Precipitation sequence of hydrothermal minerals and their controlling factors during the sedimentation: A case study of the Lower Cretaceous Tenggeer Formation in Baiyinchagan sag of Erlian Basin,Inner Mongolia
Zhong Da-Kang1,2, Su Chen1,2, Yang Zhe1,2, Jia Xiao-Lan1,2
1 College of Geosciences,China University of Petroleum(Beijing),Beijing 102249,China; 2 State Key Laboratory of Oil and Gas Resources and Exploration,China University of Petroleum(Beijing),Beijing 102249,China
Abstract Hydrothermal sedimentary rock is deposited from the mixture fluid of hydrothermal water and the lake/ocean water from sedimentary basins. It belongs to a transitional type between magmatic rocks and sedimentary rocks,with some similarities and differences in mineral composition,rock texture and structure between these two types. The hydrothermal sedimentary rock contains much alminosilicate formed from the magma hydrothermal fluid,such as zeolite and feldspar,and also much carbonate minerals formed at normal lake/ocean water temperature,such as dolomite,magnesite,siderite,etc. A set of more than 300 m thick hydrothermal sedimentary rocks has been found in the Lower Cretaceous Tenggeer Formation of the Baiyinchagan sag,Erlian Basin. Base on the microscopy,electronic probe and Qemscan,several mineral precipitation sequences are established: (1)In lamellar rock,there is a sequence of precipitation from aluminosilicate to carbonate. In the association of aluminosilicate minerals,the analcime deposits first,then followed by natrolite,and the last by albite. In the association of carbonate minerals,magnesite first appears,the followed by siderite,and the last by ankerite. Calcite can appear after dolomite precipitation. (2)In flocculent nodule,pyrite appears at the center,and analcime,natrolite,magnesite,siderite,ankerite appear outward gradually. Sometimes the reverse of the above sequence appears. (3)In the fractures,the filling sequence is from aluminosilicate such as zeolite,chlorite to carbonate such as ankerite,from the edge of the fracture to the center. The most complete and ideal sequence of precipitation in the study area is pyrite-analcime-natrolite-albite-orthoclase-magnesite-siderite-dolomite-calcite. This complete sequence is often not fully observed. However, it is common to observe combinations of some of these minerals in the same order. The type of precipitation sequence is controlled by the jet and overflow stage,occurring time, temperature and hydrothermal chemical properties. Under the high temperature and salinity conditions at the early stage,the aluminosilicate sequences often occurred,or the carbonate mineral sequences mainly formed at the later stage.
Fund:Financially supported by the National Natural Science Foundation of China(Nos. 41472094,41972097,41302108)
About author: Zhong Da-Kang,born in 1961,is a professor and Ph.D. supervisor in China University of Petroleum(Beijing). He is mainly engaged in sedimentology and reservoir geology.E-mail: zhongdakang@263.net.
Cite this article:
Zhong Da-Kang,Su Chen,Yang Zhe et al. Precipitation sequence of hydrothermal minerals and their controlling factors during the sedimentation: A case study of the Lower Cretaceous Tenggeer Formation in Baiyinchagan sag of Erlian Basin,Inner Mongolia[J]. JOPC, 2019, 21(5): 695-708.
Zhong Da-Kang,Su Chen,Yang Zhe et al. Precipitation sequence of hydrothermal minerals and their controlling factors during the sedimentation: A case study of the Lower Cretaceous Tenggeer Formation in Baiyinchagan sag of Erlian Basin,Inner Mongolia[J]. JOPC, 2019, 21(5): 695-708.
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