石油学报 ›› 2026, Vol. 47 ›› Issue (7): 1495-1517.DOI: 10.7623/syxb202607012

• 石油工程 • 上一篇    

三维旋转流场内离散油滴运移及变形特性

邢雷1,2,3, 周开雷1, 王秀军4,5, 蒋明虎1,2, 赵立新1,2, 李新亚1,2   

  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. 大庆石油管理局博士后科研工作站 黑龙江大庆 163458;
    4. 海洋油气高效开发全国重点实验室 北京 102209;
    5. 中海油研究总院有限责任公司 北京 100028
  • 收稿日期:2026-01-08 修回日期:2026-04-17 发布日期:2026-08-04
  • 通讯作者: 蒋明虎,男,1962年7月生,2001年获哈尔滨工业大学博士学位,现为东北石油大学教授、博士生导师,主要从事多相介质分离与同井注采技术研究。Email:nepujmh@163.com
  • 作者简介:邢雷,男,1990年12月生,2019年获东北石油大学博士学位,现为东北石油大学教授、博士生导师,主要从事多相介质分离与同井注采技术研究。Email:nepuxinglei@163.com
  • 基金资助:
    国家自然科学基金项目(No.52304064)、国家自然科学基金区域创新发展联合基金重点支持项目(No.U21A20104)、中国石油科技创新基金项目(2024DQ02-0102)、中国博士后科学基金项目(2023M730481)和黑龙江省自然科学基金项目(LH2022E017)资助。

Migration and deformation characteristics of discrete oil droplets in three-dimensional swirling flow fields

Xing Lei1,2,3, Zhou Kailei1, Wang Xiujun4,5, Jiang Minghu1,2, Zhao Lixin1,2, Li Xinya1,2   

  1. 1. School of Mechanical Science and Engineering, Northeast Petroleum University, Heilongjiang Daqing 163318, China;
    2. Heilongjiang Provincial Key Laboratory of Petroleum and Petrochemical Multiphase Media Treatment and Pollution Prevention, Heilongjiang Daqing 163318, China;
    3. Postdoctoral Research Workstation in Daqing Oilfield, Heilongjiang Daqing 163458, China;
    4. State Key Laboratory of Offshore Oil and Gas Exploitation, Beijing 102209, China;
    5. CNOOC Research Institute Co., Ltd., Beijing 100028, China
  • Received:2026-01-08 Revised:2026-04-17 Published:2026-08-04

摘要: 旋流分离技术在油田的水处理领域被广泛应用,其中离散相介质在旋转流场中的运动行为与形态演化规律是指导分离设备设计及参数调控的关键理论依据。为了深入揭示油水两相介质的旋流分离机理,掌握油滴在三维旋转流场内的运动及变形规律,利用数值模拟和粒子图像测速实验相结合的方式,以双切向入口构建的三维旋转流场为研究对象,开展不同油滴直径、黏度比及入口雷诺数条件下离散相油滴的运移行为及变形特性研究。研究结果表明,构建的三维旋转流场整体呈中心对称分布,其内部运动的油滴在向心运移的同时会经历拉伸变形和剪切破碎等过程。在拉伸变形阶段,油滴出现了椭球状、棒状、拱形、螺旋状4种典型形态,而油滴破碎现象多见于流场轴心区域的螺旋状阶段。当油滴直径由1 mm增加到6 mm时,油滴相对于流场轴心的切向偏移角度会减小,同时更易破碎。随着油滴直径的增加,变形量、破碎程度和颗粒平均粒径都会增加,油滴分离时间从1.19 s缩短至0.58 s;黏度比对油滴运移具有显著影响,低黏度比时油滴较易向轴心运移,而高黏度比时径向运移能力减弱,甚至导致油滴撞壁黏附;当入口雷诺数由2×103增加到1×104时,油滴相对于流场轴心的切向偏移角度增加,油滴更易破碎;同时,变形量、破碎程度和颗粒平均粒径都会增加,油滴的分离时间从2.304 s缩短至0.342 s。此外,研究表明,随着入口雷诺数的增加,油滴破碎时的临界韦伯数增大,而临界破碎粒径减小。

关键词: 旋流, 油水分离, 油滴, 粒子图像测速, 变形特性

Abstract: Cyclonic separation technology is widely employed in oilfield produced water treatment. The kinematic behavior and morphological evolution of discrete-phase media in swirling flow fields provide a critical theoretical basis for guiding the design and parameter optimization of separation equipment. To further elucidate the cyclonic separation mechanisms of oil-water two-phase media and characterize the motion and deformation patterns of oil droplets within three-dimensional (3D) swirling flow fields, this study adopts a combined approach of numerical simulation and particle image velocimetry (PIV) experiments, while focusing on a 3D swirling flow field generated by a dual-tangential inlet configuration; the transport behavior and deformation characteristics of discrete oil droplets are investigated under varying droplet diameters, viscosity ratios, and inlet Reynolds numbers. Results indicate that the constructed 3D swirling flow field exhibits an overall centrosymmetric distribution, within which moving oil droplets undergo processes such as tensile deformation and shear fragmentation while experiencing centripetal migration. During the tensile deformation stage, oil droplets exhibit typical ellipsoidal, rod-shaped, arched, and spiral morphologies. Notably, droplet fragmentation occurs predominantly during the spiraling stage within the axial region of the flow field. As oil droplet diameter increases from 1 mm to 6 mm, the tangential offset angle relative to the axis of the flow field decreases, while the susceptibility to fragmentation enhances. Increased droplet diameter elevates deformation magnitude, fragmentation degree, and mean particle size, consequently reducing the droplet separation time from 1.19 s to 0.58 s. The viscosity ratio exerts a significant effect on oil droplet migration:at low viscosity ratios, droplets migrate toward the axis more readily; conversely, at high viscosity ratios, radial migration capacity is weakened, potentially leading to droplet-wall impingement and adhesion. As the inlet Reynolds number increases from 2×103 to 1×104, the tangential offset angle of oil droplets relative to the flow field axis increases, accompanied by an enhanced susceptibility to fragmentation. Simultaneously, the deformation magnitude, fragmentation degree, and mean particle size all exhibit upward trends, while the oil droplet separation time is reduced from 2.304 s to 0.342 s. Furthermore, results demonstrate that with increasing inlet Reynolds number, the critical Weber number for droplet breakup increases, while the critical breakup diameter decreases.

Key words: swirling flows, oil-water separation, oil droplet, particle image velocimetry, deformation characteristics

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