用户名: 密码: 验证码:
稠油降黏技术研究进展及发展趋势
详细信息    查看全文 | 推荐本文 |
  • 英文篇名:Research progress and development trend for viscosity reduction technology of heavy crude oil
  • 作者:李崎 ; 王晓冬 ; 李秋叶 ; 杨建军
  • 英文作者:LI Qi;WANG Xiaodong;LI Qiuye;YANG Jianjun;National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials,Henan University;
  • 关键词:稠油 ; 降黏技术 ; 热采 ; 催化 ; 乳化
  • 英文关键词:heavy crude oil;;viscosity reduction technology;;thermal recovery;;catalysis;;emulsification
  • 中文刊名:HXYA
  • 英文刊名:Chemical Research
  • 机构:河南大学纳米杂化材料应用技术国家地方联合工程研究中心;
  • 出版日期:2018-09-25
  • 出版单位:化学研究
  • 年:2018
  • 期:v.29
  • 基金:国家自然科学基金(21471047);; 河南省自然科学基金(162300410014)
  • 语种:中文;
  • 页:HXYA201805001
  • 页数:14
  • CN:05
  • ISSN:41-1083/O6
  • 分类号:5-18
摘要
随着社会经济和工业的发展,能源消耗不断加剧,油气资源需求逐年增加,稠油等非常规油气资源显现出巨大的应用潜力.稠油开采的技术关键是降低黏度、提高流动性,因此稠油降黏技术受到越来越多的关注.本文综述了目前常见稠油降黏技术的降黏机理和发展状况,并分析了其优缺点及未来发展趋势.
        With the development of social economy and industry,the consumption of energy resources has grown continuously, and the demand of oil and gas resources has increased by years.Unconventional oil and gas resources have shown great potential for application,such as heavy crude oil. The key for enhancing the heavy oil recovery is to reduce the viscosity and improve the fluidity,therefore the viscosity reduction technology of heavy crude oil has received more and more attention.The viscosity reduction mechanism and development direction of the heavy crude oil were reviewed in this paper,and the advantages and deficiency of the different exploiting technologies were also analyzed in detail.
引文
[1]钱兴坤,刘朝全,姜学峰,等.价格企稳回升行业全面回暖——2017年国内外油气行业发展概述及2018年展望[J].国际石油经济,2018,26(1):32-38.QIAN X K,LIU C Q,JIANG X F,et al. Price rises steadily and the industry recovers in an all-round wayOverview of international oil and gas industry developments in 2017 and outlook for 2018[J]. International Petroleum Economics,2018,26(1):32-38.
    [2]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].特种汽油藏,2001,8(2):98-103.YU L D. Distribution of world heavy oil reserves and its recoverty technologies and future[J]. Special Oil&Gas Reservoirs,2001,8(2):98-103.
    [3]BOBERG T C,LANTZS R B. Calcalation of the production rate of a thermally stimulated well[J]. Journal of Petroleum Technology,1966,18(12):1613-1623.
    [4]曾玉强,刘蜀知,王琴,等.稠油蒸汽吞吐开采技术研究概述[J].特种油气藏,2006,13(6):5-9.ZENG Y Q,LIU S Z,WANG Q,et al. Overview of heavy oil cyclic steam stimulation recovery technology[J].Special Oil&Gas Reservoirs,2006,13(6):5-9.
    [5]WANG J,LIU D H,WANG Z L,et al. Study on steam flooding technology after huff and puff for super heavy oil reservoir[J]. China Energy and Environmental Protection,2017,39(10):69-74.
    [6] CHEN X. Application of chemical profile control and channeling blocking technology in multi-round steam huffpuff wells of high-viscosity oil reservoir of liaohe oilfield[J]. Advances in Fine Petrochemicals,2017,18(6):1-5.
    [7]姜海龙.超稠油油藏二氧化碳辅助蒸汽吞吐技术研究与应用[J].中国石油和化工标准与质量,2017,37(4):111-112.JIANG H L. Research and application of CO2assisted steam soaking technology in super heavy oil reservoirs[J].China Petroleum and Chemical Standard and Quality,2017,37(4):111-112.
