China Surfactant Detergent & Cosmetics ›› 2026, Vol. 56 ›› Issue (5): 654-665.doi: 10.3969/j.issn.2097-2806.2026.05.012
• Reviews • Previous Articles Next Articles
Yufei Zheng1,2,3,*(
),Xiang Qi3,Xiang Li3,Jinlong Liu4,Qingbo Qin3,Yongkang Jia3,Xuan Feng3
Received:2025-07-31
Revised:2026-05-20
Online:2026-05-22
Published:2026-06-22
Contact:
*E-mail: zhengyf4@cosl.com.cn.
CLC Number:
Yufei Zheng, Xiang Qi, Xiang Li, Jinlong Liu, Qingbo Qin, Yongkang Jia, Xuan Feng. Research progress and development directions of enhanced oil recovery technologies for Bohai high water-cut oilfields[J].China Surfactant Detergent & Cosmetics, 2026, 56(5): 654-665.
Tab.3
Reservoir adaptability of different non-continuous profile control and flooding agents"
| 类型 | 纳米球 | 核壳球 | 超分子微球 | 水基微球 | DMG |
|---|---|---|---|---|---|
| 矛盾类型 | 层内为主 | 层内为主 | 层内为主 | 层内为主 | 层内/层间 |
| 油藏温度/℃ | ≤110 | ≤110 | ≤110 | ≤130 | ≤150 |
| 矿化度/ (mg/L) | ≤200 000 | ≤200 000 | ≤200 000 | ≤200 000 | ≤200 000 |
| 渗透率/mD | 500~2 000 | 2 000~10 000 | 2 000~20 000 | 50~2 000 | 50~100 000 |
| 水窜速度/ (m/d) | <10 | <20 | <30 | <20 | <30 |
| [1] | 杨庆红, 张章, 李廷礼. 渤海陆相砂岩油田高含水期整体加密调整技术现状及展望[J]. 中国海上油气, 2024, 36 (4) : 119-130. |
| [2] | 马立, 李进, 林家昱, 等. 渤海油田油水井治理技术与发展趋势[J]. 石油化工应用, 2020, 39 (6) : 1-4. |
| [3] | 许亚南, 龙明, 张运来, 等. 海上多层合采稠油油藏高含水期油水渗流规律实验研究[J]. 新疆石油天然气, 2017, 13 (4) : 37-40. |
| [4] | 刘薇薇, 龚丽荣, 罗福全, 等. 水驱砂岩油藏优势渗流通道识别[J]. 复杂油气藏, 2020, 13 (1) : 42-47. |
| [5] |
周立国. 低渗砂岩油藏优势注采方向量化表征技术及应用[J]. 特种油气藏, 2021, 28 (6) : 98-104.
doi: 10.3969/j.issn.1006-6535.2021.06.013 |
| [6] | 曹绪龙, 石静, 张磊, 等. 高温高盐油藏化学驱提高采收率理论技术与矿场应用[J]. 油气地质与采收率, 2024, 31 (5) : 16-26. |
| [7] |
孙龙德, 伍晓林, 周万富, 等. 大庆油田化学驱提高采收率技术[J]. 石油勘探与开发, 2018, 45 (4) : 636-645.
doi: 10.11698/PED.2018.04.09 |
| [8] |
张健, 李宜强, 李先杰, 等. 渤海油田非连续化学驱提高采收率机理[J]. 石油学报, 2024, 45 (6) : 988-998.
doi: 10.7623/syxb202406008 |
| [9] |
Firozjai A M, Hamid R S. Review on chemical enhanced oil recovery using polymer flooding: Fundamentals, experimental and numerical simulation[J]. Petroleum, 2020, 6 (2) : 115-122.
doi: 10.1016/j.petlm.2019.09.003 |
| [10] |
Pothula G K, Vij R K, Bera A. An overview of chemical enhanced oil recovery and its status in India[J]. Petroleum Science, 2023, 20 (4) : 2305-2323.
doi: 10.1016/j.petsci.2023.01.001 |
| [11] | Dordzie G, Balhoff M. A review of chemical methods and testing techniques for enhanced oil recovery in shale reservoirs[J]. Fuel, 2025, 394 (15) : 135060. |
| [12] | Bai B J, Zhou J, Yin M. A comprehensive review of polyacrylamide polymer gels for conformance control[J]. Petroleum Exploration & Development, 2015, 42 (4) : 525-532. |
| [13] | Moosa H G, Mohamma M, Feridun E, et al. An experimental investigation of polyacrylamide and sulfonated polyacrylamides based gels crosslinked with Cr (III) -acetate for water shutoff in fractured oil reservoirs[J]. Journal of Dispersion Science and Technology, 2018: 1-10. |
| [14] | 刘芳君. 国内外堵水材料研究及应用进展[J]. 当代化工, 2022, 51 (4) : 946-949. |
| [15] |
Zhang S L, Guo J X, Gu Y, et al. Polyacrylamide gel formed by Cr (III) and phenolic resin for water control in high-temperature reservoirs[J]. Journal of Petroleum Science and Engineering, 2020, 194: 107423.
