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    王倩男, 张毅, 冉恒谦, 汪伟, 厉曈曈, 郅世宇, 2026. 智能水基钻井液关键处理剂研究进展及展望. 地球科学. doi: 10.3799/dqkx.2026.175
    引用本文: 王倩男, 张毅, 冉恒谦, 汪伟, 厉曈曈, 郅世宇, 2026. 智能水基钻井液关键处理剂研究进展及展望. 地球科学. doi: 10.3799/dqkx.2026.175
    WANG Qiannan, ZHANG Yi, RAN Hengqian, WANG Wei, LI Tongtong, ZHI Shiyu, 2026. Research Progress and Prospect of Key Treatment Agents for Intelligent Water-based Drilling Fluids. Earth Science. doi: 10.3799/dqkx.2026.175
    Citation: WANG Qiannan, ZHANG Yi, RAN Hengqian, WANG Wei, LI Tongtong, ZHI Shiyu, 2026. Research Progress and Prospect of Key Treatment Agents for Intelligent Water-based Drilling Fluids. Earth Science. doi: 10.3799/dqkx.2026.175

    智能水基钻井液关键处理剂研究进展及展望

    doi: 10.3799/dqkx.2026.175
    基金项目: 

    地球深部探测与矿产资源勘查国家科技重大专项(项编号:2024ZD1000800,2024ZD1000806)。

    详细信息
      作者简介:

      王倩男(1995-),女,博士后,主要从事钻井液、油气田化学研究,E-mail:2282332181@qq.com,ORICD:0000-0001-9652-4826。张毅(1986-),男,高级工程师,硕士生导师,主要从事科学钻探技术与装备研究工作,shidazhangyang@163.com

    • 中图分类号: P634;TE254

    Research Progress and Prospect of Key Treatment Agents for Intelligent Water-based Drilling Fluids

    • 摘要: 相较于传统水基钻井液,智能水基钻井液具备“自识别、自调节、自适应”等智能化特征,有望从本质上破解当前钻井液领域面临的技术瓶颈,是未来更具发展潜力的方向。本文在文献调研的基础上,围绕分子设计、响应机理与性能评价三个方面,系统综述了智能水基钻井液关键处理剂(包括流型调节剂、降滤失剂、页岩抑制剂、增粘剂和堵漏材料)的研究进展,进而针对各类智能处理剂存在的关键技术问题,进一步展望了其未来发展趋势,以期为智能钻井液体系构建提供理论参考。

       

