Rahbari A, Montazerian H, Davoodi E, Homayoonfar S
a Department of Mechanical Engineering , Shahid Rajaee Teacher Training University , Tehran , Iran.
b Research School of Engineering, The Australian National University , Canberra , Australia.
Comput Methods Biomech Biomed Engin. 2017 Feb;20(3):231-241. doi: 10.1080/10255842.2016.1215436. Epub 2016 Aug 5.
The main aim of this research is to numerically obtain the permeability coefficient in the cylindrical scaffolds. For this purpose, a mathematical analysis was performed to derive an equation for desired porosity in terms of morphological parameters. Then, the considered cylindrical geometries were modeled and the permeability coefficient was calculated according to the velocity and pressure drop values based on the Darcy's law. In order to validate the accuracy of the present numerical solution, the obtained permeability coefficient was compared with the published experimental data. It was observed that this model can predict permeability with the utmost accuracy. Then, the effect of geometrical parameters including porosity, scaffold pore structure, unit cell size, and length of the scaffolds as well as entrance mass flow rate on the permeability of porous structures was studied. Furthermore, a parametric study with scaling laws analysis of sample length and mass flow rate effects on the permeability showed good fit to the obtained data. It can be concluded that the sensitivity of permeability is more noticeable at higher porosities. The present approach can be used to characterize and optimize the scaffold microstructure due to the necessity of cell growth and transferring considerations.
本研究的主要目的是通过数值方法获得圆柱形支架中的渗透系数。为此,进行了数学分析,以根据形态学参数推导出所需孔隙率的方程。然后,对所考虑的圆柱形几何结构进行建模,并根据基于达西定律的速度和压降值计算渗透系数。为了验证当前数值解的准确性,将获得的渗透系数与已发表的实验数据进行了比较。结果发现,该模型能够极其准确地预测渗透率。然后,研究了包括孔隙率、支架孔隙结构、单胞尺寸、支架长度以及入口质量流率等几何参数对多孔结构渗透率的影响。此外,对样品长度和质量流率对渗透率影响的比例定律分析进行的参数研究与所获得的数据显示出良好的拟合。可以得出结论,在较高孔隙率下,渗透率的敏感性更为明显。由于细胞生长和转运考虑的必要性,目前的方法可用于表征和优化支架微观结构。