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In Vitro Blood Flow and Cell-Free Layer in Hyperbolic Microchannels: Visualizations and Measurements

机译:双曲线微通道中的体外血流和无细胞层:可视化和测量

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摘要

Red blood cells (RBCs) in microchannels has tendency to undergo axial migration due to the parabolic velocity profile, which results in a high shear stress around wall that forces the RBC to move towards the centre induced by the tank treading motion of the RBC membrane. As a result there is a fog nation of a cell free layer (CFL) with extremely low concentration of cells. Based on this phenomenon, several works have proposed microfluidic designs to separate the suspending physiological fluid from whole in vitro blood. This study aims to characterize the CFL in hyperbolic-shaped microchannels to separate RBCs from plasma. For this purpose, we have investigated the effect of hyperbolic contractions on the CFL by using not only different Hencky strains but also varying the series of contractions. The results show that the hyperbolic contractions with a Hencky strain of 3 and higher, substantially increase the CFL downstream of the contraction region in contrast with the microchannels with a Hencky strain of 2, where the effect is insignificant. Although, the highest CFL thickness occur at microchannels with a Hencky strain of 3.6 and 4.2 the experiments have also shown that cells blockage are more likely to occur at this kind of microchannels. Hence, the most appropriate hyperbolic-shaped micro channels to separate RBCs from plasma is the one with a Hencky strain of 3.
机译:由于抛物线速度分布,微通道中的红细胞(RBC)倾向于经历轴向迁移,这导致壁周围产生高剪切应力,迫使RBC朝着由RBC膜的踩踏运动引起的中心移动。结果,存在细胞浓度极低的无细胞层(CFL)的雾状状态。基于此现象,几项工作提出了微流控设计,以将悬浮的生理液与体外全血分离。这项研究旨在表征双曲线形微通道中的CFL,以将RBC与血浆分开。为此,我们不仅通过使用不同的Hencky应变,而且通过改变一系列收缩,研究了双曲线收缩对CFL的影响。结果表明,与Hencky应变为2的微通道相反,Hencky应变为3或更高的双曲线收缩明显增加了收缩区域下游的CFL。尽管最大的CFL厚度发生在具有3.6和4.2的Hencky应变的微通道上,但实验也表明,在这种微通道上更容易发生细胞阻塞。因此,从血浆中分离出RBC的最合适的双曲线形微通道是Hencky应变为3的通道。

著录项

  • 来源
    《BioChip journal》 |2016年第1期|9-15|共7页
  • 作者单位

    Univ Porto, Fac Engn, Associate Lab LSRE LCM, R Dr Roberto Frias, P-4200465 Oporto, Portugal|ESTiG IPB, Polytech Inst Braganca, C Sta Apolonia, P-5301857 Braganca, Portugal;

    ESTiG IPB, Polytech Inst Braganca, C Sta Apolonia, P-5301857 Braganca, Portugal;

    ESTiG IPB, Polytech Inst Braganca, C Sta Apolonia, P-5301857 Braganca, Portugal|Univ Porto, Fac Engn, CEFT, R Dr Roberto Frias, P-4200465 Oporto, Portugal;

    ESTiG IPB, Polytech Inst Braganca, C Sta Apolonia, P-5301857 Braganca, Portugal|Univ Minho, Algoritmi R&D Ctr, Campus Gualtar, P-4710057 Braga, Portugal;

    ESTiG IPB, Polytech Inst Braganca, C Sta Apolonia, P-5301857 Braganca, Portugal;

    Jade Univ Appl Sci, D-26389 Wilhelmshaven, Germany;

    Univ Porto, Fac Engn, CEFT, R Dr Roberto Frias, P-4200465 Oporto, Portugal;

    ESTiG IPB, Polytech Inst Braganca, C Sta Apolonia, P-5301857 Braganca, Portugal|Univ Porto, Fac Engn, CEFT, R Dr Roberto Frias, P-4200465 Oporto, Portugal|Univ Minho, Dept Mech Engn, Campus Azurem, P-4800058 Guimaraes, Portugal;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Blood; Cell-free layer; Hyperbolic micro channels; Hencky strain; Microcirculation; Microfluidic systems; Red blood cells;

    机译:血液;无细胞层;双曲微通道;Huncky应变;微循环;微流体系统;红细胞;

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