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The Deformation of Polydimethylsiloxane (PDMS) Microfluidic Channels Filled with Embedded Circular Obstacles under Certain Circumstances

机译:在某些情况下填充有嵌入式圆形障碍物的聚二甲基硅氧烷(PDMS)微流体通道的变形

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摘要

Experimental investigations were conducted to determine the influence of polydimethylsiloxane (PDMS) microfluidic channels containing aligned circular obstacles (with diameters of 172 µm and 132 µm) on the flow velocity and pressure drop under steady-state flow conditions. A significant PDMS bulging was observed when the fluid flow initially contacted the obstacles, but this phenomenon decreased in the 1 mm length of the microfluidic channels when the flow reached a steady-state. This implies that a microfluidic device operating with steady-state flows does not provide fully reliable information, even though less PDMS bulging is observed compared to quasi steady-state flow. Numerical analysis of PDMS bulging using ANSYS Workbench showed a relatively good agreement with the measured data. To verify the influence of PDMS bulging on the pressure drop and flow velocity, theoretical analyses were performed and the results were compared with the experimental results. The measured flow velocity and pressure drop data relatively matched well with the classical prediction under certain circumstances. However, discrepancies were generated and became worse as the microfluidic devices were operated under the following conditions: (1) restricted geometry of the microfluidic channels (i.e., shallow channel height, large diameter of obstacles and a short microchannel length); (2) operation in quasi-steady state flow; (3) increasing flow rates; and (4) decreasing amount of curing agent in the PDMS mixture. Therefore, in order to obtain reliable data a microfluidic device must be operated under appropriate conditions.
机译:进行实验研究以确定在稳态流动条件下,包含对准的圆形障碍物(直径分别为172 µm和132 µm)的聚二甲基硅氧烷(PDMS)微流体通道对流速和压降的影响。当流体流最初接触障碍物时,观察到明显的PDMS鼓胀,但是当流达到稳态时,这种现象在1毫米长的微流体通道中减少。这意味着,与准稳态流相比,即使观察到的PDMS凸起较少,以稳态流运行的微流体设备也无法提供完全可靠的信息。使用ANSYS Workbench进行的PDMS膨胀的数值分析显示,与测得的数据具有相对较好的一致性。为了验证PDMS鼓胀对压降和流速的影响,进行了理论分析,并将结果与​​实验结果进行了比较。在某些情况下,测得的流速和压降数据与经典预测相对较好地匹配。然而,当在以下条件下操作微流体装置时,会产生差异并变得更糟:(1)微流体通道的几何形状受到限制(即,通道高度浅,障碍物直径大且微通道长度短); (2)在准稳态流中运行; (3)增加流量; (4)减少PDMS混合物中固化剂的量。因此,为了获得可靠的数据,必须在适当的条件下操作微流体装置。

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