Chemical Industry and Engineering Progress ›› 2025, Vol. 44 ›› Issue (11): 6161-6173.DOI: 10.16085/j.issn.1000-6613.2024-1561

• Chemical processes and equipment • Previous Articles    

Structure optimization and performance analysis of axial-inlet downhole gas-liquid hydrocyclone

XING Lei1,2,3(), LIU Duo1, JIANG Minghu1,2(), ZHAO Lixin1,2, LI Xinya1, GAO Yang4   

  1. 1.School of Mechanical Science and Engineering, Northeast Petroleum University, Daqing 163318, Heilongjiang, China
    2.Heilongjiang Key Laboratory of Petroleum and Petrochemical Multiphase Treatment and Pollution Prevention, Daqing 163318, Heilongjiang, China
    3.Postdoctoral Research Workstation in Daqing Oilfield, Daqing 163458, Heilongjiang, China
    4.Petro China Exploration and Development Research Institute, Beijing 100083, China
  • Received:2024-09-25 Revised:2025-02-24 Online:2025-12-08 Published:2025-11-25
  • Contact: JIANG Minghu

轴入式井下气液旋流分离器结构优化与性能分析

邢雷1,2,3(), 刘铎1, 蒋明虎1,2(), 赵立新1,2, 李新亚1, 高扬4   

  1. 1.东北石油大学机械科学与工程学院,黑龙江 大庆 163318
    2.黑龙江省石油石化多相介质处理及污染防治重点实验室,黑龙江 大庆 163318
    3.大庆油田博士后科研工作站,黑龙江 大庆 163458
    4.中国石油勘探开发研究院,北京 100083
  • 通讯作者: 蒋明虎
  • 作者简介:邢雷(1990—),男,博士,教授,博士生导师,研究方向为旋流分离理论及应用技术、同井注采技术。E-mail:Nepuxinglei@163.com
  • 基金资助:
    国家自然科学基金区域创新发展联合基金重点支持项目(U21A20104);国家自然科学基金(52304064);中国石油科技创新基金(2024DQ02-0102);中国博士后科学基金(2023M730481);黑龙江省博士后基金(LBH-Z23039)

Abstract:

The single-well injection-production technology is an important initiative to realize the economic exploitation in the middle and late period of oil field. Gas-containing in the produced fluid is one of the key problems restricting the large-scale application of the single-well injection-production. In order to realize the efficient separation of gas and liquid in the narrow casing space and broaden the application scope of the single-well injection-production technology under gas-containing conditions. An axial-inlet downhole gas-liquid hydrocyclone (AIDGLC) was designed based on the principles of cyclone separation. The optimization research of AIDGLC structural parameters were carried out by using optimization methods combined with PB design, steepest climb design and response surface method, and the applicability analysis for the optimized structure under different operating parameters was carried out. The results showed that the significant structural parameters of AIDGLC were ranked as the length of cyclone cavity L2, the depth length of overflow pipe L6, the length of underflow pipe L5, the inner diameter of overflow pipe D1, and the matching scheme of significant structural parameters that could maximize the separation efficiency was L2=284.92mm, L5=100mm, L6=3.80mm, and D1=42.88mm. The gas separation efficiency of the optimized structure reached the maximum value of 99.86% when the gas content was 5%, the flow rate was 5m3/h, and the split ratio was 40%. The research results provide some reference for the development and application of downhole gas-liquid separators under gas-containing working conditions.

Key words: hydrocyclone, optimal design, gas-liquid flow, numerical simulation, significance analysis, performance analysis

摘要:

同井注采技术是实现油田中后期经济开采的重要举措,采出液含气是制约同井注采规模化应用的关键问题之一。为实现狭窄套管空间内气液的高效分离,拓宽含气工况下同井注采技术的适用范围,本文基于旋流分离原理设计了一种轴入式井下气液旋流分离器(axial-inlet downhole gas-liquid hydrocyclone,AIDGLC)。利用PB实验设计、最陡爬坡设计和响应曲面设计相结合的实验方法,对AIDGLC结构参数进行优化研究,并针对优化后结构开展不同操作参数的适用性分析。结果表明,AIDGLC的显著性结构参数排序为旋流腔长度L2、溢流管插入长度L6、底流管长度L5、溢流管内径D1,得出使分离效率达到最大值的显著性结构参数匹配方案为L2=284.92mm、L5=100mm、L6=3.80mm、D1=42.88mm。优化后结构在含气量为5%、流量为5m3/h、分流比为40%时,气相分离效率达最大值99.86%。研究结果为在含气工况下井下气液分离器的研制及应用提供了一定的借鉴和参考。

关键词: 旋流分离器, 优化设计, 气液两相流, 数值模拟, 显著性分析, 性能分析

CLC Number: 

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