Supersonic Separation of Natural Gas Liquids by Twister Technology

被引:11
|
作者
Esmaeili, Arash [1 ]
机构
[1] Saipem Contracting Nigeria Ltd, Proc Engn Dept, Port Harcourt, River State, Nigeria
关键词
D O I
10.3303/CET1652002
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The Twister supersonic separator is a unique combination of known physical processes, combining aerodynamics, thermodynamics and fluid dynamics to produce an innovative gas conditioning process. Condensation and separation at supersonic velocity is the key for achieving a significant reduction in both capital and operating cost. Twister is a proven gas conditioning technology. Condensation and separation at supersonic velocity provides several unique benefits as the short residence time within the Twister tube prevents hydrate problems, thereby eliminating the use of chemicals and associated regeneration systems. A Twister tube designed for 1 MMSm3/d (35 MMSCFD) at 100 bar is approximately 2 m long. The simplicity and reliability of this static device with no rotating parts, operating without chemicals, ensures a simple, environmentally friendly facility, with a high availability, suitable for de-manned operation. Twister can achieve both water and hydrocarbon dew pointing in one unit. The supersonic separation equipment has thermodynamics similar to a turbo expander, combining cyclone gas/liquid separation and re-compression in a compact, tubular device. Processing of natural gas is the largest industrial gas separation application. The U.S consumption of natural gas is higher than 623 billion SCM/y and total worldwide consumption surpasses 2.69 trillion SCM/y. This consumption drives a worldwide market for new natural gas separation equipment of more than $5 billion per year. Natural gas contains many contaminants, water being the most common undesirable component. Most natural gases will be nearly water-saturated at the temperature and pressure of production. Dehydration of natural gas is hence a critical step of the natural gas conditioning process as it reduces the potential for corrosion, hydrate formation and freezing in the pipeline. A conventional method for dehydration in the natural gas industry is the use of a liquid desiccant contactor-regeneration process by TEG. However, there are several operating problems with glycol dehydrators. Suspended foreign matters may contaminate glycol solutions and overheating of the solutions may produce decomposition products. Foaming of solution may also occur with resultant carry-over of liquid. Besides water contamination, natural gas contains liquids that should be commonly removed to meet hydrocarbon dew point specification. An undesirable result of extracting NGL is a lower heating value of the gas product which can reduce its market value. In this paper, Twister supersonic technology is evaluated and compared to conventional Joule-Thompson valve and Turboexpander.
引用
收藏
页码:7 / 12
页数:6
相关论文
共 50 条
  • [21] Separation of Natural Gas by Gas Hydrate Crystallization Technology: Calculation of Gas Hydrate Distribution Coefficients
    Kudryavtseva, M. S.
    Petukhov, A. N.
    Shablykin, D. N.
    Stepanova, E. A.
    Vorotyntsev, A. V.
    Vorotyntsev, V. M.
    CHEMISTRY AND TECHNOLOGY OF FUELS AND OILS, 2023, 59 (04) : 661 - 666
  • [22] Supersonic condensation for wet natural gas
    Oil and Gas Technology Research Institute, Changqing Oilfield Company, Xi'an 710021, China
    不详
    Kung Cheng Je Wu Li Hsueh Pao, 2008, 11 (1875-1878):
  • [23] Combining gas hydrate crystallization and membrane technology: A synergistic approach to natural gas separation
    Stepanova, Ekaterina A.
    Atlaskin, Artem A.
    Kudryavtseva, Maria S.
    Shablykin, Dmitry N.
    Markin, Zakhar A.
    Dokin, Egor S.
    Zarubin, Dmitry M.
    Prokhorov, Igor O.
    Vshivtsev, Maksim A.
    Kazarina, Olga, V
    Logunov, Alexander A.
    Atlaskina, Maria E.
    Vorotynstev, Ilya V.
    Vorotyntsev, Andrey V.
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2025, 208
  • [24] Energy separation and condensation effects in pressure energy recovery process of natural gas supersonic dehydration
    Liu, Yang
    Cao, Xuewen
    Yang, Jian
    Li, Yuxuan
    Bian, Jiang
    ENERGY CONVERSION AND MANAGEMENT, 2021, 245
  • [25] Distillation of natural gas liquids
    Manley, DB
    GAS PROCESSORS ASSOCIATION - SEVENTY-FIFTH ANNUAL CONVENTION, PROCEEDINGS, 1996, : 67 - 74
  • [26] SEPARATION OF GAS MIXTURE IN AN AXISYMMETRIC SUPERSONIC JET
    MIKAMI, H
    TAKASHIM.Y
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1968, 11 (11) : 1597 - &
  • [28] Gas Separation Based on Ionic Liquids
    Zhao Xu
    Xing Huabin
    Li Rulong
    Yang Qiwei
    Su Baogen
    Ren Qilong
    PROGRESS IN CHEMISTRY, 2011, 23 (11) : 2258 - 2268
  • [29] Ionic liquids in gas separation processing
    Shang, Dawei
    Liu, Xinyan
    Bai, Lu
    Zeng, Shaojuan
    Xu, Qiuxia
    Gao, Hongshuai
    Zhang, Xiangping
    CURRENT OPINION IN GREEN AND SUSTAINABLE CHEMISTRY, 2017, 5 : 74 - 81
  • [30] The economic viability of gas-to-liquids technology and the crude oil-natural gas price relationship
    Ramberg, David J.
    Chen, Y. H. Henry
    Paltsev, Sergey
    Parsons, John E.
    ENERGY ECONOMICS, 2017, 63 : 13 - 21