Rho J Y, Kuhn-Spearing L, Zioupos P
Department of Biomedical Engineering, University of Memphis, TN 38152, USA.
Med Eng Phys. 1998 Mar;20(2):92-102. doi: 10.1016/s1350-4533(98)00007-1.
Detailed descriptions of the structural features of bone abound in the literature; however, the mechanical properties of bone, in particular those at the micro- and nano-structural level, remain poorly understood. This paper surveys the mechanical data that are available, with an emphasis on the relationship between the complex hierarchical structure of bone and its mechanical properties. Attempts to predict the mechanical properties of bone by applying composite rule of mixtures formulae have been only moderately successful, making it clear that an accurate model should include the molecular interactions or physical mechanisms involved in transfer of load across the bone material subunits. Models of this sort cannot be constructed before more information is available about the interactions between the various organic and inorganic components. Therefore, further investigations of mechanical properties at the 'materials level', in addition to the studies at the 'structural level' are needed to fill the gap in our present knowledge and to achieve a complete understanding of the mechanical properties of bone.
文献中对骨骼结构特征的详细描述比比皆是;然而,骨骼的力学性能,尤其是微观和纳米结构层面的力学性能,仍知之甚少。本文综述了现有的力学数据,重点关注骨骼复杂的层次结构与其力学性能之间的关系。通过应用混合法则公式来预测骨骼力学性能的尝试仅取得了一定程度的成功,这表明一个准确的模型应包括涉及骨骼材料亚单位间载荷传递的分子相互作用或物理机制。在获得更多关于各种有机和无机成分之间相互作用的信息之前,无法构建此类模型。因此,除了在“结构层面”的研究之外,还需要在“材料层面”对力学性能进行进一步研究,以填补我们目前知识的空白,并全面了解骨骼的力学性能。