    [8]王洋,蒋平,葛际江,等.井楼油田氮气辅助蒸汽吞吐机理实验研究[J].断块油气田,2013,20(5):667-670.WANG Y,JIANG P,GE J J,et al. Laboratory study on mechanism of nitrogen-assisted steam stimulation in Jinglou Oilfield[J]. Fault-Block Oil and Gas Field,2013,20(5):667-670.
    [9]LU C,LIU H,ZHAO W,et al. Experimental investigation of in-situ emulsion formation to improve viscous-oil recovery in steam-injection process assisted by viscosity reducer[J].Spe Journal,2017,22(1):130-137.
    [10]李猛,段彦清,王赫,等.复合气驱对稠油黏度影响程度分析[J].中国化工贸易,2017(11):195-196.LI M, DUAN Y Q, WANG H, et al. Analysis of influence of compound gas drive on viscosity of heavy oil[J]. China Chemical Trade,2017(11):195-196.
    [11]HUANG S,CHEN X,LIU H,et al. Experimental and numerical study of solvent optimization during horizontalwell solvent-enhanced steam flooding in thin heavy-oil reservoirs[J]. Fuel,2018,228:379-389.
    [12] LYU X,LIU H,PANG Z,et al. Visualized study of thermochemistry assisted steam flooding to improve oil recovery in heavy oil reservoir with glass micromodels[J]. Fuel,2018,218:118-126.
    [13]SUN Z,CHEN Y,LIN J,et al. Research and application of profile control by carbon dioxide foam in steam drive[J]. Sino-Global Energy,2017,22(1):64-68.
    [14]LI S,LI Z,SUN X. Effect of flue gas and n-hexane on heavy oil properties in steam flooding process[J]. Fuel,2017,187:84-93.
    [15]耿志刚.火烧油层采油化学机理及其改善方法研究[D].大庆:东北石油大学,2014.GENG Z G. Study on the chemical mechanism and improvement of oil production in fire reservoirs[D].Daqin:Northeast Petroleum University,2014.
    [16]黄俊,鲁军辉,张誉才.火烧油层技术研究现状与应用前景[J].石油化工应用,2013,32(7):1-5.HUANG J,LU J H,ZHANG Y C. Laboratory experiment situation on in-situ combustion and the application prospects[J]. Petrochemical Industry Application,2013,32(7):1-5.
    [17] GONG Y J,HU C,GONG Y,et al. Research on displacement mechanism and sweeping performance of ordinary heavy oil multi-layer fire-flooding[J]. Special Oil&Gas Reservoirs,2014,21(6):83-86.
    [18]BUTLER R M. Steam-assisted gravity drainage:concept,development,performance and future[J]. Journal of Canadian Petroleum Technology,1994,33(2):44-50.
    [19] LI X,SHI L,LI H,et al. Experimental study on viscosity reducers for SAGD in developing extra-heavy oil reservoirs[J]. Journal of Petroleum Science&Engineering,2018,16:25-32.
    [20]ELSAYED N A,BARRUFET M A,EL-HALWAGI M M.An integrated approach for incorporating thermal membrane distillation in treating water in heavy oil recovery using SAGD[J]. Journal of Unconventional Oil and Gas Resources,2015,12:6-14.
    [21] GATES I D,CHAKRABARTY N. Design of the steam and solvent injection strategy in expanding solvent steamassisted gravity drainage[J]. Journal of Canadian Petroleum Technology,2008,47(9):12-20.
    [22] KAMARI A, HEMMATI-SARAPARDEH A,MOHAMMADI A H,et al. On the evaluation of FASTSAGD process in naturally fractured heavy oil reservoir[J]. Fuel,2015,143:155-164.
    [23] LIU Z Y,ZHANG M B,ZHOU D S,et al. Study on SAGP for guantao super heavy oil reservoir in block Du84[J]. Special Oil&Gas Reservoirs,2013,20(6):96-98.
