CHEN Xiaohua, QIU Zhengsong, FENG Yongchao, et al.An anti-collapse drilling fluid with strong inhibitive and plugging capacity for use in the Fuxian block in Ordos basin[J]. Drilling Fluid & Completion Fluid,2021, 38(4):462-468 doi: 10.12358/j.issn.1001-5620.2021.04.010
Citation: CHEN Xiaohua, QIU Zhengsong, FENG Yongchao, et al.An anti-collapse drilling fluid with strong inhibitive and plugging capacity for use in the Fuxian block in Ordos basin[J]. Drilling Fluid & Completion Fluid,2021, 38(4):462-468 doi: 10.12358/j.issn.1001-5620.2021.04.010

An Anti-Collapse Drilling Fluid with Strong Inhibitive and Plugging Capacity for Use in the Fuxian Block in Ordos Basin

doi: 10.12358/j.issn.1001-5620.2021.04.010
  • Received Date: 2021-04-06
    Available Online: 2021-11-30
  • Publish Date: 2021-07-31
  • Borehole wall instability was encountered in drilling the Liujiagou formation, the Shiqianfeng formation and the Shihezi formation in the Fuxian block, and the mechanisms of the instability were investigated and revealed through studies on three aspects, namely, the mineral composition, microstructure and physio-chemical property of the formations in question. These studies are aimed at solving the borehole wall sloughing problem encountered in the drilling operation in the Fuxian block in Ordos Basin, in which the shale contains high content of clays and is developed with pores and fractures resulting in shale hydration. Based on the “synergy of multiple factors” theory, a technical measure for stabilizing borehole wall, which can be described as “physio-chemically plugging/consolidating borehole wall to retard pressure transmission-strengthening the inhibition of clay hydration-supporting the borehole wall with appropriate mud weight”, was presented. A drilling fluid with strong inhibitive capacity and plugging capacity was formulated based on the optimization of each additive in and the whole composition of the drilling fluid to deal with the sloughing of the borehole wall. The drilling fluid has HTHP filtration rate of 8.4 mL, strong inhibitive and plugging capacity, and percent recovery of shale cuttings of 90% in hot rolling test. Plugging of 400 μm fractures with the drilling fluid renders the formation in which these fractures exist a pressure bearing capacity of 6 MPa. The drilling fluid also has good reservoir protection capacity. Field application shows that this new drilling fluid is able to effectively mitigate the tight hole and sloughing, reduce the rate of hole enlargement, and increase rate of penetration. Using this drilling fluid, no downhole troubles have ever happened, providing drilling fluid technical support to the safe and efficient drilling in the Fuxian block.

     

  • [1]
    汤志川,邱正松,钟汉毅,等. 新型壳聚糖-邻苯二酚化学固壁剂合成与性能评价[J]. 钻井液与完井液,2019,36(5):534-541. doi: 10.3969/j.issn.1001-5620.2019.05.002

    TANG Zhichuan, QIU Zhengsong, ZHONG Hanyi, et al. Synthesis and evaluation of a new chemical borehole wall strengthener made from chitosan-catechol[J]. Drilling Fluid & Completion Fluid, 2019, 36(5):534-541. doi: 10.3969/j.issn.1001-5620.2019.05.002
    [2]
    王伟吉. 页岩气地层水基防塌钻井液技术研究[D]. 中国石油大学(华东), 2017.

    WANG Weiji. Study on water-based anti-sloughing drilling fluid technology for shale gas formation[D]. Dongying: China University of Petroleum (East China), 2017.
    [3]
    邱正松,徐加放,吕开河,等. "多元协同"稳定井壁新理论[J]. 石油学报,2007,28(2):117-119. doi: 10.3321/j.issn:0253-2697.2007.02.024

    QIU Zhengsong, XU Jiafang, LYU Kaihe, et al. A multivariate cooperation principle for well-bore stabilization[J]. Acta Petrolei Sinica, 2007, 28(2):117-119. doi: 10.3321/j.issn:0253-2697.2007.02.024
    [4]
    李成,白杨,于洋,等. 顺北油田破碎地层井壁稳定钻井液技术[J]. 钻井液与完井液,2020,37(1):15-22.

