在线清管除液装置-伪干气系统的分离性能实验

L. Liebana, Lee J. Thomas, T. Wood, Liyun Lao, Graeme Rogerson
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引用次数: 0

摘要

伪干气(PDG)技术被提出作为输送多相流体(天然气、凝析油和水)的替代概念,用于深水海底回接开发(参考文献1 - OTC-28949-MS)(参考文献2 - IPTC-19440-MS)。使用PDG技术,海底管网可以延伸到超过200公里的总长度,并大大降低了井的背压。这可以提高储量的采收率,并能够到达目前搁浅的油田,特别是深水低压气田。PDG系统的基础是使用清管式清液装置对主管道系统中的液体进行清液。随着液体的移除,系统中的重力压力损失被消除,从而使管道像“伪”干气系统一样运行。通过海底液体泵(Ref 3 - OTC-29332-MS),通过与主管道平行的另一条较小的管道将液相输送回岸上。在完成了设得兰群岛西部一个已知搁浅天然气盆地的技术经济报告后,石油和天然气技术中心(OGTC)建立了一个实验项目,以确定最低技术准备水平(TRL)下PDG技术中元件的操作性能。目前,液体去除装置具有TRL2,在实验测试程序完全完成后将达到TRL4。本文对可Piggable Liquid unit或PDG unit的分离性能(Efficiency)进行了评价。之前的Flow Assurance和Computational Fluid Dynamics (CFD)建立的预期效率在84-99%之间,具体取决于气液流速以及其他因素,如装置方向、液体类型、操作压力和温度。每个PDG单元有两个模块,允许多相流体在管道中的气液分离。与克兰菲尔德大学(CU)合作,已经建立了一个PDG单元原型,并开发了一个测试程序,使用了大型可倾斜多相流环路设施。测试程序有两个测试矩阵:矩阵1研究PDG单元单个模块的性能,矩阵2研究整个PDG单元(两个分离模块)的效率。测试程序的矩阵1可以描述系统变化的流动条件(流动状态、液体和气体流速)、流出液的液位和尺寸、砂粒的影响以及装置的倾角和方向,这些都是安装后的预期结果。本文着重于从矩阵1测试程序中获得的结果,并将其与先前研究中使用的初始PDG单元估计效率值进行比较,以证明PDG技术的概念。总体结论是PDG除液装置的性能优于技术评估报告中最初使用的装置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Separation Performance of In-Line Piggable Liquid Removal Unit – Pseudo Dry Gas Systems
Pseudo Dry Gas (PDG) technology is proposed as an alternative concept for transporting multiphase fluids (gas, condensate and water) for long deep-water subsea tieback developments (Ref 1 - OTC-28949-MS) (Ref 2 - IPTC-19440-MS). Using PDG technology, subsea pipeline networks can be extended to excess of 200 km total length and considerably reduce the backpressure on the wells. This allows improved recovery of the reserves and the ability to reach currently stranded fields, especially deep-water lower-pressure gas fields. The basis of the PDG system is to remove the liquid of the main pipeline system using Piggable Liquid Removal Units. With the removal of the liquid, the gravitational pressure losses in the system are eliminated allowing the pipeline to operate like a "Pseudo" Dry Gas system. The liquid phase is transported back to shore using a second smaller pipeline running in parallel to the main pipeline by means of subsea liquid pumps (Ref 3 - OTC-29332-MS). After techno-economic reports were completed for a known basin of stranded gas in the West of Shetland, an Oil and Gas Technology Centre (OGTC) experimental project was established to determine the operation performance of the element within the PDG technology with lowest Technology Readiness Level (TRL). Currently the liquid removal unit has a TRL2 and a TRL4 will be achieved after the experimental testing programme has been fully completed. This paper assesses the separation performance (Efficiency) of the Piggable Liquid Units or PDG unit. Previous Flow Assurance and Computational Fluid Dynamics (CFD) established expected efficiencies between 84-99% depending on the gas and liquid flow rates and other factors such as unit orientation, liquid type, operating pressure and temperature. Each PDG unit has two modules which allow for gas-liquid separation of the multiphase fluid in the pipeline. A PDG unit prototype has been built and a testing programme has been developed and undertaken in collaboration with Cranfield University (CU) using the large scale Inclinable Multip hase Flow Loop facilities. The testing programme has two test matrices: Matrix 1 which studies the performance of a single module of the PDG unit and Matrix 2 which investigates the efficienc y of the entire PDG unit (two separation modules). Matrix 1 of the testing programme allows to characterise the system varying the flow conditions (flow regime, liquid and gas flow rates), drop out liquid level and size, effect of sand and the inclination and orientation of the unit as would be expected once installed. This paper focuses on the results obtained from Matrix 1 testing programme and compares them with the initia l PDG unit estimated efficiency values used in previous studies to demonstrate the prove of concept of the PDG technology. The overall conclusion is that the performance of the PDG liquid removal unit is greater than the ones originally used in technology assessment reports.
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