    [24] GUO K,LI H,YU Z. In-situ heavy and extra-heavy oil recovery:a review[J]. Fuel,2016,185:886-902.
    [25]穆金峰,吕有喜,魏三林,等.超深稠油井解堵技术研究与应用[J].油田化学,2010,27(2):149-152.MU J F,LU Y X, WEI S L, et al. Research and application on the technology of relieving reservoir plugging from ultra-deep oil well[J]. Oilfield Chemistry,2010,27(2):149-152.
    [26]刘明辉,张庚祥.井筒电加热技术在稠油试油试采中的应用[J].石油钻采工艺,1998,20(3):95-98.LIU M H,ZHANG G X. Application of well bore electric heating technique in oil production test and production test of viscous crude oi L[J]. Oil Drilling&Production Technology,1998,20(3):95-98.
    [27]ILYIN S O,ARININA M P,POLYAKOVA M Y,et al.Rheological comparison of light and heavy crude oils[J].Fuel,2016,186:157-167.
    [28]SADEGHI M T. Viscosity reduction of heavy crude oil by dilution method:new correlations for the prediction of the kinematic viscosity of blends[J]. Iranian Journal of Oil&Gas Science and Technology,2018.
    [29]陈永遂,马化甫.对稠油中掺入稀油后混合黏度计算公式的探讨[J].油田地面工程,1983,2(4):1-8.CHEN Y S, MA H F. Enquiring into formulae for calculating mixing viscosity after thin oil mixed in thick oil[J]. Oil-Gas Field Surface Engineering,1983,2(4):1-8.
    [30]曲占庆,邢建华,张红玲,等.深层稠油掺稀油举升方法研究[J].油气地质与采收率,2000,7(3):26-28.QU Z Q,XING J H,ZHANG H L,et al. Study on lifting method of deep heavy oil mixed with dilute oil[J]. Oil&Gas Recovery Technology,2000(3):26-28.
    [31]李晓东,张国萍,薛永新,等.濮深18块高胶质稠油掺稀降黏室内研究[J].化学工程与装备,2014,10:94-97.LI X D,ZHANG G P,XUE Y X,et al. Study on the incorporation of dilute viscosity-reducing adhesive for 18high viscosity heavy crude oils[J]. Chemical Engineering&Equipment,2014,10:94-97.
    [32] KE W,ZHAO R,SHI Z,et al. A new viscosity evaluation method of heavy oil production assisted with light oil blending and simulation analysis[J]. Journal of Central South University of Science and Technology,2016,47:1990-1994.
    [33]邹斌,盖平原,宋文芳,等.胜利油区蒸汽驱工艺技术现状及攻关方向[J].油气地质与采收率,2010,17(5):50-52.ZOU B,GAI P Y,SONG W F,et al. Review on steam flooding and study trend in Shengli Oilfield[J].Petroleum Geology and Recovery Efficiency,2010,17(5):50-52.
    [34]李向良,李相远.单6东超稠油黏温及流变特征研究[J].油气地质与采收率,2000,7(3):12-14.LI X L,LI X Y. Study on viscosity-temperature and rheological properties of super viscous crude in east shan 6[J]. Petroleum Geology and Recovery Efficiency,2000,7(3):12-14.
    [35] HOFFMAN B T,KOVSCEK A R. Efficiency and oil recovery mechanisms of steam injection into low permeability, hydraulically fractured reservoirs[J].Liquid Fuels Technology,2004,22(5/6):537-564.
    [36]HYNEJB,CLARK PD,KOOJ,et al. Aquathermolysis of heavy oils[J]. Revista Tecnica Intevep,1982,2(2):87-94.
    [37]吴川,雷光伦.纳米镍催化剂对胜利超稠油水热裂解降黏的影响[J].中国石油大学学报(自然科学版),2011,35(1):164-167.WU C,LEI G L. Influence of nano-nickl catalyst on viscosity reduction of Shengli extra-heavy oil by aquathermolysis[J]. Journal of China University of Petroleum(Edition of Natural Science),2011,35(1):164-167.
    [38] CHIVERS T, HYNE J B, LAU C. The thermal decomposition of hydrogen sulfide over transition metal sulfides[J]. International Journal of Hydrogen Energy,1980,5:499-506.
    [39] CLARK P D,LESAGE K L,TSANG G T,et al.Reactions of benzo[b]thiophene with aqueous metal species:their influence on the production and processing of heavy oils[J]. Energy&Fuels,1988,2:578-581.
    [40]CLARK P D,MACHIN J H,RICHARDSON J F,et al.Structural investigations on tris(tetrahydrothiophene)rhodium(III)halide complexes[J]. Inorganic Chemistry,1988,27:3526-3529.
    [41] XU H,PU C. Mechanism of underground heavy oil catalytic aquathermolysis[J]. Chemistry&Technology of Fuels&Oils,2018,53(6):913-921.
    [42]刘永健,钟立国,范洪富,等.辽河油田超稠油水热裂解采油现场试验[J].大庆石油学院学报,2002,26(3):99-101.LIU Y J, ZHONG L G, FAN H F, et al. In situ experiments of heavy oil recovery by aquathermolysis in Liaohe oilfield[J]. Journal of Daqing Petroleum Institute,2002,26(3):99-101.
    [43]陈尔跃,刘永建,闻守斌.辽河稠油中胶质在催化水热裂解反应中的降解[J].石油与天然气化工,2006,35(1):49-50.CHEN E Y, LIU Y J, WEN S B. A Study on the degradation of the resin in liaohe heavy oil during catalytic aquathermolysis reaction[J]. Chemical Engineering of Oil and Gas,2006,35(1):49-50.
    [44]吴川,陈艳玲,王元庆,等.超稠油改质降黏机理研究[J].西南石油大学学报(自然科学版),2010,32(2):145-148.WU C,CHEN Y L,WANG Y Q,et al. Study on the upgrading and viscosity reducing mechanism of ultra heavy oil[J]. Journal of Southwest Petroleum University(Seience&Technology Edition),2010,32(2):145-148.
    [45] ZHAO K,WANG X D,PAN H,et al. Preparation of molybdenum-doped akaganeite nano-rods and their catalytic effect on the viscosity reduction of extra heavy crude oil[J]. Applied Surface Science,2018,427:1080-1089.
    [46]LI C,SU L,LI Q,et al. Enhanced oil recovery in mild conditions by SO2-4/Ti O2-Zr O2solid superacid prepared by different methods[J]. Journal of Nanomaterials,2016,1:1-5.
    [47] SU L,GUAN Z,LI Q,et al. Synthesis of SO2-4/Zrsilicalite-1 zeolite catalysts for upgrading and visbreaking of heavy oil[J]. Journal of Nanoparticle Research,2017,19(9):305-315.
    [48] LIU X,YANG Z,LI X,et al. Preparation of silicasupported nano Fe/Ni alloy and its application in viscosity reduction of heavy oil[J]. Micro&Nano Letters Iet,2015,10(3):167-171.
    [49]LIU X L,LI Y G,ZHANG Z J,et al. Synthesis of silica/metatitanic acid nanocomposite and evaluation of its catalytic performance for aquathermolysis reaction of extraheavy crude oil[J]. Journal of Energy Chemistry,2015,24(4):472-476.
    [50]FENG Y,LI Y,LI Q,et al. Preparation of phase transfer functional catalysts and their application in viscosity reduction of heavy oils[J]. Iet Micro&Nano Letters,2017,12(6):408-411.
    [51]YUAN L,WANG X,ZHAO K,et al. Effect of reaction temperature and hydrogen donor on the Ni O@graphenecatalyzed viscosity reduction of extra heavy crude oil[J].Liquid Fuels Technology,2017,35(2):196-200.