    LI Cheng, BAI Yang, YU Yang, et al. Study and application of drilling fluid technology for stabilizing fractured formations in Shunbei oilfield[J]. Drilling Fluid & Completion Fluid, 2020, 37(1):15-22.
    [5]
    于成旺,杨淑君,赵素娟. 页岩气井钻井液井眼强化技术[J]. 钻井液与完井液,2018,35(6):49-54. doi: 10.3969/j.issn.1001-5620.2018.06.009

    YU Chengwang, YANG Shujun, ZHAO Sujuan. Borehole wall strengthening with drilling fluids in shale gas drilling[J]. Drilling Fluid & Completion Fluid, 2018, 35(6):49-54. doi: 10.3969/j.issn.1001-5620.2018.06.009
    [6]
    唐文泉,高书阳,王成彪,等. 龙马溪页岩井壁失稳机理及高性能水基钻井液技术[J]. 钻井液与完井液,2017,34(3):21-26. doi: 10.3969/j.issn.1001-5620.2017.03.004

    TANG Wenquan, GAO Shuyang, WANG Chengbiao, et al. Research on mechanisms of wellbore instability of longmaxi shale formation and high performance water base drilling fluid technology[J]. Drilling Fluid & Completion Fluid, 2017, 34(3):21-26. doi: 10.3969/j.issn.1001-5620.2017.03.004
    [7]
    赵欣,邱正松,张永君,等. 复合盐层井壁失稳机理及防塌钻井液技术[J]. 中南大学学报(自然科学版),2016,47(11):3832-3838.

    ZHAO Xin, QIU Zhengsong, ZHANG Yongjun, et al. Wellbore instability mechanism and wellbore stabilizing drilling fluid technique for drilling compound salt formation[J]. Journal of Central South University (Science and Technology), 2016, 47(11):3832-3838.
    [8]
    王艳. 多元协同井壁稳定水基钻井液研究[D].成都: 西南石油大学, 2016.

    WANG Yan. Study on water-based drilling fluid with multiple synergy well-bore stability[D].Chenhdu: Southwest Petroleum University, 2016.
    [9]
    黄维安,牛晓,沈青云,等. 塔河油田深侧钻井防塌钻井液技术[J]. 石油钻探技术,2016,44(2):51-57.

    HUANG Weian, NIU Xiao, SHEN Qingyun, et al. Anti-sloughing drilling fluid technology for deep sidetracking wells in the Tahe Oilfield[J]. Petroleum Drilling Techniques, 2016, 44(2):51-57.
    [10]
    王富华,邱正松,王瑞和. 保护油气层的防塌钻井液技术研究[J]. 钻井液与完井液,2004,21(4):50-53.

    WANG Fuhua, QIU Zhengsong, WANG Ruihe. Study on anti-sloughing drilling fluid technology for oil and gas reservoir protection[J]. Drilling Fluid & Completion Fluid, 2004, 21(4):50-53.
    [11]
    钟汉毅,邱正松,黄维安,等. 聚胺高性能水基钻井液特性评价及应用[J]. 科学技术与工程,2013,13(10):2803-2807. doi: 10.3969/j.issn.1671-1815.2013.10.036

    ZHONG Hanyi, QIU Zhengsong, HUANG Weian, et al. Properties evaluation and application of polyamine high performance water-based drilling fluid[J]. Science Technology and Engineering, 2013, 13(10):2803-2807. doi: 10.3969/j.issn.1671-1815.2013.10.036
    [12]
    钟汉毅,黄维安,林永学,等. 新型聚胺页岩抑制剂性能评价[J]. 石油钻探技术,2011,39(6):44-48. doi: 10.3969/j.issn.1001-0890.2011.06.011

    ZHONG Hanyi, HUANG Weian, LIN Yongxue, et al. Properties Evaluation of a noval polyamine shale inhibitor[J]. Petroleum Drilling Techniques, 2011, 39(6):44-48. doi: 10.3969/j.issn.1001-0890.2011.06.011
    [13]
    邱正松,钟汉毅,黄维安. 新型聚胺页岩抑制剂特性及作用机理[J]. 石油学报,2011,32(4):678-682.

    QIU Zhengsong, ZHONG Hanyi, HUANG Weian. Properties and mechanism of a new polyamine shale inhibitor[J]. Acta Petrolei Sinica, 2011, 32(4):678-682.
    [14]
    张坤, 王磊磊, 董殿彬,等. 多元聚胺钻井液研究与应用[J]. 钻井液与完井液, 2020, 37(3): 301-305.

