1 |
赵明国, 李金珠, 王忠滨. 特低渗透油藏CO2非混相驱油机理研究[J]. 科学技术与工程, 2011, 11(7): 1438⁃1440.
|
|
ZHAO M G, LI J Z, WANG Z B. The study on CO2 immiscible mechanism in low permeability reservoir[J]. Science Technology and Engineering, 2011, 11(7): 1438⁃1440.
|
2 |
李阳. 低渗透油藏CO2驱提高采收率技术进展及展望[J]. 油气地质与采收率, 2020, 27(1): 1⁃10.
|
|
LI Y. Technical advancement and prospect for CO2 flooding enhanced oil recovery in low permeability reservoirs[J]. Petroleum Geology and Recovery Efficiency, 2020, 27(1): 1⁃10.
|
3 |
宋来明,王春秋,卢川,等.数据驱动的复杂油藏注采生产优化技术研究进展[J]. 石油钻采工艺, 2022, 44(2): 253⁃260.
|
|
SONG L M,WANG C Q,LU C,et al. Research progress of data⁃driven injection production optimization of complex oil reservoirs[J]. Oil Drilling & Production Technology, 2022, 44(2): 253⁃260.
|
4 |
苏海波,王晓宏,张世明,等.低渗透油藏油水相对渗透率模型的分形表征方法[J].东北石油大学学报,2019,43(5):88⁃94.
|
|
SHU H B, WANG X H,ZHANG S M,et al. Fractal characterization method of oil⁃water relative permeability reservoirs[J].Journal of Northeast Petroleum University,2019, 43(5): 88⁃94.
|
5 |
肖志朋, 刘诗琪, 李艳明, 等. 丘陵油田水驱后注气混相驱可行性实验[J]. 油气地质与采收率, 2023, 30(2): 68⁃76.
|
|
XIAO Z P, LIU S Q, LI Y M, et al. Experimental study on feasibility of gas⁃injection miscible flooding after water flooding of Qiuling Oilfield[J]. Petroleum Geology and Recovery Efficiency, 2023, 30(2): 68⁃76.
|
6 |
董凤娟. 注水开发阶段的储层评价与油水分布规律研究——以丘陵油田三间房组油藏为例[D]. 西安: 西北大学, 2010.
|
7 |
杨军朝. 丘陵油田层间干扰分析和剩余油潜力研究[J]. 当代化工研究, 2018(7): 76⁃77.
|
|
YANG J C. Interlayer interference analysis and residual oil potential study in hilly oilfield[J]. Modern Chemical Research, 2018(7): 76⁃77.
|
8 |
杨军朝. 丘陵油田陵二块剩余油分布研究[D]. 大庆: 东北石油大学, 2017.
|
9 |
高文君, 韩继凡, 葛新超, 等. 利用相渗曲线判断低渗油田水淹级别——以丘陵油田三间房组油藏为例[J]. 新疆石油地质, 2015, 36(5): 592⁃596.
|
|
GAO W J, HAN J F, GE X C, et al. Using relative permeability curves to identify sanjianfang low permeability reservoir's flooded level in Qiuling Oilfield[J]. Xinjiang Petroleum Geology, 2015, 36(5): 592⁃596.
|
10 |
曹战, 于鹏, 陈华. 基于注意力U⁃Net模型的露头裂缝自动识别方法[J]. 科学技术与工程, 2023, 23(10): 4149⁃4156.
|
|
CAO Z, YU P, CHEN H. An automatic identification method of outcrop crack based on attention U⁃Net model[J]. Science Technology and Engineering, 2023, 23(10): 4149⁃4156.
|
11 |
苏可嘉, 秦臻, 邓呈祥, 等. 致密砂岩裂缝填充识别及其测井响应特征——以鄂尔多斯盆地镇泾油田延长组为例[J]. 科学技术与工程, 2022, 22(21): 9095⁃9104.
|
|
SU K J, QIN Z, DENG C X, et al. Fracture filling identification and logging response characteristics of tight sandstone: A case study of Yanchang Formation in Zhenjing Oilfield, Ordos Basin[J]. Science Technology and Engineering, 2022, 22(21): 9095⁃9104.
|
12 |
蓝茜茜, 张逸伦, 康志宏. 基于样本优化的神经网络方法在储层裂缝识别中的应用[J]. 科学技术与工程, 2020, 20(21): 8530⁃8536.
|
|
LAN Q Q, ZHANG Y L, KANG Z H. Application of neural network based on sample optimization in reservoir fracture identification[J]. Science Technology and Engineering, 2020, 20(21): 8530⁃8536.
