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用于测量宽剪切速率范围内剪切变化血液粘度的微型粘度计。

Micro-Viscometer for Measuring Shear-Varying Blood Viscosity over a Wide-Ranging Shear Rate.

机构信息

Department of Biomedical Science and Engineering, Gwangju Institute of Science and Technology, Gwangju 61005, Korea.

School of Mechanical Engineering, Gwangju Institute of Science and Technology, Gwangju 61005, Korea.

出版信息

Sensors (Basel). 2017 Jun 20;17(6):1442. doi: 10.3390/s17061442.

Abstract

In this study, a micro-viscometer is developed for measuring shear-varying blood viscosity over a wide-ranging shear rate. The micro-viscometer consists of 10 microfluidic channel arrays, each of which has a different micro-channel width. The proposed design enables the retrieval of 10 different shear rates from a single flow rate, thereby enabling the measurement of shear-varying blood viscosity with a fixed flow rate condition. For this purpose, an optimal design that guarantees accurate viscosity measurement is selected from a parametric study. The functionality of the micro-viscometer is verified by both numerical and experimental studies. The proposed micro-viscometer shows 6.8% (numerical) and 5.3% (experimental) in relative error when compared to the result from a standard rotational viscometer. Moreover, a reliability test is performed by repeated measurement (N = 7), and the result shows 2.69 ± 2.19% for the mean relative error. Accurate viscosity measurements are performed on blood samples with variations in the hematocrit (35%, 45%, and 55%), which significantly influences blood viscosity. Since the blood viscosity correlated with various physical parameters of the blood, the micro-viscometer is anticipated to be a significant advancement for realization of blood on a chip.

摘要

在这项研究中,开发了一种微粘度计,用于测量宽剪切率范围内的剪切变化血液粘度。微粘度计由 10 个微流道阵列组成,每个微流道阵列具有不同的微通道宽度。该设计能够从单个流速中提取 10 个不同的剪切率,从而能够在固定流速条件下测量剪切变化的血液粘度。为此,从参数研究中选择了保证准确粘度测量的最佳设计。通过数值和实验研究验证了微粘度计的功能。与标准旋转粘度计的结果相比,所提出的微粘度计的相对误差分别为 6.8%(数值)和 5.3%(实验)。此外,通过重复测量(N = 7)进行了可靠性测试,结果显示平均相对误差为 2.69 ± 2.19%。在红细胞压积(35%、45%和 55%)变化的血液样本上进行了准确的粘度测量,红细胞压积会显著影响血液粘度。由于血液粘度与血液的各种物理参数相关,因此微粘度计有望成为在芯片上实现血液的重要进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96fb/5492087/ff2dc5d6246e/sensors-17-01442-g001.jpg

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