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Influence of boundary conditions on computed apparent elastic properties of cancellous bone

机译:边界条件对松质骨计算表观弹性的影响

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High-resolution finite element models of trabecular bone can be used to study trabecular structure–function relationships, elasticity, multiaxial strength, and tissue remodelling in more detail than experiments. Beside effects of the model size, scan/analysis resolution, segmentation process, etc., the type of the applied boundary conditions (BCs) have a strong influence on the predicted elastic properties. Appropriate BCs have to be applied on hexahedral digital finite element models in order to obtain effective elastic properties. Homogeneous displacement BCs as proposed by Van Rietbergen et al. (J Biomech 29(12):1653–1657, 1996) lead to “apparent” rather than to “effective” elastic properties. This study provides some answers concerning such differences by comparing various BC types (uniform displacement, mixed BCs, periodic BCs), different volume element definitions (original and mirrored models), and several bone volume fractions (BVTV ranging from 6.5 to 37.6%). First, the mixed BCs formulated by Hazanov (Arch Appl Mech 68(6):385–394, 1998) are theoretically extended to shear loading of a porous media. Second, six human bone samples are analyzed, their orthotropic Young’s moduli, shear moduli, and Poisson’s ratios computed and compared. It is found that the proposed mixed BCs give exactly the same effective elastic properties as periodic BCs if a periodic and orthotropic micro-structured material is used and thus denoted as “periodicity compatible” mixed uniform BCs (PMUBCs). As bone samples were shown to be nearly orthotropic for volume element side lengths ≥5 mm the proposed mixed BCs turn out to be the best choice because they give again essentially the same overall elastic properties as periodic BCs. For bone samples of smaller dimensions ( < 5 mm) with a strong anisotropy (beyond orthotropy) uniform displacement BCs remain applicable but they can significantly overestimate the effective stiffness.
机译:小梁骨的高分辨率有限元模型可用于比实验更详细地研究小梁的结构-功能关系,弹性,多轴强度和组织重塑。除了模型大小,扫描/分析分辨率,分割过程等影响之外,所应用的边界条件(BCs)的类型还对预测的弹性特性有很大的影响。为了获得有效的弹性,必须在六面体数字有限元模型上应用适当的BC。 Van Rietbergen等人提出的同质位移BCs。 (J Biomech 29(12):1653-1657,1996)导致“表观”而不是“有效”的弹性。这项研究通过比较各种BC类型(均匀位移,混合BC,周期性BC),不同的体积元素定义(原始模型和镜像模型)以及几个骨骼体积分数(BVTV范围为6.5至37.6%),提供了有关此类差异的一些答案。首先,由Hazanov(Arch Appl Mech 68(6):385-394,1998)配制的混合BCs从理论上扩展到了多孔介质的剪切载荷。其次,分析了六个人体骨骼样本,计算并比较了它们的正交各向异性杨氏模量,剪切模量和泊松比。发现,如果使用周期性且正交各向异性的微结构材料,则建议的混合BC与周期性BC具有完全相同的有效弹性,因此被称为“周期性兼容”混合均匀BC(PMUBC)。由于显示出对于体积元素边长≥5 mm的骨骼样品几乎是正交各向异性的,因此建议的混合BC成为最佳选择,因为它们再次提供与周期性BC基本上相同的总体弹性。对于具有较小各向异性(超越正交各向异性)的较小尺寸(<5 mm)的骨样品,仍然可以使用均匀位移BC,但是它们会大大高估有效刚度。

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