Department of Civil Engineering, Zhejiang Sci-Tech University, Hangzhou, 310018, China.
Department of Civil Engineering, Zhejiang University, 866 Yuhangtang Road, Hangzhou, 310058, China.
Biomech Model Mechanobiol. 2022 Dec;21(6):1713-1729. doi: 10.1007/s10237-022-01615-z. Epub 2022 Sep 3.
Cortical bone is a complex hierarchical structure consisting of biological fiber composites with transversely isotropic constituents, whose microstructures deserve extensive study to understand the mechanism of living organisms and explore development of biomimetic materials. Based on this, we establish a three-level hierarchical structure from microscale to macroscale and propose a multiscale micromechanics model of cortical bone, which considers Haversian canal, osteonal lamellae, cement line and interstitial lamellae. In order to study the microstructural effect on the elastic behavior of hierarchical structures, the Mori-Tanaka model and locally exact homogenization theory are introduced for the homogenization of heterogeneous materials of microstructure at each level. Within sub-microscale, Haversian canal and Osteonal lamella are treated as fiber and matrix, whose homogenization is surrounded with cement line matrix in microstructure (or what we called "osteon") for the second homogenization; finally, osteon and interstitial lamella establish the meso-structure for the third homogenization, predicting the effective moduli of cortical bone. The correctness of the model in this paper is verified against the data in literature with good agreement. Finally, the dynamic viscoelastic response of cortical bones is investigated from a multiscale perspective, where the measured data are substituted into the present models to study the hydration and aging effect on bones' stiffness and viscoelasticity. It is demonstrated that the hydration is much more influential in affecting the storage and loss moduli of cortical bone than the aging effect. We also present a few numerical investigations on microstructural material and geometric parameters on the overall mechanical properties of cortical bone.
皮质骨是一种具有横观各向同性成分的生物纤维复合材料的复杂层次结构,其微观结构值得广泛研究,以了解生物体的机制并探索仿生材料的发展。基于此,我们从微观尺度到宏观尺度建立了一个三级层次结构,并提出了皮质骨的多尺度细观力学模型,该模型考虑了哈弗管、骨单位板层、骨单位和间质板层。为了研究微观结构对分层结构弹性行为的影响,引入 Mori-Tanaka 模型和局部精确均匀化理论对每个层次的微观结构不均匀材料进行均匀化。在亚微观尺度上,哈弗管和骨单位板层被视为纤维和基质,其均匀化在微观结构中的骨单位(或称为“骨单位”)的水泥线基质周围进行(即“骨单位”),用于第二次均匀化;最后,骨单位和间质板层建立了中间结构,用于第三次均匀化,预测皮质骨的有效模量。本文模型的正确性通过与文献中数据的良好一致性得到验证。最后,从多尺度的角度研究了皮质骨的动态粘弹性响应,其中将实测数据代入到目前的模型中,研究了水化和老化对骨刚度和粘弹性的影响。结果表明,水化对皮质骨的储存和损耗模量的影响远大于老化的影响。我们还对皮质骨的整体力学性能的微观结构材料和几何参数进行了一些数值研究。