Lithologic Reservoirs ›› 2025, Vol. 37 ›› Issue (3): 84-94.doi: 10.12108/yxyqc.20250308

• PETROLEUM EXPLORATION • Previous Articles    

Characteristics and main controlling factors of Archean buried hill reservoir in Bohai Sea

WANG Lijuan1,2, HAN Denglin1,2, MA Liangshuai3, HU Rongrong4, WANG Chenchen2,5, MA Binyu1,2, YAN Kang1,2, ZHU Chaobin1,2   

  1. 1. School of Geosciences, Yangtze University, Wuhan 430100, China;
    2. Laboratory of Reservoir Microstructure Evolution and Digital Characterization, Yangtze University, Wuhan 430100, China;
    3. CNOOC Experimental Center, CNOOC Energy TechDrilling and Production Company, Tianjin 300452;
    4. School of Petroleum Engineering, Yangtze University, Wuhan 430100, China;
    5. Cooperative Innovation Center of Unconventional Oil and Gas, Yangtze University, Wuhan 430100, China
  • Received:2024-12-06 Revised:2025-01-19 Published:2025-05-10

Abstract: Based on core thin section analysis,X-ray diffraction analysis and logging data,the reservoir structure characteristics and main control factors of the M oilfield median buried hill and the BZ19-6 low buried hill in Bohai Sea area were studied. The results show that:(1)Longitudinally,the weathering zone reservoir in M oilfield median buried hill reservoir is well developed,and the pore-fracture type is dominant. The fractures in BZ19-6 low buried hill reservoir are particularly developed,and the weathering zone and the inner zone are dominated by fractured reservoirs. There are obvious differences in burial depth,source-reservoir contact and vertical zonation among different types of buried hill,lead to the differences in the microstructure of reservoirs in terms of pore throat space.(2)Multi-stage tectonic movement causes the differences in the zonation of different types buried hill reservoirs,paleogeomorphological structure restricts the plane distribution of buried hill reservoirs and the migration direction of organic acids,and weathering leaching indirectly improves the reservoir structure of different types of buried hills,and its improvement degree is controlled by buried hill fractures and weathering environment.(3)Different types of buried hill high quality reservoir development zone,have different characteristics. The BZ19-6 low buried hills high quality reservoirs are mainly concentrated in the deep inner fracture zone,and the M oilfield median buried hills are mainly distributed in the weathering zone at the top of the buried hills.

Key words: buried hill reservoir, median buried hill, low buried hill, micro structure, fracture type, pore-fracture type, tectonic movement, paleogeomorphology, Archaean, Bohai Sea

CLC Number: 

  • TE122.2
[1] LEVORSEN A I. Geology of Petroleum[M]. San Francisco:W. H. Freeman and Company,1954:703.
[2] LUO Jinglan,MORAD S,LIANG Zhigang,et al. Controls on the quality of Archean metamorphic and Jurassic volcanic reservoir rocks from the Xinglongtai buried hill,western depression of Liaohe basin,China[J]. AAPG Bulletin,2005,89(10):1319- 1346.
[3] LIU Guoping,ZENG Lianbo,LI Hongnan,et al. Natural fractures in metamorphic basement reservoirs in the Liaohe Basin, China[J]. Marine and Petroleum Geology,2020,119:104479.
[4] HOLDSWORTH R E,MCCAFFREY K J W,DEMPSEY E,et al. Natural fracture propping and earthquake-induced oil migration in fractured basement reservoirs[J]. Geology,2019,47(8):700-704.
[5] 范廷恩,牛涛,范洪军,等. 渤中19-6凝析气田太古界潜山储层地质模式及开发策略[J]. 中国海上油气,2021,33(3):85-92. FAN Ting'en,NIU Tao,FAN Hongjun,et al. Geological model and development strategy of Archean buried hill reservoir in BZ19-6 condensate field[J]. China Offshore Oil and Gas,2021, 33(3):85-92.
