质骨标本中获得的micro-FE数据进行比较证明了很好的一致性,尽管在基于棱柱的细胞模型中明显更好。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号