doi: 10.1016/j.petrol.2020.107423 |
| [16] | Wang W H, Xu Y, Ge J J, et al. Phenolic resin gel suitable for medium-temperature and high-salinity reservoirs[J]. Journal of Molecular Liquids, 2022, 364 (15) : 119887. |
| [17] | 杨卫华, 葛红江, 徐佳妮, 等. HPAM/酚醛凝胶体系的低温成胶性能改进[J]. 油田化学, 2019, 36 (4) : 630-635. |
| [18] |
Zhang T C, Ge J J, Wu H, et al. Effect of AMPS (2-acrylamido-2-methylpropane sulfonic acid) content on the properties of polymer gels[J]. Petroleum Science, 2022, 19 (2) : 697-706.
doi: 10.1016/j.petsci.2022.01.006 |
| [19] |
Du D J, He Y, Pu W F, et al. Experimental study on EOR potential of P (AM/NVP) based gel in ultra-high temperature reservoirs[J]. Geoenergy Science and Engineering, 2024, 242: 213282.
doi: 10.1016/j.geoen.2024.213282 |
| [20] |
Tao W, Jie Y, Sun Z S, et al. Solution and drilling fluid properties of water soluble AM-AA-SSS copolymers by inverse microemulsion[J]. Journal of Petroleum Science and Engineering, 2011, 78 (2) : 334-337.
doi: 10.1016/j.petrol.2011.06.027 |
| [21] | 杨开吉, 张颖, 魏强, 等. 海上油田开发用抗温抗盐乳液聚合物研制与性能评价[J]. 石油钻探技术, 2024, 52 (4) : 118-127. |
| [22] | 尉振业, 杨昌华, 成鹏飞. 高强度乳液冻胶体系的研究与应用[J]. 油田化学, 2023, 40 (2) : 272-276. |
| [23] | Dai B M, Xu P, Xu M B, et al. Synthesis and plugging effect of inverse emulsion polymerization microspheres (OPME) for oil-based drilling fluids[J]. Arabian Journal of Chemistry, 2023, 16 (4) : 104577. |
| [24] | 韩文彬, 徐国瑞, 徐景亮, 等. 渤海B油田在线调剖乳液聚合物凝胶体系优选与应用[J]. 山东化工, 2025, 54 (1) : 188-190. |
| [25] | Zhang X, Deng J N, Yang K, et al. High-strength and self-degradable sodium alginate/polyacrylamide preformed particle gels for conformance control to enhance oil recovery[J]. Petroleum Science, 2022,19: 3149-3158. |
| [26] |
Lai N, Chen S, Tang L, et al. Migration characteristics and profile control capabilities of preformed particle gel in porous media[J]. Petroleum, 2022, 8 (4) : 483-498.
doi: 10.1016/j.petlm.2021.07.006 |
| [27] | Luo Z L, Wang L L, Wang J, et al. Pore-scale modeling of preformed particle gel (PPG) extrusion in porous media[J]. Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers, 2024, 204: 591-600. |
| [28] | Qiu Y, Wei M Z, Bai B B. Descriptive statistical analysis for the PPG field applications in China: Screening guidelines, design considerations, and performances[J]. Journal of Petroleum Science & Engineering, 2017, 153: 1-11. |
| [29] | 李翔, 郑玉飞, 刘晓宇. 亚微米-微米级体膨颗粒调剖剂PAS的研制及应用[J]. 石油与天然气化工, 2024, 53 (6) : 102-108. |
| [30] |
Liu P C, Zhang X K, Wu Y B, et al. Enhanced oil recovery by air-foam flooding system in tight oil reservoirs: Study on the profile-controlling mechanisms[J]. Journal of Petroleum Science and Engineering, 2017, 150: 208-216.
doi: 10.1016/j.petrol.2016.12.001 |
| [31] |
Chen H, Wei B, Zhou X, et al. Theory and technology of enhanced oil recovery by gas and foam injection in complex reservoirs[J]. Advances in Geo-Energy Research, 2025, 15 (3) : 181-184.
doi: 10.46690/ager |
| [32] | 苏毅, 孟祥海, 王少华, 等. 氮气泡沫辅助蒸汽驱技术研究及应用—以渤海油田稠油开发为例[J]. 当代化工, 2024, 53 (11) : 2742-2746. |
| [33] | 李文静, 林吉生, 徐国瑞, 等. 绥中36-1油田氮气泡沫逐级调驱实验研究[J]. 科学技术与工程, 2016, 16 (9) : 177-181. |
| [34] | 石海磊, 王彦春. 海上油田氮气泡沫压锥堵水技术应用[J]. 化工进展, 2014, 33 (S1) : 299-302. |
| [35] | 张云宝, 徐国瑞, 王楠, 等. 底水油藏三相纳米泡沫堵水效果实验[J]. 大庆石油地质与开发, 2019, 38 (6) : 109-115. |
| [36] | 李立冬, 梁拓. 泡沫堵水技术在高含水油田研究应用[J]. 中国科技信息, 2024 (10) : 93-96. |
| [37] |
Yang Y H, Kang C Y, Fan H M, et al. Synergistic stabilization of emulsions by microspheres and surfactants for enhanced oil recovery[J]. Petroleum Science, 2025, 22 (6) : 2535-2545.
