几何变化对气液圆柱旋风GLCC分离器影响的实验研究

H. Asaadian, B. S. Soulgani, S. R. Gomari, Bahador Soltani Soulgani
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引用次数: 2

摘要

气液出口长度对气液圆柱旋风分离器性能的影响研究。气体柱长研究及其对GLCC分离器性能的影响。入口直径对GLCC分离器性能影响的研究。体柱直径及其对GLCC分离器性能影响的研究。气液出口直径及其对GLCC分离器性能影响的研究。在实验室中设计并制作了GLCC分离机,对其进行了域测定。最佳操作区域是平衡液面位于入口下方,分离柱的1 L/D ~ 3 L/D之间。如果它通过入口,它会导致液体携带,如果它低于3l /D,它会在分离器中产生气体携带。从而测量了不同液气流量范围内的平衡液位。在这项工作中,气体表面速度设置在0.3 ~ 6 m / s之间,对于每个气体表面速度,液体表面速度设置在0.3 ~ 3.3 m / s之间。此外,还对试验分离器的不同部件进行了更换,研究了其对分离器工作域的影响。这些变化是进口直径尺寸减小12.7 mm,液体出口直径尺寸减小5 mm,气体出口直径尺寸减小5 mm,气体柱长度减小0.12 m,柱直径尺寸减小25.4 mm,出口长度增加1.4 m。研究结果表明:减小进口直径可提高GLCC分离器的性能。它通过增强对液相和气相的离心作用,使更多的气液流量进入分离器,实现完全分离。减小出液口直径对GLCC流量域有负面影响,但这种减小可以通过在出液腿上安装闸阀来控制平衡液位。减小排气口直径对GLCC性能有不利影响。但在某些情况下,控制GLCC中积累的气体量可以避免液体在系统中携带。气柱长度的减小对分离器流量域没有影响。出口支腿长度的增加增加了摩擦力,限制了分离器的性能。分离器体直径的减小增加了液体携入和气体携入的机会,并对流量域产生负面影响。这些研究结果为设计更高效的油气田分离器提供了主要指导。适当的设计使分离器的性能范围更广,同时使分离器更加紧凑,从而相应地降低了建造成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Investigation over Effect of Geometrical Changes on Gas/Liquid Cylindrical Cyclone GLCC Separator
Gas and liquid outlets length Study and its effect on Gas/liquid Cylindrical Cyclone (GLCC) separator performance. Gas body column length Study and its effect on GLCC separator performance. Inlet diameter Study and its effect on GLCC separator performance. Study of body column diameter and its effect on GLCC separator performance. Study of gas and liquid outlets diameter and its effect on GLCC separator performance. An experimental GLCC separator was designed and built in laboratory to determine its domain. The best operational domain is where the equilibrium liquid level placed below the inlet and between 1 L/D and 3 L/D of separator column. If it pass the inlet it causes liquid carry over and if it settles below the 3 L/D it creates gas carry under in the separator. Thus the equilibrium liquid level was measured for different range of liquid and gas flowrates. In this work the gas superficial velocity was set between 0.3 and 6 meter per second and for each gas superficial velocity, liquid superficial velocity was from 0.3 to 3.3 meter per second. Moreover, different parts of test separator was changed and their effects on the separator operating domain was studied. These changes are 12.7 mm reduction in inlet diameter size, 5 mm reduction in liquid outlet diameter size, 5 mm reduction in gas outlet diameter size, 0.12 meter reduction in gas column length, 25.4 mm reduction in column diameter size and 1.4 meter increment in outlet length. Based on this work the following results were obtained:Reducing the inlet diameter improves the GLCC separator performance. It allows more gas and liquid flowrates enter the separator for total separation by enhancing the centrifugal effect on liquid and gas phases.Reducing the liquid outlet diameter has negative effect in GLCC flowrates domain but this reduction can be used to control the equilibrium liquid level by a gate valve in liquid outlet leg.Reducing the gas outlet diameter has negative effect on GLCC performance. But in some situations controlling the amount of accumulated gas in GLCC can avoid liquid carry over in the system.Reduction in gas column length shows no effect on the separator flowrates domain.Increasing in length of outlet legs increases the friction force and limited the separator performance.Reduction in separator body diameter raises the chance of liquid carry over and gas carry under and has negative effect on flowrates domain. These findings from GLCC performance give the main guideline to design more efficient separator design for oil and gas fields. Proper designing makes separator performance domain wider whereas it creates separators more compact which in turn minimizes the cost of construction accordingly.
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