1 |
中国海油. 海洋原油突破6200万吨!贡献国内原油增量7成![EB/OL]. (2024⁃01⁃15) [2024⁃08⁃10]. https://news.bjx.com.cn/html/20240115/1355947.shtml.
|
2 |
贾承造. 全国油气勘探开发形势与发展前景[J]. 中国石油石化, 2022(20): 14⁃17.
|
|
JIA C Z. The situation and development prospects of national oil and gas exploration and development[J]. China Petrochem, 2022(20): 14⁃17.
|
3 |
袁士义, 王强. 中国油田开发主体技术新进展与展望[J]. 石油勘探与开发, 2018, 45(4): 657⁃668.
|
|
YUAN S Y, WANG Q. New progress and prospect of oilfields development technologies in China[J]. Petroleum Exploration and Development, 2018, 45(4): 657⁃668.
|
4 |
朱振坤,李海成,高光磊,等.大庆油田化学驱分层注入技术现状与发展趋势[J].石油钻采工艺, 2022, 44(5): 642⁃648.
|
|
ZHU Z K,LI H C,GAO G L,et al. Status and trend of chemical flooding and layered injection technology in Daing Oilfield[J]. Oil Drilling & Production Technology[J].2022, 44(5): 642⁃648.
|
5 |
陈斌. SZ36⁃1油田聚驱后提高采收率方法探析[J]. 中外能源, 2022, 27(5): 55⁃61.
|
|
CHEN B. Analysis of methods for enhancing oil recovery after polymer flooding in SZ36⁃1 oilfield[J]. Sino⁃Global Energy, 2022, 27(5): 55⁃61.
|
6 |
HU Q H, WANG X W, GUO C Z, et al. The mathematical method and application of strata series recombination in the middle⁃late stages of multi⁃layer sandstone reservoir development[C]//Proceedings of the International Field Exploration and Development Conference 2022. Singapore: Springer, 2022: 4063⁃4078.
|
7 |
周守为, 韩明, 向问陶, 等. 渤海油田聚合物驱提高采收率技术研究及应用[J]. 中国海上油气, 2006(6): 386⁃389.
|
|
ZHOU S W, HAN M, XIANG W T, et al. Research and application of polymer flooding technology to enhance oil recovery in Bohai oilfield[J]. China Offshore Oil and Gas, 2006(6): 386⁃389.
|
8 |
蔡文斌. 聚合物乳液水动力学及其注入工艺研究[D]. 青岛: 中国石油大学(华东), 2009.
|
9 |
孙惠茹,卢祥国,何欣, 等.渤海油田化学驱注入井解毒剂构建、性能和注入工艺[J].油田化学,2024,41(3):505⁃516.
|
|
SUN H R,LU X G,HE X, et al. Construction,performance and injection technology of plugging remove for chemical flooding injection wells in Bohai Oilfield[J].Oilfield Chemistry,2024,41(3):505⁃516.
|
10 |
苑玉静, 刘义刚, 孟祥海, 等. 渤海D油田剖面反转综合治理技术研究[J]. 能源化工, 2020, 41(4): 66⁃70.
|
|
YUAN Y J, LIU Y G, MENG X H, et al. Study on comprehensive control technology of profile inversion in Bohai D oilfield[J]. Energy Chemical Industry, 2020, 41(4): 66⁃70.
|
11 |
马鹏飞. 海上油田聚合物驱与井网加密协同优化研究[D]. 青岛: 中国石油大学(华东), 2018.
|
12 |
王德民,程杰成,吴文祥.缩小井距结合聚合物驱提高边际油层采收率研究[J].特种油气藏,2006,13(3):49⁃52.
|
|
WANG D M,CHENG J C, WU W X. Combining small well spacing with polymer flooding to improve oil recovery of marginal reservoirs[J]. Special Oil and Gas Reservoirs, 2006,13(3), 49⁃52.
