• 中国出版政府奖提名奖

    中国百强科技报刊

    湖北出版政府奖

    中国高校百佳科技期刊

    中国最美期刊

    留言板

    尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

    姓名
    邮箱
    手机号码
    标题
    留言内容
    验证码

    大洋钻探井下流体取样离心泵流动特性及性能解析

    吴川 黄舟舟 刘天乐 田烈余 熊亮 雷刚 郑少军 蒋国盛

    吴川, 黄舟舟, 刘天乐, 田烈余, 熊亮, 雷刚, 郑少军, 蒋国盛, 2026. 大洋钻探井下流体取样离心泵流动特性及性能解析. 地球科学, 51(8): 3213-3223. doi: 10.3799/dqkx.2026.236
    引用本文: 吴川, 黄舟舟, 刘天乐, 田烈余, 熊亮, 雷刚, 郑少军, 蒋国盛, 2026. 大洋钻探井下流体取样离心泵流动特性及性能解析. 地球科学, 51(8): 3213-3223. doi: 10.3799/dqkx.2026.236
    Wu Chuan, Huang Zhouzhou, Liu Tianle, Tian Lieyu, Xiong Liang, Lei Gang, Zheng Shaojun, Jiang Guosheng, 2026. Flow Characteristics and Performance Analysis of Centrifugal Pumps for Fluid Sampling in Deep Ocean Drilling Wells. Earth Science, 51(8): 3213-3223. doi: 10.3799/dqkx.2026.236
    Citation: Wu Chuan, Huang Zhouzhou, Liu Tianle, Tian Lieyu, Xiong Liang, Lei Gang, Zheng Shaojun, Jiang Guosheng, 2026. Flow Characteristics and Performance Analysis of Centrifugal Pumps for Fluid Sampling in Deep Ocean Drilling Wells. Earth Science, 51(8): 3213-3223. doi: 10.3799/dqkx.2026.236

    大洋钻探井下流体取样离心泵流动特性及性能解析

    doi: 10.3799/dqkx.2026.236
    基金项目: 

    国家重点研发计划项目 2024YFC2814304

    详细信息
      作者简介:

      吴川(1987-),男,博士,副教授,主要从事钻探装备智能化及随钻测量仪器的研发工作. ORCID: 0000-0002-7275-0295. E-mail:wuchuan@cug.edu.cn

      通讯作者:

      刘天乐,ORCID: 0000-0003-2879-1222. E-mail: liutianle2008@163.com

    • 中图分类号: TH311

    Flow Characteristics and Performance Analysis of Centrifugal Pumps for Fluid Sampling in Deep Ocean Drilling Wells

    • 摘要: 为提升大洋钻探井下流体原位取样系统的稳定性与效率,基于计算流体动力学方法,构建了取样离心泵三维湍流模型,并系统分析了其在1 450 r/min至4 000 r/min转速范围内的压力分布、速度场、阻力特性及能量损失规律. 结果表明2 000 r/min为最优转速,在此转速下泵内压力场可达8 030 Pa且最为稳定,同时最大流速为3.46 m/s且速度分布合理. 此外,该转速下多相流与单相流的阻力系数差值最小,并且流速波动仅为0.23%,取样体积最大误差为4.75%,表现出优异的流动稳定性与取样精度. 在效率方面,泵的峰值效率约62.7%,对应最优流量为2×10-4 m3/s. 同时泵体采用钛合金材料并控制流量在高效区间,可保障泵在深海复杂介质环境中的长效可靠运行.

