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An Easy Method for Pressure Measurement in Microchannels Using Trapped Air Compression in a One-End-Sealed Capillary

机译:在一端密封的毛细管中使用捕获的空气压缩在微通道中压力测量的简便方法

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摘要

Pressure is one basic parameter involved in microfluidic systems. In this study, we developed an easy capillary-based method for measuring fluid pressure at one or multiple locations in a microchannel. The principal component is a commonly used capillary (inner diameter of 400 μm and 95 mm in length), with one end sealed and calibrated scales on it. By reading the height (h) of an air-liquid interface, the pressure can be measured directly from a table, which is calculated using the ideal gas law. Many factors that affect the relationship between the trapped air volume and applied pressure (papplied) have been investigated in detail, including the surface tension, liquid gravity, air solubility in water, temperature variation, and capillary diameters. Based on the evaluation of the experimental and simulation results of the pressure, combined with theoretical analysis, a resolution of about 1 kPa within a full-scale range of 101.6–178 kPa was obtained. A pressure drop (Δp) as low as 0.25 kPa was obtained in an operating range from 0.5 kPa to 12 kPa. Compared with other novel, microstructure-based methods, this method does not require microfabrication and additional equipment. Finally, we use this method to reasonably analyze the nonlinearity of the flow-pressure drop relationship caused by channel deformation. In the future, this one-end-sealed capillary could be used for pressure measurement as easily as a clinical thermometer in various microfluidic applications.
机译:压力是微流体系统涉及的一种基本参数。在这项研究中,我们开发了一种易于基于毛细管的方法,用于测量微通道中的一个或多个位置处的流体压力。主要组分是常用的毛细管(内径400μm和95mm的长度),一端密封和校准尺度。通过读取空气液体界面的高度(H),可以直接从表格测量压力,该表是使用理想的气体法计算的。已经详细研究了影响捕获的空气量和施加压力(纸张)之间关系的多种因素,包括表面张力,液体重力,水中的水,温度变化和毛细管直径。基于对压力的实验和仿真结果的评价,​​结合理论分析,获得了101.6-178kPa的全尺度范围内约1kPa的分辨率。在0.5kPa至12kPa的操作范围内获得低至0.25kPa的压降(ΔP)。与其他新颖的基于微观结构的方法相比,该方法不需要微型切换和附加设备。最后,我们使用这种方法来合理地分析由信道变形引起的流压下降关系的非线性。将来,这种单端密封的毛细管可用于各种微流体应用中的临床温度计的压力测量。

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