    [52]CHUAN W U,LEI G L,YAO C J,et al. Mechanism for reducing the viscosity of extra-heavy oil by aquathermolysis with an amphiphilic catalyst[J]. Journal of Fuel Chemistry&Technology,2010,38(6):684-690.
    [53] HASAN S W,GHANNAM M T,ESMAIL N. Heavy crude oil viscosity reduction and rheology for pipeline transportation[J]. Fuel,2010,89(5):1095-1100.
    [54]CHAO K,CHENB Y,ZHANG X,et al. Upgrading and visbreaking of super-heavy oil by catalytic aquathermolysis with aromatic sulfonic copper[J]. Fuel Processing Technology,2012,104:174-180.
    [55] JIN J,PENG C,WANG J,et al. Facile synthesis of mesoporous zeolite Y with improved catalytic performance for heavy oil fluid catalytic cracking[J]. Industrial&Engineering Chemistry Research,2012,53(8):3406-3411.
    [56] HASHEMI R,NASSAR N N,ALMAO P P. Enhanced heavy oil recovery by in situ prepared ultradispersed multimetallic nanoparticles:a study of hot fluid flooding for athabasca bitumen recovery[J]. Energy&Fuels,2013,27(4):2194-2201.
    [57]ALKHALDI S,HUSEIN M M. Hydrocracking of heavy oil by means of in situ prepared ultradispersed nickel nanocatalyst[J]. Energy&Fuels,2014,28(1):643-649.
    [58]吕小博.稠油油溶性降黏聚合物的合成及其降黏剂降黏性能研究[D].济南:山东大学,2012.LV X B. Study on synthesis and properties of oil-soluble viscosity reduction copolymers on crude oil[D]. Jinan:Shandong University,2012.
    [59] LI J,WANG X,TANG X,et al. Effect of transition metal polymers with varying side alkyl chain on viscosity reduction of crude oil and aggregation behavior of asphaltene[J]. Energy&Fuels,2015,29(12):7771-7780.
    [60]MACHADO A L C,LUCAS E F,GONZLEZ G. Poly(ethylene-co-vinyl acetate)(EVA)as wax inhibitor of a Brazilian crude oil:oil viscosity,pour point and phase behavior of organic solutions[J]. Journal of Petroleum Science&Engineering,2001,32(2/4):159-165.
    [61]QUINTELLA C M,MUSSE A P S,CASTRO M T P O,et al. Polymeric surfaces for heavy oil pipelines to inhibit wax deposition:PP,EVA28,and HDPE[J]. Energy&Fuels,2006,20(2):620-624.
    [62]李庶峰,邓文安,文萍.轮古稠油催化水热裂解采油体系研究[J].油田化学,2012,29(4):443-445.LI S F,DENG W A,WEN P. Study on the reaction conditions and influence factors in hydrothermal cracking of lungu heavy off[J]. Oilfield Chemistry,2012,29(4):443-445.
    [63]潘登,郑延成,李吞云,等.双亲型催化降黏体系试验研究[J].长江大学学报(自科版),2015,12(1):41-43.PAN D,ZHENG Y C,LI T Y,et al. Experimental study on the amphiphilic catalytic viscosity reduction system[J]. Journal of Yangtze University(Natural Science Edition),2015,12(1):41-43.
    [64]吴本芳,郭金波.原油乳化降黏研究进展[J].洛阳师范学院学报,2002,21(5):47-52.WU B F,GUO J B. Advances in reducing viscosity by emulsifying for crude oil[J]. Journal of Luoyang Teachers College,2002,21(5):47-52.
    [65] PAL R. Techniques for measuring the composition(oil and water content)of emulsions-a state of the art review[J]. Colloids and Surfaces A:Physicochemical and Engineering Aspects,1994,84(2/3):141-193.
    [66]SIMON R,POYNTER W G. Down-hole emulsification for improving viscous crude production[J]. Journal of Petroleum Technology,1968,20(12):1349-1353.
