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Measurement of Microchannel Fluidic Resistance with a Standard Voltage Meter

机译:用标准电压计测量微通道流体电阻

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摘要

A simplified method for measuring the fluidic resistance (Rfluidic) of microfluidic channels is presented, in which the electrical resistance (Relec) of a channel filled with a conductivity standard solution can be measured and directly correlated to Rfluidic using a simple equation. Although a slight correction factor could be applied in this system to improve accuracy, results showed that a standard voltage meter could be used without calibration to determine Rfluidic to within 12% error. Results accurate to within 2% were obtained when a geometric correction factor was applied using these particular channels. When compared to standard flow rate measurements, such as meniscus tracking in outlet tubing, this approach provided a more straightforward alternative and resulted in lower measurement error. The method was validated using 9 different fluidic resistance values (from ~40 – 600 kPa s mm−3) and over 30 separately fabricated microfluidic devices. Furthermore, since the method is analogous to resistance measurements with a voltage meter in electrical circuits, dynamic Rfluidic measurements were possible in more complex microfluidic designs. Microchannel Relec was shown to dynamically mimic pressure waveforms applied to a membrane in a variable microfluidic resistor. The variable resistor was then used to dynamically control aqueous-in-oil droplet sizes and spacing, providing a unique and convenient control system for droplet-generating devices. This conductivity-based method for fluidic resistance measurement is thus a useful tool for static or real-time characterization of microfluidic systems.
机译:提出了一种用于测量微流体通道的流体阻力(Rfluidic)的简化方法,其中可以测量填充有电导率标准溶液的通道的电阻(Relec),并使用一个简单的方程将其与Rfluidic直接相关。尽管可以在该系统中应用微小的校正系数来提高精度,但结果表明,可以使用标准电压表而无需校准,以将Rfluidic确定为误差在12%以内。当使用这些特定通道应用几何校正因子时,可获得精确到2%以内的结果。当与标准流量测量(例如出口管中的弯液面跟踪)进行比较时,此方法提供了更直接的替代方法,并导致较低的测量误差。该方法已使用9种不同的流体阻力值(约40 – 600 kPa s mm -3 )和30多种单独制造的微流体装置进行了验证。此外,由于该方法类似于使用电路中的电压表进行电阻测量,因此在更复杂的微流体设计中可以进行动态Rfluidic测量。已显示Microchannel Relec可动态模拟可变微流体电阻器中施加到膜上的压力波形。可变电阻器随后用于动态控制油包水液滴的大小和间距,从而为液滴生成设备提供了独特且方便的控制系统。因此,这种基于电导率的流体阻力测量方法是微流体系统静态或实时表征的有用工具。

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