Lithologic Reservoirs ›› 2021, Vol. 33 ›› Issue (5): 59-69.doi: 10.12108/yxyqc.20210506

• PETROLEUM GEOLOGY • Previous Articles     Next Articles

Characteristics and genesis of Oxfordian microbial limestone reservoirs in eastern Amu Darya Basin

MA Wenxin, OUYANG Cheng, LIAO Boyong, XU Qiukang, CHEN Renjin, WANG Xin, XIA Huiping, ZHANG Ting   

  1. Research Institute of Geological Exploration & Development, Chuanqing Drilling Engineering Co., Ltd., CNPC, Chengdu 610051, China
  • Received:2020-11-02 Revised:2021-02-09 Online:2021-10-01 Published:2021-09-30

Abstract: The Upper Jurassic Oxfordian microbial limestone layer is the most important oil & gas exploration target layer in eastern Amu Darya Basin. Clarifying the characteristics and genesis of this microbial reservoir has important theoretical and practical significance for oil & gas exploration and development. Based on cores, thin sections, physical properties and geochemical analysis data of 36 wells, combined with logging and seismic data, the sedimentary microfacies characteristics, reservoir petrology and physical properties, reservoir space characteristics and reservoir types were studied, and the genesis of microbial limestone reservoir was discussed. The results show that the depositional environment of Karabek Sag-Sandy Klei uplift-Beishkent depression is undulating up gentle slope, and microfacies of microbial adhesion mound, reef, shoal, mound shoal or reef shoal are widely developed. Thrombolite is the best reservoir rocks with type Ⅱ. Pellets, sand, biological limestone, which are formed by microbial aggregation or bonded, is the secondly developed reservoir rocks with type Ⅲ. The depositional environment of Kisar piedmont front is bottom gentle slope, mainly developed microfacies containing microbial particles muddy limestone, and reservoir rocks are microbial granular micrite limestone and micritic limestone with type Ⅳ reservoir, which formed by tectonic movement and dissolution transformation. It is concluded that favorable microbial adhesion mounds, reefs, shoals have been in a shallow buried diagenetic environment with a long time, which is conducive to preservation of primary intragranular pores. It is an important foundation for the development and formation of Oxfordian microbial rock reservoirs in the study area. The faults and microcracks, formed in two stages of tectonic movement(Late Yanshan 119 Ma, Early Himalayan 61.31 Ma), are beneficial for the reservoir reformation of microbial mound, reefs, shoal microfacies. It is another important condition for the development and formation of microbial limestone reservoirs in the study area. Three types of fluid superimposed dissolution and reformation on the reservoir, including hydrocarbon rapidly invading and dissolution by organic acid, high temperature formation fluid and deep hydrothermal fluid, TSR reaction, are the key for the development and formation of microbial reservoirs in the study area.

Key words: microbial reservoir, carbonate, Oxfordian, Upper Jurassic, Amu Darya Basin

CLC Number: 

