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BIODRILL S合成基钻井液在垦利区块首次应用

彭三兵 李斌 韩东东 徐磊 程龙生 黄贤斌

彭三兵,李斌,韩东东,等. BIODRILL S合成基钻井液在垦利区块首次应用[J]. 钻井液与完井液,2024,41(1):60-67 doi: 10.12358/j.issn.1001-5620.2024.01.006
引用本文: 彭三兵,李斌,韩东东,等. BIODRILL S合成基钻井液在垦利区块首次应用[J]. 钻井液与完井液,2024,41(1):60-67 doi: 10.12358/j.issn.1001-5620.2024.01.006
PENG Sanbing, LI Bin, HAN Dongdong, et al.First application of the synthetic-based drilling fluid BIODRILL S in block Kenli of Bohai oilfield[J]. Drilling Fluid & Completion Fluid,2024, 41(1):60-67 doi: 10.12358/j.issn.1001-5620.2024.01.006
Citation: PENG Sanbing, LI Bin, HAN Dongdong, et al.First application of the synthetic-based drilling fluid BIODRILL S in block Kenli of Bohai oilfield[J]. Drilling Fluid & Completion Fluid,2024, 41(1):60-67 doi: 10.12358/j.issn.1001-5620.2024.01.006

BIODRILL S合成基钻井液在垦利区块首次应用

doi: 10.12358/j.issn.1001-5620.2024.01.006
基金项目: 国家自然科学家基金面上项目“油基钻井液中细微劣质固相选择性絮凝机制及控制方法研究”(52174014)。
详细信息
    作者简介:

    彭三兵,工程师,现在主要从事钻完井液技术支持与研发工作。电话 13612191469;E-mail:pengsb@cosl.com.cn

  • 中图分类号: TE254.3

First Application of the Synthetic-Based Drilling Fluid BIODRILL S in Block Kenli of Bohai Oilfield

  • 摘要: 渤海油田垦利9-1区块地层岩性复杂,且存在断层带,钻井过程中易发生泥岩水化分散和砂岩层井眼缩径等问题,井壁垮塌风险极大。针对该区块地层岩性特点和技术难题并结合环保要求,制备了一种复合型封堵材料PF-MOSHIELD,构建了BIODRILL S合成基钻井液体系。该体系流变性能良好,抗钙、抗岩屑污染达26%和15%,封堵性、沉降稳定性、润滑性优异,高温高压砂盘滤失量3.2 mL,静置7 d沉降因子为0.53,极压润滑系数0.082。BIODRILL S首次在渤海湾垦利9-1区块进行了现场应用,结果表明:该体系解决了垦利9-1区块泥页岩水化和砂岩层井眼缩径问题,垦利9-1北-3定向探井三开井段上部地层钻屑完整,钻屑达4~7 cm;井眼清洁性能良好,钻井液动塑比超过0.59 Pa/mPa·s,φ6φ3读数均超过9,剪切稀释性强,提高了井眼净化效率,有效避免形成“岩屑床”;润滑性能优异,在大井斜段(55°、70°、67°)可实现直接起钻。

     

  • 图  1  PF-MOSHIELD对滤纸和陶瓷砂盘的封堵效果

    图  2  垦利9-1北-3定向探井钻屑

    表  1  不同加量的PF-MOSHIELD对  钻井液流变和电稳定性影响

    加量/(kg·m−3AV/mPa·sPV/mPa·sYP/PaGel/(Pa/Pa)ES/V
    011.09.02.02.5/4.5785
    1012.09.52.53.0/5.0850
    2013.010.03.04.0/5.0967
    3015.012.03.04.0/5.5975
    下载: 导出CSV

    表  2  BIODRILL S钻井液性能

    T/℃AV/mPa·sPV/mPa·sYP/PaGel /(Pa/Pa)ES/V
    2517.5143.55/14615
    6512.5102.55/12648
    下载: 导出CSV

    表  3  水相中CaCl2加量对合成基钻井液性能影响

    配方实验
    条件
    AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    Gel/
    Pa/Pa
    FLHTHP/
    mL
    ES/
    V
    滚动回收率/
    %
    1#
    (20%CaCl2
    老化前23.0149.05.0/11.0970
    老化后22.0166.04.5/10.00.495098.4
    2#
    (22%CaCl2
    老化前26.01610.08.0/14.0930
    老化后22.0175.07.0/11.00.6103098.6
    3#
    (24%CaCl2
    老化前25.01510.07.0/11.5780
    老化后21.5183.56.5/10.51.0115097.9
    4#
    (26%CaCl2
    老化前25.5169.57.0/13.5740
    老化后20.0155.06.5/11.01.2140097.8
     注:老化时间为80 ℃ × 16 h。
    下载: 导出CSV

    表  4  添加不同浓度岩屑对合成基钻井液性能影响

    配方实验
    条件
    AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    Gel/
    Pa/Pa
    ES/
    V
    基础配方老化前22.0139.04.5/7.0840
    80 ℃/16 h17.0134.04.0/8.5700
    80 ℃/56 h15.0132.03.0/6.5670
    80 ℃/7 d15.5132.52.5/5.5570
    80 ℃/13 d14.5131.51.0/7.0660
    10% 钻屑老化前23.51211.56.5/9.01020
    80 ℃/16 h18.5135.56.0/11.5996
    80 ℃/56 h17.0134.05.0/9.5570
    80 ℃/7 d17.0134.04.5/9.5620
    80 ℃/13 d17.0134.04.5/9.0700
    15% 钻屑老化前26.51313.57.5/11.01047
    80 ℃/16 h20.5146.58.0/11.5941
    80 ℃/56 h18.5135.55.5/11.5865
    80 ℃/7 d18.5144.55.5/12.0800
    80 ℃/13 d18.0144.05.0/11.5820
    下载: 导出CSV

    表  5  BIODRILL S体系沉降因子评价结果

    t静置/dρ上层/(g·cm−3)ρ下层/(g·cm−3)SF
    11.2391.2560.503
    31.2301.2670.507
    51.2251.2720.509
    71.2151.2800.513
    下载: 导出CSV

    表  6  合成基钻井液BIODRILL S的封堵性能评价

    石英砂直径/
    mm
    侵入深度/mm 陶瓷砂盘
    孔径/μm
    FLHTHP/
    mL
    老化前 80 ℃×16 h
    0.28~0.45 25 27 3 2.0
    0.18~0.28 18 21 5 2.5
    0.154~0.18 11 12 10 3.2
    下载: 导出CSV

    表  7  垦利9-1北-3定向探井BIODRILL S合成基钻井液性能

    井深/
    m
    FV/
    s
    ρ/
    g·cm-3
    PV/
    mPa·s
    YP/
    Pa
    YP/PV/
    Pa/mPa·s
    φ6/φ3Gel/
    Pa/Pa
    碱度FLHTHP/
    mL
    ES/
    V
    837501.18119.50.8610/99/113.02.8660
    1280481.18118.50.7711/108/103.02.4990
    1474491.20139.00.6912/119/112.82.0640
    1955561.261710.00.5913/1210/122.81.8550
    2213581.281811.50.6417/1612/152.81.4590
    下载: 导出CSV
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出版历程
  • 收稿日期:  2023-09-25
  • 修回日期:  2023-10-30
  • 刊出日期:  2024-02-02

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