    ZHANG Kun, WANG Llei lei, DONG Danbin, et al. Study on and application of a polyamine drilling fluid[J]. Drilling Fluid & Completion Fluid, 2020, 37(3): 301-305.
    [15]
    罗健生,蒋官澄,王国帅,等. 一种无氯盐环保型强抑制水基钻井液体系[J]. 钻井液与完井液,2019,36(5):594-599. doi: 10.3969/j.issn.1001-5620.2019.05.012

    LUO Jiansheng, JIANG Guancheng, WANG Guoshuai, et al. Development of an environmentally friendly strongly inhibitive chloride-free water base drilling fluid[J]. Drilling Fluid & Completion Fluid, 2019, 36(5):594-599. doi: 10.3969/j.issn.1001-5620.2019.05.012
  • Relative Articles

  • Cited by

    Periodical cited type(15)

    1. 于富安,刘维平,孙健越. 双聚防塌冲洗液在覆盖层钻探中的应用. 钻探工程. 2025(02): 59-64 .
    2. 高书阳,薄克浩,张亚云,高宏,皇甫景龙. 川东北陆相页岩储层井壁失稳机理研究. 钻井液与完井液. 2025(02): 217-224 . 本站查看
    3. 冯永超,李大雷. 泾河油田页岩油储层井壁失稳机理研究. 石油地质与工程. 2024(01): 122-126 .
    4. 贾俊,陈磊,郝超,周文军,冯永兵. 铝土岩水平井快封堵防塌钻井液技术. 钻井液与完井液. 2024(04): 473-480 . 本站查看
    5. 白杨,王路一,李翔,窦幻君,罗平亚. 煤层气储层保护钻井液技术研究进展. 天然气工业. 2024(10): 182-194 .
    6. 吕坤鸿,张辉,田得粮,杨博远,李军,欧阳勇,安锦涛,秦程. 鄂尔多斯盆地深部煤层井壁失稳机理及钻井液对策. 钻井液与完井液. 2024(05): 564-573 . 本站查看
    7. 古晗,马丽华,林凌,邓小刚,宋若男. 油基纳米封堵防塌剂的制备和评价. 精细石油化工. 2023(02): 1-5 .
    8. 王少帅. 含氮杂环衍生物的制备及其性能评价. 石油化工应用. 2023(04): 102-107 .
    9. 倪华峰. 陕224区块储气库水平井钻完井关键技术优化. 石油钻采工艺. 2023(01): 31-37 .
    10. 王中华. 国内钻井液技术现状与发展建议. 石油钻探技术. 2023(04): 114-123 .
    11. 陈文可,郑和,龚厚平,许春田,蔡巍,石水健,周成裕,暴丹. 中江区块沙溪庙组井壁失稳机理及烷基糖苷防塌钻井液. 钻井液与完井液. 2023(04): 438-445 . 本站查看
    12. 朱金智,杨学文,刘洪涛,杨成新,张绍俊,罗春芝. 塔河南岸跃满区块三叠系防塌钻井液研究与应用. 钻井液与完井液. 2022(03): 319-326 . 本站查看
    13. 贺华. 防塌型钻井液优化及性能评价研究. 内蒙古石油化工. 2022(07): 25-28 .
    14. 张高波,李培海,乔汉,赵同林. 控制水基钻井液高温高压滤失量的方法及途径. 钻井液与完井液. 2022(04): 406-414+422 . 本站查看
    15. 张冠洪. 海上油田钻井用新型聚胺抑制剂的研制及性能评价. 石油化工应用. 2022(12): 53-57 .

    Other cited types(1)

  • Created with Highcharts 5.0.7Amount of accessChart context menuAbstract Views, HTML Views, PDF Downloads StatisticsAbstract ViewsHTML ViewsPDF Downloads2024-072024-082024-092024-102024-112024-122025-012025-022025-032025-042025-052025-06051015202530
    Created with Highcharts 5.0.7Chart context menuAccess Class DistributionFULLTEXT: 28.1 %FULLTEXT: 28.1 %META: 64.8 %META: 64.8 %PDF: 7.1 %PDF: 7.1 %FULLTEXTMETAPDF
    Created with Highcharts 5.0.7Chart context menuAccess Area Distribution其他: 2.9 %其他: 2.9 %China: 0.8 %China: 0.8 %Fairfax: 0.1 %Fairfax: 0.1 %India: 0.2 %India: 0.2 %Singapore: 0.2 %Singapore: 0.2 %上海: 40.8 %上海: 40.8 %东营: 0.5 %东营: 0.5 %克拉玛依: 0.2 %克拉玛依: 0.2 %兰州: 0.2 %兰州: 0.2 %北京: 2.8 %北京: 2.8 %南京: 0.2 %南京: 0.2 %厦门: 0.1 %厦门: 0.1 %台州: 0.1 %台州: 0.1 %咸阳: 0.1 %咸阳: 0.1 %哈尔滨: 0.3 %哈尔滨: 0.3 %商丘: 0.1 %商丘: 0.1 %喀什: 0.2 %喀什: 0.2 %大同: 0.1 %大同: 0.1 %天津: 0.7 %天津: 0.7 %安康: 0.2 %安康: 0.2 %定西: 0.1 %定西: 0.1 %宣城: 0.2 %宣城: 0.2 %巴中: 0.1 %巴中: 0.1 %常德: 0.1 %常德: 0.1 %延安: 0.4 %延安: 0.4 %张家口: 1.7 %张家口: 1.7 %成都: 0.6 %成都: 0.6 %扬州: 0.1 %扬州: 0.1 %承德: 0.2 %承德: 0.2 %新乡: 0.1 %新乡: 0.1 %新德里: 0.2 %新德里: 0.2 %旧金山: 0.1 %旧金山: 0.1 %昆明: 0.8 %昆明: 0.8 %晋城: 0.2 %晋城: 0.2 %杭州: 0.5 %杭州: 0.5 %格兰特县: 0.1 %格兰特县: 0.1 %武汉: 0.5 %武汉: 0.5 %沈阳: 0.2 %沈阳: 0.2 %沧州: 0.2 %沧州: 0.2 %泰安: 0.1 %泰安: 0.1 %泸州: 0.2 %泸州: 0.2 %洛阳: 0.1 %洛阳: 0.1 %海东: 0.1 %海东: 0.1 %深圳: 0.2 %深圳: 0.2 %湖州: 0.2 %湖州: 0.2 %濮阳: 0.3 %濮阳: 0.3 %烟台: 0.1 %烟台: 0.1 %焦作: 0.1 %焦作: 0.1 %盘锦: 0.9 %盘锦: 0.9 %石家庄: 0.3 %石家庄: 0.3 %秦皇岛: 0.1 %秦皇岛: 0.1 %纽约: 0.1 %纽约: 0.1 %芒廷维尤: 8.8 %芒廷维尤: 8.8 %芝加哥: 0.1 %芝加哥: 0.1 %衢州: 0.1 %衢州: 0.1 %西宁: 13.8 %西宁: 13.8 %西安: 1.6 %西安: 1.6 %贵阳: 1.2 %贵阳: 1.2 %运城: 1.1 %运城: 1.1 %遵义: 0.1 %遵义: 0.1 %邯郸: 0.1 %邯郸: 0.1 %郑州: 0.6 %郑州: 0.6 %鄂尔多斯: 0.2 %鄂尔多斯: 0.2 %重庆: 0.8 %重庆: 0.8 %铜川: 0.2 %铜川: 0.2 %银川: 0.2 %银川: 0.2 %长治: 0.1 %长治: 0.1 %青岛: 1.7 %青岛: 1.7 %驻马店: 10.8 %驻马店: 10.8 %其他ChinaFairfaxIndiaSingapore上海东营克拉玛依兰州北京南京厦门台州咸阳哈尔滨商丘喀什大同天津安康定西宣城巴中常德延安张家口成都扬州承德新乡新德里旧金山昆明晋城杭州格兰特县武汉沈阳沧州泰安泸州洛阳海东深圳湖州濮阳烟台焦作盘锦石家庄秦皇岛纽约芒廷维尤芝加哥衢州西宁西安贵阳运城遵义邯郸郑州鄂尔多斯重庆铜川银川长治青岛驻马店

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(7)  / Tables(6)

    Article Metrics

    Article views (860) PDF downloads(95) Cited by(16)
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return