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    智能水基钻井液关键处理剂研究进展及展望

    王倩男 张毅 冉恒谦 汪伟 厉曈曈 郅世宇

    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, 51(8): 3048-3064. 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, 51(8): 3048-3064. 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, 51(8): 3048-3064. 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, 51(8): 3048-3064. 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 2024ZD1000800

    地球深部探测与矿产资源勘查国家科技重大专项 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,ORICD:0000-0001-9652-4826. E-mail:2282332181@qq.com

      通讯作者:

      张毅,ORICD:0009-0004-1472-9115. E-mail: 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. 在文献调研的基础上,围绕分子设计、响应机理与性能评价3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.

       

    • 图  1  双面结构复合材料的作用机制(据Tchameni et al., 2024)

      Fig.  1.  Mechanism of action of double-sided structural composites(after Tchameni et al., 2024)

      图  2  温敏抑制剂SNAS作用机制(据Lai et al., 2023)

      Fig.  2.  Mechanism of action of the thermosensitive inhibitor SNAS(after Lai et al., 2023)

      图  3  盐响应降滤失剂EHL-ASN作用机理(据Sun et al., 2021)

      Fig.  3.  Mechanism of action of salt-responsive fluid loss reducer EHL-ASN(after Sun et al., 2021)

      图  4  盐响应降滤失剂DADC作用机理(据Li et al., 2024)

      Fig.  4.  Mechanism of action of salt-responsive fluid loss reducer DADC(after Li et al., 2024)

      图  5  温敏变形材料对地层微裂缝定向封堵(据孔勇, 2021)

      Fig.  5.  Directional sealing of micro-fractures by temperature-sensitive deformation materials(after Kong, 2021)

      图  6  CK-D自愈合机制(据桑宇彤, 2023)

      Fig.  6.  CK-D self-healing mechanism(after Sang, 2023)

      图  7  温敏型流型调节剂CGBA作用机理(据Tchameni et al., 2021)

      Fig.  7.  Mechanism of action of temperature-sensitive flow pattern regulator CGBA(after Tchameni et al., 2021)

      图  8  盐响应型增粘剂FPOD作用机理(据Wang et al., 2024c)

      Fig.  8.  Mechanism of action of salt-responsive tackifier FPOD(after Wang et al., 2024c)

      图  9  分子模拟盐响应机理(据Sun et al., 2020)

      Fig.  9.  Molecular simulation of salt response mechanism(after Sun et al., 2020)

      图  10  聚合物PAADS的盐响应增稠机理(据Wang et al., 2024b)

      Fig.  10.  Salt-response thickening mechanism of polymer PAADS(after Wang et al., 2024b)

      表  1  智能水基钻井液关键处理剂综合对比

      Table  1.   Comprehensive comparison of key additives for intelligent water-based drilling fluids

