| [1] |
DATTA-GUPTA A, KING M J. Streamline simulation: Theory and practice[M]. Houston: Society of Petroleum Engineers, 2007.
|
| [2] |
CHENG H, OYERINDE D, DATTA-GUPTA A, et al. Compressible streamlines and three-phase history matching[J]. SPE Journal, 2007, 12(4): 475-485.
doi: 10.2118/99465-PA
URL
|
| [3] |
SCHULZE-RIEGERT R W, AXMANN J K, HAASE O, et al. Evolutionary algorithms applied to history matching of complex reservoirs[J]. SPE Reservoir Evaluation & Engineering, 2002, 5(2): 163-173.
|
| [4] |
SCHULZE-RIEGERT R W, HAASE O, NEKRASSOV A. Combined global and local optimization techniques applied to history matching[C]// SPE Reservoir Simulation Symposium, Houston, Texas, 2003: SPE-79668-MS.
|
| [5] |
CHENG H, DATTA-GUPTA A, HE Z. A comparison of travel-time and amplitude matching for field-scale production-data integration: Sensitivity, nonlinearity, and practical implications[J]. SPE Journal, 2005, 10(1): 75-90.
doi: 10.2118/84570-PA
URL
|
| [6] |
CHEN H Q, YANG C D, DATTA-GUPTA A, et al. A hierarchical multiscale framework for history matching and optimal well placement for a HPHT fractured gas reservoir, Tarim Basin, China[C]// International Petroleum Technology Conference, Beijing, China, 2019: D021S037R004.
|
| [7] |
ZHANG R X, DATTA-GUPTA A, PARK J, et al. Multi-stage three-phase and compositional history matching: Field application to CO2 enhanced oil recovery in the Permian Basin, Texas[J]. Fuel, 2025, 387: 134339.
doi: 10.1016/j.fuel.2025.134339
URL
|
| [8] |
CHEN H Q, PARK J, DATTA-GUPTA A, et al. Improving polymerflood performance via streamline-based rate optimization: Mangala field, India[C]// SPE Improved Oil Recovery Conference, Virtual, 2020: D011S006R003.
|
| [9] |
张道伟. 四川盆地未来十年天然气工业发展展望[J]. 天然气工业, 2021, 41(8): 34-45.
|
|
[ZHANG D W. Development prospect of natural gas industry in the Sichuan Basin in the next decade[J]. Natural Gas Industry, 2021, 41(8): 34-45.]
|
| [10] |
张烈辉, 胡勇, 李小刚, 等. 四川盆地天然气开发历程与关键技术进展[J]. 天然气工业, 2021, 41(12): 60-72.
|
|
[ZHANG L H, HU Y, LI X G, et al. History and key technological progress of natural gas development in the Sichuan Basin[J]. Natural Gas Industry, 2021, 41(12): 60-72.]
|
| [11] |
李熙喆, 郭振华, 万玉金, 等. 安岳气田龙王庙组气藏地质特征与开发技术政策[J]. 石油勘探与开发, 2017, 44(3): 398-406.
doi: 10.11698/PED.2017.03.09
|
|
[LI X Z, GUO Z H, WAN Y J, et al. Geological characteristics and development strategies for Cambrian Longwangmiao Formation gas reservoir in Anyue gas field, Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2017, 44(3): 398-406.]
doi: 10.11698/PED.2017.03.09
|
| [12] |
李勇, 张亚, 周刚, 等. 四川盆地蓬莱气田寒武系龙王庙组优质储层特征及主控因素[J]. 岩性油气藏, 2025, 37(6): 35-47.
doi: 10.12108/yxyqc.20250604
|
|
[LI Y, ZHANG Y, ZHOU G, et al. Characteristics and main controlling factors of high-quality reservoirs in Cambrian Longwangmiao Formation of Penglai Gasfield, Sichuan Basin[J]. Lithologic Reservoirs, 2025, 37(6): 35-47.]
doi: 10.12108/yxyqc.20250604
|
| [13] |
张亚, 武鲁亚, 李勇, 等. 四川盆地川中古隆起北斜坡蓬莱气区寒武系龙王庙组天然气成藏机制[J]. 天然气工业, 2025, 45(7): 81-95.