[6] 徐长贵,周家雄,杨海风,等. 渤海湾盆地大型变质岩潜山油田勘探发现及地质意义[J]. 石油学报,2023,44(10):1587-1598. XU Changgui,ZHOU jiaxiong,YANG Haifeng,et al. Discovery of large-scale metamorphic buried-hill oilfield in Bohai Bay Basin and its geological significance[J]. Acta Petrolei Sinica, 2023,44(10):1587-1598.
[7] 叶涛,牛成民,王清斌,等. 用"成分-结构"分类法识别古潜山变质岩岩性:以渤海海域太古界为例[J]. 岩性油气藏,2021, 33(6):156-164. YE Tao,NIU Chengmin,WANG Qingbin,et al. Identification of metamorphite lithology in paleo buried hill by compositionstructure classification:A case study from Archean in Bohai Sea[J]. Lithologic Reservoirs,2021,33(6):156-164.
[8] 牛成民,王飞龙,何将启,等. 渤海海域渤中19-6潜山气藏成藏要素匹配及成藏模式[J]. 石油实验地质,2021,43(2):259-267. NIU Chengmin,WANG Feilong,HE Jiangqi,et al. Accumulation factor matching and model of Bozhong 19-6 buried hill gas reservoir,Bohai Sea area[J]. Petroleum Geology & Experiment, 2021,43(2):259-267.
[9] 王德英,刘晓健,邓辉,等. 渤海湾盆地渤中19-6区中-新生代构造转换特征及其对太古宇潜山大规模储层形成的控制作用[J]. 石油与天然气地质,2022,43(6):1334-1346. WANG Deying,LIU Xiaojian,DENG Hui,et al. Characteristics of the Meso-Cenozoic tectonic transformation and its control on the formation of large-scale reservoirs in the Archean buried hills in Bozhong 19-6 area,Bohai Bay Basin[J]. Oil & Gas Geology,2022,43(6):1334-1346.
[10] 徐长贵,杜晓峰,刘晓健,等. 渤海海域太古界深埋变质岩潜山优质储集层形成机制与油气勘探意义[J]. 石油与天然气地质,2020,41(2):235-247. XU Changgui,DU Xiaofeng,LIU Xiaojian,et al. Formation mechanism of high-quality deep buried-hill reservoir of Archaean metamorphic rocks and its significance in petroleum exploration in Bohai Sea area[J]. Oil & Gas Geology,2020,41(2):235-247.
[11] 郑华,康凯,刘卫林,等. 渤海深层变质岩潜山油藏裂缝主控因素及预测[J]. 岩性油气藏,2022,34(3):29-38. ZHENG Hua,KANG Kai,LIU Weilin,et al. Main controlling factors and prediction of fractures in deep metamorphic buried hill reservoirs in Bohai Sea[J]. Lithologic Reservoirs,2022,34(3):29-38.
[12] 刘鹏程. 渤海海域典型区带太古宇变质岩潜山岩性分布规律与次生溶蚀孔隙成因[D]. 吉林:吉林大学,2024. LIU Pengcheng. Lithology distribution and secondary dissolution pores genesis of Archean metamorphic buried hills in the typical region of Bohai Sea area[D]. Jilin:Jilin University,2024.
[13] 徐长贵,侯明才,王粤川,等. 渤海海域前古近系深层潜山类型及其成因[J]. 天然气工业,2019,39(1):21-32. XU Changgui,HOU Mingcai,WANG Yuechuan,et al. Type and genesis of Pre-Tertiary deep buried hills in the Bohai Sea area[J]. Natural Gas Industry,2019,39(1):21-32.
[14] 李军,刘丽峰,赵玉合,等. 古潜山油气藏研究综述[J]. 地球物理学进展,2006,21(3):879-887. LI Jun,LIU Lifeng,ZHAO Yuhe,et al. A review of the research on ancient buried hill reservoirs[J]. Progress in Geophysics,2006,21(3):879-887.
