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Numerical modeling of bone as a multiscale poroelastic material by the homogenization technique

机译:骨质化技术用骨作为多尺度孔弹性材料的数值模拟

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Bone is a complex material showing a hierarchical and porous structure but also a natural ability to remodel thanks to cells sensitive to fluid flows. Based on these characteristics, a multiscale numerical model has been developed in order to represent the bone response under mechanical solicitation. It relies on the homogenization technique, simulating bone as a homogeneous structure having a porous microstructure saturated with bone fluid. The numerical modeling of the loading of a finite volume of bone enables the determination of an equivalent poroelastic stiffness. Focusing on two extreme fluid boundary conditions, the study of the corresponding structural response provides an overview of the fluid contribution to the poroelastic behavior, impacting the stiffness of the considered material. This parameter is either reduced (when the fluid can flow out of the structure) or increased (when the fluid is kept inside the structure) and quantified through this model. The presented poroelastic numerical model is here developed in the perspective of providing a bio-reliable model of bones, to determine the critical parameters that might impact bone remodeling.
机译:骨是一种复杂的材料,显示分层和多孔结构,但由于对流体流动敏感的细胞,还有自然能够改造。基于这些特性,已经开发了多尺度数值模型,以表示机械征集下的骨骼反应。它依赖于均质化技术,模拟骨作为具有饱和骨液饱和多孔微观结构的均匀结构。有限体积骨装载的数值建模能够确定等效的孔隙弹性刚度。对应于两个极端流体边界条件,对应的结构响应的研究提供了对多孔弹性行为的流体贡献的概述,影响所考虑的材料的刚度。该参数缩小(当流体可以从结构流出时)或增加(当流体在结构内部保持时)并通过该模型量化时。本发明的Poro弹性数值模型在这里提供了提供生物可靠的骨骼模型,以确定可能影响骨质重塑的关键参数。

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