Crolet J M, Aoubiza B, Meunier A
Laboratoire de Calcul Scientifique, Université de Franche-Comté, Besancon, France.
J Biomech. 1993 Jun;26(6):677-87. doi: 10.1016/0021-9290(93)90031-9.
One of the main difficulties encountered in the numerical simulation of the anisotropic elastic characteristics of compact bone is to account for the Haversian microstructure when determining the overall macroscopic behavior. Engineering analyses of such problems are usually based on 'homogenized approximations'. Compact bone is not exactly a composite material, but rather a heterogeneous medium which exhibits a multiscale composite structure. If the homogenized approximation is precise enough (and this is true for the mathematical theory of homogenization), it is then possible to simulate the macroscopic behavior from the microscopic mechanical characteristics. The present paper is devoted to such mathematical developments. Moreover, the 'inverse simulation' allows the computation of the microscopic stress fields in the haversian structure from the macroscopic stress fields, taking into account bone microstructure.
在密质骨各向异性弹性特性的数值模拟中遇到的主要困难之一是,在确定整体宏观行为时要考虑哈弗斯微观结构。对此类问题的工程分析通常基于“均匀化近似”。密质骨并非完全是一种复合材料,而是一种呈现多尺度复合结构的非均质介质。如果均匀化近似足够精确(对于均匀化数学理论而言确实如此),那么就有可能从微观力学特性模拟宏观行为。本文致力于此类数学研究进展。此外,“逆模拟”能够根据宏观应力场计算哈弗斯结构中的微观应力场,同时考虑骨微观结构。