The role of fluid flow on bone mechanobiology: mathematical modeling and simulation

被引:0
|
作者
María Teresa Sánchez
María Ángeles Pérez
José Manuel García-Aznar
机构
[1] Centro Universitario de la Defensa de Zaragoza,Instituto Universitario de Investigación en Matemáticas y Aplicaciones (IUMA)
[2] Universidad de Zaragoza,M2BE
[3] Universidad de Zaragoza,Multiscale in Mechanical and Biological Engineering, Instituto de Investigación en Ingeniería de Aragón (I3A), Instituto de Investigación Sanitaria Aragón (IIS Aragón)
来源
Computational Geosciences | 2021年 / 25卷
关键词
Poroelasticity; Interstitial fluid flow; Nested porosity; Bone remodeling; Cortical bone;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of fluid flow on tissue adaptation was the focus of many research works during the last years. Moreover, the use of poroelasticity models to simulate and understand the interstitial flow movement has taken interest due to the possibility to include the fluid effect on mechanical simulations. In particular, shear stresses induced by bone canalicular fluid flow are suggested to be one of the mechanical stimulus controlling bone remodeling processes. Due to the high difficulty to measure canalicular fluid flow and shear stresses, computational poroelastic models can be used in order to estimate these parameters. In this work, a finite element dual porosity model based on Russian doll poroelasticity is developed. Two experiments with a turkey ulna and a human femur are simulated. Bone lacuno-canalicular fluid flow is computed and compared with the experimental results, focusing on the zones of bone remodeling and showing a relation between this flow and the bone formation process.
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页码:823 / 830
页数:7
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