    [67]SIMPSON W C,SOMMER H J. Transportation of waxy oils:US,2981683[P]. 1961-04-25.
    [68] SIMON R,MCAULIFFE C D,POYNTER W G,et al.Pipelining crude oil:US,3487844[P]. 1970-01-06.
    [69] SIMON R, POYNTER W G. Pipelining oil/water mixtures:US,3519006[P]. 1970-10-13.
    [70] KUMAR S,MAHTO V. Emulsification of Indian heavy crude oil using a novel surfactant for pipeline transportation[J]. Petroleum Science,2017,14(2):372-382.
    [71] YANG Y,GUO J,CHENG Z,et al. New composite viscosity reducer with both asphaltene dispersion and emulsifying capability for heavy and ultraheavy crude oils[J]. Energy Fuels,2017,31(2):1159-1173.
    [72]钱建华,刘琳,张连红.高稠原油乳化降黏剂的研制[J].抚顺石油学院学报,2001(1):17-19.QIAN J H,LIU L,ZHANG L H. Viscosity reducer by emulsification for heavy crude oils[J]. Journal of Fushun Petroleum Institute,2001(1):17-19.
    [73]冯瑶瑶.磁性乳化剂的制备及其在稠油降黏中的应用[D].开封:河南大学,2017.FENG Y Y,Preparation of magnetic emulsifier and their application in viscosity reduction of heavy oils[D].Kaifeng:Henan University,2017.
    [74] BARRUFET M A,SETIADARMA A. Reliable heavy oil-solvent viscosity mixing rules for viscosities up to450 K,oil-solvent viscosity ratios up to 4×105,and any solvent proportion[J]. Fluid Phase Equilibria,2003,213(1):65-79.
    [75]ZHOU H,CAO X L,GUO L L,et al. Studies on the interfacial dilational rheology of films containing heavy oil fractions as related to emulsifying Properties[J]. Colloids&Surfaces A:Physicochemical&Engineering Aspects,2018,541:117-127.
    [76] LI M R,XIANG H,MA J F. Mechanism of viscosity reduction of ultra-heavy oil by emulsification[J]. Journal of Fuel Chemistry and Technology,2006,34(2):175-178.
    [77] WEI X M,ZHENG M,BAI Y L. Viscosity reduction mechanism by aqueous solution of surfactant[J]. Special Oil and Gas Reservoirs,2004,11(4):92-94.
    [78]黄波,陈维余,史斌,等.一种阳离子乳化沥青堵剂实验研究[J].当代化工,2014,43(11):2219-2221.HUANG B,CHEN W Y,SHI B,et al. Experimental study of cation emulsified asphalt plugging agent[J].Contemporary Chemical Industry,2014,43(11):2219-2221.
    [79]YULIESTYAN A,GARCA-MORALES M,MORENO E,et al. Assessment of modified lignin cationic emulsifier for bitumen emulsions used in road paving[J]. Materials&Design,2017,131:242-251.
    [80]BAO L,WANG H,WU Y,et al. Synthesis of a series of anionic surfactants derived from np and their properties as emulsifiers for reducing viscosity of highly viscous oil via formation of O/W emulsions[J]. Journal of Surfactants and Detergents,2016,19(5):979-987.
    [81] ADILBEKOVA A O,OMAROVA K I,KARAKULOVA A,et al. Nonionic surfactants based on polyoxyalkylated copolymers used as demulsifying agents[J]. Colloids&Surfaces A Physicochemical&Engineering Aspects,2015,480:433-438.
    [82] GUO P,JIAO S,CHEN F,et al. Optimization and oil displacement efficiency of non-ionic low molecular surfactant[J]. Oil Drilling&Production Technology,2012,34(2):81-84.
    [83] ZHOU Z,LU H,HUANG Z. A co-switchable polymer surfactant copolymerized with dmaema and am as heavy oil emulsifier[J]. Journal of Dispersion Science&Technology,2016,37(8):1200-1207.