  • TE121.2
[1] 徐剑良, 程绪彬, 吴蕾, 等.阿姆河右岸区块构造演化与成藏条件.天然气工业, 2010, 30(5):18-20. XU J L, CHENG X B, WU L, et al. Structural evolution and hydrocarbon pooling conditions in the Amu Darya right bank block, Turkmenistan. Natural Gas Industry, 2010, 30(5):18-20.
[2] 费怀义, 徐刚, 王强, 等.阿姆河右岸区块气藏特征.天然气工业, 2010, 30(5):13-17. FEI H Y, XU G, WANG Q, et al. Characteristics of gas reservoirs in the Amu Darya right bank block, Turkmenistan. Natural Gas Industry, 2010, 30(5):13-17.
[3] 徐文礼.缓斜坡碳酸盐岩台地沉积模式:以土库曼斯坦阿姆河盆地中-上侏罗统卡洛夫-牛津阶为例.成都:成都理工大学, 2013. XU W L. Sedimentary model of glacis carbonate platform-taking Callovian-Oxfordian of Upper-Middle Jurassic in Amu-Darya Basin of Turkmenistan as an example. Chengdu:Chengdu University of Technology, 2013.
[4] 文华国, 宫博识, 郑荣才, 等.土库曼斯坦萨曼杰佩气田卡洛夫-牛津阶碳酸盐岩沉积-成岩系统. 吉林大学学报(地球科学版), 2012, 42(4):991-1002. WEN H G, GONG B S, ZHENG R C, et al. Deposition and diagenetic system of carbonate in Callovian-Oxfordian of Samandepe gas field, Turkmenistan. Journal of Jilin University(Earth Science Edition), 2012, 42(4):991-1002.
[5] LI F J, JING X G, ZOU CH Y, et al. Facies analysis of the Callovian-Oxfordian carbonates in the northeastern Amu Darya Basin, southeastern Turkmenistan. Marine and Petroleum Geology, 2017, 88:359-380.
[6] XU W L, WEN H G, ZHENG R C, et al. The carbonate platform model and reservoirs' origins of the Callovian-Oxfordian stage in the Amu Darya Basin, Turkmenistan. Crystals, 2018, 8(2):84-105.
[7] 王强, 费怀义, 刘合年, 等.阿姆河盆地恰什古伊地区卡洛夫-牛津阶储层特征.岩性油气藏, 2013, 25(2):41-48. WANG Q, FEI H Y, LIU H N, et al. Reservoir characteristics of Callovian-Oxfordian in Chashgui area, Amu Darya Basin. Lithology Reservoirs, 2013, 25(2):41-48.
[8] 马文辛, 黄文明, 梁霄.阿姆河盆地东部中-上侏罗统碳酸盐岩储层形成和保存机理差异化研究. 第31届全国天然气学术论文集(地质勘探). 北京:石油工业出版社, 2019:52-65. MA W X, HUANG W M, LIANG X. Differences of formation and preservation mechanism of Mid-Upper Jurassic carbonate reservoirs in the eastern Amu Darya Basin. The 31st National Natural Gas Academic Symposium(Geological Exploration). Beijing:Petroleum Industry Press, 2019:52-65.
[9] 吕功训, 邓民敏, 吴蕾, 等.阿姆河右岸盐下碳酸盐岩大型气田勘探与开发.北京:科学出版社, 2013:14-15 LYU G X, DENG M M, WU L, et al. Exploration and development of a large carbonate gas field under the subsalt rock on the right bank of the Amu Darya. Beijing:Science Press, 2013:14-15.
[10] 梅冥相. 从凝块石概念的演变论微生物碳酸盐岩的研究进展.地质科技情报, 2007, 26(6):1-9. MEI M X. Discussion on advances of microbial carbonates from the terminological change of thrombolites. Geological Science and Technology Information, 2007, 26(6):1-9.
[11] 梅冥相, 马永生, 周丕康, 等.碳酸盐沉积学导论.北京:地震出版社, 1997:1-306. MEI M X, MA Y S, ZHOU P K, et al. Carbonate sedimentology theory introduction. Beijing:Seismological Press, 1997:1-306.
[12] 国家石油和化学工业局. SY/T 5388-2000碳酸盐岩储层的划分方法.北京:石油工业出版社, 2000. State Administration of Petroleum and Chemical Industry. SY/T 5388-2000 The dividing method for carbonate reservoir. Beijing:Petroleum Industry Press, 2000.
[13] 徐文礼, 郑荣才, 费怀义, 等. 土库曼斯坦阿姆河右岸卡洛夫-牛津阶裂缝特征及形成期次.天然气工业, 2012, 32(4):33-38. XU W L, ZHENG R C, FEI H Y, et al. Characteristics and timing of fractures in the Callovian-Oxfordian in the Amu Darya right bank block, Turkmenistan. Natural Gas Industry, 2012, 32(4):33-38.
[14] 郑荣才, 刘合年, 吴蕾, 等.阿姆河卡洛夫-牛津阶碳酸盐岩储层地球化学特征和成岩流体分析. 岩石学报, 2012, 28(3):961-970. ZHENG R C, LIU H N, WU L, et al. Geochemical characteristics and diagenetic fluid of the Callovian-Oxfordian carbonate reservoirs in Amu Darya Basin. Acta Petrologica Sinica, 2012, 28(3):961-970.
