LI Zhenzhi, SUN Ju, LI Xiaolan, YANG Chaoguang, DU Mingjun, GUO Peng. The Development and Application of a Clay-Free Oil-Based Drilling Fluid[J]. Petroleum Drilling Techniques, 2017, 45(1): 33-38. DOI: 10.11911/syztjs.201701006
Citation: LI Zhenzhi, SUN Ju, LI Xiaolan, YANG Chaoguang, DU Mingjun, GUO Peng. The Development and Application of a Clay-Free Oil-Based Drilling Fluid[J]. Petroleum Drilling Techniques, 2017, 45(1): 33-38. DOI: 10.11911/syztjs.201701006

The Development and Application of a Clay-Free Oil-Based Drilling Fluid

More Information
  • Received Date: March 23, 2016
  • Revised Date: October 13, 2016
  • Conventional oil-based drilling fluids are characterized by their significant viscosity effects due to the content of organic clay and asphalt filtration loss controller. So it is difficult to control their rheological properties and the limited low-density oil-based drilling fluids application. Under such circumstances, a clay-free oil-based drilling fluid has been developed by using an independently developed viocosifier, strength-enhancing additives, an emulsifier and polymer filtration loss reducer. Compatibility and optimal volumes of such additives have been determined through experimental study. Research results show that the newly developed clay-free oil-based drilling fluid may have controlled plastic viscosity within 55 mPa·s, an emulsion-breaking voltage above 450 V,an API filtration losses less than 2 mL, cutting pollution resistance up to 30% and water pollution resistance up to 20% under oil/water ratios 70:30 to 100:0, temperature 80-160℃ and densities 0.9-2.2 kg/L. At the same time, the impact of weighting materials on lubrication performance are negligible. The newly developed drilling fluids have been applied in four horizontal shale gas wells in Jiaoshiba Block. Test results show that the innovative clay-free oil-based drilling fluids involve minor raw materials, simplified maintenance requirement, controllable rheological properties and low solid contents. With desirable shear thinning behaviors, the drilling fluid may effectively minimize circulation pressure losses and enhance ROP.
  • [1]
    TAUGBØL K,LILLEDAL L,HENNING J,et al.The completion of subsea production wells eased by the use of a unique,high-density,solids-free,oil based completion fluid[R].SPE 87126,2004.
    [2]
    BURROWS K,CARBAJAL D,KIRSNER J,et al.Benchmark performance:zero barite sag and significantly reduced downhole osers with the industry’s first clay-free synthetic-based fluid[R].SPE 87138,2004.
    [3]
    CARBAJA D L,BURRESS C N,SHUMWAY W,et al.Combining proven anti-sag technologies for HPHT North Sea applications:clay-free oil-based fluid and synthetic,sub-mircon weight material[R].SPE 119378,2009.
    [4]
    ARAGO A F L,QUINTERO L,MARTINS A L,et al.A novel approach for drilling and gravel packing horizontal wells in the presence of reactive shales using a solids-free synthetic fluid[R].SPE 102295,2006.
    [5]
    van ZANTEN R,MILLER J J,BAKER C.Improved stability of invert emulsion fluids[R].SPE 151404,2012.
    [6]
    吴满祥,刘伟,牟杨琼杰,等.无土相油基钻井液的研究与应用[J].钻井液与完井液,2014,31(6):21-23. WU Manxiang,LIU Wei,MOUYANG Qiongjie,et al.Study on and application of clay-free oil base drilling fluid[J].Drilling Fluid Completion Fluid,2014,31(6):21-23.
    [7]
    张小平,王京光,杨斌,等.低切力高密度无土相油基钻井液的研制[J].天然气工业,2014,34(9):89-92. ZHANG Xiaoping,WANG Jingguang,YANG Bin,et al.Development of a clay-free oi-based drilling fluid with a low shearing force and high density[J].Natural Gas Industry,2014,34(9):89-92.
    [8]
    陈在君.高密度无土相油基钻井液研究及在四川页岩气水平井的应用[J].钻采工艺,2015,38(5):70-72. CHEN Zaijun.Development of high density clay-free oil-based drilling fluid and its application in Sichuan shale gas horizontal well[J].Drilling Production Technology,2015,38(5):70-72.
    [9]
    凡帆,王京光,蔺文洁.长宁区块页岩水平井无土相油基钻井液技术[J].石油钻探技术,2016,44(5):34-39. FAN Fan,WANG Jingguang,LIN Wenjie.Clay-free oil based drilling fluid technology for shale gas horizontal wells in the Changning Block[J].Petroleum Drilling Techniques,2016,44(5):34-39.
    [10]
    蓝强,李公让,张敬辉,等.无黏土低密度全油基钻井完井液的研究[J].钻井液与完井液,2010,27(2):6-9. LAN Qiang,LI Gongrang,ZHANG Jinghui,et al.Study on clay-free low density whole oil base drill-in fluid[J].Drilling Fluid Completion Fluid,2010,27(2):6-9.
  • Related Articles

