Srivastava Nimisha, Burns Mark A
Biosystems Research Department, Sandia National Laboratories, Livermore, CA 94550, USA.
Lab Chip. 2007 May;7(5):633-7. doi: 10.1039/b617067f. Epub 2007 Apr 4.
We have developed a microfluidic method for measuring the fluid pressure head experienced at any location inside a microchannel. The principal component is a microfabricated sealed chamber with a single inlet and no exit; the entrance to the single inlet is positioned at the location where pressure is to be measured. The pressure measurement is then based on monitoring the movement of a liquid-air interface as it compresses air trapped inside the microfabricated sealed chamber and calculating the pressure using the ideal gas law. The method has been used to measure the pressure of the air stream and continuous liquid flow inside microfluidic channels (d approximately 50 microm). Further, a pressure drop has also been measured using multiple microfabricated sealed chambers. For air pressure, a resolution of 700 Pa within a full-scale range of 700-100 kPa was obtained. For liquids, pressure drops as low as 70 Pa were obtained in an operating range from 70 Pa to 10 kPa. Since the method primarily uses a microfluidic sealed chamber, it does not require additional fabrication steps and may easily be incorporated in several lab-on-a-chip fluidic applications for laminar as well as turbulent flow conditions.
我们开发了一种微流控方法,用于测量微通道内任意位置所经历的流体压头。主要部件是一个微制造的密封腔室,有一个入口且无出口;单个入口的入口位置位于要测量压力的位置。然后,压力测量基于监测液 - 气界面的移动,该界面压缩被困在微制造密封腔室内的空气,并使用理想气体定律计算压力。该方法已用于测量微流控通道(直径约50微米)内气流和连续液体流的压力。此外,还使用多个微制造的密封腔室测量了压力降。对于气压,在700 - 100 kPa的满量程范围内获得了700 Pa的分辨率。对于液体,在70 Pa至10 kPa的工作范围内获得了低至70 Pa的压力降。由于该方法主要使用微流控密封腔室,因此不需要额外的制造步骤,并且可以很容易地应用于几种片上实验室流体应用中,适用于层流和湍流条件。