[15] 牛成民,杜晓峰,王启明,等. 渤海海域新生界大型岩性油气藏形成条件及勘探方向[J]. 岩性油气藏,2022,34(3):1-14. NIU Chengmin,DU Xiaofeng,WANG Qiming,et al. Formation conditions and exploration direction of large-scale lithologic reservoirs of Cenozoic in Bohai Sea[J]. Lithologic Reservoirs,2022,34(3):1-14.
[16] 侯明才,曹海洋,李慧勇,等. 渤海海域渤中19-6构造带深层潜山储层特征及其控制因素[J]. 天然气工业,2019,39(1):33-44. HOU Mingcai,CAO Haiyang,LI Huiyong,et al. Characteristics and controlling factors of deep buried-hill reservoirs in the BZ19-6 structural belt,Bohai Sea area[J]. Natural Gas Industry,2019,39(1):33-44.
[17] 宋国民. 渤中凹陷19-6构造区太古界潜山变质岩裂缝型储层特征与控制因素分析[D]. 吉林:吉林大学,2021. SONG Guomin. Characteristics and control factors of Archean buried-hill metamorphic fractured reservoirs in the BZ19-6 Structural Region,Bozhong Sag[D]. Jilin:Jilin University,2021.
[18] 周家雄,杨海风,官大勇,等. 渤海湾盆地渤中26-6变质岩潜山大油田发现与认识创新[J]. 中国海上油气,2023,35(4):1-11. ZHOU Jiaxiong,YANG Haifeng,GUAN Dayong,et al. Discovery of BZ26-6 metamorphic rock buried hill oilfield in Bohai bay basin and understanding innovation[J]. China Offshore Oil and Gas,2023,35(4):1-11.
[19] 范廷恩,杜昕,樊鹏军,等. 断-貌双控渤中26-6油田太古界潜山储层综合预测[J]. 地球科学,2023,48(2):429-438. FAN Ting'en,DU Xin,FAN Pengjun,et al. Fault-landform double controlled Archean buried-hill reservoir integrated prediction for BZ26-6 Oil Field,Bohai Bay[J]. Earth Science,2023,48(2):429-438.
[20] 娄瑞,孙永河,张中巧. 渤海湾盆地渤南低凸起西段低角度正断层分段生长特征及其油气地质意义[J]. 石油与天然气地质,2024,45(3):710-721. LOU Rui,SUN Yonghe,ZHANG Zhongqiao. Segmented growth of low-angle normal faults in the western Bonan swell,Bohai Bay Basin and its petroleum geological significance[J]. Oil & Gas Geology,2024,45(3):710-721.
[21] 官大勇,石文龙,赵弟江,等. 渤海湾盆地渤中26-6潜山油田油气异源混合成藏特征及充注过程[J]. 地球科学,2025,50(2):478-493. GUAN Dayong,SHI Wenlong,ZHAO Dijiang,et al. Accumulation characteristics and charging process of heterogeneous mixed reservoir in Bozhong 26-6 buried hill oilfield,Bohai Bay Basin[J]. Earth Science,2025,50(2):478-493.
[22] 杜晓峰,刘晓健,张新涛,等. 渤海海域太古界变质岩储层特征与形成控制因素[J]. 中国海上油气,2021,33(3):15-27. DU Xiaofeng,LIU Xiaojian,ZHANG Xintao,et al. Characteristics and controlling factors of Archean metamorphic reservoirs in Bohai Sea area[J]. China Offshore Oil and Gas,2021,33(3):15-27.
[23] 孙夕平,张昕,李璇,等. 基于叠前深度偏移的基岩潜山风化淋滤带储层预测[J]. 岩性油气藏,2021,33(1):220-228. SUN Xiping,ZHANG Xin,LI Xuan,et al. Reservoir prediction for weathering and leaching zone of bedrock buried hill based on seismic pre-stack depth migration[J]. Lithologic Reservoirs, 2021,33(1):220-228.
[24] 张云蛟,王冠民,殷梓原. 富铝硅酸盐岩风化壳结构划分[J]. 石油学报,2024,45(9):1372-1384. ZHANG Yunjiao,WANG Guanmin,YIN Ziyuan. Classification scheme of weathering crusts structures for aluminosilicaterich rocks[J]. Acta Petrolei Sinica,2024,45(9):1372-1384.
[25] SHI Menglin,XIE Xinong,DU Xiaofeng,et al. Formation mechanism and evolution model of buried hill reservoir in BZ19-6 structural belt,Bozhong Sag,Bohai Bay,East China[J]. Geological Journal,2024,59:497-514.
[26] 刘文超,汪跃,廖新武,等. 渤海西南部海域变质岩潜山优质储层发育规律及成因机理[J]. 海洋地质前沿,2022,38(12):47-55. LIU Wenchao,WANG Yue,LIAO Xinwu,et al. Formation and origination of dominant reservoir in metamorphic buried hills in the southwestern Bohai Sea[J]. Marine Geology Frontiers, 2022,38(12):47-55.
[27] 王蔚. 渤海海域太古宇变质岩潜山构造演化及其裂缝发育特征研究[D]. 吉林:吉林大学,2023. WANG Wei. Study on tectonic evolution and fracture development characteristics of Archean metamorphic buried hill in Bohai sea area[D]. Jilin:Jilin University,2023.
[28] 刘彦鹏. 渤海湾盆地渤中19-6构造太古界变质岩潜山储层特征[D]. 成都:成都理工大学,2021. LIU Yanpeng. Characteristics of Archean metamorphic buried hill reservoirsin BZ19-6 structure,Bohai Bay Basin[D]. Chengdu:Chengdu University of Technology,2021.
[29] 任淑悦. 渤海湾盆地太古宇变质岩潜山储层表征及发育模式[D]. 吉林:吉林大学,2023. REN Shuyue. Characterization and development model of Archean metamorphic buried hill reservoirs in the Bohai Sea area[D]. Jilin:Jilin University,2023.
[30] 李娟,郑茜,孙松领,等. 应用测井储层因子预测变质碎屑岩裂缝-孔隙型储层:以海拉尔盆地贝尔凹陷基岩为例[J]. 岩性油气藏,2021,33(6):165-176. LI Juan,ZHENG Xi,SUN Songling,et al. Prediction of fracturepore reservoirs in metamorphic clastic rocks using logging reservoir factors:A case study of basement in Beier Sag,Hailar Basin[J]. Lithologic Reservoirs,2021,33(6):165-176.
[31] 庞小军,杜晓峰,王冠民,等. 渤海海域渤中19-6构造及围区深层孔店组砂砾岩优质储层成因及孔隙演化[J]. 地球科学, 2023,48(11):4153-4174. PANG Xiaojun,DU Xiaofeng,WANG Guanmin,et al. Genetic mechanism and pore evolution of high-quality glutenite reservoirs of deep Kongdian Formation in BZ19-6,Bohai Sea[J]. Earth Science,2023,48(11):4153-4174.
[32] 胡文隽. 长石的成岩过程及对储层物性的影响:以鄂尔多斯盆地上古生界为例[D]. 荆州:长江大学,2018. HU Wenjun. The diagenesis of feldspar and its effect on reservoir property:Take the upper Paleozoic in Ordos Basin as an example[D]. Jingzhou:Yangtze University,2018.
[33] 杜涛,曲希玉,王清斌,等. 渤中19-6凝析气田孔店组砂砾岩储层压实成岩裂缝垂向演化特征[J]. 吉林大学学报(地球科学版),2023,53(1):17-29. DU Tao,QU Xiyu,WANG Qingbin,et al. Vertical evolution characteristics of compaction diagenetic fractures in glutenite reservoirs of Kongdian Formationin Bozhong 19-6 Condensate Gas Field[J]. Journal of Jilin University(Earth Science Edition), 2023,53(1):17-29.
