Summary

Research Progress on the Mechanism of Oil Displacement by Nanoparticles

  • Pu Wanfen ,
  • Yang Fan ,
  • Ren Hao ,
  • He Wei ,
  • Li Bowen ,
  • Zhang Hui ,
  • Zhu Jianlin ,
  • Cao Xiaodong
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  • 1. Southwest Petroleum University,Chengdu,Sichuan 610500,China;
    2. PetroChina Xinjiang Oilfield Company,Karamay,Xinjiang 834000,China;
    3. Xi'an Changqing Chemical Group Co.,Ltd.,Xi'an,Shaanxi 710000,China

Received date: 2023-04-20

  Revised date: 2024-08-23

  Online published: 2025-01-22

Abstract

In recent years,nanoparticles have gradually received widespread attention in tertiary oil recovery.At present,the mechanism and development status of nanoparticle are not well understood.For this reason,the paper systematically analyzes research progress of nanoparticle flooding in recent years and summarizes the mechanisms of oil displacement by nanoparticles,including nano-size effects,reduction of interfacial tension,alteration of wettability,disjoining pressure,emulsification,prevention of asphaltene flocculation,and catalytic cracking.It also explores the significant application potential of nanoparticle-driven oil displacement materials in various reservoir types,such as high water cut reservoir,low permeability reservoir,tight oil reservoir,and shale oil reservoir.The paper identifies challenges and development prospects for nanoparticles in oil development and provides references and basis for further research and large-scale application of nanoparticles in enhanced oil recovery.

Cite this article

Pu Wanfen , Yang Fan , Ren Hao , He Wei , Li Bowen , Zhang Hui , Zhu Jianlin , Cao Xiaodong . Research Progress on the Mechanism of Oil Displacement by Nanoparticles[J]. Special Oil & Gas Reservoirs, 2024 , 31(6) : 1 -9 . DOI: 10.3969/j.issn.1006-6535.2024.06.001

