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钻井液用自降解屏蔽暂堵剂的制备与性能评价

穆国臣 褚奇

穆国臣,褚奇. 钻井液用自降解屏蔽暂堵剂的制备与性能评价[J]. 钻井液与完井液,2026,43(3):340-348 doi: 10.12358/j.issn.1001-5620.2026.03.006
引用本文: 穆国臣,褚奇. 钻井液用自降解屏蔽暂堵剂的制备与性能评价[J]. 钻井液与完井液,2026,43(3):340-348 doi: 10.12358/j.issn.1001-5620.2026.03.006
MU Guochen, CHU Qi.Preparation and performance evaluation of a self-degrading bridging temporary plugging agent for drilling fluids[J]. Drilling Fluid & Completion Fluid,2026, 43(3):340-348 doi: 10.12358/j.issn.1001-5620.2026.03.006
Citation: MU Guochen, CHU Qi.Preparation and performance evaluation of a self-degrading bridging temporary plugging agent for drilling fluids[J]. Drilling Fluid & Completion Fluid,2026, 43(3):340-348 doi: 10.12358/j.issn.1001-5620.2026.03.006

钻井液用自降解屏蔽暂堵剂的制备与性能评价

doi: 10.12358/j.issn.1001-5620.2026.03.006
基金项目: 中国石化科技部科研攻关项目“裂缝性火山岩井筒强化技术研究”(P24152)。
详细信息
    作者简介:

    穆国臣,高级工程师,硕士,毕业于中国石油大学(北京)石油工程专业,现在从事复杂井钻完井技术研发与管理工作。电话(0431)88531975;E-mail:mugc.dbsj@sinopec.com

    通讯作者:

    褚奇,博士,研究员,现在从事钻井液技术研究工作。E-mail:chuqi.sripe@sinopec.com

  • 中图分类号: TE254.4

Preparation and Performance Evaluation of a Self-Degrading Bridging Temporary Plugging Agent for Drilling Fluids

  • 摘要: 针对裂缝性低渗储层钻进过程中,屏蔽暂堵剂因粒径较大难以实现致密封堵、且自降解程度低的技术难题,以丙烯酰胺(AM)、对苯乙烯磺酸钠(SSS)为反应单体,双取代丙烯酸β-环糊精酯(β-CD-AA)为交联剂,基于反相微乳化聚合反应原理,采用液体微流控制技术,制备了一种自降解屏蔽暂堵剂SMNP-1,并借助红外光谱仪验证了其分子结构。采用激光粒度分析仪和扫描电镜(SEM),分别对SMNP-1的粒径分布和微观形貌进行了表征,并考察了其吸水膨胀性能、吸附性能、暂堵与解堵性能、自降解性能、承压性能和配伍性能。实验结果表明,在高温下,SMNP-1的吸水体积膨胀率适中,吸附能力强,经高温作用后,SMNP-1的粒径呈正态分布,微观上为纳微米微球;在100、120、140和160 ℃测试条件下,SMNP-1对天然岩心的封堵率分别为96.88%、96.63%、96.57%和95.27%,高温作用240 h后,SMNP-1的解堵率分别为87.22%、89.95%、93.27%和96.13%,自降解率分别高达52.05%、56.40%、63.04%和74.11%,储层保护效果显著。在100 ℃测试条件下,最大驱替压差为55 MPa,升温至160 ℃,仍可实现最大驱动压差为25 MPa,封堵性能优异;SMNP-1对钻井液的流变性能影响较小,可提高钻井液的滤失造壁能力和储层保护效果,并在风险探井新胜1井中成功应用。

     

  • 图  1  SMNP-1的FT-IR谱图

    图  2  不同温度作用后SMNP-1的粒径分布图

    图  3  不同温度老化16 h后SMNP-1的SEM照片(×50 000)

    图  4  SMNP-1的吸水体积膨胀率随高温作用时间变化曲线

    图  5  不同温度下SMNP-1在不同介质中的吸附量随温度变化曲线

    图  6  SMNP-1的解堵率随高温作用时间的变化曲线

    图  7  SMNP-1的自降解率随高温作用时间的变化曲线

    图  8  不同温度下SMNP-1的压力传递稳压变化曲线

    表  1  不同温度下岩心的封堵率

    T老化/℃ K0/mD K1/mD 封堵率/%
    100 0.8017 0.0250 96.88
    120 0.8229 0.0277 96.63
    140 0.8554 0.0291 96.57
    160 0.8793 0.0416 95.27
    下载: 导出CSV

    表  2  在基浆中加入不同加量SMNP-1的流变和滤失性能

    SMNP-1/
    %
    实验
    条件
    AV/
    mPa·s
    YP/
    Pa
    FLAPI/
    mL
    FLHTHP/
    mL
    0 常温 22.0 7.5
    100 ℃×16 h 21.5 6.5 4.0 10.4
    120 ℃×16 h 21.0 6.0 4.4 11.2
    140 ℃×16 h 21.0 6.0 5.0 12.2
    160 ℃×16h 20.0 6.0 6.6 14.8
    0.5 常温 24.0 8.0
    100 ℃×16 h 22.5 7.0 2.8 8.6
    120 ℃×16 h 22.5 6.5 3.2 9.0
    140 ℃×16 h 22.0 6.5 4.0 9.4
    160 ℃×16 h 21.0 6.0 4.6 11.8
    1.0 常温 24.0 8.5
    100 ℃×16 h 23.0 7.5 2.6 8.2
    120 ℃×16 h 22.5 7.0 3.0 8.4
    140 ℃×16 h 22.0 7.0 3.4 9.0
    160 ℃×16 h 21.5 6.5 4.2 11.4
     注:FLHTHP测试温度为对应老化温度。
    下载: 导出CSV

    表  3  新胜1井三开井段钻井液的流变和滤失性能

    井深/
    m
    ρ/
    g·cm−3
    FV/
    s
    AV/
    mPa·s
    YP/
    Pa
    FLAPI/
    mL
    FLHTHP/
    mL
    3150 1.33 40 25.0 9.0 3.6 12.0
    3418 1.34 43 27.0 10.0 3.2 11.2
    3757 1.35 54 31.5 11.5 3.6 11.0
    3902 1.40 50 33.0 12.0 3.8 11.2
    4345 1.43 50 33.5 11.5 3.0 11.0
    4666 1.43 61 39.5 14.5 3.6 11.6
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-10-11
  • 修回日期:  2025-11-21
  • 网络出版日期:  2026-06-12
  • 刊出日期:  2026-06-12

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