    • [1] Liu, H.T., 2024. Analysis and Countermeasures for Drilling Technology of Horizontal Wells in Long Horizontal Sections.West-china Exploration Engineering, 36(7): 57-59 (in Chinese).
      [2] Sun, J.S., Yang, J., Rong K.S., et al., 2023. Advances in Study on Rheology Modifier for Water-Based Drilling Fluids.Xinjiang Oil & Gas, 19(2): 1-16 (in Chinese with English abstract).
      [3] Pan, Y.S., 2025. Research on Low Viscosity Lifting Cuttings Drilling Fluid System Based on Modified Cuar Gum.Xi'an Shiyou University, Xi'an(in Chinese with English abstract).
      [4] Ning, B., Sha, Z.B., Li, J., et al., 2025. The development status and development trends of deep-sea drilling technology.Earth Science, 1-12 (in Chinese with English abstract).
      [5] Xu, T.F., Wen, D.G., Yuan, Y.L., 2024. Technical Challenges and Strategy of Geothermal Energy Development from Hot Dry Rock. Earth Science, 49(6): 2131-2147 (in Chinese with English abstract).
      [6] Jiang, G.C., Dong, T.F., Cui K.X., et al., 2022. Research Status and Development Directions of Intelligent Drilling Fluid Technologies.Petroleum Exploration & Development, 49(3): 577-585 (in Chinese with English abstract).
      [7] Sun, J.S., Xue, L., Liao B., et al., 2025. Current Research Status and Future Prospects of Intelligent Drilling Fluids: Intelligent Responsive Materials and Algorithms.Chemical Engineering of Oil & Gas, 54(5): 1-16 (in Chinese with English abstract).
      [8] Sun, J.S., Jiang G.C., 2023. Development Status and Trend of Drilling and Completion Fluid: “Blood” of Drilling Projects.Science and Technology Foresight, 2(2): 62-74 (in Chinese with English abstract).
      [9] Shen, H.K., Sun, J. S., Lv, K.H., et al., 2022. Research Progress and Application Prospects of Intelligent Organic Treatment Agent for Water-based Drilling Fluid.Oilfield Chemistry, 39(1): 155-162 (in Chinese with English abstract).
      [10] Du, X.D., Zhang H., 2023. Development Status and Prospect of Intelligent Water-Based Drilling Fluid.Chemical Engineer, 37(7): 79-83 (in Chinese with English abstract).
      [11] Yi, P.C., Su, L., 2024. Research Progress on Intelligent Drilling Fluid Temperature Response Control Treatment Agents.Shandong Chemical Industry, 53(7): 97-99+103 (in Chinese with English abstract).
      [12] Pan, Y., Xu, M.L., Guo, Y.C., et al., 2020. Research Progress on Chemical System and Auxiliary System of Intelligent Drilling Fluids.Fine Chemicals, 37(11): 2246-2254 (in Chinese with English abstract).
      [13] Cheng, L.P., Wang, X., Yang, G.B., et al., 2025. Thermosensitive Polymer/Nanosilica Hybrid as a Multifunctional Additive Inwater-Based Drilling Fluid: Rheologicalproperties and Lubrication Performance as well as Filtration Loss Reduction Capacity.Geoenergy Science and Engineering, 244: 213455. doi: 10.1016/j.geoen.2024.213455
      [14] Wang, J., Sun, J.S., Huang, X.B., et al., 2026. A Salt Responsive, High Temperature Resistant Polymer that Spontaneously Forms a Network as a Viscosifier for Solid Free Saturated CaCl2Reservoir Drill-in Fluid.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 731: 138958. doi: 10.1016/j.colsurfa.2025.138958
      [15] Tang, F.Y., Zhong, C., Ai, J.W., et al., 2025. Preparation and Performance Evaluation of Modified Cyclodextrin Shale Inhibitor. Chemical Engineering of Oil&Gas, 54(3): 94-101 (in Chinese with English abstract).
      [16] Yong, Z.H., Bai, B.B., Liu, Q.X., et al., 2025. Synthesis and Performance Evaluation of
