4.5 Article

Fluid-structure interaction (FSI) modeling of bone marrow through trabecular bone structure under compression

期刊

BIOMECHANICS AND MODELING IN MECHANOBIOLOGY
卷 20, 期 3, 页码 957-968

出版社

SPRINGER HEIDELBERG
DOI: 10.1007/s10237-021-01423-x

关键词

FSI; Trabecular bone; Compressive loading; Numerical analysis; Bone marrow

资金

  1. Kementerian Pendidikan Malaysia (KPM) [TRGS/1/2016/UM/01/4/2]

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The study investigated the fluid characteristic and mechanical properties of trabecular bone using the FSI approach, finding moderate correlations between permeability and porosity, surface area in both longitudinal and transverse orientations. Transverse orientation limits fluid flow through trabeculae due to high shear stress. Compared to the longitudinal orientation, transverse orientation exhibits higher permeability.
The present study has sought to investigate the fluid characteristic and mechanical properties of trabecular bone using fluid-structure interaction (FSI) approach under different trabecular bone orientations. This method imposed on trabecular bone structure at both longitudinal and transverse orientations to identify effects on shear stress, permeability, stiffness and stress regarded to the trabeculae. Sixteen FSI models were performed on different range trabecular cubes of 27 mm(3) with eight models developed for each longitudinal and transverse direction. Results show that there was a moderate correlation between permeability and porosity, and surface area in the longitudinal and transverse orientations. For the longitudinal orientation, the permeability values varied between 3.66 x 10(-8) and 1.9 x 10(-7) and the sheer stress values varied between 0.05 and 1.8 Pa, whilst for the transverse orientation, the permeability values varied between 5.95 x 10(-10) and 1.78 x 10(-8) and the shear stress values varied between 0.04 and 3.1 Pa. Here, transverse orientation limits the fluid flow from passing through the trabeculae due to high shear stress disturbance generated within the trabecular bone region. Compared to physiological loading direction (longitudinal orientation), permeability is higher within the range known to trigger a response in bone cells. Additionally, shear stresses also increase with bone surface area. This study suggests the shear stress within bone marrow in real trabecular architecture could provide the mechanical signal to marrow cells that leads to bone anabolism and can depend on trabecular orientation.

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