[15] 王强, 王兴志, 徐剑良, 等.恰什古伊地区碳氧同位素地层学分析.西南石油大学学报(自然科学版), 2014, 36(3):27-34. WANG Q, WANG X Z, XU J L, et al. Carbon and oxygen isotope stratigraphy research in Chashgui area. Journal of Southwest Petroleum University(Science & Technology Edition), 2014, 36(3):27-34.
[16] 郑荣才, 赵灿, 刘合年, 等.阿姆河盆地卡洛夫-牛津阶碳酸盐岩阴极发光性及其研究意义. 成都理工大学学报(自然科学版), 2010, 37(4):377-385. ZHENG R C, ZHAO C, LIU H N, et al. Cathodoluminescence and its significance of the Callovian-Oxfordian carbonate rocks in Amu Darya Basin, Turkmenistan. Journal of Chengdu University of Technology(Science & Technology Edition), 2010, 37(4):377-385.
[17] 朱光有, 张水昌, 梁英波, 等.四川盆地高含H2S天然气的分布与TSR成因证据.地质学报, 2006, 80(8):1208-1218. ZHU G Y, ZHANG S C, LIANG Y B, et al. Distribution of high H2S-bearing natural gas and evidence of TSR origin in the Sichuan Basin. Acta Geologica Sinica, 2006, 80(8):1208-1218.
[18] 朱光有, 张水昌, 梁英波, 等.川东北飞仙关组H2S的分布与古环境的关系研究, 石油勘探与开发, 2005, 32(4):65-69. ZHU G Y, ZHANG S C, LIANG Y B, et al. Relationship between paleoenvironment and the distribution of H2S in Feixianguan Formation, NE Sichuan Province. Petroleum Exploration and Development, 2005, 32(4):65-69.
[1] ZHANG Tianze, WANG Hongjun, ZHANG Liangjie, ZHANG Wenqi, XIE Mingxian, LEI Ming, GUO Qiang, ZHANG Xuerui. Application of ray-path elastic impedance inversion in carbonate gas reservoir prediction of the right bank of Amu Darya River [J]. Lithologic Reservoirs, 2024, 36(6): 56-65.
[2] LI Changhai, ZHAO Lun, LIU Bo, ZHAO Wenqi, WANG Shuqin, LI Jianxin, ZHENG Tianyu, LI Weiqiang. Connectivity of fracture networks of Carboniferous carbonate reservoirs in North Truva Oilfield,eastern margin of Precaspian Basin [J]. Lithologic Reservoirs, 2024, 36(2): 113-123.
[3] CHEN Shuyang, HE Yunfeng, WANG Lixin, SHANG Haojie, YANG Xinrui, YIN Yanshu. Architecture characterization and 3D geological modeling of Ordovician carbonate reservoirs in Shunbei No. 1 fault zone,Tarim Basin [J]. Lithologic Reservoirs, 2024, 36(2): 124-135.
[4] SUN Hanxiao, XING Fengcun, XIE Wuren, QIAN Hongshan. Lithofacies paleogeography evolution of Late Ordovician in Sichuan Basin and its surrounding areas [J]. Lithologic Reservoirs, 2024, 36(1): 121-135.
[5] LUO Beiwei, YIN Jiquan, HU Guangcheng, CHEN Hua, KANG Jingcheng, XIAO Meng, ZHU Qiuying, DUAN Haigang. Characteristics and controlling factors of high porosity and permeability limestone reservoirs of Cretaceous Cenomanian in the western United Arab Emirates [J]. Lithologic Reservoirs, 2023, 35(6): 63-71.
[6] FAN Rui, LIU Hui, YANG Peiguang, SUN Xing, MA Hui, HAO Fei, ZHANG Shanshan. Identification of carbonate dissolution valleys filled with mudstones of Cretaceous in block A,Oman Basin [J]. Lithologic Reservoirs, 2023, 35(6): 72-81.
[7] LIU Yaming, WANG Dandan, TIAN Zuoji, ZHANG Zhiwei, WANG Tongkui, WANG Chaofeng, YANG Xiaofa, ZHOU Yubing. Characteristics and prediction methods of igneous rocks in complex carbonate oilfields in Santos Basin,Brazil [J]. Lithologic Reservoirs, 2023, 35(6): 127-137.
[8] TANG Yuzhe, CHAI Hui, WANG Hongjun, ZHANG Liangjie, CHEN Pengyu, ZHANG Wenqi, JIANG Lingzhi, PAN Xingming. Characteristics and new prediction methods of Jurassic subsalt carbonate reservoirs in the eastern right bank of Amu Darya,Central Asia [J]. Lithologic Reservoirs, 2023, 35(6): 147-158.
[9] WANG Xueke, WANG Zhen, JI Zhifeng, YIN Wei, JIANG Ren, HOU Yu, ZHANG Yiqiong. Hydrocarbon accumulation rules and exploration technologies of Carboniferous subsalt carbonate reservoirs in the eastern margin of Pre-Caspian Basin [J]. Lithologic Reservoirs, 2023, 35(6): 54-62.