References

[1] ETEMAD S,KANTZAS A,BRYANT S.Efficient nanoparticle transport via CO2 foam to stabilize oil in water emulsions[J].Fuel,2020,276:118063.
[2] QIN Tianzhu,GOUAL L,PIRI M,et al.Nanoparticle-stabilized microemulsions for enhanced oil recovery from heterogeneous rocks[J].Fuel,2020,274:117830.
[3] AGI A,JUNIN R,JAAFAR M Z,et al.Synthesis and application of rice husk silica nanoparticles for chemical enhanced oil recovery[J].Journal of Materials Research and Technology,2020,9(6): 13054-13066.
[4] JIA Han,HE Juan,XU Yingbiao,et al.Synthesis of hybrid dendritic mesoporous silica titanium nanoparticles to stabilize Pickering emulsions for enhanced oil recovery[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2021,628:127237.
[5] 宋奇.纳米SiO2颗粒改变岩心润湿性及提高采收率的室内研究[J].精细石油化工进展, 2023,24(1):6-9.
SONG Qi.Laboratory study of SiO2 nano particles changing core wettability and enhancing oil recovery[J].Advances in Fine Petrochemicals,2023,24(1):6-9.
[6] 王涛,李敬松,田苗,等.纳米分散液驱油机理研究及应用实践[J].石油化工应用,2022,41(6):16-20.
WANG Tao,LI Jingsong,TIAN Miao,et al.Study on the mechanism of nano-fluids flooding and its application in oilfield[J].Petrochemical Industry Application,2022,41(6):16-20.
[7] 王健,吴一慧,邓虹,等.纳米SiO2/表面活性剂对油水界面张力的影响[J].能源化工,2018,39(1): 7-11.
WANG Jian,WU Yihui,DENG Hong,et al.Effect of nano-SiO2/surfactant on oil-water interfacial tension[J].Energy Chemistry Industry,2018,39(1):7-11.
[8] 张立,张卫东,沙鸥,等.改性纳米颗粒在提高原油采收率中的研究进展[J].石油化工,2021,50(9):967-973.
ZHANG Li,ZHANG Weidong,SHA Ou,et al.Research progress of modified nanoparticles used in enhanced oil recovery[J].Petrochemical Technology,2021,50(9):967-973.
[9] SHUAIBU A D, RUBAB R, KHAN S,et al.Comparative effects of zinc oxide nanoparticles over the interfacial properties of low concentrations of ionic surfactants at interfaces[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2022,637:128241.
[10] GHOLAMZADEH Y,SHARIFI M,RAFIEI Y.Toward mechanistic understanding of interfacial tension behavior in nanofluid-model oil systems at different asphaltene stability conditions:the roles of nanoparticles,solvent,and salt concentration[J].Geoenergy Science and Engineering,2023, 222: 211449.
[11] FU Lipei,GU Feng,LIAO Kaili,et al.Effect of nanoparticles and nanosheets on improving the oil/water interface performance of surfactants in enhancing oil recovery:a comparative study by molecular simulation[J].Geoenergy Science and Engineering,2023, 223: 211468.
[12] 王繁荣,曹利民,张鑫,等.特低渗透油藏超级纳米增注驱油技术研究与应用——以永宁油田黄草湾长6油藏单元为例[J].当代化工研究,2023,22(12):88-90.
WANG Fanrong,CAO Limin,ZHANG Xin,et al.Research and application of super nano enhanced injection and oil displacement technology in ultra-low permeability reservoirs:taking Huangcaowan Chang 6 Reservoir unit in Yongning Oilfield as an example[J].Modern Chemical Research,2023,22(12):88-90.
[13] 杨姗,齐书磊,李慎伟,等.耐温抗盐预交联凝胶颗粒驱油剂的合成及应用评价[J].胶体与聚合物,2020,38(4):182-185.
YANG Shan,QI Shulei,LI Shenwei,et al.Synthesis and application evaluation of precrosslinked gel particulate oil displacement agent with heat resistance and salt tolerance[J].Chinese Journal of Colloid & Polymers,2020,38(4):182-185.
[14] HASSAN Y M,GUAN B H,CHUAN L K,et al.Interfacial tension of brine-oil interface using Fe2O3,ZnO,and SiO2 nanoparticles endorsed by electromagnetic waves[J].Chemical Thermodynamics and Thermal Analysis,2022,8:100083.
[15] WANG Zhenjie,BABADAGLI Tayfun,MAEDA Nobuo.Can we generate stable pickering emulsions activating naturally occurring nanoparticles in the reservoir for cost effective heavy-oil recovery?[J].Fuel,2021,283:118916.
[16] BAI Yungang,ZHANG Fan,XU Kun,et al.Pickering emulsion strategy to control surface wettability of polymer microspheres for oil water separation[J].Applied Surface Science,2021,566:150742.
[17] HAMMOND P S,UNSAL E.Spontaneous imbibition of surfactant solution into an oil-wet capillary:wettability restoration by surfactant-contaminant complexation[J].Langmuir:the ACS Journal of Surfaces and Colloids,2011,27(8):4412-4429.
[18] ZHANG Bingjun,RANE K,PIRI M,et al.Impact of surface roughness, surface charge, and temperature on sandstone wettability alteration by nanoparticles[J].Petroleum Science,2023,20(5):2852-2863.
[19] GHOLINEZHAD S,KANTZAS A,BRYANT S L.Effect of surface functionalized silica nanoparticles on interfacial behavior:wettability,interfacial tension and emulsification characteristics[J].Journal of Molecular Liquids,2021,349:118220.
[20] 金永辉,王治富,孙庆名,等.致密储层纳米增注技术研究与应用[J].特种油气藏,2023,30(1):169-174.
JIN Yonghui,WANG Zhifu,SUN Qingming,et al.Research and application of the nano-injection enhancing technology in tight reservoirs[J].Special Oil & Gas Reservoirs,2023,30(1):169-174.
[21] 裴海华,单景玲,曹旭,等.纳米颗粒稳定乳状液提高原油采收率研究进展[J].材料导报,2021,35(13):13227-13231.