    [84]AHMED N S,NASSAR A M,ZAKI N N,et al. Stability and rheology of heavy crude oil-in-water emulsion stabilized by an anionic-nonionic surfactant mixture[J].Petroleum science and technology,1999,17(5/6):553-576.
    [85] DEHGHAN A A,JADALY A,AYATOLLAHI S,et al.Acidic heavy oil recovery using a new formulated surfactant accompanying alkali-polymer in high salinity brines[J]. Journal of Surfactants&Detergents,2017,20(3):725-733.
    [86] SAHAI M, SINGH R K, KUKRETY A, et al.Application of triazine-based gemini surfactants as viscosity reducing agents of tar sand derived bituminous crude[J]. Energy&Fuels,2018,32(3):3031-3038.
    [87] ZHAO M,YU Y,HAN Z,et al. Preparation of a fluorocarbon polymerizable surfactant and its application in emulsion polymerization of fluorine-containing acrylate[J]. Polymers,2017,9(11):606.
    [88] FENG A Z,GE J J,ZHANG G C,et al. Study of surfactant-polymer flooding in heavy oil reservoirs[J].Journal of Dispersion Science&Technology,2012,1:1-10.
    [89]张现德.碱性添加剂提高稠油注蒸汽采收率室内研究[J].油田化学,1992(4):363-365.ZHANG X D. A laboratory study on improving recovery of highly viscous crude by steam injection with alkaline auxiliaries[J]. Oilfield Chemistry,1992(4):363-365.
    [90]赵福麟.油田化学[M].北京:中国石油大学出版社,2010.ZHAO F L. Oilfield Chemistry[M]. Beijing:China University of Petroleum Press,2010.
    [91]秦冰.稠油乳化降黏剂结构与性能关系的研究[D].北京:石油化工科学研究院,2001.QIN B. Study on the relationship between the composition and performance of viscosity-reducing agent used in the viscous crude recovery[D]. Beijing:Research Institute of Petroleum Processing,2001.
    [92]李甫,史建英,杜雪峰,等.新疆油田拐16井区稠油冷采降黏技术室内研究[J].石油地质与工程,2014,28(2):139-141.LI F,SHI J Y,DU X F,et al. Indoor research on viscous oil cold recovery and viscosity reducing technology in shuijing 16 well area,Xinjiang oilfield[J]. Petroleum Geology and Engineering,2014,28(2):139-141.
    [93]毛金成,刘佳伟,李勇明,等.超稠油化学降黏剂研究与进展[J].应用化工,2016,45(7):1367-1371.MAO J C,LIU J W,LI Y M,et al. Research and development of super heavy oil viscosity reducer[J].Applied Chemical Industry,2016,45(7):1367-1371.
    [94]LAVANIA M,CHEEMA S,LAL B. Potential of viscosity reducing thermophillic anaerobic bacterial consortium TERIB#90 in upgrading heavy oil[J]. Fuel,2015,144:349-357.
    [95]张金秋.生物表面活性剂对稠油化学降黏增效作用的研究[J].精细石油化工进展,2015,16(1):36-40.ZHANG J Q. Research on synergetic effect of biosurfactants on viscous oil viscosity reduction[J].Advances in Fine Petrochemicals,2015,16(1):36-40.
    [96] QING L I,GANG W U,MU B,et al. Research on evaluation of microbe oil recovery bacterium of lowtemperature inspissated pool[J]. Oil Drilling&Production Technology,2011,33(2):114-116.
    [97]易绍金,缪永霞.稠油降黏菌的降黏作用研究及其现场应用[J].石油天然气学报,2009,31(1):134-137.YI S J,MIAO Y X. A research on action of bacteria in reducing viscosity of viscous crude and field application[J]. Journal of Oil and Gas Technology,2009,31(1):134-137.
    [98]张晓博,洪帅,姜晗,等.微生物对稠油降解、降黏作用研究进展[J].当代化工,2016,45(3):617-621.ZHANG X B,HONG S,JIANG H,et al. Research progress in heavy oil bio-degradation technology[J].Contemporary Chemical Industry,2016,45(3):617-621.