       

    • 图  1  流体取样方案示意图

      Fig.  1.  Schematic diagram of fluid sampling plan

      图  2  离心泵模型及网格划分

      Fig.  2.  Centrifugal pump model and grid generation

      图  3  压力分布云图

      Fig.  3.  Pressure distribution contour plot

      图  4  速度分布云图

      Fig.  4.  Speed distribution contour plot

      图  5  系统阻力系数

      a. 1 450 r/min阻力系数;b. 2 000 r/min阻力系数;c. 2 900 r/min阻力系数;d. 4 000 r/min阻力系数

      Fig.  5.  System resistance coefficient

      图  6  系统阻力

      a. 1 450 r/min阻力;b. 2 000 r/min阻力;c. 2 900 r/min阻力;d. 4 000 r/min阻力

      Fig.  6.  System resistance

      图  7  叶轮力矩

      a. 1 450 r/min叶轮力矩;b. 2 000 r/min叶轮力矩;c. 2 900 r/min叶轮力矩;d. 4 000 r/min叶轮力矩

      Fig.  7.  Impeller torque

      图  8  流速变化

      a. 1 450 r/min流速;b. 2 000 r/min流速;c. 2 900 r/min流速;d. 4 000 r/min流速

      Fig.  8.  Flow rate variation

      图  9  性能曲线

      a. 1 450 r/min性能;b. 2 000 r/min性能;c. 2 900 r/min性能;d. 4 000 r/min性能

      Fig.  9.  Performance curve

      图  10  综合性能与可靠性验证

      a. 能量损失分布;b. 取样精度;c. 饱和蒸气压与系统最小压强;d. 钛合金磨损率;e. 哈氏合金磨损率;f. 双相不锈钢磨损率

      Fig.  10.  Comprehensive performance and reliability verification

      表  1  离心泵相关参数

      Table  1.   Relevant parameters of centrifugal pump

      进口直径 出口直径 叶轮进口直径 叶轮出口直径 叶片出口角 叶片进口角 叶片数 叶片厚度 叶轮锥角
      15 mm 15 mm 17 mm 40 mm 45° 25° 6 2.2 mm 80°
      下载: 导出CSV

      表  2  网格无关性验证

      Table  2.   Grid-independence verification

      方案 网格数量(万) 网格畸变率 效率
      Grid-1 1.0 0.262 58.4%
      Grid-2 1.5 0.275 61.4%
      Grid-3 2.0 0.281 62.7%
      Grid-4 2.5 0.283 62.4%
      下载: 导出CSV

      表  3  流体物性值

      Table  3.   Fluid physical property values

      物性参数 符号 数值 单位
      密度 ρ 1 028 kg·m-3
      温度 T 4
      动力黏度 μ 1.90×10-3 Pa·s
      运动黏度 ν 1.85×10-6 m2·s-1
      饱和蒸气压 Pν 8.0×102 Pa
      表面张力 σ 7.45×10-2 N·m-1
      下载: 导出CSV

