Diagenetic of the Mesozoic complex weathering crust reservoir rock in Fulin subsag,Jiyang Depression
Zhu Shi-Fa1,2, Jia Ye1,2, Wan Chao-Fan1,2, Ma Li-Chi3, Cui Dian3, Sun Chao3, Jing An-Yu3
1 State Key Laboratory of Petroleum Resources and Prospecting,China University of Petroleum(Beijing),Beijing 102249,China; 2 College of Geosciences,China University of Petroleum,Beijing 102249,China; 3 Exploration and Development Research Institute,Shengli Oilfield Company,SINOPEC,Shandong Dongying 257015,China
Abstract The formation of weathering crust reservoirs and the analysis of their differences have become the current research focus of reservoir geology. The Mesozoic oil and gas exploration in the Fulin subsag of Zhanhua sag in the Jiyang Depression of Bohai Bay Basin has encountered its bottleneck. Only the weathering crust at top of the Cretaceous is currently penetrated by exploration wells and the weathering crust reservoir is characterized by complex lithology and high heterogeneity. In order to enhance exploration in the Mesozoic buried hill reservoir in the study area and even the Jiyang Depression,it's of great importance to figure out diagenetic evolution,reservoir space types and their combination relationships. The complex lithology of weathering crust reservoir rock of the Cretaceous Xiwa Formation in the Fulin subsag was studied by core and thin section observation combining with well logging data. The results show that the key lithologies of weathering crust include andesite and tuff,followed by dyke,cryptoexplosive breccia and glutenite. During the complex burial process,different tectonic units underwent the evolution of 'sag-uplift-uplift' or 'sag-uplift-sag',resulting in significant differences for diagenetic sequence and pore evolution of different reservoir rocks. The primary pore types and their genesis of igneous and clastic rocks are obviously different,but the present reservoir space is dominated by secondary pores,especially dissolution pores. The dissolved material includes porphyry,matrix and volcanic debris. The dominant fluid for dissolution is variable. In addition to the atmospheric fresh water rich in CO2 during the uplifting and exposure,the organic acid discharged during the maturation of organic matter has a positive effect on improving reservoir quality. The formation of favorable weathering crust reservoir rock is controlled by lithology,burial evolution and diagenetic fluid. On the whole,the reservoir quality order of the Cretaceous Xiwa Formation in the Fulin subsag is as follow: Volcaniclastic rock,vesicular andesite,tuff,subvolcanic rock. Different weathering crust reservoir rocks in the study area underwent different diagenetic modification during the complex burial process.
Fund:Financially supported by the National Natural Science Foundation of China(Nos.41872102,41202107)
About author: About the first author Zhu Shi-Fa,born in 1982,doctor,is an associate professor and doctoral supervisor. Now he is mainly engaged in the teaching and research of oil and gas reservoir geology. E-mail: sfzhu@cup.edu.cn.
Cite this article:
Zhu Shi-Fa,Jia Ye,Wan Chao-Fan et al. Diagenetic of the Mesozoic complex weathering crust reservoir rock in Fulin subsag,Jiyang Depression[J]. JOPC, 2020, 22(3): 555-569.
Zhu Shi-Fa,Jia Ye,Wan Chao-Fan et al. Diagenetic of the Mesozoic complex weathering crust reservoir rock in Fulin subsag,Jiyang Depression[J]. JOPC, 2020, 22(3): 555-569.