    [1]MA Yingwen, YANG Jin, LI Wenlong, XU Kun, XIE Tao, YANG Baojian. Drilling Design and Construction of a Discovery Well in Bozhong 26-6 Oilfield[J]. Petroleum Drilling Techniques, 2023, 51(3): 9-15. DOI: 10.11911/syztjs.2023075
    [2]Zheng Mingxue, Huang Zaifu, Luo Bing, Wang Xuejie, Liu Huanle. Gas-Lift Horizontal Well Completion Techniques for the Sarvak Reservoir of the YD Oilfield[J]. Petroleum Drilling Techniques, 2015, 43(3): 41-44. DOI: 10.11911/syztjs.201503008
    [3]Fang Xiang, Shang Xitao, Wang Xiao. The Logging Evaluation Method of Carbonate Reservoir in the YD Oifield[J]. Petroleum Drilling Techniques, 2015, 43(3): 29-34. DOI: 10.11911/syztjs.201503006
    [4]Wei Dianju, Jin Junbin, He Qingshui. Fluid Technology for Drilling Horizontal Wells in the High Permeability Carbonate Reservoir of the YD Oilfield[J]. Petroleum Drilling Techniques, 2015, 43(3): 23-28. DOI: 10.11911/syztjs.201503005
    [5]Wu Wei, Ling Wenxue, Si Yinghui. Coring Challenges and Solutions in the YD Oilfield[J]. Petroleum Drilling Techniques, 2015, 43(3): 18-22. DOI: 10.11911/syztjs.201503004
    [6]Li Menggang, Zhang Huawei, Niu Chengcheng. Casing Program Optimization and Application in Complex Formation of the YD Oilfield[J]. Petroleum Drilling Techniques, 2015, 43(3): 13-17. DOI: 10.11911/syztjs.201503003
    [7]Jiang Zhao, Guo Jinghua, Wang Zijin, Huang Zaifu, Wang Xuejie. Discussion on Safe Drilling Technologies for the Asphalt Layer in the YD Oilfield[J]. Petroleum Drilling Techniques, 2015, 43(3): 7-12. DOI: 10.11911/syztjs.201503002
    [8]Jin Junbin, Yang Shunhui, Zhang Hongbao, Ren Liwei, Song Zhaohui. Development and Application of A Hardening Agent for Asphaltic Heavy Oil in Drilling Fluid[J]. Petroleum Drilling Techniques, 2014, 42(1): 50-54. DOI: 10.3969/j.issn.1001-0890.2014.01.010
    [9]Li Junwei, Cao Shijing, Song Linsong, Fu Jianmin, Wu Guang. Managed Pressure Drilling Technique for Horizontal Wells in JZ251S Oilfield[J]. Petroleum Drilling Techniques, 2013, 41(2): 119-122. DOI: 10.3969/j.issn.1001-0890.2013.02.023
    [10]Yin Bangtang, Li Xiangfang, Li Qian, Fan Kun, Hu Airong. The Calculation Method of Bottomhole Pressure during Shut-in Period in High Temperature and High Pressure Gas Well[J]. Petroleum Drilling Techniques, 2012, 40(3): 87-91. DOI: 10.3969/j.issn.1001-0890.2012.03.018
  • Cited by

    Periodical cited type(37)

