Elastic anisotropy of bone lamellae as a function of fibril orientation pattern

被引:0
作者
Andreas G. Reisinger
Dieter H. Pahr
Philippe K. Zysset
机构
[1] Vienna University of Technology,Institute of Lightweight Design and Structural Biomechanics
来源
Biomechanics and Modeling in Mechanobiology | 2011年 / 10卷
关键词
Bone lamella; Elastic properties; Twisted plywood; Unit cell; Finite element model; Homogenization; Fibril angle; Indentation modulus;
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中图分类号
学科分类号
摘要
In this study, the homogenized anisotropic elastic properties of single bone lamellae are computed using a finite element unit cell method. The resulting stiffness tensor is utilized to calculate indentation moduli for multiple indentation directions in the lamella plane which are then related to nanoindentation experiments. The model accounts for different fibril orientation patterns in the lamellae—the twisted and orthogonal plywood pattern, a 5-sublayer pattern and an X-ray diffraction-based pattern. Three-dimensional sectional views of each pattern facilitate the comparison to transmission electron (TEM) images of real lamella cuts. The model results indicate, that the 5-sublayer- and the X-ray diffraction-based patterns cause the lamellae to have a stiffness maximum between 0° and 45° to the osteon axis. Their in-plane stiffness characteristics are qualitatively matching the experimental findings that report a higher stiffness in the osteon axis than in the circumferential direction. In contrast, lamellae owning the orthogonal or twisted plywood fibril orientation patterns have no preferred stiffness alignment. This work shows that the variety of fibril orientation patterns leads to qualitative and quantitative differences in the lamella elastic mechanical behavior. The study is a step toward a deeper understanding of the structure—mechanical function relationship of bone lamellae.
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页码:67 / 77
页数:10
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  • [1] Akiva U(1998)Modelling the three-dimensional elastic constants of parallel-fibred and lamellar bone J Mater Sci 33 1497-1509
  • [2] Wagner H(2005)Elastic deformation of mineralized collagen fibrils: an equivalent inclusion based composite model J Biomech Eng 127 383-390
  • [3] Weiner S(1967)The tensile properties of single osteons Anat Rec 158 375-386
  • [4] Akkus O(1968)The compressive properties of single osteons Anat Rec 161 377-391
  • [5] Ascenzi A(2006)Collagen orientation patterns in human secondary osteons, quantified in the radial direction by confocal microscopy J Struct Biol 153 14-30
  • [6] Bonucci E(1979)Determination of the elastic constants of collagen by brillouin light scattering J Mol Biol 135 39-51
  • [7] Ascenzi A(2002)Anisotropic properties of human tibial cortical bone as measured by nanoindentation J Orthop Res 20 806-810
  • [8] Bonucci E(2009)Elastic anisotropy of human cortical bone secondary osteons measured by nanoindentation J Biomech Eng 131 021001-1334
  • [9] Ascenzi MG(2007)Nature’s hierarchical materials Prog Mater Sci 52 1263-620
  • [10] Lomovtsev A(2007)‘Universal’ microstructural patterns in cortical and trabecular, extracellular and extravascular bone materials: micromechanics-based prediction of anisotropic elasticity J Theor Biol 244 597-322