[10] WANG Jiangong, LI Jiangtao, LI Xiang, GAO Yanfang, ZHANG Ping, SUN Xiujian, BAI Yadong, ZUO Mingtao. Differences and controlling factors of lithofacies assemblages of Cenozoic lacustrine microbial carbonate rocks in western Qaidam Basin [J]. Lithologic Reservoirs, 2023, 35(3): 1-17.
[11] SONG Xingguo, CHEN Shi, YANG Minghui, XIE Zhou, KANG Pengfei, LI Ting, CHEN Jiuzhou, PENG Zijun. Development characteristics of F16 fault in Fuman oilfield of Tarim Basin and its influence on oil and gas distribution [J]. Lithologic Reservoirs, 2023, 35(3): 99-109.
[12] NI Xinfeng, SHEN Anjiang, QIAO Zhanfeng, ZHENG Jianfeng, ZHENG Xingping, YANG Zhao. Genesis and exploration enlightenment of Ordovician fracture-vuggy carbonate karst reservoirs in Tarim Basin [J]. Lithologic Reservoirs, 2023, 35(2): 144-158.
[13] LIU Yongli, LI Guorong, HE Zhao, TIAN Jiaqi, LI Xiaoxiao. Sequence stratigraphic framework and platform margin belt distribution of Cambrian in northern Tarim Basin [J]. Lithologic Reservoirs, 2022, 34(6): 80-91.
[14] LI Guoxin, SHI Yajun, ZHANG Yongshu, CHEN Yan, ZHANG Guoqing, LEI Tao. New progress and enlightenment of oil and gas exploration and geological understanding in Qaidam Basin [J]. Lithologic Reservoirs, 2022, 34(6): 1-18.
[15] LI Shanshan, JIANG Pengfei, LIU Lei, LEI Cheng, ZENG Yunxian, CHEN Shizhen, ZHOU Gang. Seismic response characteristics and distribution law of carbonate shoals of Cambrian Canglangpu Formation in Gaoshiti-Moxi area,Sichuan Basin [J]. Lithologic Reservoirs, 2022, 34(4): 22-31.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] HUANG Sijing,HUANG Peipei,WANG Qingdong,LIU Haonian,WU Meng,ZOU Mingliang. The significance of cementation in porosity preservation in deep-buried sandstones[J]. Lithologic Reservoirs, 2007, 19(3): 7 -13 .
[2] LIU Zhen,CHEN Yanpeng,ZHAO Yang,HAO Qi,XU Xiaoming,CHANG Mai. Distribution and controlling factors of hydrocarbon reservoirs in continental fault basins[J]. Lithologic Reservoirs, 2007, 19(2): 121 -127 .
[3] DING Chao,GUO Lan,YAN Jifu. Forming conditions of Chang 6 reservoir in Anding area of Zichang Oilfield[J]. Lithologic Reservoirs, 2009, 21(1): 46 -50 .
[4] LI Yanshan,ZHANG Zhansong,ZHANG Chaomo,CHEN Peng. Application of mercury injection data to Chang 6 reservoir classification in Changqing area[J]. Lithologic Reservoirs, 2009, 21(2): 91 -93 .
[5] LUO Peng,LI Guorong,SHI Zejin,ZHOU Dazhi,TANG Hongwei,ZHANG Deming. Analysis of sequence stratigraphy and sedimentary facies of M aokou Formation in southeastern Sichuan[J]. Lithologic Reservoirs, 2010, 22(2): 74 -78 .
[6] ZUO Guoping, TU Xiaolong, XIA Jiufeng. Study on volcanic reservoir types in Subei exploration area[J]. Lithologic Reservoirs, 2012, 24(2): 37 -41 .
[7] WANG Feiyu. Method to improve producing degree of thermal recovery horizontal wells and its application[J]. Lithologic Reservoirs, 2010, 22(Z1): 100 -103 .
[8] YUAN Yunfeng,CAI Ye,FAN Zuochun,JIANG Yiyang,QIN Qirong, JIANG Qingping. Fracture characteristics of Carboniferous volcanic reservoirs in Hongche fault belt of Junggar Basin[J]. Lithologic Reservoirs, 2011, 23(1): 47 -51 .
[9] YUAN Jianying, FU Suotang, CAO Zhenglin, YAN Cunfeng,ZHANG Shuichang, MA Dade. Multi-source hydrocarbon generation and accumulation of plateau multiple petroleum system in Qaidam Basin[J]. Lithologic Reservoirs, 2011, 23(3): 7 -14 .
[10] GENG Yanfei, ZHANG Chunsheng, HAN Xiaofeng, YANG Dachao. Study on formation mechanism of low resistivity gas bearing reservoir in Anyue-Hechuan area[J]. Lithologic Reservoirs, 2011, 23(3): 70 -74 .
TRENDMD: