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A bone remodelling model including the directional activity of BMUs

机译:包含BMU定向活动的骨骼重塑模型

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Bone is able to adapt itself to the mechanical and biological environment by changing its porosity and/or orientation of its internal microstructure in a process known as bone remodelling. As a consequence, a change of bone mechanical properties is produced leading to an optimum structure, able to bear the external loads with the minimum weight. This adaptation is carried out by a temporal association of cells known as BMUs (basic multicellular units) that resorb old bone and sometimes produce new organic extracellular matrix (osteoid) that is later mineralized. This involves changes in porosity, damage level (density of microcracks accumulated by cyclic loads) and mineral content. All of these features were taken into account in a previous model, but the whole process and therefore the resulting bone constitutive behaviour was considered isotropic. The model proposed herein, recognizing that bone is actually anisotropic, tries to explain how BMUs modify the anisotropy by changing their progressing direction. We check the potential of the model to predict the alignment of the bone microstructure with the external loads in different situations. Then, the model is also applied to obtain the anisotropy and mechanical properties of the human proximal femur under physiological loads with initial conditions corresponding to a heterogeneous, but otherwise isotropic bone.
机译:通过在称为骨骼重塑的过程中更改其孔隙率和/或内部微结构的方向,骨骼能够适应机械和生物环境。结果,产生了骨骼机械性能的变化,从而导致了一种最佳结构,该结构能够以最小的重量承受外部载荷。这种适应性通过称为BMU(基本多细胞单位)的细胞的时间关联来进行,该细胞吸收旧骨并有时产生新的有机细胞外基质(类固醇),随后被矿化。这涉及孔隙率,破坏程度(循环载荷累积的微裂纹密度)和矿物质含量的变化。在先前的模型中考虑了所有这些特征,但是整个过程以及由此产生的骨骼本构行为被认为是各向同性的。本文提出的模型认识到骨骼实际上是各向异性的,它试图解释BMU如何通过改变其前进方向来改变各向异性。我们检查模型的潜力,以预测在不同情况下骨微结构与外部载荷的对准。然后,该模型还适用于获得在生理负荷下具有对应于异质但各向同性骨骼的初始条件下人类近端股骨的各向异性和力学性能。

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