The effect of hemicylindrical disruptors on the cell free layer thickness in animal blood flows inside microchannels

Duarte Dias, Duarte Sampaio, Gonçalo Silva, V. Semião
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Abstract

Abstract Blood-side resistance to oxygen transport in extracorporeal membrane blood oxygenators (MBO) depends on fluid mechanics governing the laminar flow in very narrow channels, particularly the hemodynamics controlling the cell free layer (CFL) built-up at solid/blood interfaces. The CFL thickness constitutes a barrier to oxygen transport from the membrane towards the erythrocytes. Interposing hemicylindrical CFL disruptors in animal blood flows inside rectangular microchannels, surrogate systems of MBO mimicking their hemodynamics, proved to be effective in reducing (ca. 20%) such thickness (desirable for MBO to increase oxygen transport rates to the erythrocytes). The blockage ratio (non-dimensional measure of the disruptor penetration into the flow) increase is also effective in reducing CFL thickness (ca. 10–20%), but at the cost of risking clot formation (undesirable for MBO) for disruptors with penetration lengths larger than their radius, due to large residence times of erythrocytes inside a low-velocity CFL formed at the disruptor/wall edge.
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半圆柱形干扰物对微通道内动物血流中细胞自由层厚度的影响
体外膜血氧器(extracorporeal membrane blood oxygenators, MBO)对氧运输的血侧阻力取决于控制极窄通道层流的流体力学,特别是控制固体/血液界面上形成的细胞自由层(cell free layer, CFL)的血流动力学。CFL的厚度构成了氧气从细胞膜向红细胞运输的屏障。在矩形微通道内的动物血流中插入半圆柱形CFL干扰物,MBO模拟其血流动力学的替代系统,被证明可以有效减少(约20%)这种厚度(MBO需要增加向红细胞的氧运输速率)。阻塞比(干扰物渗透到流动中的无量程测量)的增加也可以有效地减少CFL厚度(约10-20%),但对于穿透长度大于其半径的干扰物来说,这是有可能形成凝块的代价(对于MBO来说是不希望的),因为在干扰物/壁边缘形成的低速CFL内红细胞的停留时间很长。
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