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Label-free viscosity measurement of complex fluids using reversal flow switching manipulation in a microfluidic channel

机译:在微流体通道中使用逆流切换操作来测量复杂流体的无标记粘度

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摘要

The accurate viscosity measurement of complex fluids is essential for characterizing fluidic behaviors in blood vessels and in microfluidic channels of lab-on-a-chip devices. A microfluidic platform that accurately identifies biophysical properties of blood can be used as a promising tool for the early detections of cardiovascular and microcirculation diseases. In this study, a flow-switching phenomenon depending on hydrodynamic balancing in a microfluidic channel was adopted to conduct viscosity measurement of complex fluids with label-free operation. A microfluidic device for demonstrating this proposed method was designed to have two inlets for supplying the test and reference fluids, two side channels in parallel, and a junction channel connected to the midpoint of the two side channels. According to this proposed method, viscosities of various fluids with different phases (aqueous, oil, and blood) in relation to that of reference fluid were accurately determined by measuring the switching flow-rate ratio between the test and reference fluids, when a reverse flow of the test or reference fluid occurs in the junction channel. An analytical viscosity formula was derived to measure the viscosity of a test fluid in relation to that of the corresponding reference fluid using a discrete circuit model for the microfluidic device. The experimental analysis for evaluating the effects of various parameters on the performance of the proposed method revealed that the fluidic resistance ratio (>RJL/>RL, fluidic resistance in the junction channel (>RJL) to fluidic resistance in the side channel (>RL)) strongly affects the measurement accuracy. The microfluidic device with smaller >RJL/>RL values is helpful to measure accurately the viscosity of the test fluid. The proposed method accurately measured the viscosities of various fluids, including single-phase (Glycerin and plasma) and oil-water phase (oil vs. deionized water) fluids, compared with conventional methods. The proposed method was also successfully applied to measure viscosities of blood with varying hematocrits, chemically fixed RBCS, and channel sizes. Based on these experimental results, the proposed method can be effectively used to measure the viscosities of various fluids easily, without any fluorescent labeling and tedious calibration procedures.
机译:复杂流体的准确粘度测量对于表征芯片实验室设备的血管和微流体通道中的流体行为至关重要。准确识别血液生物物理特性的微流控平台可用作早期发现心血管和微循环疾病的有前途的工具。在这项研究中,采用依赖于微流体通道中流体动力平衡的流量转换现象来进行无标记操作的复杂流体的粘度测量。用于演示此提议方法的微流体设备被设计为具有两个用于供应测试流体和参考流体的入口,两个平行的侧通道以及一个连接到两个侧通道中点的连接通道。根据该建议方法,当反向流动时,通过测量测试流体和参考流体之间的转换流速比,可以准确地确定相对于参考流体具有不同相(水,油和血液)的各种流体的粘度。测试液或参比液发生在连接通道中。使用微流体装置的离散回路模型,得出了分析粘度公式,以测量测试流体相对于相应参考流体的粘度。通过评估各种参数对所提方法性能的影响的实验分析表明,流体阻力比(> RJL / > RL ,结通道中的流体阻力(<侧通道(> RL )中的流体阻力(strong> RJL )强烈影响测量精度。 > RJL / > RL 值较小的微流体设备有助于准确测量测试流体的粘度。与传统方法相比,该方法可准确测量各种流体的粘度,包括单相(甘油和血浆)和油水相(油对去离子水)的粘度。所提出的方法还成功地用于测量具有不同血细胞比容,化学固定的RBCS和通道大小的血液粘度。基于这些实验结果,所提出的方法可以有效地轻松地测量各种流体的粘度,而无需任何荧光标记和繁琐的校准程序。

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