Lithologic Reservoirs ›› 2014, Vol. 26 ›› Issue (4): 117-122.doi: 10.3969/j.issn.1673-8926.2014.04.017

Previous Articles     Next Articles

Carbon and oxygen isotope analysis method for dolomite formation mechanism: A case study from Proterozoic dolomite in Yanshan area

LI Qianwen1,2, JIN Zhenkui1,2, JIANG Fujie1,2   

  1. 1. College of Geosciences, China University of Petroleum, Beijing 102249, China; 2. State Key Laboratory of Petroleum Resource and Prospecting, China University of Petroleum, Beijing 102249, China
  • Online:2014-08-15 Published:2014-08-15

Abstract:

Dolomites are well developed in Gaoyuzhuang Formation to Wumishan Formation in Yanshan area, Beijing. However, the understanding of dolomite genesis in this area is still unclear. This paper used carbon and oxygen isotope analysis to carry out reconstruction of ancient salinity and ancient temperature of the dolomite samples selected from Gaoyuzhuang Formation, Yangzhuang Formation and Wumishan Formation in the Ming Tombs area. The result shows that in Gaoyuzhuang Formation, the mean of δ13C is -1.13‰, the mean of δ18O is -7.87‰ , the mean of Z is 122.188 5, and the average diagenetic temperature is 51.85 ℃; in the Yangzhuang Formation, the mean of δ13C is -0.93‰, the mean of δ18O is -6.11‰ , the mean of Z is 122.434 8, and the average diagenetic temperature is 47.82 ℃; in Wumishan Formation, the mean of δ13C is 0.13‰, the mean of δ18O is -4.60‰ , the mean of Z is 125.370 7, and the average diagenetic temperature is 39.48 ℃. According to the analysis of the above results, we concluded that most dolomites of Wumishan Formation were mainly resulted from penecontemporaneous dolomitization, and dolomites of Yangzhuang Formation were resulted from dorag dolomitization. The dolomite genesis of Gaoyuzhuang Formation is more complicated, which includes not only seepage reflux dolomitization but also dorag dolomitization.

Key words:  pre-stack time migration, pre-stack simultaneous inversion, S-wave prediction, angle stack, density prediction, fluid detection

[1] 王振宇,杨柳明,马锋,等.塔中地区下奥陶统鹰山组白云岩成因研究[J].岩性油气藏,2012,24(1):20-25.
[2] 金振奎,冯增昭.华北地台东部下古生界白云岩的类型及储集性[J].沉积学报,1993,11(2):11-18.
[3] 孙健,董兆雄,郑琴.白云岩成因的研究现状及相关发展趋势[J].海相油气地质,2005,10(3):25-30.
[4] Friedman G M,sanders J E. Origin and occurrence of dolostone[M]∥Chilingar G V,Bissell H J, Fairbridge R W. Carbonate rocks. Amster-dam:Elsevier,1967:267-348.
[5] Adams J E,Rhodes M L. Dolomiotization by seepage reflux[J]. AAPG Bulletin,1960,44:1912-1920.
[6] Badiozamani K. The Dorag dolomiotization model application to the Middle Ordovician of Wisconsin[J]. Jour. Sed. Petrology,1973,43:865-984.
[7] 金振奎,冯增昭. 滇东—川西下二叠统白云岩的形成机理———玄武岩淋滤白云化[J].沉积学报,1999,17(3):383-389.
[8] 金振奎,余宽宏.白云岩储集层埋藏溶蚀作用特征及意义———以塔里木盆地东部下古生界为例[J].石油勘探与开发,2011,38(4):428-434.
[9] 金振奎,杨有星,余宽宏,等.塔里木盆地东部地区寒武系白云岩成因类型[J].古地理学报,2012,14(6):747-756.
[10] 刘树根,黄文明,张长俊,等.四川盆地白云岩成因的研究现状及存在问题[J].岩性油气藏,2008,20(2):6-15.
[11] Keith M L,Weber J N. Carbon oxygen isotopic composition of selected linestone and fossils[J]. Geochimica et Cosmochimica Acta,1964,28:1787-1816.
[12] Land L S. The isotopic and trace element geochemistry of dolomite:The state of the art[G]. SPEM Special Publication 28,1980:87-110.
[13] 高仁祥,陈琛,吴尊,等.磷酸法测定碳、氧同位素[J].石油实验地质,1984,6(1):72-75.
[14] 彭花明,郭福生,严兆彬,等.浙江江山震旦系碳同位素异常及其地质意义[J].地球化学,2006,35(6):577-585.
[15] Kaufman A J,Knoll A H. Neoproterozoic variations in the C-isotope composition of seawater:Stratigraphic and biogeochemical implications [J]. Precambrian Research,1995,73:21-49.
[16] 黄思静,石和,毛晓冬,等.早古生代海相碳酸盐岩的成岩蚀变性及其对海水信息的保存性[J].成都理工大学学报:自然科学版,2003,30(1):9-18.
[17] 罗顺社,汪凯明.河北宽城地区中元古代高于庄组碳酸盐岩碳氧同位素特征[J].地质学报,2010,84(4):492-499.
[18] 左景勋,童金南,邱海鸥,等.下扬子地区早三叠世碳酸盐岩碳同位素组成的演化特征[J].中国科学D 辑:地球科学,2006,36(2):109-122.
[19] 谢小敏,胡文瑄,王小林,等.新疆柯坪地区寒武纪—奥陶纪碳酸盐岩沉积旋回的碳氧同位素研究[J].地球化学,2009,38(1):75-88.
[20] 左景勋,彭善池,朱学剑. 扬子地区寒武系碳酸盐岩的碳同位素组成及地质意义[J].地球化学,2008,37(2):118-128.
[21] Hudson J D.stable isotopes and limestone lithification[J]. Geo. Soc,1997,133:637.
[22] 刘德良,孙先如,李振生,等.鄂尔多斯盆地奥陶系白云岩碳氧同位素分析[J].石油实验地质,2006,28(2):155-161.
[23] 张秀莲.碳酸盐岩中氧、碳稳定同位素与古盐度、古水温的关系[J].沉积学报,1985,3(4):17-30.
[1] ZHOU Donghong, TAN Huihuang, ZHANG Shengqiang. Seismic description technologies of Neogene composite channel sand bodies in Kenli 6-1 oilfield,Bohai Sea [J]. Lithologic Reservoirs, 2022, 34(4): 13-21.
[2] LIU Junzhou,SUN Zandong,LIU Zhengtao,SUN Yongyang,DONG Ning,XIA Hongmin. Application of pre-stack simultaneous inversion to fluid identification of carbonate reservoir: A case study from district 6-7 in Tahe Oilfield [J]. Lithologic Reservoirs, 2015, 27(1): 102-107.
[3] ZHANG Shuishan,ZHANG Sanyuan,ZHOU Hongyan,YI X iaoqin. Lithologic reservoir exploration and effect in the periphery of Banghu Syncline, Qianjiang Sag [J]. Lithologic Reservoirs, 2014, 26(5): 86-90.
[4] PI Xiong, JIE Li. Seismic identification and prediction method of volcanic lava and its application [J]. Lithologic Reservoirs, 2013, 25(5): 89-93.
[5] ZHAO Wanjin, ZHANG Qiaofeng, SU Qin. Seismic reservoir characteristics and prediction techniques for Moliqing Rift [J]. Lithologic Reservoirs, 2010, 22(4): 100-103.
[6] LIU Quanxin, FANG Guangjian. Using simulated annealing algorithm to pre-stack seismic inversion [J]. Lithologic Reservoirs, 2010, 22(1): 87-92.
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: