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Effect of hydrophobicity and surface roughness on two-phase flow in rectangular microchannels.

机译:疏水性和表面粗糙度对矩形微通道中两相流动的影响。

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摘要

Two-phase flows in microchannels have received significant attention recently, and have become the cornerstone of numerous microfluidic devices. Microscale devices used for bioengineering applications, oil recovery, and chemical and catalytic microreactor applications involve the transport of bubbles in confined fluidic networks in channels of micrometer length scale. These types of two-phase flows result in pressure variations, leading to an overall increase in pressure drop. Among various flow parameters, pressure drop is extensively used in design of microfluidic devices. There are several parameters that affect the pressure drop across two-phase flow in microchannels. In the present study, the goal is to be able to predict the pressure drop of two-phase flow in rectangular microchannels as a function of hydrophobicity, surface roughness, and bubble size. The SU-8 channels are fabricated using photolithography to ensure a perfectly smooth surface, which eliminates the effect of surface roughness. The fabricated channels are treated to alter the contact angle of water on SU-8, isolating the effects of hydrophobicity. Pressure drop data of air-water two-phase flow across the channels was collected, and compared to a previously published model, which predicts the pressure drop across a smooth hydrophilic rectangular microchannel with an air bubble flowing through it. Deviations of the experimental pressure drop from the predicted values were observed as a function of hydrophobicity and bubble size; this information was used to introduce a term, accounting for the effects of hydrophobicity and bubble size, into the existing model. A method of fabricating rough SU-8 channels was proposed to isolate the effects of surface roughness. The model was validated using channels of varying aspect ratios. It was found that the proposed model was independent of the aspect ratio.
机译:微通道中的两相流近来受到了广泛的关注,并已成为众多微流体设备的基石。用于生物工程应用,石油采收以及化学和催化微反应器应用的微型设备涉及在微米长度尺度的通道中的受限流体网络中气泡的运输。这些类型的两相流会导致压力变化,从而导致压降的总体增加。在各种流量参数中,压降被广泛用于微流体装置的设计中。有几个参数会影响微通道中两相流之间的压降。在本研究中,目标是能够预测矩形微通道中两相流的压降与疏水性,表面粗糙度和气泡大小的关系。 SU-8通道使用光刻工艺制造,以确保表面完美光滑,从而消除了表面粗糙度的影响。处理制成的通道以改变水在SU-8上的接触角,从而隔离了疏水性的影响。收集了流经通道的空气-水两相流的压降数据,并将其与先前发布的模型进行了比较,该模型预测了在光滑的亲水矩形微通道上有气泡流过的压降。观察到实验压降与预测值的偏差是疏水性和气泡大小的函数;该信息用于在现有模型中引入一个术语,说明疏水性和气泡大小的影响。提出了一种制造粗糙的SU-8通道的方法来隔离表面粗糙度的影响。使用不同纵横比的通道对模型进行了验证。发现所提出的模型与纵横比无关。

著录项

  • 作者

    Unni, Gautham C.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 108 p.
  • 总页数 108
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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