      智能处理剂 响应机制 核心优势 主要局限 适用工况 耐温上限 耐盐能力
      抑制剂 温敏相变/多功能集成 热致疏水封堵,部分兼降滤失性 耐温普遍不超过150 ℃,不适用深部地层 中浅层页岩地层 150 ℃ /
      降滤失剂 盐敏/pH响应 高盐下自动增稠降滤失,降滤失率可达90%以上 多价离子抗干扰弱 盐膏层高矿化度地层 150~200 ℃ 饱和NaCl
      堵漏材料 形状记忆/自愈合/温敏膨胀 自适应孔裂缝形状,自愈合恢复完整性 长效封堵与可降解难兼顾 微孔隙/微裂缝地层(封堵剂);毫米级以上裂缝/孔洞地层(堵漏剂) 180 ℃ 部分耐20%NaCl
      恒流变调节剂 温敏亲疏水可逆转变 宽温域流变平稳,4~75 ℃波动 < 30% 高温(> 180 ℃)及高矿化度下长期稳定性不好 深水钻井 150~180 ℃ 部分耐20%NaCl
      增粘剂 盐敏/温敏 高温高盐下黏度保持率 > 60% 盐敏型耐温 < 180 ℃,温敏型耐盐 < 20%NaCl 高温高盐复合工况 150~230 ℃ 5%~20%NaCl
      下载: 导出CSV
    • 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. https://doi.org/10.1016/j.matchemphys.2025.131049
      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).
      Cheng, L. P., Wang, X., Yang, G. B., et al., 2025. Thermosensitive Polymer/Nanosilica Hybrid as a Multifunctional Additive in Water-Based Drilling Fluid: Rheologicalproperties and Lubrication Performance as Well as Filtration Loss Reduction Capacity. Geoenergy Science and Engineering, 244: 213455. https://doi.org/10.1016/j.geoen.2024.213455
      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. https://doi.org/10.1016/j.petrol.2022.111096
      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. https://doi.org/10.1016/j.geothermics.2021.102145
      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. https://doi.org/10.1016/j.colsurfa.2022.128855
      Djouonkep, L. D., 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. https://doi.org/10.1016/j.molliq.2024.124866
      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).
      Fu, Y., 2023. Research on Thermo-Responsive Polymer as Flat-Rheolog Modifier for Water Based Drilling Fluids(Dissertation). China University of Petroleum (Beijing), Beijing (in Chinese with English abstract).
      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).
      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).
      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).
      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).
      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).
      Lai, N. J., Fan, W., Zhang, X. C., et al., 2023. Temperature-Sensitive Polymer Based Nano-SiO2 Composite Multi-Component Synergistic Improvement of Shale Stability in Water-Based Drilling Fluids. Geoenergy Science and Engineering, 224: 211498. https://doi.org/10.1016/j.geoen.2023.211498
      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 and Gas, 54(5): 26-32, 49(in Chinese with English abstract).
      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(3): 1980-1991. https://doi.org/10.1016/j.petsci.2024.01.021
      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).
      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).
      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).
      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).
      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).
      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. https://doi.org/10.1016/j.petrol.2021.108998
      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).
      Ning, B., Sha, Z. B., Li, J., et al., 2026. The Development Status and Development Trends of Deep-Sea Drilling Technology. Earth Science, 1-12 (in Chinese with English abstract).
      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).
      Pan, Y. S., 2025. Research on Low Viscosity Lifting Cuttings Drilling Fluid System Based onModified Cuar Gum(Dissertation). Xi'an Shiyou University, Xi'an (in Chinese with English abstract).
      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 and Technology, 40(12): 10-11, 16 (in Chinese with English abstract).
      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).
      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).
      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. https://doi.org/10.1016/j.colsurfa.2025.137709
      Sang, Y. T., 2023. Preparation and Property Evaluation of Self-Healing Hydrogels Lost Circulation Material for Drilling Fluid(Dissertation). Chongqing University of Science and Technology, Chongqing (in Chinese with English abstract).
      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).
      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. https://doi.org/10.1016/j.molliq.2020.114345
      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. https://doi.org/10.1016/j.colsurfa.2021.126482
      Sun, J. S., Jiang, G. C., 2023. Development Status and Trend of Drilling and Completion Fluid: "Blood" of Drilling Projects. Science and Technology Foresinght, 2(2): 62-74(in Chinese with English abstract).
      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).
      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).
      Tang, F. Y., Zhong, C., Ai, J. W., et al., 2025. Preparation and Performance Evaluation of Modified Cyclodextrin Shale Inhibitor. Chemical Engineering of Oil and Gas, 54(3): 94-101(in Chinese with English abstract).
      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. https://doi.org/10.1016/j.molliq.2023.123921
      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. https://doi.org/10.1016/j.petsci.2025.04.020
      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. https://doi.org/10.1016/j.colsurfa.2020.125965
      Wang, J., Sun, J. S., Huang, X. B., et al., 2024a. A Salt-Responsive Amphoteric Viscosifier for High-Density Solid-Free Completion Fluids with High Temperature Resistance, Strong Solubility, and High Viscosity Enhancement. Geoenergy Science and Engineering, 243: 213303. https://doi.org/10.1016/j.geoen.2024.213303
      Wang, R., Deng, Y. L., Yang, J., et al., 2024b. 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. https://doi.org/10.1016/j.colsurfa.2024.133956
      Wang, Z. Y., Sun, J. S., Huang, X. B., et al., 2024c. A Temperature-Sensitive Polymer with Thinner Effect as a Rheology Modifier in Deepwater Water-Based Drilling Fluids. Journal of Molecular Liquids, 393: 123536. https://doi.org/10.1016/j.molliq.2023.123536
      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 CaCl2 Reservoir Drill-in Fluid. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 731: 138958. https://doi.org/10.1016/j.colsurfa. 2025. 138958 doi: 10.1016/j.colsurfa.2025.138958
      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).
      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).
      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: Physicochemical and Engineering Aspects, 581: 123848. https://doi.org/10.1016/j.colsurfa.2019.123848
      Xu, H. W., Zhu, Y. Q., Liu, Y. H., et al., 2024. Temperature-Sensitive Polymer Grafted with Nano-SiO2 Improves Sealing and Inhibition Performance of Shale Water-Based Drilling Fluid. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 698: 134531. https://doi.org/10.1016/j.colsurfa.2024.134531
      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).
      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. Petroleum, 9(1): 33-40. https://doi.org/10.1016/j.petlm.2022.07.004
      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).
      Yi, P. C., Su, (L./Y.)., 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).
      Yong, Z. H., Bai, B. B., Liu, Q. X., et al., 2025. Synthesis and Performance Evaluation of Cationic Amine Shale Inhibitors. Chemical Research and Application, 37(4): 792-798 (in Chinese with English abstract).
      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. https://doi.org/10.1016/j.colsurfa.2022. 128489 doi: 10.1016/j.colsurfa.2022.128489
      Zhang, X., 2024. Preparation of Responsive Biphasic Acrylamide Microspheres(Dissertation). Xi'an Shiyou University, Xi'an(in Chinese with English abstract).
      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).
      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).
      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. https://doi.org/10.1016/j.oceaneng.2023.115563
      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.
      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.
      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).
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      宁波, 沙志彬, 李晶, 等, 2026. 深海钻探技术现状及发展动态. 地球科学, 1-12. doi: 10.3799/dqkx.2025.202
      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.
      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.
      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.
      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.
      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.
      桑宇彤, 2023. 钻井液用自愈合凝胶堵漏剂的研制及特性评价. 重庆: 重庆科技学院.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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.
      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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    • 收稿日期:  2026-04-15
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