|
13 |
孙健, 李琪, 陈明强, 等. 致密砂岩储层裂缝型“甜点”的随钻识别方法[J]. 科学技术与工程, 2018, 18(15): 88⁃93.
|
|
SUN J, LI Q, CHEN M Q, et al. The identification method about fracture type "sweet spot" in tight sandstone reservoir while drilling[J]. Science Technology and Engineering, 2018, 18(15): 88⁃93.
|
14 |
王乐之,刘红磊,张纪喜,等.普光大湾地区断裂系统自动识别及裂缝建模研究[J].科学技术与工程,2013,13(18):5304⁃5307.
|
|
WANG L Z, LIU H L, ZHANG J X, et al. Study on the automatic recognition of fault⁃system and fracture modeling in dawan area of Puguang Gasfield[J]. Science Technology and Engineering, 2013, 13(18): 5304⁃5307.
|
15 |
冯沙沙,王坤,谢明英,等.基于测井曲线考虑纵向级差的海上重质油油藏产能预测新方法[J].特种油气藏,2024,31(2):136⁃142.
|
|
FENG S S,WANG K,XIE M Y,et al. A new method for productivity prediction of offshore heavy oil reservoirs based on logging curves considering longitudinal permeability ratio[J]. Special Oil & Gas Reservoirs,2024,31(2):136⁃142.
|
16 |
HAN C C, LI G, DAN S H, et al. Study of fractal and multifractal features of pore structure in tight sandstone reservoirs of the permian Lucaogou Formation,Jimsar Sag,Junggar Basin, northwest China[J].ACS Omega,2022,7(35):31352⁃31366.
|
17 |
KROHN C E. Fractal measurements of sandstones, shales, and carbonates[J]. Journal of Geophysical Research. Solid Earth, 1988, 93(B4): 3297⁃3305.
|
18 |
张庆莲, 侯贵廷, 潘文庆, 等. 构造裂缝的分形研究[J]. 应用基础与工程科学学报, 2011, 19(6): 853⁃861.
|
|
ZHANG Q L, HOU G T, PAN W Q, et al. Fractal study on structural fracture[J]. Journal of Basic Science and Engineering, 2011, 19(6): 853⁃861.
|
19 |
袁晓琪. 华庆油田白257区长6油藏裂缝识别及水驱规律研究[D]. 西安: 西安石油大学, 2019.
|
20 |
曹宏, 宋新民, 张爱卿. 冲积扇砾岩油藏裂缝预测新技术[J]. 石油学报, 2000, 21(6): 117⁃121.
|
|
CAO H, SONG X M, ZHANG A Q. A new technique to predict fractures of alluvial fan conglomerate reservoir[J]. Acta Petrolei Sinica, 2000, 21(6): 117⁃121.
|
21 |
王兆生, 曾联波, 张振国, 等. 巴喀油田裂缝发育特征及常规测井识别方法[J]. 新疆地质, 2012, 30(3): 359⁃362.
|
|
WANG Z S, ZENG L B, ZHANG Z G, et al. Feature of fracture development and evaluate fractures by conventional logging data in Baka Oilfield[J]. Xinjiang Geology, 2012, 30(3): 359⁃362.
|
22 |
牛永斌, 董小波, 朱信生, 等. 豫西北太行山奥陶系露头区裂缝发育特征及主控因素[J]. 现代地质, 2013(4): 809⁃818.
|
|
NIU Y B, DONG X B, ZHU X S, et al. Fracture characteristics and main controlling factors of ordovician outcrop zones of Taihang Mountains in the north⁃west of Henan province[J]. Geoscience, 2013(4): 809⁃818.
|
23 |
孙维凤, 宋岩, 公言杰, 等. 青西油田下沟组构造裂缝发育特征与分布预测[J]. 地质与勘探, 2014, 50(6): 1181⁃1189.
|
|
SUN W F, SONG Y, GONG Y J, et al. Characteristics and distribution prediction of structural fissures in the lower Cretaceous Xiagou Formation in the Qingxi Oilfield[J]. Geology and Exploration, 2014, 50(6): 1181⁃1189.
|
24 |
王珂, 张荣虎, 戴俊生, 等. 低渗透储层裂缝研究进展[J]. 地球科学与环境学报, 2015, 37(2): 44⁃58.
|
|
WANG K, ZHANG R H, DAI J S, et al. Review on low⁃permeability reservoir fracture[J]. Journal of Earch Sciences and Environment, 2015, 37(2): 44⁃58.
|