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微尺度多孔弹性等效模型促进骨骼中尺度重构模拟的高效计算。

Microscale poroelastic metamodel for efficient mesoscale bone remodelling simulations.

机构信息

Structural Biomechanics, Department of Civil and Environmental Engineering, Imperial College London, London, UK.

出版信息

Biomech Model Mechanobiol. 2017 Dec;16(6):2077-2091. doi: 10.1007/s10237-017-0939-x. Epub 2017 Aug 9.

Abstract

Bone functional tissue adaptation is a multiaspect physiological process driven by interrelated mechanical and biological stimuli which requires the combined activity of osteoclasts and osteoblasts. In previous work, the authors developed a phenomenological mesoscale structural modelling approach capable of predicting internal structure of the femur based on daily activity loading, which relied on the iterative update of the cross-sectional areas of truss and shell elements representative of trabecular and cortical bones, respectively. The objective of this study was to introduce trabecular reorientation in the phenomenological model at limited computational cost. To this aim, a metamodel derived from poroelastic microscale continuum simulations was used to predict the functional adaptation of a simplified proximal structural femur model. Clear smooth trabecular tracts are predicted to form in the regions corresponding to the main trabecular groups identified in literature, at minimal computational cost.

摘要

骨骼功能组织适应是一个多方面的生理过程,由相互关联的机械和生物刺激驱动,需要破骨细胞和成骨细胞的共同活动。在之前的工作中,作者开发了一种现象学介观结构建模方法,能够根据日常活动负荷预测股骨的内部结构,该方法依赖于分别代表小梁骨和皮质骨的桁架和壳单元的横截面面积的迭代更新。本研究的目的是在有限的计算成本下在现象学模型中引入小梁骨重定向。为此,使用源自多孔弹性微尺度连续体模拟的变分模型来预测简化的近端结构股骨模型的功能适应。在最小的计算成本下,预测到在对应于文献中识别出的主要小梁群的区域中形成清晰的平滑小梁轨迹。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2ab/5671577/6da6c6f533ec/10237_2017_939_Fig1_HTML.jpg

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