      [17] Cationic Amine Shale Inhibitors.Chemical Research and Application, 37(4): 792-798 (in Chinese with English abstract).
      [18] Tchameni, A.P., Djouonkep, L.D.W., Nagre, R.D., et al., 2024. Thermo-responsive Polymer-based Janus Biogenic-nanosilica Composite, Part B: Experimental Study as a Multi-functional Synergistic Shale Stabilizer for Water-based Drilling Fluids.Journal of Molecular Liquids, 395: 123921. doi: 10.1016/j.molliq.2023.123921
      [19] Lai, N.J., Fan W., Zhang, X.C., et al., 2023. Temperature-sensitive Polymer Based Nano-SiO2Composite Multi-component Synergistic Improvement of Shale Stability in Water-based Drilling Fluids.Geoenergy Science and Engineering, 224: 211498. doi: 10.1016/j.geoen.2023.211498
      [20] Zhang, F., Sun, J.S., Li, Q., et al., 2022. Mechanism of Organosilicate Polymer as High-temperature Resistant Inhibitor in Water-based Drilling Fluids.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 641: 128489. doi: 10.1016/j.colsurfa.2022.128489
      [21] Nadira-KAMALDEN., Du, Y., Wang, C., et al., 2025. Synthesis and performance of anti-high temperature blocking-inhibitors. Applied Chemical Industry, 54(11): 2844-2849 (in Chinese with English abstract).
      [22] Zhao, J., Zhang, Y.C., Liu, Z.Q., et al., 2025. Development and Performance Evaluation of a Starch-Based Composite Filter Loss Reducer for Use at 220℃.Drilling Fluid & Completion Fluid, 42(5): 617-622 (in Chinese with English abstract).
      [23] Wang, Z.Y., Zhou, X.Y., Li, H.K., et al., 2025. Low Cost and High-performance Filtrate Reducer with Dual Cross-linking Structure.Oilfield Chemistry, 42(2): 198-205+214 (in Chinese with English abstract).
      [24] Quan, H.P., Xiao, S.W., Liang, Y., 2025. Synthesis and Performance Evaluation of DASAN Filtrate Loss Reducer for Temperature Resistant and Salt Tolerant Drilling Fluid. Modern Chemical Industry, 45(5): 151-157 (in Chinese with English abstract).
      [25] Qiang, T.P., Wang, L.H., Du, Q.F., et al., 2025. Preparation and Field Application of Amine Copolymer AP220, A Fluid Loss Reducer for Drilling Fluid.Petrochemical Industry Technology, 32(6): 73-75 (in Chinese with English abstract).
      [26] Sun, J.S., Chang, X.F., Lv, K.H., et al., 2021. Environmentally Friendly and Salt-responsive Polymer Brush Based on Lignin Nanoparticle as Fluid-loss Additive in Water-based Drilling Fluids.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 621: 126482. doi: 10.1016/j.colsurfa.2021.126482
      [27] Chang, X.F., 2024. A Novel Salt-Responsive Zwitterion Polymer Tackifying-Fluid Loss Additive.Natural Gas Industry, 44(5): 118-126 (in Chinese with English abstract).
      [28] Li, J., Ji, Y.X., Ni, X.X., et al., 2024. A Micro-crosslinked Amphoteric Hydrophobic Association Copolymer as High Temperature- and Salt-resistance Fluid Loss Reducer for Water Based Drilling Fluids.Petroleum Science, 21: 1980-1991. doi: 10.1016/j.petsci.2024.01.021
      [29] Zhang, X., 2024. Preparation of Responsive Biphasic Acrylamide Microspheres.Xi'an Shiyou University, Xi'an(in Chinese with English abstract).
      [30] Xu, H.W., Zhu, Y.Q., Liu, Y.H., et al., 2024.Temperature-sensitive Polymer Grafted with Nano-SiO2improves Sealing and Inhibition Performance of Shale Water-based Drilling Fluid.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 698: 134531. doi: 10.1016/j.colsurfa.2024.134531
      [31] Zhou, Y., Li, Z.Y., Qu, L., et al., 2023. Nanoparticles and Polymers Complexes as a Harmless Shale Plugging Inhibitor for Ocean Water-Based Drilling Fluids.Ocean Engineering, 286: 115563. Doi: 10.1016/j.oceaneng.2023.115563
