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首页> 外文期刊>International Communications in Heat and Mass Transfer >Modeling the flow and mass transport in a mechanically stimulated parametric porous scaffold under fluid-structure interaction approach
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Modeling the flow and mass transport in a mechanically stimulated parametric porous scaffold under fluid-structure interaction approach

机译:在流体-结构相互作用方法下模拟机械激发的参数多孔支架中的流动和传质

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摘要

Tissue engineering scaffolds combined with bioreactors are used to cultivate cells with the aim of reproducing tissues and organs. The cultivating process is critical due to the delicate in-vitro environment in which the cells should reproduce. The distribution of nutrients within the engineered construct depend on the scaffold morphology and the analysis of the fluid flow and transport phenomena under mechanical loading when the scaffold is coupled with a bioreactor is crucial for this scope. Unfortunately, due to the complicated microstructure of the scaffold, it is not possible to perform this analysis with experiments and numerical simulation can help in this sense. In this study we have computed the fluid flow and the mass transport of a parametrized scaffold in perfusion bioreactors analyzing the influence of the microstructure of the scaffold using the fluid-structure interaction approach. The latter allows considering the porous construct as compliant yet determining important structural parameters such as stresses and strains that could be sensed by the cells. The presented model considered flow perfusion that provided nutrients and mechanical compression. In particular, we have studied the effect of controllable parameters such as the diameter of the scaffold strand and the porosity on the mechanical stresses and strains, shear stress and mass transport. The results of this work will help to shed light on the necessary microenvironment surrounding the cultivated cells improving culturing scaffold fabrication.
机译:与生物反应器结合的组织工程支架用于培养细胞,目的是繁殖组织和器官。由于细胞应在精致的体外环境中繁殖,因此培养过程至关重要。在工程化构建体中营养物的分布取决于支架的形态,当支架与生物反应器耦合时,在机械负载下分析流体流动和运输现象对于该范围至关重要。不幸的是,由于支架的微观结构复杂,因此无法通过实验进行这种分析,而数值模拟可以在此意义上提供帮助。在这项研究中,我们计算了灌注生物反应器中参数化支架的流体流量和质量传输,并使用流固耦合方法分析了支架微结构的影响。后者允许将多孔构造体视为顺应性,但确定重要的结构参数,例如细胞可感知的应力和应变。提出的模型考虑了提供营养和机械压缩的血流灌注。特别是,我们研究了可控参数(如脚手架股的直径和孔隙率)对机械应力和应变,剪切应力和质量传递的影响。这项工作的结果将有助于阐明围绕培养细胞的必要微环境,从而改善培养支架的制造。

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