|
13 |
夏惠芬, 王德民, 王刚, 等. 化学驱中黏弹性驱替液的微观力对残余油的作用[J]. 中国石油大学学报(自然科学版), 2009, 33(4): 150⁃155.
|
|
XIA H F, WANG D M, WANG G, et al. Effect of micro forces caused by driving fluid with viscoelasticity on residual oil in chemical flooding[J]. Journal of China University of Petroleum(Edition of Natural Science), 2009, 33(4): 150⁃155.
|
14 |
夏惠芬, 王德民, 侯吉瑞, 等. 聚合物溶液的粘弹性对驱油效率的影响[J]. 大庆石油学院学报, 2002, 26(2): 109⁃111.
|
|
XIA H F, WANG D M, HOU J R, et al. Effect of viscoelasticity of polymer solution on oil displacement efficiency[J]. Journal of Daqing Petroleum Institute, 2002, 26(2): 109⁃111.
|
15 |
王德民, 程杰成, 吴文祥. 缩小井距结合聚合物驱提高边际油层采收率研究[J]. 特种油气藏, 2006, 13(3): 49⁃52.
|
|
WANG D M, CHENG J C, WU W X. Combining small well spacing with polymer flooding to improve oil recovery of marginal reservoirs[J]. Special Oil & Gas Reservoirs, 2006, 13(3): 49⁃52.
|
16 |
姜英淑. 喇北西块高浓度聚合物驱油试验研究[D]. 大庆: 东北石油大学, 2009.
|
17 |
宋晓彬. 萨中开发区主力油层高浓度驱油方案[D]. 北京: 中国地质大学(北京), 2009.
|
18 |
牛佳. X区块二三结合开发方案调整技术研究[D]. 大庆: 东北石油大学, 2022.
|
19 |
吕恒宇, 胡永乐, 邹存友. 高含水油藏“二三结合”优化技术研究进展[J]. 科学技术与工程, 2018, 18(4): 210⁃220.
|
|
LÜ H Y, HU Y L, ZOU C Y. Research progress on optimization technologies of secondary⁃tertiary combination in high water cut reservoir[J]. Science Technology and Engineering, 2018, 18(4): 210⁃220.
|
20 |
蔡明俊, 张家良, 刘同敬. 复杂断块油田高含水期“二三结合”开发模式[M]. 北京: 石油工业出版社, 2021.
|
21 |
赵贤正,赵平起,李东平,等.地质工程一体化在大港油田勘探开发中探索与实践[J]. 中国石油勘探, 2018, 23(2): 6⁃14.
|
|
ZHAO X Z, ZHAO P Q, LI D P, et al. Research and practice of geology⁃engineering integration in the exploration and development of Dagang oilfield[J]. China Petroleum Exploration, 2018, 23(2): 6⁃14.
|
22 |
杨勇, 曹绪龙, 张世明, 等. 老油田“3+2”大幅度提高采收率技术内涵、机理及实践[J]. 油气地质与采收率, 2024, 31(1): 54⁃62.
|
|
YANG Y, CAO X L, ZHANG S M, et al. Connotation, mechanism, and practice of "3+2" significantly enhanced oil recovery technology in mature oilfields[J]. Petroleum Geology and Recovery Efficiency, 2024, 31(1): 54⁃62.
|
23 |
黄粟. XN聚驱开发区聚驱见效特征及影响因素分析[J]. 石油工业技术监督, 2019, 35(3): 5⁃9.
|
|
HUANG S. Analysis of polymer flooding effect characteristics and influencing factors in XN polymer flooding development area[J]. Technology Supervision in Petroleum Industry, 2019, 35(3): 5⁃9.
|
24 |
肖伟, 石成方, 王凤兰, 等. 聚合物驱油计算理论方法[M]. 北京: 石油工业出版社, 2004.