      [32] Kong, Y., 2021. Synthesis and Application of a Temperature Sensitive Deformable Plugging Agent.Drilling Fluid & Completion Fluid, 38(6): 677-683 (in Chinese with English abstract).
      [33] Wang, W.J., Qiu, Z.S., Zhong, H.Y., et al., 2015. Preparation and Properties of Thermosensitive Poly(NIPAm-co-AA)/nano-SiO2Composite Blocking Agent for Shale Gas Reservoir.Acta Petrolei Sinica, 36(3): 378-384 (in Chinese with English abstract).
      [34] Jia, Y.H., Wu, J.L., Zhang, W., et al., 2024. Study of the Application of an Adaptive Nano-Plugging Agent in a Water-Based Drilling Fluid(WBDF) System.Petroleum Science Bulletin, 9(6): 1034-1043 (in Chinese with English abstract).
      [35] Cui, K.X., Jiang, G.C., Xie, C.L., et al., 2021. A Novel Temperature-sensitive Expandable Lost Circulation Material Based on Shape Memory Epoxy Foams to Prevent Losses in Geothermal Drilling.Geothermics, 95: 102145. doi: 10.1016/j.geothermics.2021.102145
      [36] Liu, Z.D., Li, H.B., Sun, T.F., et al., 2025. Plugging Performance of Shape Memory Foam Sealing Material with High Activation Temperature.Oilfield Chemistry, 42(3): 388-392 (in Chinese with English abstract).
      [37] Quan, X.H., Cui, K.X., Huang, S.M., et al., 2025. Intelligent UCST-responsive Hydrogels with Reversible Swelling for Enhanced Wellbore Stability.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 725: 137709. doi: 10.1016/j.colsurfa.2025.137709
      [38] Magzoub, M., Anyaezu, T., Salehi, S., et al., 2021. Evaluating Sealability of Blended Smart Polymer and Fiber Additive for Geothermal Drilling with the Effect of Fracture Opening Size.Journal of Petroleum Science and Engineering, 206: 108998. doi: 10.1016/j.petrol.2021.108998
      [39] Guo, C.P., Jiang, G.C., Guan, JT., et al., 2024. Self-Healing Gel Based on Synergistic Multiple Non-Covalent Bonds as Plugging Agent during Drilling.Oilfield Chemistry, 41(4): 571-578 (in Chinese with English abstract).
      [40] Yang, L.L., Wu, Y.P., Jiang, G.C., et al., 2023. Lost Circulation Material and Technology Research of Self-healing Hydrogel.Drilling Fluid & Completion Fluid, 40(1): 47-53 (in Chinese with English abstract).
      [41] Li, X.S., 2024. A Method for Preparing a Dual-Network Gel Plugging Agent.Shandong Chemical Industry, 53(22): 54-56 (in Chinese with English abstract).
      [42] Sang, Y.T., 2023. Preparation and Property Evaluation of Self-healing Hydrogels Lost Circulation Material for Drilling Fluid.Chongqing University of Science and Technology, Chongqing (in Chinese with English abstract).
      [43] Liu, C.F., Han, C.F., Zhu, M.M., 2018. Research on Controllable Intelligent Cross-linked Gel Leak Sealing Technology.Chemical Engineering Management, 27: 179 (in Chinese).
      [44] Li, J., Guo, J.X., Xiong, Y., et al., 2025. Development and Characterization of a New High-Temperature Resistant, Self-Healing and Degradable Plugging Agent for Deep Shale Gas Wells.Chemical Engineering of Oil & Gas, 54(5): 26-32+49 (in Chinese with English abstract).
      [45] Xu, Z., Sun, J.S., Li, L., et al., 2023. Development and Performance Evaluation of a High Temperature Resistant, Internal Rigid, and External Flexible Plugging Agent for Water-Based Drilling Fluids,Petroleum9: 33-40. doi: 10.1016/j.petlm.2022.07.004
      [46] Bai, Y., Zhai, Y.F., Feng, J., et al., 2025. Mechanical Properties of Rubber Composite Based on Temperature-sensitive Expandable Microspheres and its Application in Drilling Plugging. Materials Chemistry and Physics, 343: 131049. doi: org/10.1016/j.matchemphys.2025.131049