[34] 郭海峰,肖坤叶,程晓东,等. 乍得Bongor盆地花岗岩潜山裂缝型储层有效渗透率计算方法[J]. 岩性油气藏,2023,35(6):117-126. GUO Haifeng,XIAO Kunye,CHENG Xiaodong,et al. Determination of effective permeability of granitic buried-hill fractured reservoirs in Bongor Basin,Chad[J]. Lithologic Reservoirs,2023,35(6):117-126.
[35] 朱文奇,昝春景,张莹,等. 渤中凹陷西次洼古近系东营组异常高孔带特征及成因机制[J]. 岩性油气藏,2025,37(2):70-80.ZHU Wenqi,ZAN Chunjing,ZHANG Ying,et al. Characteristics and genetic mechanisms of anomalous high-porosity zones of the Paleogene Dongying Formation in western sub-sag of the Bozhong Sag[J]. Lithologic Reservoirs,2025,37(2):70-80.
[36] 朱博远,张超谟,张占松,等. 渤中19-6太古界潜山复杂岩性储层矿物组分反演[J]. 岩性油气藏,2020,32(4):107-114. ZHU Boyuan,ZHANG Chaomo,ZHANG Zhansong,et al. Mineral component inversion of complex lithologic reservoirs in Bozhong 19-6 Archean buried hill[J]. Lithologic Reservoirs, 2020,32(4):107-114.
[37] 吕丁友,杨海风,于海波,等. 渤海海域印支期逆冲推覆体系的分带性及其动力学成因机制[J]. 石油与天然气地质, 2023,44(3):720-734. LYU Dingyou,YANG Haifeng,YU Haibo,et al. Zonation and dynamic genetic mechanism of the Indosinian thrust nappe system in Bohai Sea[J]. Oil & Gas Geology,2023,44(3):720-734.
[38] 缪欢,王延斌,何川,等. 渤海湾盆地埕北断阶带断裂发育特征及其控藏作用[J]. 岩性油气藏,2022,34(2):105-115. MIAO Huan,WANG Yanbin,HE Chuan,et al. Fault development characteristics and reservoir control in Chengbei fault step zone,Bohai Bay Basin[J]. Lithologic Reservoirs,2022,34(2):105-115.
[39] 廖新武,谢润成,周文,等. 古地貌对渤海湾盆地B区块太古宇暴露型潜山变质岩风化带储层裂缝发育的影响[J]. 石油与天然气地质,2023,44(2):406-417. LIAO Xinwu,XIE Runcheng,ZHOU Wen,et al. The effects of paleogeomorphology on the development of fractures in reservoirs of weathering metamorphic zone in an exposed Archean burial hill,Block B,Bohai Bay Basin[J]. Oil & Gas Geology, 2023,44(2):406-417.
[40] 李娟,孙松领,陈广坡,等. 海拉尔盆地浅变质岩潜山岩性控储特征及储层岩性序列识别[J]. 岩性油气藏,2018,30(4):26-36. LI Juan,SUN Songling,CHEN Guangpo,et al. Controlling of epimetamorphic rock lithology on basement reservoir and identification of lithological sequence of reservoir in Hailar Basin[J]. Lithologic Reservoirs,2018,30(4):26-36.
[41] 谢玉洪. 渤海湾盆地渤中凹陷太古界潜山气藏BZ19-6的气源条件与成藏模式[J]. 石油实验地质,2020,42(5):858-866. XIE Yuhong. Gas resources and accumulation model of BZ19- 6 Archean buried-hill large-scale gas reservoir in Bozhong sag, Bohai Bay Basin[J]. Petroleum Geology & Experiment,2020, 42(5):858-866.
[42] 刘志峰,朱小二,柳广弟,等. 渤中凹陷西洼古近系和新近系油气成藏差异对比[J]. 岩性油气藏,2025,37(1):78-89. LIU Zhifeng,ZHU Xiaoer,LIU Guangdi,et al. Study on the difference of petroleum accumulation between Paleogene and Neogene in the western Bozhong Sag,Bohai Bay Basin[J]. Lithologic Reservoirs,2025,37(1):78-89.