PEI Haihua,SHAN Jingling,CAO Xu,et al.Research progresses on nanoparticle-stabilized emulsions for enhanced oil recovery[J].Materials Reports,2021,35(13):13227-13231.
[22] BALLARD N,STEFAN A,BON F.Equilibrium orientations of non-spherical and chemically anisotropic particles at liquid-liquid interfaces and the effect on emulsion stability[J].Journal of Colloid and Interface Science,2015,448:533-544.
[23] HAN Ying,CHEN Rui,MA Zihao,et al.Stabilization of Pickering emulsions via synergistic interfacial interactions between cellulose nanofibrils and nanocrystals[J].Food Chemistry,2022,395:133603.
[24] HUANG Guo,LIU Guichen,XU Zejian,et al.Rheological behavior and microstructure of Pickering emulsions co-stabilized by soy protein and carboxymethyl chitosan[J].Food Hydrocolloids,2023,142:108773.
[25] WASAN D, NIKOLOV A.Spreading of nanofluids on solids[J].Nature,2003, 423(6936):156.
[26] WASAN D,NIKOLOV A,KONDIPARTY K.The wetting and spreading of nanofluids on solids:role of the structural disjoining pressure[J].Current Opinion in Colloid and Interface Science,2011,16(4):344-349.
[27] KAO R,WASAN D,NIKOLOV A,et al.Mechanisms of oil removal from a solid surface in the presence of anionic micellar solutions[J].Colloids and Surfaces,1988,34(4):389-398.
[28] NIKOLOV A,WASAN D.Wetting-dewetting films:the role of structural forces[J].Advances in Colloid and Interface Science,2014,206:207-221.
[29] AMARAl L,FREITAS R,WYPYCH F.K-shigaite-like layered double hydroxide particles as Pickering emulsifiers in water/oil emulsions[J].Applied Clay Science,2020,193:105660.
[30] 于连东.世界稠油资源的分布及其开采技术的现状与展望[J].特种油气藏,2001,8(2):98.
YU Liandong.Distribution of world heavy oil reserves and its recovery technologies and future[J].Special Oil & Gas Reservoirs,2001,8(2):98.
[31] ALEMI F M,MOHAMMADI S,DEHGHANI S A M,et al.Experimental and DFT studies on the effect of carbon nanoparticles on asphaltene precipitation and aggregation phenomena [J].Chemical Engineering Journal,Chemical Engineering Journal,2021,422:130030.
[32] SHOJAEI B,MIRI R,BAZYARI A,et al.Asphaltene adsorption on MgO,CaO,SiO2,and Al2O3 nanoparticles synthesized via the Pechini-type Sol-Gel method [J].Fuel,2022,321:124136.
[33] WANG Tianguan,ZHONG Xiankang,ZHANG Zhi,et al.Asphaltene adsorption of Co3O4 nanoparticles modified by SiO2 film [J].Applied Surface Science,2022,602:154267.
[34] 甘衫衫,孙新革,刘家林,等.纳米铜催化裂解剂的制备及降黏效果评价[J].化学工程师,2023,37(11): 48-52.
GAN Shanshan,SUN Xin'ge,LIU Jialin,et al.Preparation and viscosity reduction effect evaluation of nano copper catalytic cracking agent[J].Chemical Engineers,2023,37(11):48-52.
[35] 李彦平,张辉,苏文礼,等.金属纳米晶催化稠油原位裂解加氢降黏改质[J].石油化工,2019,48(2):136-142.
LI Yanping,ZHANG Hui,SU Wenli,et al.Viscosity reduction and upgrading of heavy oil by in-situ catalytic cracking hydrogenation method with metal nanocrystals[J].Petrochemical Technology,2019,48(2):136-142.
[36] 刘家林,张宝龙,侯向明,等.纳米铜催化裂解超稠油改质降黏实验研究[J].精细石油化工进展,2022,23(2):38-42,54.
LIU Jialin,ZHANG Baolong,HOU Xiangming,et al.Experimental study on the effects of copper nanoparticle-catalyzed aquathermolysis on quality improvement and vis-cosity reduction of extra-heavy crude oil[J].Advances in Fine Petrochemicals,2022,23(2):38-42,54.
[37] 王恩成.纳米颗粒增强AM/AMPS复合凝胶反向堵水技术[J].特种油气藏,2021,28(2):108-111.
WANG Encheng.Study on reverse water plugging technology of nanoparticle reinforced AM/AMPS composite hydrogel[J].Special Oil & Gas Reservoirs,2021,28(2):108-111.
[38] 杨景斌,侯吉瑞,屈鸣,等.2-D智能纳米黑卡在低渗透油藏中的驱油性能评价[J].油田化学,2020, 37(2): 305-310.
YANG Jingbin,HOU Jirui,QU Ming,et al.Evaluation of oil displacement performance of two-dimensional smart black nano-card in low permeability reservoir[J].Oilfield Chemistry,2020,37(2):305-310.
[39] 郭姮.A井纳米黑卡吞吐效果分析[J].化学工程与装备,2023,52(6): 180-181.
GUO Heng.Analysis of steam stimulation with black nano-card in Well A[J].Chemical Engineering and Equipment,2023,52(6):180-181.
[40] 张涛,曲冠政.纳米SiO2流体的性能及其渗吸驱油效果评价[J].西安石油大学学报(自然科学版), 2024, 39 (4): 56-61,97.
ZHANG Tao,QU Guanzheng.Performance and imbibition oil displacement effect evaluation of nano-silica fluid[J].Journal of Xi'an Shiyou University (Natural Science Edition),2024,39(4):56-61,97.
[41] 刘汉斌,唐梅荣,吕宝强,等.页岩油压裂用纳米变黏滑溜水的合成及其性能评价[J].科学技术与工程,2023,23(8): 3244-3251.
LIU Hanbin,TANG Meirong,LYU Baoqiang,et al.Synthesis and performance evaluation of nano variable-viscosity slickwater for shale oil fracturing[J].Science Technology and Engineering,2023,23(8):3244-3251.
[42] 刘颖,孙国昕,冯明溪.国外中高渗透率高含水油田开发技术新进展[J].中外能源,2023,28(6):38-43.
LIU Ying,SUN Guoxin,FENG Mingxi.New progress in development technology of high water cut oilfields with medium-high permeability in foreign countries[J].Sino-Global Energy,2023,28(6):38-43.
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