      [47] He, B., 2024. Application of a New Rheolobic Modifiers in the New Excellent Fast Drilling Operation.Shandong Chemical Industry, 53(10): 188-191 (in Chinese with English abstract).
      [48] Sun, J.S., Yang, J., Rong, K.S., et al., 2023. Advances in Study on Rheology Modifier for Water-Based Drilling Fluids.Xinjiang Oil & Gas, 19(2): 1-16 (in Chinese with English abstract).
      [49] Tchameni, A.P., Xie, B.Q., Ma, J., et al., 2021. Thermo-associating Copolymer Based on Cross-Linked 2-acrylamido-methylpropane Sulfonic Acid, Part C: Experimental Study into the Performance of Deepwater Aqueous Drilling Fluids.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 612: 125965. doi: 10.1016/j.colsurfa.2020.125965
      [50] Lv, K.H., Wang, Z.Y., Huang, X.B., et al., 2021. A Temperature Sensitive Polymer Flow Pattern Modifier for Water Base Drilling Fluids for Deep Water Drilling.Drilling Fluid & Completion Fluid, 38(1): 14-20 (in Chinese with English abstract).
      [51] Ding, T.J., Wang, R.H., Xu, J.F., et al., 2022. Synthesis and Application of a Temperature Sensitive Poly (N-vinylcaprolactam-co-N, N-diethyl acrylamide) for Low-temperature Rheology Control of Water-based Drilling Fluid.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 644: 128855. doi: 10.1016/j.colsurfa.2022.128855
      [52] Wang, Z.Y., Sun, J.S., Huang, X.B., et al., 2024. A Temperature-Sensitive Polymer with Thinner Effect as A Rheology Modifier in Deepwater Water-based Drilling Fluids.Journal of Molecular Liquids, 393: 123536. doi: 10.1016/j.molliq.2023.123536
      [53] Xie, B.Q., Zhang, X.B., Li, Y.G., et al., 2019. Application a novel thermo-sensitive copolymer as a potential rheological modifier for deepwater water-based drilling fluids.Colloids and Surfaces A, 581: 12384. doi: 10.1016/j.colsurfa.2019.123848
      [54] Fu, Y., 2023. Research on Thermo-responsive Polymer as Flat-Rheolog Modifier for Water Based Drilling Fluids.China University of Petroleum (Beijing), Beijing (in Chinese with English abstract).
      [55] Cheng, L.P., Yang, G.B., Zhang, S.M., et al., 2022. Preparation and Action Mechanism of Temperature Sensitive N-isopropylacrylamide/Nanosilica Hybrid as Rheological Modifier for Water-based Drilling Fluid.Journal of Petroleum Science and Engineering, 219: 111096. doi: 10.1016/j.petrol.2022.111096
      [56] Peng, S.L., Feng, X.G., Tian,J., et al., 2012. Progress in Study and Application of Drilling Fluid Viscosifier at Home.Guangzhou Chemical Industry, 40(12): 10-11+16 (in Chinese with English abstract).
      [57] Zhao, Y.T., 2018. Research Status and Development Discussion of Domestic Drilling Fluid Viscosity Enhancers.China Petroleum and Chemical Standard and Quality, 38(15): 88-89 (in Chinese).
      [58] Wang, J., Sun J.S., Huang, X.B., et al., 2024. A Salt-responsive Amphoteric Viscosifier for High-density Solid-free Completion Fluids with High Temperature Resistance.Strong Solubility, and High Viscosity Enhancement, 243: 213303. doi: 10.1016/j.geoen.2024.213303
      [59] Sun, J.S., Chang, X.F., Lv, K.H., et al., 2020. Salt-responsive Zwitterionic Copolymer as Tackifier in Brine Drilling Fluids.Journal of Molecular Liquids, 319: 114345. doi: 10.1016/j.molliq.2020.114345
      [60] Wang, R., Deng, Y.L., Yang, J., et al., 2024. Preparation of a Salt-responsive Zwitterionic Hydrophobically Associating Polymer and its Application in a Saturated Sodium Chloride Drilling Fluid.Colloids and Surfaces A: Physicochemical and Engineering Aspects, 692: 133956. doi: org/10.1016/j.colsurfa.2024.133956