    [99]MIDDIS J,PAUL S T,MLLER-STEINHAGEN H M,et al. Reduction of heat transfer fouling by the addition of wood pulp fibers[J]. Heat Transfer Engineering,1998,19(2):36-44.
    [100]NADERI K,BABADAGLI T. Influence of intensity and frequency of ultrasonic waves on capillary interaction and oil recovery from different rock types[J]. Ultrasonics Sonochemistry,2010,17(3):500-508.
    [101]申龙涉.辽河稠油减阻实验研究[J].抚顺石油学院学报,1995(2):44-48.SHEN L S. Experimental studies of drag reduction on liaohe heavy crude oil[J]. Journal of Fushun Petroleum Institute,1995(2):44-48.
    [102]孔德晶,徐秋仿,郭泽杰,等.基于超声波技术优选最佳原油降黏参数[J].化学工程师,2017,31(5):43-45.KONG D J, XU Q F, GUO Z J, et al. Optimum parameters for viscosity reduction of crude off based on ultrasonic technology[J]. Chemical Engineer,2017,31(5):43-45.
    [103]徐德龙,邓京军,李超,等.超重油降黏中超声波作用的研究[J].声学技术,2014,33(6):517-521.XU D L,DENG J J,LI C,et al. Effects of ultrasonic wave on viscosity reduction for Venezuela and Fengcheng ultra heavy oil[J]. Technical Acoustics,2014,33(6):517-521.
    [104]孙仁远,王连保,彭秀君,等.稠油超声波降黏试验研究[J].油气田地面工程,2001(5):22-23.SUN R Y,WANG L B,PENG X J,et al. Study on viscosity reduction test of viscous oil by ultrasonic[J].Oil-Gasfield Surface Engineering,2001(5):22-23.
    [105]李鹏华.稠油开采技术现状及展望[J].油气田地面工程,2009,28(2):9-10.LI P H. Current status and prospects of heavy oil recovery technique[J]. Oil-Gasfield Surface Engineering,2009,28(2):9-10.
    [106]朱国金,王小林,赵文森,等.一种稠油注空气缓和催化氧化乳状液催化剂及其制备方法:中国,103396779A[P]. 2013-11-20.ZHU G J,WANG X L,ZHAO W S,et al. Heavy oil injection air mitigation catalytic oxidation emulsion catalyst and preparation method:China,103396779A[P]. 2013-11-20.
    [107]杨勇,陈启华,梁欣,等.用于稠油注蒸汽开采的复合催化乳化降黏剂及其制备方法:中国,102127413A[P]. 2011-07-20.YANG Y,CHEN Q H,LIANG X,et al. Composite catalytic emulsification viscosity reducer for heavy oil steam injection and preparation method:China,103396779A[P]. 2013-11-20.
    [108]崔敏,李传,文萍,等.表面活性剂对油溶性降黏剂降黏效果的影响及作用机制[J].中国石油大学学报(自然科学版),2013,37(3):161-166.CUI M,LI C,WEN P,et al. Influence and mechanism of surfactants on viscosity reduction effect of oil-soluble viscosity depressant[J]. Journal of China University of Petroleum(Natural Science Edition),2013,37(3):161-166.
    [109]叶连春,郑延成,吴少民,等.稠油乳化催化降黏体系的研究[J].广东化工,2013,40(23):14-15.YE L C,ZHENG Y C,WU S M,et al. Studying emulsifing viscosity reducer for heavy oil by using HLB Value method[J]. Guangdong Chemical Industry,2013,40(23):14-15.
    [110]刘新秀.新型油溶性催化剂体系对稠油降黏效果评价及矿场试验效果[J].中国石油石化,2017,1:107-108.LIU X X. Evaluation of viscosity-reducing effect of heavy oil by new type oil-soluble catalyst system and effect of mine test[J]. China Petrochem,2017,1:107-108.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700