Applying A-PTV to RBC suspension flows

IF 2.3 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Ang Sun, Till Werner, Finn Knüppel, Frank-Hendrik Wurm, Benjamin Torner, Jeanette Hussong
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Abstract

In strongly confined flow geometries, red blood cells migrate normal to the flow direction, thereby altering the flow rheology of blood. Direct optical measurements can help to gain an improved understanding of these migration processes. In the present study, we demonstrate that astigmatism particle tracking velocimetry is a suitable 3D-particle tracking method that allows to directly measure both 3D concentration and velocity distributions of red blood cells in a flow. Red blood cells assume a non-spherical shape; therefore, the influence of their orientation on the reconstruction of the out-of-plane particle position is evaluated through a ray tracing approach of synthetic, astigmatic images. While for noise-free images, the resulting absolute out-of-plane reconstruction error \(\sigma _z\) is small for different red blood cell orientations (\(\sigma _z\) = 0.98 \(\upmu \text {m}\)), it triples for experimentally relevant signal-to-noise ratios (SNR = 1.2). Reconstruction errors are compared to those of spherical particles. Overall, both the red blood cell orientation and the increase in signal-to-noise ratio induce similar out-of-plane reconstruction error values. Experimental analyses are also performed using both a red blood cell suspension system and a refractive index-matched suspension system of identical volume fraction (\({1.5\,\mathrm{\%}}\)). Comparing results from the red blood cell suspension flow with those of the particulate suspension under identical parameters for volume fraction, particle Reynolds number, and bulk Reynolds number, a similarity in lateral migration behavior is observed under the given conditions. The results indicate that the absolute out-of-plane reconstruction error in the red blood cell suspension system (\(\sigma _z = {4.50\,\mathrm{{\upmu \text {m}}}}\)) is approximately 1.5 times larger compared to the refractive index-matched system.

将A-PTV应用于RBC悬液流动
在强受限的流动几何中,红细胞向流动方向正常迁移,从而改变了血液的流动流变学。直接的光学测量可以帮助我们更好地理解这些迁移过程。在本研究中,我们证明了散光粒子跟踪速度法是一种合适的3D粒子跟踪方法,可以直接测量血流中红细胞的3D浓度和速度分布。红细胞呈非球形;因此,它们的方向对面外粒子位置重建的影响是通过合成的射线追踪方法来评估的,像散图像。而对于无噪声图像,得到的绝对面外重建误差\(\sigma _z\)对于不同的红细胞方向很小(\(\sigma _z\) = 0.98 \(\upmu \text {m}\)),对于实验相关的信噪比(信噪比= 1.2),它是三倍。将重构误差与球形粒子的重构误差进行了比较。总的来说,红细胞的方向和信噪比的增加都会引起类似的面外重建误差值。实验分析也进行了使用红细胞悬浮液系统和折射率匹配的悬浮液系统相同的体积分数(\({1.5\,\mathrm{\%}}\))。将红细胞悬浮液与颗粒悬浮液在相同体积分数、颗粒雷诺数和体积雷诺数条件下的流动结果进行比较,发现在相同条件下,红细胞悬浮液的横向迁移行为相似。结果表明,与折射率匹配系统相比,红细胞悬浮系统(\(\sigma _z = {4.50\,\mathrm{{\upmu \text {m}}}}\))的绝对面外重建误差约为1.5倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Experiments in Fluids
Experiments in Fluids 工程技术-工程:机械
CiteScore
5.10
自引率
12.50%
发文量
157
审稿时长
3.8 months
期刊介绍: Experiments in Fluids examines the advancement, extension, and improvement of new techniques of flow measurement. The journal also publishes contributions that employ existing experimental techniques to gain an understanding of the underlying flow physics in the areas of turbulence, aerodynamics, hydrodynamics, convective heat transfer, combustion, turbomachinery, multi-phase flows, and chemical, biological and geological flows. In addition, readers will find papers that report on investigations combining experimental and analytical/numerical approaches.
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