Micro-fibers shape effects on gas exchange in Total Artificial Lung

A. Qamar, Aditya Guglani, R. Samtaney
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Abstract

Flow and oxygen transport dynamics of a pulsatile flow past an array of square and circular cross section micro-fiber is numerically investigated in the present work. The study is motivated to optimize the design of an Total Artificial Lung (TAL) under clinical trials. Effects of three non-dimensional parameters: Reynolds number, non-dimensional amplitude of free stream velocity and Keulegan Carpenter number on oxygen transport and total drag (resistance) of both the fibers are studied. Range of parameters investigated corresponds to operating range of TAL. For most of the cases investigated, results show enhanced oxygen transport for square fiber but higher resistance when compare with the circular fiber case under almost all flow conditions. For both fibers, oxygen transfer rate are enhanced at higher Reynolds number, higher velocity amplitude and lower KC values. Overall drag is found to decrease with increasing Reynolds number and decreasing amplitude and is not significantly effected by Keulegan Carpenter number.
微纤维形状对全人工肺气体交换的影响
本文用数值方法研究了脉冲流通过方形和圆形截面微纤维阵列时的流动和氧输运动力学。本研究旨在临床试验中优化全人工肺(TAL)的设计。研究了雷诺数、自由流速度无量纲幅值和Keulegan Carpenter数三个无量纲参数对两种纤维氧输运和总阻力的影响。所调查的参数范围与TAL的工作范围相对应。在大多数情况下,在几乎所有的流动条件下,与圆形纤维相比,方形纤维的氧输运增强,但阻力更高。两种光纤在高雷诺数、高速度幅值和低KC值下,氧传递速率均有所提高。总阻力随雷诺数的增加和幅值的减小而减小,而受Keulegan Carpenter数的影响不显著。
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