      表  4  实验自变量

      Table  4.   Experimental independent variable

      转速(r/min) 相态 多相体积分数
      1 450 单/多 2.3%气+97.5%液+0.2%固
      2 000 单/多
      2 900 单/多
      4 000 单/多
      下载: 导出CSV
    • Ai, Y., Zang, L., Chen, B. Z., et al., 2025. Performance Optimization of Deep-Sea Microbial Sampling Device Based on Porous Step Model. Mining Research and Development, 45(9): 1-7 (in Chinese with English abstract).
      Cui, S. Y., Song, G., Tian, Y. Y., et al., 2025. Development of Long-Term Borehole Observation Systems in Ocean Drilling and Their Role in Seismic Monitoring. Drilling Engineering, 52(5): 1-9 (in Chinese with English abstract).
      Fang, J. S., Li, J. Y., Zhang, L., 2017. 30 Years of Seafloor CORK Observations: Development, Applications and Prospects. Advances in Earth Science, 32(12): 1297-1306 (in Chinese with English abstract).
      Jiang, C. L., Yan, T. J., Zhang, Y., et al., 2022. Optimization Method for Fidelity Parameters of Formation Fluid Fidelity Sampling Chamber While Drilling. Petroleum Exploration and Development, 49(2): 403-410 (in Chinese with English abstract).
      Keir, B., Earl, E. D., Andrew, T. F., et al., 2025. Monitoring Subseafloor Temperature and Fluid Pressure in Sealed Odp/Iodp Boreholes to Constrain in Situ Hydrological State and Processes in Igneous Oceanic Crust. Canadian Journal of Earth Sciences, 62(4): 658-683. https://doi.org/10.1139/cjes-2024-0076
      Li, Q., Liu, X. H., Li, X. Y., et al., 2019. Environmental Monitoring and Sampling Technology for Shallow Subsurface Fluids Based on U-Tube Principle. Environmental Engineering, 37(2): 8-12+21 (in Chinese with English abstract).
      Li, X. Y., Liu, X. H., Li, Q., et al., 2022. Fidelity Sampling Technology and Engineering Application of Shallow Subsurface Fluids. Science Technology and Engineering, 22(33): 14967-14975 (in Chinese with English abstract).
      Li, X. Y., Liu, X. H., Li, Q., et al., 2023. Laboratory Verification of Gas-Driven Subsurface Fluid Sampling Technology. Geological Journal of China Universities, 29(1): 138-146 (in Chinese with English abstract).
      Lin, H. T., Hsieh, C. C., Repeta, D. J., et al., 2020. Sampling of Basement Fluids via Circulation Obviation Retrofit Kits (CORKs) for Dissolved Gases, Fluid Fixation at the Seafloor, and the Characterization of Organic Carbon. MethodsX, 7: 101033. https://doi.org/10.1016/j.mex. 2020.101033 doi: 10.1016/j.mex.2020.101033
      Long, Q. X., Zhu, W. B., Wang, P., et al., 2025. Structural Design and Geometric Parameter Optimization of Magnetic Fluid Seals for Circulating Submersible Pumps. Journal of Mechanical & Electrical Engineering, 1-17 (in Chinese with English abstract).
      Lyu, Y., Xiong, L., Tian, L. Y., 2025. Research Progress and Prospects of Long-Term Downhole Observation Devices for Ocean Scientific Drilling. Drilling Engineering, 52(2): 1-9 (in Chinese with English abstract).
      Ma, L. T., Li, J. B., Feng, X. W., et al., 2025. Trends, Challenges and Prospects of International Standardization for Marine Observation and Detection Technologies. Chinese Science Bulletin, 1-9 (in Chinese with English abstract).
