Coelho P G, Fernandes P R, Rodrigues H C, Cardoso J B, Guedes J M
Mechanical and Industrial Engineering Department, FCT/UNL, Portugal.
J Biomech. 2009 May 11;42(7):830-7. doi: 10.1016/j.jbiomech.2009.01.020. Epub 2009 Mar 9.
In this work, a three-dimensional model for bone remodeling is presented, taking into account the hierarchical structure of bone. The process of bone tissue adaptation is mathematically described with respect to functional demands, both mechanical and biological, to obtain the bone apparent density distribution (at the macroscale) and the trabecular structure (at the microscale). At global scale bone is assumed as a continuum material characterized by equivalent (homogenized) mechanical properties. At local scale a periodic cellular material model approaches bone trabecular anisotropy as well as bone surface area density. For each scale there is a material distribution problem governed by density-based design variables which at the global level can be identified with bone relative density. In order to show the potential of the model, a three-dimensional example of the proximal femur illustrates the distribution of bone apparent density as well as microstructural designs characterizing both anisotropy and bone surface area density. The bone apparent density numerical results show a good agreement with Dual-energy X-ray Absorptiometry (DXA) exams. The material symmetry distributions obtained are comparable to real bone microstructures depending on the local stress field. Furthermore, the compact bone porosity is modeled giving a transversal isotropic behavior close to the experimental data. Since, some computed microstructures have no permeability one concludes that bone tissue arrangement is not a simple stiffness maximization issue but biological factors also play an important role.
在这项工作中,提出了一种考虑骨骼层次结构的骨重塑三维模型。针对机械和生物学等功能需求,从数学上描述了骨组织适应过程,以获得(宏观尺度上的)骨表观密度分布和(微观尺度上的)小梁结构。在全局尺度上,骨骼被假定为一种具有等效(均匀化)力学性能的连续材料。在局部尺度上,一个周期性多孔材料模型考虑了骨小梁各向异性以及骨表面积密度。对于每个尺度,都存在一个由基于密度的设计变量控制的材料分布问题,在全局层面上,该变量可以用骨相对密度来确定。为了展示该模型的潜力,一个股骨近端的三维示例说明了骨表观密度的分布以及表征各向异性和骨表面积密度的微观结构设计。骨表观密度的数值结果与双能X线吸收法(DXA)检查结果吻合良好。所获得的材料对称分布与取决于局部应力场的真实骨微观结构相当。此外,对密质骨孔隙率进行了建模,得到了接近实验数据的横向各向同性行为。由于一些计算得到的微观结构没有渗透性,因此可以得出结论,骨组织排列不是一个简单的刚度最大化问题,生物学因素也起着重要作用。