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A bench-scale flow loop study on hydrate deposition under multiphase flow conditions

机译:多相流动条件下水合物沉积的长凳流量研究

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摘要

Gas hydrates are crystalline compounds containing water and small guest molecules. Hydrates, if not properly managed, can cause capital losses and raise safety concerns. In recent years, hydrate control strategies have changed from complete prevention to proper management. Hydrate management requires satisfactory understanding in all hydrate challenges, including agglomeration, deposition, and bedding. The importance of deposition motivates the investigation of its mechanisms. This work aims to provide further insights into hydrate deposition under multiphase flow conditions using a bench-scale single-pass flow loop. The flow loop was equipped with a horizontal test section, transparent windows, temperature sensors, and differential pressure transducers. The experiments were performed with a methane/ethane gas mixture at constant 38.7 bara. The mutual effects between the flow pattern and the deposit growth were observed. Most experiments in this study started with stratified flow. Non-uniform hydrate deposition was observed with relatively slow growth of the top deposit exposed to the gas phase and relatively fast growth of the bottom deposit with direct contact to the liquid phase. The hydrate buildup gradually changed the flow pattern from stratified flow to stratified wavy flow and eventually to slug/bubble flow. The deposit growth and the flow pattern change were reflected on the pressure drop measurement across the test section. The wall temperature showed a big effect on the growth rate and the steady-state thickness. The hydrate slurry presence and the water cut did not noticeably affect the steady-state deposit thickness, while the MEG addition seemed to reduce the thickness.
机译:天然气水合物是含有水和小型客体分子的结晶化合物。如果没有适当管理,水合物会导致资金损失并提高安全问题。近年来,水合物对照策略从完全预防改变到适当的管理。水合物管理需要在所有水合挑战中令人满意的理解,包括聚集,沉积和床上用品。沉积的重要性激励了其机制的调查。这项工作旨在使用台级单通流回路在多相流动条件下提供进一步的深度洞察。流量回路配有水平测试部分,透明窗口,温度传感器和差压传感器。在恒定的38.7巴拉,用甲烷/乙烷气体混合物进行实验。观察到流动模式和沉积生长之间的相互影响。本研究中的大多数实验开始于分层流动。观察到未均匀的水合物沉积,其具有暴露于气相暴露于气相的顶部沉积物的相对缓慢的生长,并且具有与液相直接接触的下沉积物的相对较快的生长。水合物累积逐渐改变从分层流动的流动模式,以分层波浪流动,最终将其熔接/气泡流动。沉积的生长和流动模式变化反映在测试部分的压降测量上。壁温对生长速率和稳态厚度显示出大量影响。水合物浆料存在和水切口没有明显影响稳态沉积物厚度,而MEG添加似乎减小了厚度。

著录项

  • 来源
    《Fuel》 |2020年第15期|116558.1-116558.12|共12页
  • 作者单位

    Colorado Sch Mines Chem & Biol Engn Dept Phases Flow Lab Golden CO 80401 USA;

    Univ Tecnol Fed Parana Dept Mech & Mat Engn Multiphase Flow Res Ctr NUEM Curitiba Parana Brazil;

    Colorado Sch Mines Chem & Biol Engn Dept Phases Flow Lab Golden CO 80401 USA|Colorado Sch Mines Golden CO 80401 USA|ExxonMobil Upstream Res Co Houston TX USA;

    Univ Tecnol Fed Parana Dept Mech & Mat Engn Multiphase Flow Res Ctr NUEM Curitiba Parana Brazil;

    Colorado Sch Mines Chem & Biol Engn Dept Phases Flow Lab Golden CO 80401 USA;

  • 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

    Gas hydrates; Multiphase flow; Deposition; Flow loop;

    机译:天然气水合物;多相流;沉积;流回路;

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