[43] 牛成民,王飞龙,叶涛,等. 渤海海域潜山油气运移模式与运聚能力定量评价[J]. 中国海上油气,2021,33(3):1-14. NlU Chengmin,WANG Feilong,YE Tao,et al. Oil and gas migration models and quantitative evaluation on migration and accumulation capacity of buried hills in Bohai sea area[J]. China Offshore Oil and Gas,2021,33(3):1-14.
[44] 薛永安,王奇,牛成民,等. 渤海海域渤中凹陷渤中19-6深层潜山凝析气藏的充注成藏过程[J]. 石油与天然气地质, 2020,41(5):891-902. XUE Yong'an,WANG Qi,NIU Chengmin,et al. Hydrocarbon charging and accumulation of BZ19-6 gas condensate field in deep buried hills of Bozhong Depression,Bohai Sea[J]. Oil & Gas Geology,2020,41(5):891-902.
[45] 薛永安,许鹏,汤国民. 渤中凹陷西南环特大型高产油气聚集带的发现与勘探启示[J]. 中国海上油气,2023,35(3):1-11. XUE Yong'an,XU Peng,TANG Guomin. Discovery and exploration implications of super-large high-yield oil and gas accumulation zone in the southwest belt of Bozhong sag[J]. China Offshore Oil and Gas,2023,35(3):1-11.
[46] 何雁兵,肖张波,郑仰帝,等. 珠江口盆地陆丰13洼转换带中生界陆丰7-9潜山成藏特征[J]. 岩性油气藏,2023,35(3):18-28. HE Yanbing,XIAO Zhangbo,ZHENG Yangdi,et al. Hydrocarbon accumulation characteristics of Mesozoic Lufeng 7-9 buried hill in Lufeng 13 subsag transition zone,Pearl River Mouth Basin[J]. Lithologic Reservoirs,2023,35(3):18-28.
[47] YUAN Guanghui,CAO Yingchang,GLUYAS J,et al. Feldspar dissolution,authigenic clays,and quartz cements in open and closed sandstone geochemical systems during diagenesis:Typical examples from two sags in Bohai Bay Basin,East China[J]. AAPG Bulletin,2015,99(11):2121-2154.
[48] YE Tao,CHEN Anqing,YANG Haifeng,et al. Tectonism and fracture-related dissolution induced the formation of the largescale metamorphic granite reservoir:Implications from Bozhong 26-6 Precambrian bedrock trap,offshore Bohai Bay basin, Northern China[J]. Marine and Petroleum Geology,2024,160:106593.
[49] WANG Wei,YI Jian,SHAN Xuanlong,et al. Characteristics of fractures development and its controlling factors within the buried hill reservoirs from the Archaean metamorphic basement in the Bozhong Sag,Bohai Bay Basin,Eastern China[J]. Frontiers in Earth Science,2022,19:935508.
[50] LIU Chaoyang,LI Huiyong,SHAN Xuanlong,et al. Development mechanism of metamorphic fractured reservoirs in the Bozhong area,Bohai Bay Basin:Implications from tectonic and magmatic hydrothermal activities[J]. Geoenergy Science and Engineering, 2023,229:212030.
[51] 施和生,王清斌,王军,等. 渤中凹陷深层渤中19-6构造大型凝析气田的发现及勘探意义[J]. 中国石油勘探,2019,24(1):36-45. SHI Hesheng,WANG Qingbin,WANG Jun,et al. Discovery and exploration significance of large condensate gas fields in BZ19-6 structure in deep Bozhong sag[J]. China Petroleum Exploration,2019,24(1):36-45.
[52] 窦立荣,李志,杨紫,等. 中国石油海外岩性地层油气藏勘探进展与前景展望[J]. 岩性油气藏,2023,35(6):1-9. DOU Lirong,LI Zhi,YANG Zi,et al. Exploration progress and outlook for lithostratigraphic reservoirs of CNPC overseas[J]. Lithologic Reservoirs,2023,35(6):1-9.
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