[1] 迟唤昭. 2016. 松辽盆地徐家围子断陷营城组火山岩风化壳及其储层预测. 吉林大学博士论文. [Chi H Z.2016. Volcanic weathering crust and its reservoir prediction of Yingcheng Formation in Xujiaweizi Fault Depression,Songliao Basin. Doctoral dissertation of Jilin University] [2] 郭峰,崔殿. 2016. 孤西地区中生界火山岩储层发育机制. 西南石油大学学报(自然科学版), 38(2): 39-48. [Guo F,Cui D.2016. The development mechanism of Mesozoic volcanic reservoirs in Guxi area. Journal of Southwest Petroleum University(Science & Technology Edition), 38(2): 39-48] [3] 侯连华,王京红,邹才能,张光亚,王志勇,杨春,林潼. 2011. 火山岩风化体储层控制因素研究: 以三塘湖盆地石炭系卡拉岗组为例. 地质学报, 85(4): 557-568. [Hou L H,Wang J J,Zou C N,Zhang G Y,Wang Z Y,Yang C,Lin T.2011. Controlling factors of weathering volcanic reservoir: An example from the Carboniferous Kalagang Formation in Santanghu Basin. Acta Geologica Sinica, 85(4): 557-568] [4] 侯旭波. 2010. 济阳坳陷构造反转特征及其与叠合盆地演化关系. 中国石油大学(华东)博士论文. [Hou X B.2010. The Development Characteristic of Structures Inversion in Jiyang Depression and Its Relationship with the Evolution of Superimposed Basin. Doctoral dissertation of China University of Petroleum(East China)] [5] 黄玉龙,王璞珺,邵锐. 2010. 火山碎屑岩的储层物性: 以松辽盆地营城组为例. 吉林大学学报(地球科学版), 40(2): 227-236. [Huang Y L,Wang P J,Shao R.2010. Porosity and permeability of pyroclastic rocks of the Yingcheng Formation in Songliao Basin. Journal of Jilin University(Earth Science Edition): 40(2): 227-236] [6] 李伟. 2007. 渤海湾盆地区中生代盆地演化与前第三系油气勘探. 中国石油大学(华东)博士论文. [Li W.2007. Mesozoic Basin Evolution and the Exploration of the Pre-Tertiary Petroleum in the area of Bohai Bay Basin. Doctoral dissertation of China University of Petroleum(East China)] [7] 林会喜,宫亚军,赵乐强,闵飞琼,曾治平,管永国,牛靖靖. 2019. 火山岩风化壳发育规律及油气地质意义: 以准西车排子地区石炭系火山岩为例. 油气地质与采收率, 26(6): 11-18. [Ling H X,Gong Y J,Zhao L Q,Min F Q,Zheng Z P,Gan Y G,Niu J J.2019. Volcanic weathering crust development pattern and its petrogeological significance: A case study of Carboniferous volcanic crust of Chepaizi area in West Junggar Basin. Petroleum Geology and Recovery Efficiency, 26(6): 11-18] [8] 毛治国,崔景伟,綦宗金,王京红,苏玲. 2018. 风化壳储层分类、特征及油气勘探方向. 岩性油气藏, 30(2): 12-22. [Mao Z G,Cui J W,Qi Z J,Wang J H,Su L.2018. Classification,characteristics and petroleum exploration of weathering crust reservoir. Lithologic Reservoirs, 30(2): 12-22] [9] 曲希玉,刘立,蒙启安,于淼,张革,吴文波. 2012. 大气水对火山碎屑岩改造作用的研究: 以塔木查格盆地为例. 石油实验地质, 34(3): 285-290. [Qu X Y,Liu L,Meng Q A,Yu M,Zhang G,Wu W B.2012. Reformation effect of atmospheric water on volcanic clastic rocks: A case study in Tamtsag Basin,Mongolia. Petroleum geology & Experiment, 34(3): 285-290] [10] 王璞珺,冯志强. 2008. 盆地火山岩: 岩性·岩相·储层·气藏·勘探. 北京: 科学出版社. [Wang P J,Feng Z Q. 2008. Basin Volcanic Rocks: Lithology,Lithofacies,Reservoirs,Gas Reservoirs,Exploration. Beijing: Science Press] [11] 王璞珺,迟元林,刘万洙,程日辉,单玄龙,任延广. 2003. 松辽盆地火山岩相: 类型、特征和储层意义. 吉林大学学报(地球科学版): 33(4): 449-456. [Wang P J,Chi Y L,Liu W S,Cheng R H,Shan X L,Ren Y G.2003. Volcanic facies in Songliao Basin: Types,characteristics and reservoir significance. Journal of Jilin University(Earth Science Edition): 33(4): 449-456] [12] 王璞珺,陈树民,李伍志,陈汉林,郎元强. 2010. 松辽盆地白垩纪火山期后热液活动的岩石地球化学和年代学及其地质意义. 岩石学报, 26(1): 33-46. [Wang P J,Chen S M,Li W Z,Chen H L,Lang Y Q.2010. Chronology,petrology and geochemistry of the Cretaceous crypto-explosive,breccia-bearing volcanic rocks: Implications for volcanic reservoir and tectonics. Acta Petrologica Sinica, 26(1): 33-46] [13] 王迪. 2016. 