首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >A finite element dual porosity approach to model deformation-induced fluid flow in cortical bone.
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A finite element dual porosity approach to model deformation-induced fluid flow in cortical bone.

机译:一种有限元双重孔隙率方法,用于模拟变形引起的皮质骨中的流体流动。

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摘要

Fluid flow through the osteocyte canaliculi network is widely believed to be a main factor that controls bone adaptation. The difficulty of in vivo measurement of this flow within cortical bone makes computational models an appealing alternative to estimate it. We present in this paper a finite element dual porosity macroscopic model that can contribute to evaluate the interstitial fluid flow induced by mechanical loads in large pieces of bone. This computational model allows us to predict the macroscopic fluid flow at both vascular and canalicular porosities in a whole loaded bone. Our results confirm that the general trend in the fluid flow field predicted is similar to the one obtained with previous microscopic models, and that in a whole bone model it is able to estimate the zones with higher bone remodeling.
机译:人们普遍认为,流经骨小管网的流体是控制骨骼适应的主要因素。体内测量皮质骨内血流的难度使得计算模型成为估计其的有吸引力的选择。我们在本文中提出了一种有限元双重孔隙度宏观模型,该模型可以有助于评估大块骨头中的机械载荷引起的组织液流动。这种计算模型使我们能够预测整个负载骨骼中血管和小管孔隙的宏观流体流动。我们的结果证实,所预测的流体流场的总体趋势与先前的微观模型所获得的趋势相似,并且在整个骨骼模型中,它能够估算出具有更高骨骼重塑的区域。

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