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耐高温高盐钻井液润滑剂的研制与性能评价

王宗轮 孙金声 刘敬平 吕开河 邵子桦 张宪法

王宗轮,孙金声,刘敬平,等. 耐高温高盐钻井液润滑剂的研制与性能评价[J]. 钻井液与完井液,2022,39(5):538-544 doi: 10.12358/j.issn.1001-5620.2022.05.002
引用本文: 王宗轮,孙金声,刘敬平,等. 耐高温高盐钻井液润滑剂的研制与性能评价[J]. 钻井液与完井液,2022,39(5):538-544 doi: 10.12358/j.issn.1001-5620.2022.05.002
WANG Zonglun, SUN Jinsheng, LIU Jingping, et al.Development and performance evaluation of high temperature salt resistant drilling lubricant[J]. Drilling Fluid & Completion Fluid,2022, 39(5):538-544 doi: 10.12358/j.issn.1001-5620.2022.05.002
Citation: WANG Zonglun, SUN Jinsheng, LIU Jingping, et al.Development and performance evaluation of high temperature salt resistant drilling lubricant[J]. Drilling Fluid & Completion Fluid,2022, 39(5):538-544 doi: 10.12358/j.issn.1001-5620.2022.05.002

耐高温高盐钻井液润滑剂的研制与性能评价

doi: 10.12358/j.issn.1001-5620.2022.05.002
基金项目: 国家自然科学基金面上项目“页岩气裂缝性地层剪切滑移坍塌机理与水基钻井液稳定方法”(52074330)
详细信息
    作者简介:

    王宗轮,在读博士研究生,1997年生,主要从事复杂地层钻井液技术的研究工作。E-mail:17854262654@163.com

    通讯作者:

    刘敬平,副教授,1985年生,从事油气井化学工程理论与技术方面的研究工作。E-mail:20160038@upc.edu.cn

  • 中图分类号: TE254.1

Development and Performance Evaluation of High Temperature Salt Resistant Drilling Lubricant

  • 摘要: 针对深井超深井钻井过程中高扭矩和高摩阻等难题,利用硼酸、多元醇和长链脂肪酸等原料,合成出一种耐高温高盐钻井液润滑剂SOB,该润滑剂在高温高盐条件下具有良好的润滑性能。在5%基浆中加入1%润滑剂SOB后,润滑系数降低率为92.7%,泥饼的黏附系数降低至0.0405,极压润滑持效性强;210 ℃下润滑系数降低率保持在90.2%,210 ℃、35%NaCl条件下润滑系数降低率保持在81.3%。高温高盐条件下SOB在高密度钻井液中配伍性良好,200 ℃老化后对钻井液的流变性无影响,能够降低钻井液滤失量,润滑系数降低率为45.09%,相比常规润滑剂性能优越,这是由于润滑剂能够在钻具表面有效吸附,形成一层疏水性较强的膜,使钻具与井壁的直接接触变成了润滑膜之间的接触,从而降低摩擦。

     

  • 图  1  不同润滑剂对基浆润滑系数的影响

    图  2  SOB浓度对基浆润滑系数的影响

    图  3  不同润滑剂对5%基浆泥饼黏附系数的影响

    图  4  温度对润滑剂SOB润滑性能的影响

    图  5  210 ℃老化后不同润滑剂的润滑性能

    图  6  不同NaCl浓度下润滑剂SOB的润滑系数

    图  7  不同NaCl浓度下润滑剂SOB的润滑系数降低率

    图  8  30%NaCl下不同润滑剂的润滑系数降低率

    图  9  润滑剂吸附量随吸附时间的变化曲线

    图  10  吸附量随润滑剂浓度的变化

    图  11  钢片在润滑剂溶液中浸泡前后的接触角

    表  1  SOB对基浆极压摩擦不同时间的润滑系数的影响

    SOB/
    %
    不同时间(min)的润滑系数Kf滑块发热
    情况
    510202530
    00.6310.6450.6550.6640.672发热
    10.0460.0450.0430.0420.043不发热
    下载: 导出CSV

    表  2  润滑剂SOB对基浆性能的影响

    SOB/
    %
    T老化/
    AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    FLAPI /
    mL
    0室温7.06.01.023.2
    1室温8.56.02.518.4
    01507.55.52.029.6
    11508.57.01.524.8
    01805.04.50.532.4
    11806.05.01.028.2
    02104.04.0036.0
    12104.54.00.534.4
    下载: 导出CSV

    表  3  高温高盐条件下润滑剂对高密度钻井液性能的影响

    润滑剂实验条件AV/
    mPa·s
    PV/
    mPa·s
    YP/
    Pa
    FLAPI /
    mL
    KfΔKf/
    %
    0老化前84.56519.51.60.172
    200 ℃、16 h65.05015.02.80.151
    1%SOB老化前85.56817.51.20.09544.77
    200 ℃、16 h67.55116.52.40.08345.09
    1%RH-3老化前83.06617.01.40.13024.42
    200 ℃、16 h64.05113.02.40.11225.83
    1%
    油酸甲酯
    老化前82.56418.51.20.14217.44
    200 ℃、16 h63.54914.52.60.12318.54
    1%HEP-1老化前85.06718.01.40.11012.21
    200 ℃、16 h66.54917.52.40.12815.23
    下载: 导出CSV
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  • 收稿日期:  2022-05-16
  • 修回日期:  2022-06-28
  • 刊出日期:  2023-01-10

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