沾化凹陷孤西地区中生界构造特征及其对储层发育的影响. 中国石油大学(华东)硕士论文. [Wang D.2016. Structural feature of Mesozoic Erathem and its influence on reservoirs in Guxi Area,Zhanhua Sag. Masteral dissertation of China University of Petroleum(East China)] [14] 王岩泉,王金铎,王千军,隋风贵,石好果,徐佑德. 2019. 火山碎屑岩成岩作用及对储层储集性能的影响: 以准噶尔盆地车排子地区石炭系为例. 中国矿业大学学报, 48(2): 405-414. [Wang Y Q,Wang J D,Wang Q J,Sui F G,Shi H G,Xu Y D.2019. Diagenesis of volcanic clastic rocks and its control over reservoir performance: A case study of the Carboniferous system in Chepaizi area,Junggar Basin. Journal of China University of Mining & Technology, 48(2): 405-414] [15] 吴智平,李伟,郑德顺,吕洪波. 2004. 沾化凹陷中、新生代断裂发育及其形成机制分析. 高校地质学报, 10(3): 405-417. [Wu Z P,Li W,Zheng D S,Lü H B.2004. Analysis on features and origins of the Mesozoic and Cenozoic faults in Zhanhua sag. Geological Journal of China Universities, 10(3): 405-417] [16] 肖焕钦. 2006. 济阳坳陷中生代原型盆地的恢复. 中国科学院研究生院(广州地球化学研究所)博士论文. [Xiao H Q.2006. Reconstruction of the Mesozoic Basin of Jiyang Depression. Doctoral dissertation of Graduate School of Chinese Academy of Science(Guangzhou Institute of Geochemistry)] [17] 徐振中,陈世悦,姚军,王永诗. 2009. 残留盆地沉积相研究方法: 以济阳坳陷中生代盆地为例. 世界地质, 28(2): 199-206. [Xu Z Z,Chen S Y,Yao J,Wang Y S.2009. Methods for the study of sedimentary facies in residual basins: A case study of the Mesozoic basins in Jiyang depression. Global Geology, 28(2): 199-206] [18] 赵海玲,黄微,王成,狄永军,齐井顺,肖勇,刘杰. 2009. 火山岩中脱玻化孔及其对储层的贡献. 石油与天然气地质, 30(1): 47-52,58. [Zhao H L,Huang W,Wang C,Di Y J,Qi J S,Xiao Y,Liu J.2009. Micropores from devitrification in volcanic rocks and their contribution to reservoirs. Oil & Gas Geology, 30(1): 47-52,58] [19] 邹才能,侯连华,陶士振,袁选俊,朱如凯,张响响,李富恒,庞正炼. 2011. 新疆北部石炭系大型火山岩风化体结构与地层油气成藏机制. 中国科学: 地球科学, 41(11): 1613-1626. [Zou C N,Hou L H,Tao S Z,Yuan X J,Zhu R K,Zhang X X,Li F H,Pang Z L.2011. Hydrocarbon accumulation mechanism and structure of large-scale volcanic weathering crust of the Carboniferous in northern Xinjiang,China. Science China: Earth Sciences, 41(11): 1613-1626] [20] 邹才能,侯连华,杨帆,杨春,陶士振,袁选俊,朱如凯. 2014. 碎屑岩风化壳结构及油气地质意义. 中国科学: 地球科学, 44(12): 2652-2664. [Zou C N,Hou L H,Yang F,Yang C,Tao S Z,Yuan X J,Zhu R K.2014. Structure of weathered clastic crust and its petroleum potential. Science China: Earth Sciences, 44(12): 3015-3026] [21] Heward A P.1989. Early Ordovician alluvial fan deposits of the Marmul oilfield, South Oman. Journal of the Geological Society, 146(3):557-565. [22] Luneva T,Lobova G,Fomin A.2016. Oil and gas presence perspectives of weathering layer reservoir of Nurol'ka mega-basin according to data of geothermics. IOP Conference Series: Earth and Environmental Science, 43(1): 12-14. [23] Nakashima K.2005. Petroleum potential in the East Siberian region. Journal of the Japanese Association for Petroleum Technology, 70(2): 132-141. [24] Patricia S,Nora R.2007. Processes controlling porosity and permeability in volcanic reservoirs from the Austral and Neuquén basins,Argentina. AAPG Bulletin, 91(1): 115-129. [25] Yuan G,Cao Y,Jia Z.2015. Selective dissolution of feldspars in the presence of carbonates: The way to generate secondary pores in buried sandstones by organic CO2. Marine and Petroleum Geology, 60: 105-119. [26] Zhuravlev E G.2009. Oil and gas pools in weathering crusts on the sedimentary basin basement. Lithology and Mineral Resources, 44(3): 298-303.