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Experimental Investigations of Droplet Deposition and Coalescence in Curved Pipes

机译:弯管内液滴沉积与聚结的实验研究

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摘要

Even though there have been several studies conducted by the industry on the use of different inlet devices for gas-liquid separation, there have been limited laboratory and field evaluations on the use of external piping configurations as flow conditioning devices upstream of a separator inlet. The results of a systematic study of droplet deposition and coalescence in curved pipe and pipe fittings are reported in this paper. A facility has been designed consisting of two main test sections: a fixed horizontal straight pipe section and an interchangeable 180 deg return pipe section (or curved pipe section) of the same length. Both inlet and outlet to the 180 deg return are horizontal, but the plane of the 180 deg return pipe section can pivot about the axis of the inlet horizontal pipe to an angle as much as 10 deg downwards allowing downward flow in the return section. Various pipe fittings of different radius of curvature can be installed for comparison in the 180 deg return. Fittings evaluated in this study included: 180 deg pipe bend, short elbow bend (with standard radius of curvature of 1.5D), long elbow bend (with custom radius of curvature of 6D), target tee bend, and cushion tee bend. Experiments have been carried out using water and air, and varying gas velocities and liquid loadings. In order to compare the performance of geometries, Droplet Deposition Fractions (DDF) were measured in the horizontal straight pipe section and in the 180 deg return pipe section as a measure of coalescence efficiency. The results demonstrate that higher DDF occurs for curved fittings as compared to the straight pipe section. The short elbow bend has approximately 10% DDF higher, whereas long elbow bend along with 180 deg pipe bend perform better (by 15-20% DDF) than straight pipe. It was found that the cushion tee and target tee bends can coalesce droplets at lower gas velocities but break up droplets at higher gas velocities. Additionally, no significant differences between DDF's in three different inclination angles of a curved pipe were observed. It can be concluded that 180 deg pipe bend or two 6D long radius elbow bend can serve as a droplet coalescer; a pair of cushion tees or target tees can also work as coalescers at low kinetic energy but as atomizers at high kinetic energy.
机译:尽管工业上已经进行了几项有关使用不同进气装置进行气液分离的研究,但是对于使用外部管道配置作为分离器进气上游的流量调节装置的实验室和现场评估仍然有限。本文报道了对弯管和管件中的液滴沉积和聚结进行系统研究的结果。设计了一个设施,该设施包括两个主要测试部分:一个固定的水平直管部分和一个可互换的长度相同的180度回流管部分(或弯曲管部分)。 180度回流管的入口和出口都是水平的,但是180度回流管段的平面可以绕入口水平管的轴线向下旋转多达10度的角度,从而允许在回流段中向下流动。可以安装不同曲率半径的各种管件,以便在180度回程中进行比较。在这项研究中评估的配件包括:180度弯管,短弯头(标准曲率半径为1.5D),长弯头(自定义曲率半径为6D),目标三通和缓冲三通。已经使用水和空气以及变化的气体速度和液体载荷进行了实验。为了比较几何形状的性能,在水平直管段和180度回流管段中测量了液滴沉积分数(DDF),以衡量聚结效率。结果表明,与直管段相比,弯曲配件的DDF更高。短弯头的弯头DDF大约高出10%,而长弯头和180度弯头的弯头要比直弯头更好(DDF的15-20%)。已经发现,气垫三通和目标三通的弯曲可以在较低的气体速度下聚结液滴,但在较高的气体速度下会分解液滴。另外,在弯曲管的三个不同倾斜角度下,没有观察到DDF之间的显着差异。可以得出这样的结论:180度弯管或两个6D长半径弯头可作为液滴聚结器;一对缓冲三通或目标三通也可以在低动能时用作聚结器,但在高动能时也可以用作雾化器。

著录项

  • 来源
    《Journal of Energy Resources Technology》 |2014年第2期|022902.1-022902.6|共6页
  • 作者单位

    Department of Mechanical Engineering, The University of Tulsa, 800 S. Tucker Drive, Tulsa, OK 74104;

    McDougall School of Petroleum Engineering, The University of Tulsa, 800 S. Tucker Drive, Tulsa, OK 74104;

    Department of Mechanical Engineering, The University of Tulsa, 800 S. Tucker Drive, Tulsa, OK 74104;

    McDougall School of Petroleum Engineering, The University of Tulsa, 800 S. Tucker Drive, Tulsa, OK 74104;

    Chevron Energy Technology Company, 1400 Smith Street, Houston, TX 77002;

  • 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

    flow conditioning; droplet deposition; curved pipes; coalescence;

    机译:流量调节;液滴沉积弯管;合并;
  • 入库时间 2022-08-18 00:28:51

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