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Two-phase model for prediction of cell-free layer width in blood flow

机译:两相模型用于预测血流中无细胞层宽度的模型

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摘要

This study aimed to develop a numerical model capable of predicting changes in the cell-free layer (CFL) width in narrow tubes with consideration of red blood cell aggregation effects. The model development integrates to empirical relations for relative viscosity (ratio of apparent viscosity to medium viscosity) and core viscosity measured on independent blood samples to create a continuum model that includes these two regions. The constitutive relations were derived from in vitro experiments performed with three different glass-capillary tubes (inner diameter = 30, 50 and 100 μm) over a wide range of pseudoshear rates (5-300 s−1). The aggregation tendency of the blood samples was also varied by adding Dextran 500 kDa. Our model predicted that the CFL width was strongly modulated by the relative viscosity function. Aggregation increased the width of CFL, and this effect became more pronounced at low shear rates. The CFL widths predicted in the present study at high shear conditions were in agreement with those reported in previous studies. However, unlike previous multi-particle models, our model did not require a high computing cost, and it was capable of reproducing results for a thicker CFL width at low shear conditions, depending on aggregating tendency of the blood.
机译:这项研究旨在建立一个能够预测考虑到红细胞聚集效应的窄管中无细胞层(CFL)宽度变化的数值模型。该模型开发整合了相对粘度(表观粘度与中等粘度的比值)和在独立血液样本上测得的核心粘度的经验关系,从而创建了包括这两个区域的连续模型。本构关系源自在三种不同的假剪切速率(5-300 s -1 )范围内使用三种不同的玻璃毛细管(内径分别为30、50和100μm)进行的体外实验。 。血样的聚集趋势也可以通过添加500 kDa的葡聚糖来改变。我们的模型预测,CFL宽度受到相对粘度函数的强烈调节。聚集增加了CFL的宽度,并且这种影响在低剪切速率下变得更加明显。本研究在高剪切条件下预测的CFL宽度与先前研究中报道的一致。但是,与以前的多粒子模型不同,我们的模型不需要高昂的计算成本,并且能够根据血液的聚集趋势在低剪切条件下重现较厚的CFL宽度的结果。

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