|
|
[ZHANG Y, WU L Y, LI Y, et al. Natural gas accumulation mechanism of the Cambrian Longwangmiao Formation in the Penglai area on the northern slope of Central Sichuan paleouplift[J]. Natural Gas Industry, 2025, 45(7): 81-95.]
|
| [14] |
王强. 四川盆地寒武系龙王庙组储层特征及主控因素研究[D]. 成都: 西南石油大学, 2022.
|
|
[WANG Q. Research on reservoir characteristics and main controlling factors of longwangmiao formation of Cambrian in Sichuan Basin[D]. Chengdu: Southwest Petroleum University, 2022.]
|
| [15] |
CNPC. Longwangmiao Gas Reservoir[R]. Beijing: China National Petroleum Corporation, 2018.
|
| [16] |
LI P Y, CHENG C, RUAN J F, et al. Gas-water distribution pattern of large-scale low and gentle structure gas reservoirs: A case study of the Longwangmiao Formation gas reservoir in MX gas field in Sichuan Basin[J]. Desalination and Water Treatment, 2022, 268: 254-263.
doi: 10.5004/dwt.2022.28697
URL
|
| [17] |
GUO Z Q, ZHAO W Z, WEI G Q, et al. Characteristics, evolution, and formation of pressure in the Sinian-Cambrian gas reservoirs of the Anyue gas field, Sichuan Basin, China[J]. AAPG Bulletin, 2022, 106(10): 1939-1973.
doi: 10.1306/02072220030
URL
|
| [18] |
沈安江, 乔占峰, 佘敏, 等. 基于溶蚀模拟实验的碳酸盐岩埋藏溶蚀孔洞预测方法: 以四川盆地龙王庙组储层为例[J]. 石油与天然气地质, 2021, 42(3): 690-701.
|
|
[SHEN A J, QIAO Z F, SHE M, et al. Prediction of burial dissolved vugs in carbonates based on dissolution simulation: A case study of the Longwangmiao Formation dolostone reservoirs, Sichuan Basin[J]. Oil & Gas Geology, 2021, 42(3): 690-701.]
|
| [19] |
谢武仁, 杨威, 李熙喆, 等. 四川盆地川中地区寒武系龙王庙组颗粒滩储层成因及其影响[J]. 天然气地球科学, 2018, 29(12): 1715-1726.
doi: 10.11764/j.issn.1672-1926.2018.11.010
|
|
[XIE W R, YANG W, LI X Z, et al. The origin and influence of the grain beach reservoirs of Cambrian Longwangmiao Formation in Central Sichuan area, Sichuan Basin[J]. Natural Gas Geoscience, 2018, 29(12): 1715-1726.]
|
| [20] |
王蓓, 刘向君, 司马立强. 四川盆地磨溪地区寒武系龙王庙组缝洞型储集层分级评价及预测[J]. 石油勘探与开发, 2019, 46(2): 290-301.
doi: 10.11698/PED.2019.02.09
|
|
[WANG B, LIU X J, SIMA L Q. Grading evaluation and prediction of fracture-cavity reservoirs in Cambrian Longwangmiao Formation of Moxi area, Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2019, 46(2): 290-301.]
|
| [21] |
张天付, 付小东, 李文正, 等. 四川盆地安岳特大型气田不同产能状态下龙王庙组的储层特征[J]. 石油学报, 2020, 41(9): 1049-1059, 1116.
doi: 10.7623/syxb202009002
|
|
[ZHANG T F, FU X D, LI W Z, et al. Reservoir characteristics of Longwangmiao Formation under different productivity conditions in the Anyue giant gas field, Sichuan Basin[J]. Acta Petrolei Sinica, 2020, 41(9): 1049-1059, 1116.]
doi: 10.7623/syxb202009002
|
| [22] |
徐昉昊, 袁海锋, 徐国盛, 等. 四川盆地磨溪构造寒武系龙王庙组流体充注和油气成藏[J]. 石油勘探与开发, 2018, 45(3): 426-435.
doi: 10.11698/PED.2018.03.07
|
|
[XU F H, YUAN H F, XU G S, et al. Fluid charging and hydrocarbon accumulation in the Cambrian Longwangmiao Formation of Moxi Structure, Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2018, 45(3): 426-435.]
