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川东北陆相页岩储层井壁失稳机理研究

高书阳 薄克浩 张亚云 高宏 皇甫景龙

高书阳,薄克浩,张亚云,等. 川东北陆相页岩储层井壁失稳机理研究[J]. 钻井液与完井液,2025,42(2):217-224 doi: 10.12358/j.issn.1001-5620.2025.02.009
引用本文: 高书阳,薄克浩,张亚云,等. 川东北陆相页岩储层井壁失稳机理研究[J]. 钻井液与完井液,2025,42(2):217-224 doi: 10.12358/j.issn.1001-5620.2025.02.009
GAO Shuyang, BO Kehao, ZHANG Yayun, et al.Study on wellbore instability mechanism of continental shale reservoir in Northeastern Sichuan Basin[J]. Drilling Fluid & Completion Fluid,2025, 42(2):217-224 doi: 10.12358/j.issn.1001-5620.2025.02.009
Citation: GAO Shuyang, BO Kehao, ZHANG Yayun, et al.Study on wellbore instability mechanism of continental shale reservoir in Northeastern Sichuan Basin[J]. Drilling Fluid & Completion Fluid,2025, 42(2):217-224 doi: 10.12358/j.issn.1001-5620.2025.02.009

川东北陆相页岩储层井壁失稳机理研究

doi: 10.12358/j.issn.1001-5620.2025.02.009
基金项目: 国家自然基金项目“高精度地震导向钻井关键技术及软件”(U23B6010);中石化科技部重点攻关项目“多类型气藏钻完井关键技术”(P24231)。
详细信息
    作者简介:

    高书阳,1984年生,博士,副研究员。研究方向为井壁稳定与钻井液技术研究。电话 13811149937;E-mail:gaosy.sripe@sinopec.com。

  • 中图分类号: TE254

Study on Wellbore Instability Mechanism of Continental Shale Reservoir in Northeastern Sichuan Basin

  • 摘要: 为解决川东北陆相千佛崖页岩储层垮塌严重、成井难度大的技术难题,系统性地开展了失稳特征分析和室内实验评价研究。现场资料分析表明,失稳主要发生在千一段灰黑色页岩层段,具有失稳周期无规律,坍塌与漏失共存的特征,现用钻井液体系无法有效维持易塌地层的稳定性。室内研究发现,千一段不同层段间井壁稳定性差异较大,其中易塌层段灰黑色页岩层段黏土矿物含量高,具有一定的水化膨胀性能和双亲性润湿特征;其层理性强,有机质擦痕滑动镜面等(弱结构面)极为发育,胶结强度较弱,导致地层天然破碎,岩石力学性能大大降低;在钻井液及工程扰动作用下,沿弱结构面剥落掉块,引发井壁失稳坍塌。该研究提出了规避易塌层段等安全成井技术对策,为后期陆相页岩油气水平井施工提供参考和借鉴。

     

  • 图  1  千一段不同层段岩样膨胀率

    图  2  可交换阳离子容量测试结果

    图  3  千一段掉块岩样水化前后微观形貌对比

    图  4  PLY1-1井3b岩心在去离子水作用前后变化

    图  5  PLY1-1井3b岩心在强抑制水基钻井液作用前后变化

    图  6  PLY1-1井3b岩心在油基钻井液作用前后变化

    图  7  普陆7井千一段3B和3C小层有机质擦痕弱结构面发育

    图  8  千佛崖一段③小层各层段单轴抗压强度

    图  10  油基钻井液浸泡下单轴抗压强度随时间的变化

    图  12  去离子水浸泡下单轴抗压强度随时间的变化

    图  9  千佛崖一段③小层各层段内聚力

    图  11  强抑制水基钻井液浸泡下单轴抗压强度随时间的变化

    表  1  千一段各层段岩石润湿性测试结果

    层位与层理面方向润湿角/°
    去离子水3#白油柴油
    3A垂直25.71瞬间铺展瞬间铺展
    平行19.11瞬间铺展瞬间铺展
    3B垂直18.03瞬间铺展瞬间铺展
    平行30.31瞬间铺展瞬间铺展
    3C垂直27.94瞬间铺展瞬间铺展
    平行26.35瞬间铺展瞬间铺展
    3D垂直20.30瞬间铺展瞬间铺展
    平行14.70瞬间铺展瞬间铺展
    下载: 导出CSV
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  • 收稿日期:  2024-11-07
  • 修回日期:  2024-12-09
  • 录用日期:  2024-12-09
  • 刊出日期:  2025-04-17

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