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Adiabatic two-phase flow in rectangular microchannels with different aspect ratios: Part I - Flow pattern, pressure drop and void fraction

机译:具有不同长宽比的矩形微通道中的绝热两相流:第一部分-流型,压降和空隙率

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摘要

An aspect ratio is an important parameter for two-phase flow in a rectangular microchannel. To study the aspect ratio effect on the flow pattern, pressure drop and void fraction, experiments of adiabatic liquid water and nitrogen gas two-phase flow in rectangular microchannels were conducted. The widths and heights of rectangular microchannels are 510 μm × 470 μm, 608 μm × 410 μrn, 501 μrn × 237 μrn and 503 μm × 85 μrn. Therefore, the aspect ratios of the rectangular microchannels are 0.92, 0.67, 0.47 and 0.16; and the hydraulic diameters of the rectangular microchannels were 490, 490, 322 and 143 μm, respectively. Experimental ranges were liquid superficial velocities of 0.06-1.0 m/s and gas superficial velocities of 0.06-71 m/s. Visible rectangular microchannels were fabricated using a photosensitive glass. And pressure drop in microchannels was directly measured through embedded ports. The visualization of the flow pattern was carried out with a high-speed camera and a long distance microscope. Typical flow patterns in the rectangular microchannels observed in this study were bubble flow, transitional flow (multiple flow) and liquid ring flow. As the aspect ratio decreased, the bubble flow regime became dominant due to the confinement effect and the thickness of liquid film in corner was decreased. A void fraction in the rectangular microchannels has a linear relation with the volumetric quality. And the two-phase flow becomes homogeneous with decreasing aspect ratio owing to the reduction of the liquid film thickness. Like Zhang et al.'s [19] correlation, as the confinement number increased, the C-value in Lockhart and Martinelli correlation decreased. And a frictional pressure drop in the rectangular micro-channels was highly related with the flow pattern.
机译:长宽比是矩形微通道中两相流的重要参数。为了研究长宽比对流动模式,压降和空隙率的影响,进行了在矩形微通道中绝热液态水和氮气两相流的实验。矩形微通道的宽度和高度分别为510μm×470μm,608μm×410μm,501μm×237μm和503μm×85μm。因此,矩形微通道的纵横比为0.92、0.67、0.47和0.16;矩形微通道的水力直径分别为490、490、322和143μm。实验范围是液体表面速度为0.06-1.0 m / s,气体表面速度为0.06-71 m / s。使用光敏玻璃制造可见的矩形微通道。通过嵌入式端口直接测量微通道中的压降。流动模式的可视化是用高速照相机和长距离显微镜进行的。在这项研究中观察到的矩形微通道中的典型流型是气泡流,过渡流(多流)和液环流。随着长宽比的减小,由于限制作用,气泡的流动状态变得占优势,并且拐角处的液膜厚度减小。矩形微通道中的空隙率与体积质量成线性关系。并且由于液膜厚度的减小,两相流随着纵横比的减小而变得均匀。像Zhang等人[19]的相关性一样,随着限制数的增加,Lockhart和Martinelli相关性的C值降低。矩形微通道中的摩擦压降与流型高度相关。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2011年第3期|p.616-624|共9页
  • 作者

    C.W. Choi; D.I. Yu; M.H. Kim;

  • 作者单位

    Department of Mechanical Engineering, Pohang University of Science and Technology, Pohang, San 31, Hyoja Dong 790-784, Republic of Korea;

    Department of Mechanical Engineering, Pohang University of Science and Technology, Pohang, San 31, Hyoja Dong 790-784, Republic of Korea;

    Department of Mechanical Engineering, Pohang University of Science and Technology, Pohang, San 31, Hyoja Dong 790-784, Republic of Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    microchannel; aspect ratio; flow pattern; pressure drop; void fraction;

    机译:微通道长宽比流型压力下降;空隙率;

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