      [61] Tchameni, A.P., Nagre, R.D., Yin, S.M., et al., 2025. A Thermo-associating Copolymer Integrated with Biogenic Nanosilica as a Novel Viscosifier in Low Solid Drilling Fluids.Petroleum Science, 22(7): 2884-2904. doi: 10.1016/j.petsci.2025.04.020
      [62] Djouonkep, L.D.W., Xie, B.Q., Tao, H.Z., et al., 2024. Thermo-Thickening/Amphoteric Polymer Nanocomposite Incorporating Vinyl-functionalized Nano-silica as a Viscosifier for High-Salt and Ultra-High Temperature Water-based Drilling Fluids.Journal of Molecular Liquids, 404:124866. doi: 10.1016/j.molliq.2024.124866
      [63] 刘海涛, 2024. 长水平段水平井钻井技术分析与对策. 西部探矿工程, 36(7): 57-59.
      [64] 孙金声, 杨杰, 戎克生, 等, 2023. 水基钻井液用流型调节剂研究进展. 新疆石油天然气, 19(2): 1-16.
      [65] 潘岩松, 2025. 基于改性胍胶的低粘提切钻井液体系的研究 (硕士学位论文). 西安: 西安石油大学.
      [66] 宁波, 沙志彬, 李晶, 等, 2025. 深海钻探技术现状及发展动态. 地球科学, 1-12.
      [67] 许天福, 文冬光, 袁益龙, 2024. 干热岩地热能开发技术挑战与发展战略. 地球科学, 49(6): 2131-2147.
      [68] 蒋官澄, 董腾飞, 崔凯潇, 等, 2022. 智能钻井液技术研究现状与发展方向. 石油勘探与开发, 49(3): 577-585.
      [69] 孙金声, 薛乐, 廖波, 等, 2025. 智能钻井液研究现状与展望:智能响应材料与算法. 石油与天然气化工, 54(5): 1-16.
      [70] 孙金声, 蒋官澄, 2023. 钻井工程“血液”-钻完井液技术的发展现状与趋势. 前瞻科技, 2(2): 62-74.
      [71] 沈浩坤, 孙金声, 吕开河, 等, 2022. 水基钻井液有机处理剂智能化研究进展与应用展望. 油田化学, 39(1): 155-162.
      [72] 杜旭东, 张慧, 2023. 智能水基钻井液发展现状及前景展望. 化学工程师, 37(7): 79-83.
      [73] 易鹏昌, 苏乐, 2024. 智能钻井液温度响应控制处理剂研究进展. 山东化工, 53(7): 97-99+103.
      [74] 潘一, 徐明磊, 郭永成, 等, 2020. 智能钻井液的化学体系及辅助系统研究进展. 精细化工, 37(11): 2246-2254.
      [75] 唐飞云, 钟诚, 艾加伟, 等, 2025. 改性环糊精页岩抑制剂的制备与性能评价. 石油与天然气化工, 54(3): 94-101.
      [76] 勇志华, 白兵兵, 刘全兴, 等, 2025. 阳离子型胺类页岩抑制剂的合成与性能评价. 化学研究与应用, 37(4): 792-798.
      [77] 那迪热木·卡玛力丁, 杜野, 王晨, 等, 2025. 抗高温封堵-抑制剂的合成及性能研究. 应用化工, 54(11): 2844-2849.
      [78] 赵杰, 张羽臣, 刘占奇, 等, 2025. 抗220℃淀粉基复合降滤失剂的研制与性能评价. 钻井液与完井液, 42(5): 617-622.
      [79] 王志永, 周新宇, 李怀科, 等, 2025. 具有双重交联结构的低成本高性能降滤失剂. 油田化学, 42(2): 198-205+214.
      [80] 全红平, 肖盛文, 梁燕, 2025. 抗温耐盐钻井液降滤失剂DASAN的合成及性能研究. 现代化工, 45(5): 151-157.
      [81] 强天佩, 王磊辉, 杜庆福, 等, 2025. 钻井液用降滤失剂胺基共聚物AP220研制与应用. 石化技术, 32(6): 73-75.
      [82] 常晓峰, 2024. 一种具有“盐响应”特性的两性离子聚合物增黏降滤失剂. 天然气工业, 44(5): 118-126.
      [83] 张笑, 2024. 响应性双水相丙烯酰胺微球的制备(硕士学位论文). 西安: 西安石油大学.
      [84] 孔勇, 2021. 温敏变形封堵剂合成研究与应用. 钻井液与完井液, 38(6): 677-683.
      [85] 王伟吉, 邱正松, 钟汉毅, 等, 2015. 页岩储层温敏型P(NIPAM-co-AA)/nano-SiO2复合封堵剂的制备及特性. 石油学报, 36(3): 378-384.
      [86] 贾永红, 吴家乐, 张蔚, 等, 2024. 一种自适应纳米封堵剂的研制在水基钻井液体系中的应用研究. 石油科学通报, 9(6): 1034-1043.
      [87] 刘振东, 李海斌, 孙腾飞, 等, 2025. 高激活温度形状记忆发泡材料堵漏性能. 油田化学, 42(3): 388-392.
      [88] 郭春萍, 蒋官澄, 管金田, 等, 2024. 基于非共价键相互作用的可自愈合凝胶随钻堵漏剂. 油田化学, 41(4): 571-578.
      [89] 杨丽丽, 武昀朋, 蒋官澄, 等, 2023. 自修复凝胶堵漏技术研究. 钻井液与完井液, 40(1): 47-53.
      [90] 李晓胜, 2024. 一种双网络凝胶堵漏剂的制备. 山东化工, 53(22): 54-56.
      [91] 桑宇彤, 2023.钻井液用自愈合凝胶堵漏剂的研制及特性评价(硕士学位论文). 重庆: 重庆科技学院.
      [92] 刘朝峰, 韩成福, 朱明明, 2018. 可控智能交联凝胶堵漏技术研究. 化工管理, 27: 179.
      [93] 李佳, 郭建新, 熊颖, 等, 2025. 深层页岩气井用新型抗高温自愈合可降解堵漏剂的研制与表征. 石油与天然气化工, 54(5): 26-32+49.
      [94] 何斌, 2024. 一种新型流型调节剂在新优快钻井作业中的应用. 山东化工, 53(10): 188-191.
      [95] 孙金声, 杨杰, 戎克生, 等, 2023. 水基钻井液用流型调节剂研究进展. 新疆石油天然气, 19(2): 1-16.
      [96] 吕开河, 王中义, 黄贤斌, 等, 2021. 适用于深水水基钻井液的温敏聚合物流型调节剂. 钻井液与完井液, 38(1): 14-20.
      [97] 付玥. 2023. 水基钻井液温度响应聚合物恒流变流型调节剂研究(硕士学位论文). 北京: 中国石油大学(北京).
      [98] 彭双磊, 冯雪钢, 田剑, 等, 2012. 国内钻井液增粘剂的研究与应用进展. 广州化工, 40(12): 10-11+16.
      [99] 赵亚涛, 2018. 国内钻井液增粘剂研究现状及发展探讨. 中国石油和化工标准与质量, 38(15): 88-89.
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    出版历程
    • 收稿日期:  2025-11-20
    • 网络出版日期:  2026-06-29

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