      Mu, G. P., Zhang, G. Q., Tu, C. Z., et al., 2021. Improvement of Wireline Formation Fluid Sampling Technology and Its Application in Bohai Oilfield. Technology Supervision in Petroleum Industry, 37(9): 58-61 (in Chinese with English abstract).
      Ran, H., Zhang, T., 2024. Advances and Future Key Development Directions in Ocean Scientific Drilling Over the Past Decade. Geology in China, 51(3): 1091-1094 (in Chinese with English abstract).
      Sheng, G. L., Tao, H. L., Song, S. W., et al., 2025. Applications of Ancient DNA Research in the Field of Geobiology. Earth Science, 50(3): 1105-1121(in Chinese with English abstract).
      Shi, Q., Shi, X. Y., Jiang, G. Q., et al., 2025. Microbial Silicon Cycling Promoted Shallow-Sea Chert Deposition in Mesoproterozoic Ocean. Earth Science, 50(3): 1082-1104(in Chinese with English abstract).
      Wang, Y. Q., Yuan, Z. T., Li, H. C., et al., 2020. Development and Comparative Sampling Test Analysis of a Diaphragm-Type Groundwater Sampling Pump. Environmental Science & Technology, 43(S2): 173-178 (in Chinese with English abstract).
      Yu, H. L., 2022. Application of Downhole Fluid Sampler Testing Technology. Petroleum Tubular Goods & Instruments, 8(6): 85-90 (in Chinese with English abstract).
      Zhang, G. D., He, Y. C., Wang, L., et al., 2025. Intermittent Pumping and Gas Cushion Combined Operation Sampling Technology for Ultra-Low Permeability Gas Reservoir. Petroleum Drilling Techniques, 53(3): 169-174 (in Chinese with English abstract).
      Zhou, M. G., Zuo, Y. X., Xue, Y. Z., 2022. Development and Application of a Novel 3D Push-Type Adaptive Sealing Sampling System. Progress in Geophysics, 37(2): 938-944 (in Chinese with English abstract).
      艾杨, 臧龙, 陈秉正, 等, 2025. 基于多孔阶跃模型的深海微生物取样装置性能优化研究. 矿业研究与开发, 45(9): 1-7.
      崔淑英, 宋刚, 田英英, 等, 2025. 大洋钻探孔内长期观测系统发展及其在地震监测中的作用. 钻探工程, 52(5): 1-9.
      方家松, 李江燕, 张利, 2017. 海底CORK观测30年: 发展、应用与展望. 地球科学进展, 32(12): 1297-1306.
      姜传隆, 颜廷俊, 张杨, 等, 2022. 随钻地层流体保真取样筒保真参数优化方法. 石油勘探与开发, 49(2): 403-410.
      李琦, 刘学浩, 李霞颖, 等, 2019. 基于U型管原理的浅层地下流体环境监测与取样技术. 环境工程, 37(2): 8-12+21.
      李霞颖, 刘学浩, 李琦, 等, 2022. 浅层地下流体保真取样技术及工程应用. 科学技术与工程, 22(33): 14967-14975.
      李霞颖, 刘学浩, 李琦, 等, 2023. 气体推动式地下流体取样技术的室内验证. 高校地质学报, 29(1): 138-146.
      龙泉行, 朱维兵, 王鹏, 等, 2025. 循环液下泵磁流体密封的结构设计及几何参数优化研究. 机电工程, 1-17.
      吕阳, 熊亮, 田烈余, 2025. 大洋科学钻探井下长期观测装置研究进展及展望. 钻探工程, 52(2): 1-9.
      马乐天, 李家彪, 冯旭文, 等, 2025. 海洋观测和探测技术国际标准化的动态、挑战与展望. 科学通报, 1-9.
      穆贵鹏, 张国强, 涂春赵, 等, 2021. 电缆地层流体取样技术的改进及其在渤海油田的应用. 石油工业技术监督, 37(9): 58-61.
      冉皞, 张涛, 2024. 近十年大洋科学钻探进展与未来重点发展方向. 中国地质, 51(3): 1091-1094.
      盛桂莲, 陶华林, 宋世文, 等, 2025. 古DNA研究在地球生物学领域的应用. 地球科学, 50(3): 1105-1121. doi: 10.3799/dqkx.2024.155
      史青, 史晓颖, JiangGanqing, 等, 2025. 中元古代微生物硅循环促进浅海硅岩沉积. 地球科学, 50(3): 1082-1104. doi: 10.3799/dqkx.2024.144
      王玉青, 袁子婷, 李红超, 等, 2020. 隔膜式地下水取样泵的研制与取样对比试验分析. 环境科学与技术, 43(S2): 173-178.
      于化龙, 2022. 井下流体取样器测试技术的应用. 石油管材与仪器, 8(6): 85-90.
      张国栋, 何玉春, 王雷, 等, 2025. 特低渗气藏储层间歇性泵抽和气垫联合作业取样技术. 石油钻探技术, 53(3): 169-174.
      周明高, 左有祥, 薛永增, 2022. 新型3D推靠自适应坐封取样系统的研发与应用. 地球物理学进展, 37(2): 938-944.
    • 加载中
    图(10) / 表(4)
    计量
    • 文章访问数:  49
    • HTML全文浏览量:  29
    • PDF下载量:  4
    • 被引次数: 0
    出版历程
    • 收稿日期:  2026-06-13
    • 刊出日期:  2026-08-25

    目录

      /

      返回文章
      返回