doi: 10.1016/j.petsci.2025.03.041 |
| [38] |
Wang X J, Sun Z, Zhang J, et al. Preparation of ultra-high temperature and high salinity resistant polymer microsphere and its property evaluation[J]. Journal of Molecular Liquids, 2025, 421: 126910.
doi: 10.1016/j.molliq.2025.126910 |
| [39] |
Yu X R, Ji R J, Li Q H, et al. Core-shell polymer microsphere PSN@SiO2 based on “dry water microreactor” for enhanced oil recovery and its properties[J]. Geoenergy Science and Engineering, 2024, 239: 212972.
doi: 10.1016/j.geoen.2024.212972 |
| [40] | 冯轩, 徐国瑞, 刘丰钢, 等. 海上低渗油藏耐温抗盐微球体系的研究与应用[J]. 当代化工, 2024, 53 (12) : 2915-2919. |
| [41] |
Shen M, Zhang C, Yan X, et al. Research progress and prospects of utilizing carbon-based nanomaterials in enhanced oil recovery[J]. Advances in Geo-Energy Research, 2024, 14 (3) : 201-214.
doi: 10.46690/ager |
| [42] |
Du L, Xiao Y Y, Jiang Z C, et al. Towards in-depth profile control using dispersed particle gels (DPGs)[J]. Fuel, 2023, 354: 129419.
doi: 10.1016/j.fuel.2023.129419 |
| [43] | 张艳辉, 陈维余, 孟科全, 等. 耐温耐盐冻胶分散体在海上油田调驱适用性研究[J]. 当代化工, 2021, 50 (12) : 2943-2947. |
| [44] | 郑玉飞, 李翔, 徐景亮, 等. 渤海P油田层内生成CO2调驱技术[J]. 石油钻探技术, 2020, 48 (2) : 108-112. |
| [45] | 李军. 层内生气调驱技术在渤海油田的研究与应用[J]. 海洋石油, 2018, 38 (4) : 41-44. |
| [46] | 田苗, 王涛, 徐国瑞, 等. 纳米分散体驱油技术在渤海Q油田的研究与应用[J]. 非常规油气, 2020, 7 (3) : 77-81. |
| [47] |
Zhu W Y, Ma Q P, Han H Y. Theoretical study on profile control of a nano-microparticle dispersion system based on fracture-matrix dual media by a low-permeability reservoir[J]. Energy Reports, 2021, 7(9) :1488-1500.
doi: 10.1016/j.egyr.2021.01.089 |
| [48] | Pei H H, Liu Y, Shan J L, et al. Enhancement of in-situ emulsification performance through the synergistic effects of zwitterionic and nonionic-anionic surfactants to improve heavy oil recovery[J]. Journal of Molecular Liquids, 2024 (410) :125562. |
| [49] |
Wu H R, Chang J W, Xu G R, et al. In-situ emulsification and viscosification system of surfactant-assisted Janus nanofluid and its profile control effect[J]. Advances in Geo-Energy Research, 2024, 14 (2) : 135-146.
doi: 10.46690/ager |
| [50] | 贾永康, 鞠野, 刘丰钢, 等. 海上油田新型水基复合调驱体系研究与应用[J]. 中国海上油气, 2023, 35 (5) : 178-184. |
| [1] | Lu Wang, Dan Ran, Hui Wang, Shaotong He, Lulu Pi, Nan Deng. Detection of pyoluteorin and pyocyanin in cosmetics using UPLC-MS/MS method [J]. China Surfactant Detergent & Cosmetics, 2025, 55(8): 1066-1071. |
| [2] | Weiqiang Song, Yali Chen, Hongyan Yang, Fan Zhang. Research on the forming process and antibacterial activity of the facial mask combined Scutellaria baicalensis Georgi with Salvia miltiorrhiza Bge. [J]. China Surfactant Detergent & Cosmetics, 2025, 55(3): 333-340. |
| [3] | Haifeng He, Limei Sun, Fengbin Yang, Lingfeng Liu, Gang Wang, Bin Yu, Da Wu. Studies on the structure-function relationship of polyether-type demulsifiers based on density functional theory [J]. China Surfactant Detergent & Cosmetics, 2024, 54(5): 499-506. |
| [4] | ZHAO Liu-chen,ZHANG Hui,WANG Wan-xu. Hydrogen bond association state of AEO9 in 1,2-propylene glycol, water and their mixed solvents [J]. China Surfactant Detergent & Cosmetics, 2016, 46(12): 671-676. |
|