doi: 10.11698/PED.2018.03.07
|
| [23] |
吴娟, 刘树根, 赵异华, 等. 四川盆地高石梯-磨溪构造震旦系-寒武系含气层系流体特征[J]. 成都理工大学学报(自然科学版), 2014, 41(6): 713-722.
|
|
[WU J, LIU S G, ZHAO Y H, et al. Fluid characteristics of Upper Sinian-Lower Cambrian petroliferous strata in Gaoshiti-Moxi structure of Sichuan Basin, China[J]. Journal of Chengdu University of Technology (Science & Technology Edition), 2014, 41(6): 713-722.]
|
| [24] |
李明强, 马梓珂, 唐松, 等. 四川盆地磨溪地区龙王庙组碳酸盐岩气藏水侵规律[J]. 天然气地球科学, 2024, 35(2): 366-378.
doi: 10.11764/j.issn.1672-1926.2023.08.002
|
|
[LI M Q, MA Z K, TANG S, et al. Water invasion law of carbonate gas reservoir of Longwangmiao Formation in Moxi area, Sichuan Basin[J]. Natural Gas Geoscience, 2024, 35(2): 366-378.]
|
| [25] |
雍锐, 张连进, 李滔, 等. 四川盆地安岳气田寒武系龙王庙组气藏开发中后期高效治水关键技术[J]. 天然气工业, 2025, 45(7): 1-11.
|
|
[YONG R, ZHANG L J, LI T, et al. Key technologies for efficient water management in the middle and late development stages of the Cambrian Longwangmiao Formation gas reservoir in the Anyue Gas Field of the Sichuan Basin[J]. Natural Gas Industry, 2025, 45(7): 1-11.]
|
| [26] |
孙珂, 徐珂, 陈清华. 低渗透储层构造裂缝长度表征及应用: 以四川盆地磨溪—高石梯地区寒武系龙王庙组为例[J]. 石油实验地质, 2022, 44(1): 160-169.
|
|
[SUN K, XU K, CHEN Q H. Characterization of the length of structural fractures in low permeability reservoirs and its application: A case study of Longwangmiao Formation in Moxi-Gaoshiti areas, Sichuan Basin[J]. Petroleum Geology and Experiment, 2022, 44(1): 160-169.]
|
| [27] |
李熙喆, 卢德唐, 罗瑞兰, 等. 复杂多孔介质主流通道定量判识标准[J]. 石油勘探与开发, 2019, 46(5): 943-949.
doi: 10.11698/PED.2019.05.13
|
|
[LI X Z, LU D T, LUO R L, et al. Quantitative criteria for identifying main flow channels in complex porous media[J]. Petroleum Exploration and Development, 2019, 46(5): 943-949.]
doi: 10.1016/S1876-3804(19)60251-X
URL
|
| [28] |
张满郎, 郭振华, 张林, 等. 四川安岳气田龙王庙组颗粒滩岩溶储层发育特征及主控因素[J]. 地学前缘, 2021, 28(1): 235-248.
doi: 10.13745/j.esf.sf.2020.5.22
|
|
[ZHANG M L, GUO Z H, ZHANG L, et al. Characteristics of and main factors controlling the karst shoal reservoir of the Lower Cambrian Longwangmiao Formation in the Anyue gas field, central Sichuan Basin, China[J]. Earth Science Frontiers, 2021, 28(1): 235-248.]
doi: 10.13745/j.esf.sf.2020.5.22
|
| [29] |
LIU T, ZHANG R X. A machine learning-based hybrid model for fracture parameterization and distribution prediction in unconventional reservoirs[J]. Computers and Geotechnics, 2024, 168: 106146.
doi: 10.1016/j.compgeo.2024.106146
URL
|
| [30] |
ZHANG R X, CHEN H Q. Robust waterflood optimization under geological uncertainties using streamline-based well pair efficiencies and assimilated models[J]. Geoenergy Science and Engineering, 2023, 231: 212309.
doi: 10.1016/j.geoen.2023.212309
URL
|
| [31] |
ZHANG R X, DATTA-GUPTA A. Streamline-based robust rate allocation optimization for polymer flooding considering geological uncertainty[C]// SPE Improved Oil Recovery Conference, Tulsa, Oklahoma, USA, 2024: D031S014R002.
|