• The Core Journal of China
  • Included in Chinese Science Citation Database
  • The Key Magazine of China technology
  • Frontrunner 5000—Top Articles in Outstanding S&T Journals of China
  • Included in Scopus
  • Included in Chemical Abstracts (CA)
  • Included in Russian Abstract Journal (AJ)
Advanced Search
LAI Jin, WANG Gui-wen, WU Da-cheng, CAO Jiang-ning, ZHANG Xiao-tao, RAN Ye, YAO Ya-bin, ZHANG Yong-di. Diagenetic facies distribution in high resolution sequence stratigraphic framework of Chang 8 Oil Layers in the Jiyuan area[J]. GEOLOGY IN CHINA, 2014, 41(5): 1487-1502.
Citation: LAI Jin, WANG Gui-wen, WU Da-cheng, CAO Jiang-ning, ZHANG Xiao-tao, RAN Ye, YAO Ya-bin, ZHANG Yong-di. Diagenetic facies distribution in high resolution sequence stratigraphic framework of Chang 8 Oil Layers in the Jiyuan area[J]. GEOLOGY IN CHINA, 2014, 41(5): 1487-1502.

Diagenetic facies distribution in high resolution sequence stratigraphic framework of Chang 8 Oil Layers in the Jiyuan area

More Information
  • Abstract: Lithologic characteristics, reservoir property and pore structure, diagenesis, diagenetic minerals, diagenetic environment, diagenetic stage and diagenetic evolution sequence of Member 8 reservoir of Yanchang Formation were studied by making full use of normal thin sections, casting thin sections, cathodoluminescence, X-ray diffraction, scanning electron microscopy and core data. The results show that the reservoir has experienced such diagenetic processes as compaction, cementation, corrosion and fracture, and it is now at stage A of middle diagenetic process. 5 types of diagenetic facies were recognized based on diagenesis, diagenetic minerals and their effect on the reservoir quality, namely, weak corrosion with chlorite mat; corrosion of unstable components; compaction density, kaolinite filling, and carbonate cementation. The well logging response characteristics of different types of diagenetic facies were summarized on GR, SP, DEN, AC and CNL, and thus the logging recognition model and standard of diagenetic facies could be set up. Then the diagenetic facies was matched with the high resolution sequence stratigraphic framework. The results show that the sequence boundary between the Chang 81 lowstand systems tract and Chang 82 highstand systems tract controls the dissolution of the silicate minerals, the filling of the kaolinite and the cementation of carbonate cement, which suggests that diagenetic facies as corrosion of unstable components and kaolinite filling are very common in the vicinity of the sequence boundary, and they are strongly comparable between various wells; nevertheless, the carbonate cementation is also very common under the sequence boundary. The maximum flooding surface of the medium-term base level cycle corresponds to the compaction density diagenetic facies, the reservoir quality of Chang 82 highstand systems tract (the middle-term base-level's ascending semi-cycle) is better than that of Chang 81 lowstand systems tract (the middle-term base-level's falling semi-cycle) due to the following factors: (1) the Chang 82 sand bodies tend to be dissolved since they are located under the sequence boundary; (2) the Chang 82 sand bodies have high content of feldspars and are of coarser grain size and, what is more, the degree of compaction is lower than that of Chang 81 sand bodies due to the depositional hiatus after the formation of sequence boundary.
  • Related Articles

    [1]TONG Changliang, ZHANG Kuanghua, CHEN Fei, GOU Pengfei. The Potential evaluation of marine sand resources in the northern sea areas of Hainan Island[J]. GEOLOGY IN CHINA, 2020, 47(5): 1567-1576. DOI: 10.12029/gc20200520
    [2]DING Jianhua, ZHANG Yong, LI Lixing, LI Houmin. Metallogenic geological characteristics and titanium resources potential in China[J]. GEOLOGY IN CHINA, 2020, 47(3): 627-644. DOI: 10.12029/gc20200305
    [3]YANG Ping, WANG Zhengjiang, YU Qian, LIU Wei, LIU Jiahong, XIONG Guoqing, HE Jianglin, YANG Fei. An resources potential analysis of Wufeng-Longmaxi Formation shale gas in the southwestern margin of Sichuan Basin[J]. GEOLOGY IN CHINA, 2019, 46(3): 601-614. DOI: 10.12029/gc20190311
    [4]SHAN Chang-an, ZHANG Ting-shan, GUO Jun-jie, LIANG Xing, ZHANG Zhao. Geological characteristics and resource potential of the Upper Sinian Doushantuo Formation shale gas in the north of middle Yangtze region[J]. GEOLOGY IN CHINA, 2015, 42(6): 1944-1944. DOI: 10.12029/gc20150621
    [5]ZHANG Jian-bin, DING Jian-hua, NAN Ge-li. The characteristics and potential of tin resources in China[J]. GEOLOGY IN CHINA, 2015, 42(4): 839-852. DOI: 10.12029/gc20150404
    [6]YIN Jiang-ning, XIAO Ke-yan. Resources potential analysis and metallogenic prospect of Mn resources in China[J]. GEOLOGY IN CHINA, 2014, 41(5): 1424-1437. DOI: 10.12029/gc20140502
    [7]Ding Jian-hua, Chen Zheng-hai, Yang Guo-jun, Deng Fan, Lou De-bo. Metallogeny and resource potential of magnesite deposits in China[J]. GEOLOGY IN CHINA, 2013, 40(6): 1712-1711. DOI: 10.12029/gc20130602
    [8]WANG Yong-lei, CHEN Yu-chuan, WANG Deng-hong, XU Jue, CHEN Zheng-hui, LIANG Ting. The principal antimony concentration areas in China and their resource potentials[J]. GEOLOGY IN CHINA, 2013, 40(5): 1366-1378. DOI: 10.12029/gc20130503
    [9]DING Jian-hua, YANG Yi-heng, DENG Fan. Resource potential and metallogenic prognosis of antimony deposits in China[J]. GEOLOGY IN CHINA, 2013, 40(3): 846-858. DOI: 10.12029/gc20130316
    [10]CHEN Hui-jun, LIU Zhao-jun, ZHU Jian-wei, FU Zhan-rong, DU Jia-yu, . The application of the acreage bearing likelihood ratio method to assessing oil shale resources: A case study of Maoming basin[J]. GEOLOGY IN CHINA, 2012, 39(5): 1427-1435. DOI: 10.12029/gc20120529

Catalog

    Article views (3163) PDF downloads (3698) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return