|
25 |
宋考平, 杨二龙, 邓庆军, 等. 聚合物驱合理注入速度的选择[J]. 大庆石油学院学报, 2001, 25(4): 15⁃18.
|
|
SONG K P, YANG E L, DENG Q J, et al. Selection of the rational injection rate for reservoir with polymer flooding[J]. Journal of Daqing Petroleum Institute, 2001, 25(4): 15⁃18.
|
26 |
井有水. 影响开发效果因素分析及注入参数优化——以D区块二三类油层为例[D]. 大庆: 东北石油大学, 2023.
|
27 |
胡文瑞. 论老油田实施二次开发工程的必要性与可行性[J]. 石油勘探与开发, 2008, 35(1): 1⁃5.
|
|
HU W R. Necessity and feasibility of PetroChina mature field redevelopment[J]. Petroleum Exploration and Development, 2008, 35(1): 1⁃5.
|
28 |
中国石油勘探与生产分公司. 中国石油二次开发技术与实践[M]. 北京: 石油工业出版社, 2012.
|
29 |
JOHN A, HAN C, DELSHAD M, et al. A new generation chemical⁃flooding simulator[J]. SPE Journal, 2005, 10(2): 206⁃216.
|
30 |
TIAN G M. A study on well pattern optimization technique in the low⁃permeable oil reservoir⁃taking He 135 fault block as an example[J]. Offshore Oil, 2007, 27(1): 49⁃57.
|
31 |
曹仁义,程林松, 薛永超, 等. 低渗透油藏井网优化调整研究[J]. 西南石油大学学报(自然科学版), 2007, 29(4): 67⁃69.
|
|
CAO R Y,CHENG L S,XUE Y C,et al.Well pattern optimization adjustment for low permeability oilfield[J].Journal of Southwest Petroleum University,2007, 29(4): 67⁃69.
|
32 |
姜汉桥, 郑伟, 张贤松, 等. 渤海油田早期聚合物驱动态规律及见效时间判断方法[J]. 中国石油大学学报(自然科学版), 2011, 35(6): 95⁃98.
|
|
JIANG H Q, ZHENG W, ZHANG X S, et al. Dynamic law and method of judging effective time of early polymer flooding in Bohai oilfield[J]. Journal of China University of Petroleum(Edition of Natural Science), 2011, 35(6): 95⁃98.
|
33 |
韩大匡. 关于高含水油田二次开发理念、对策和技术路线的探讨[J]. 石油勘探与开发, 2010, 37(5): 583⁃591.
|
|
HAN D K. Discussions on concepts, countermeasures and technical routes for the redevelopment of high water⁃cut oilfields[J]. Petroleum Exploration and Development, 2010, 37(5): 583⁃591.
|
34 |
刘丁曾, 王启民, 李伯虎. 大庆多层砂岩油田开发[M]. 北京: 石油工业出版社, 1996.
|
35 |
朱旭, 翟泽宇. 大港油田“二三结合”提高采收率研究与试验[J]. 石油工业技术监督, 2020, 36(4): 8⁃11.
|
|
ZHU X, ZHAI Z Y. Research and test of EOR by "two three combination" in Dagang oilfield[J]. Technology Supervision in Petroleum Industry, 2020, 36(4): 8⁃11.
|
36 |
王容容. 聚驱后井网调整非均相复合驱作用机理及效果评价研究[D]. 青岛: 中国石油大学(华东), 2013.
|
37 |
刘子恒. 高含水油田深度开发及采收率的提高[J]. 化学工程与装备, 2023(10): 94⁃96.
|
|
LIU Z H.Advanced development and enhanced recovery in high water⁃cut oilfields[J]. Chemical Engineering & Equipment, 2023(10): 94⁃96.
|
38 |
王吉涛, 李俊键. 高含水油田剩余油研究方法、分布特征与发展趋势[J]. 油气地质与采收率, 2024, 31(2): 58⁃69.
