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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Micro-computed tomography based computational fluid dynamics for the determination of shear stresses in scaffolds within a perfusion bioreactor.
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Micro-computed tomography based computational fluid dynamics for the determination of shear stresses in scaffolds within a perfusion bioreactor.

机译:基于微计算机断层扫描的计算流体动力学,用于确定灌注生物反应器内支架的剪切应力。

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摘要

Perfusion bioreactors are known to exert shear stresses on cultured cells, leading to cell differentiation and enhanced extracellular matrix deposition on scaffolds. The influence of the scaffold's porous microstructure is investigated for a polycaprolactone (PCL) scaffold with a regular microarchitecture and a silk fibroin (SF) scaffold with an irregular network of interconnected pores. Their complex 3D geometries are imaged by micro-computed tomography and used in direct pore-level simulations of the entire scaffold-bioreactor system to numerically solve the governing mass and momentum conservation equations for fluid flow through porous media. The velocity field and wall shear stress distribution are determined for both scaffolds. The PCL scaffold exhibited an asymmetric distribution with peak and plateau, while the SF scaffold exhibited a homogenous distribution and conditioned the flow more efficiently than the PCL scaffold. The methodology guides the design and optimization of the scaffold geometry.
机译:已知灌注生物反应器在培养的细胞上施加剪切应力,从而导致细胞分化和增强的细胞外基质在支架上的沉积。研究了具有规则的微结构的聚己内酯(PCL)支架和具有不规则的互连孔网络的丝素蛋白(SF)支架对支架多孔结构的影响。它们的复杂3D几何形状通过微计算机断层扫描成像,并用于整个支架-生物反应器系统的直接孔隙水平模拟,以数值求解流体通过多孔介质流动的控制质量和动量守恒方程。确定了两个支架的速度场和壁面剪应力分布。与PCL支架相比,PCL支架表现出具有峰和平台的不对称分布,而SF支架表现出均一的分布并更有效地调节流动。该方法指导了支架几何结构的设计和优化。

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