    1. 申军武. 井下扭矩保持器设计及实验研究. 中国石油和化工标准与质量. 2025(01): 144-146 .
    2. 刘永升,豆子钧,张金成,高德利. 基于地质-工程一体化的纠偏轨道优化设计及产能评价. 中国石油大学学报(自然科学版). 2025(02): 142-150 .
    3. 许佳鑫,宋明阶,赵红燕,侯亮,李胜楠. 涪陵页岩气田加密井防碰关键技术. 江汉石油职工大学学报. 2024(02): 38-41 .
    4. 尹虎,范涛,江星宏. 页岩气丛式水平井上部井段防碰关键参数设计. 科学技术与工程. 2024(22): 9342-9349 .
    5. 史配铭,贺会锋,朱明明,孟凡金,屈艳平,王玉鹏. 苏里格南部气田Φ152.4 mm小井眼大斜度井快速钻井关键技术. 石油工业技术监督. 2024(09): 51-56 .
    6. 王胜建,迟焕鹏,庞飞,王都乐,周志,李龙,姜鹍鹏. 黔北正安地区页岩气钻探工程难点与对策研究. 地质与勘探. 2023(01): 162-169 .
    7. 张淑侠,王振华,郭锦涛,秦芳玲,何焕杰,吕宁超. 除硼树脂在压裂返排液回用中的应用. 水处理技术. 2023(06): 123-127 .
    8. 邱艳华,吴宇,温庆,林宇,杨建英,何焱,汪刚,文崭,罗彦力. 页岩气平台中压工艺流程的现场应用与评价. 天然气与石油. 2023(03): 27-35 .
    9. 凡广荣. 页岩气水平井强化钻压提速技术研究. 中国石油和化工标准与质量. 2023(15): 193-195 .
    10. 黄晶,赵昆,夏绪波,毛庆春. 压裂工程“井工厂”压裂模式提速提效分析. 江汉石油职工大学学报. 2023(04): 15-17 .
    11. 李阳,赵清民,薛兆杰. 新一代油气开发技术体系构建与创新实践. 中国石油大学学报(自然科学版). 2023(05): 45-54 .
    12. 姚红生,房启龙,袁明进,张壮. 渝东南常压页岩气工程工艺技术进展及下一步攻关方向. 石油实验地质. 2023(06): 1132-1142 .
    13. 刘召友,孙永强,郭百利. 苏里格气田?165.1mm小井眼二开一趟钻优快钻井关键技术. 西部探矿工程. 2023(12): 26-30 .
    14. 张金成. 第一性原理思维法在页岩气革命中的实践与启示. 钻探工程. 2022(02): 1-8 .
    15. 张东清. 涡轮式水力振荡器在涪陵页岩气水平井中的应用. 科技和产业. 2022(05): 283-287 .
    16. 石芳,熊青山,李微,王柯,刘恒. 涪陵页岩气田井场规划技术研究. 能源与环保. 2022(06): 104-113 .
    17. 刘伟,朱礼平,潘登雷,周楚坤,梁霄,刘小斌. WR气田深层页岩气钻井提速提效实践与认识. 天然气技术与经济. 2022(03): 44-50 .
    18. 郑德帅. 可旋转钻柱定向钻进工具设计及测试. 石油钻探技术. 2021(06): 81-85 . 本站查看
    19. 陈亚联. 新型压裂技术应用分析. 化工技术与开发. 2020(01): 38-41 .
    20. 周亚光. 青海省都兰县八宝山页岩气3井钻探施工技术研究. 能源与环保. 2020(02): 44-46+50 .
    21. 张辉. 大牛地气田丛式小井眼集约化钻井技术. 天然气技术与经济. 2020(02): 28-33 .
    22. 周昊. 全自动液体添加剂橇装置的研制. 化学工程与装备. 2020(10): 169+89 .
    23. 葛明娜,庞飞,包书景. 贵州遵义五峰组—龙马溪组页岩微观孔隙特征及其对含气性控制——以安页1井为例. 石油实验地质. 2019(01): 23-30 .
    24. 仝少凯,高德利. 水力压裂基础研究进展及发展建议. 石油钻采工艺. 2019(01): 101-115 .
    25. 樊好福. 页岩气钻完井配套技术集成研究与应用. 探矿工程(岩土钻掘工程). 2019(08): 15-22 .
    26. 董成林,涂玉林,殷子横,张金成,周号博. 涪陵页岩气田钻井提速集成技术应用研究. 西部探矿工程. 2019(12): 47-50 .
    27. 孔华,兰凯,刘香峰,刘明国,晁文学,郗刘明. 基于振动实测的非均质地层钻头失效分析与对策. 天然气工业. 2019(12): 110-115 .
    28. 刘伟,何龙,胡大梁,李文生,焦少卿. 川南海相深层页岩气钻井关键技术. 石油钻探技术. 2019(06): 9-14 . 本站查看
    29. 肖佳林,李奎东,高东伟,包汉勇. 涪陵焦石坝区块水平井组拉链压裂实践与认识. 中国石油勘探. 2018(02): 51-58 .
    30. 王光磊,张金成,赵明琨. 涪陵页岩气田井筒完整性实践与认识. 石油机械. 2018(05): 30-34+59 .
    31. 臧艳彬. 川东南地区深层页岩气钻井关键技术. 石油钻探技术. 2018(03): 7-12 . 本站查看
    32. 路保平,丁士东. 中国石化页岩气工程技术新进展与发展展望. 石油钻探技术. 2018(01): 1-9 . 本站查看
    33. 刘小伟. 在涪陵页岩气开发中自动化钻机的现状和发展——“十三五”国家科技重大专项深层页岩气开发关键装备及工具研制. 化工管理. 2017(27): 70 .
    34. 梅绪东,金吉中,王朝强,何勇,王丹,张春. 涪陵页岩气田绿色开发的实践与探索. 西南石油大学学报(社会科学版). 2017(06): 9-14 .
    35. 曹明. 页岩气压裂试气工程技术进展. 中国矿业. 2017(S2): 359-362 .
    36. 李彬,付建红,秦富兵,唐一元. 威远区块页岩气“井工厂”钻井技术. 石油钻探技术. 2017(05): 13-18 . 本站查看
    37. 臧艳彬,张金成,赵明琨,宋争,罗锐. 涪陵页岩气田“井工厂”技术经济性评价. 石油钻探技术. 2016(06): 30-35 . 本站查看

    Other cited types(16)

Catalog

    Article Metrics

    Article views (19795) PDF downloads (15371) Cited by(53)
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return