|
|
WANG J T, LI J J. Research methods, distribution characteristics, and development trend of remaining oil in high water cut oilfields[J]. Petroleum Geology and Recovery Efficiency, 2024, 31(2): 58⁃69.
|
39 |
魏新. 杏十三区聚驱工业区扩大波及体积调整技术研究[D]. 大庆: 东北石油大学, 2017.
|
40 |
JI S H, TIAN C B, SHI C F, et al. New understanding on water⁃oil displacement efficiency in a high water⁃cut stage[J]. Petroleum Exploration and Development, 2012, 39(3): 362⁃370.
|
41 |
LI Q Y, ZHANG J Q, DENG B R, et al. Grey decision⁃making theory in the optimization of strata series recombination programs of high water⁃cut oilfields[J]. Petroleum Exploration and Development, 2011, 38(4): 463⁃469.
|
42 |
徐广元. 萨南油田开发区二类油层聚驱层系的确定与组合方式研究[D]. 长春: 吉林大学, 2015.
|
43 |
朱宇. 南五区二类油层聚合物驱开发方案优化设计研究[D]. 大庆: 东北石油大学, 2017.
|
44 |
崔锡三. 大庆油田萨南开发区二类油层聚合物驱层系组合和驱油方案研究[D]. 大庆: 东北石油大学, 2009.
|
45 |
李洁, 武力军, 邵振波. 大庆油田二类油层聚合物驱油技术要点[J]. 石油天然气学报(江汉石油学院学报), 2005(S2): 132⁃134.
|
|
LI J, WU L J, SHAO Z B. Key points of polymer flooding technology for type Ⅱ reservoirs in Daqing oilfield[J]. Journal of Oil and Gas Technology, 2005(S2): 132⁃134.
|
46 |
葛党科, 张杰, 王晓燕, 等. 聚合物构效关系及油藏适应性评价: 以大港油田为例[M]. 北京: 化学工业出版社, 2020.
|
47 |
DELSHAD M, BHUYAN D, POPE G A, et al. Effect of capillary number on the residual saturation of a three⁃phase micellar solution[C]//SPE Enhanced Oil Recovery Symposium. Tulsa: SPE, 1986: SPE⁃14911⁃MS.
|
48 |
HUH C, POPE G A. Residual oil saturation from polymer floods: Laboratory measurements and theoretical interpretation[C]//SPE Symposium on Improved Oil Recovery. Tulsa: Society of Petroleum Engineers, 2008: SPE⁃113417⁃MS.
|
49 |
杨怀军, 张杰, 曹伟佳, 等. 聚/表二元体系流度控制作用对采收率的影响——以大港孔南高凝高黏油藏为例[J]. 石油化工高等学校学报, 2016, 29(5): 83⁃89.
|
|
YANG H J, ZHANG J, CAO W J, et al. The effect of polymer/surfactant combination system mobility control function on oil recovery: Take the Kongnan reservoir of Dagang oilfiled as research object[J]. Journal of Petrochemical Universities, 2016, 29(5): 83⁃89.
|
50 |
郭立伟, 周传臣, 张婧, 等. 驱油用阴非离子表面活性剂的研发与性能评价[J]. 当代化工, 2022, 51(11): 2583⁃2587.
|
|
GUO L W, ZHOU C C, ZHANG J, et al. Development and performance evaluation of anionic nonionic surfactant for oil displacement[J]. Contemporary Chemical Industry, 2022, 51(11): 2583⁃2587.
|
51 |
王贵江,张杰, 苑光宇, 等. 中高矿化度聚表剂乳化性能及稳定乳状液驱油机理[J]. 特种油气藏, 2019, 26(4): 142⁃147.
|
|
WANG G J, ZHANG J, YUAN G Y, et al. Emulsifying performance of medium⁃high salinity polymer surfactant and displacement mechanism of true emulsion[J]. Special Oil & Gas Reservoirs, 2019, 26(4): 142⁃147.
|