Origin of the carbonaceous debris and its implication for mineralization within the Qianjiadian uranium deposit, southern Songliao Basin

被引:51
作者
Rong, Hui [1 ]
Jiao, Yangquan [1 ]
Wu, Liqun [1 ]
Wan, Dun [2 ]
Cui, Zhengjie [3 ]
Guo, Xujie [1 ]
Jia, Junmin [1 ]
机构
[1] China Univ Geosci, Key Lab Tecton & Petr Resources, Minist Educ, Wuhan 430074, Hubei, Peoples R China
[2] CNOOC Ener Tech Drilling & Prod Co, Tianjin 300452, Peoples R China
[3] China Univ Petr, Unconvent Nat Gas Inst, Beijing 102249, Peoples R China
关键词
Carbonaceous debris; Sandstone-hosted uranium deposit; Qianjiadian uranium deposit; Songliao Basin; SULFATE-REDUCING BACTERIA; BACILLUS SP DWC-2; ORGANIC-MATTER; GEOCHEMICAL EVIDENCE; ORDOS BASIN; SANDSTONE; CHARCOAL; GENESIS; METALLOGENESIS; ENVIRONMENT;
D O I
10.1016/j.oregeorev.2019.02.036
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Appearance and coal petrology of the carbonaceous debris (CD) from the Qianjiadian uranium deposit, southern Songliao Basin are illustrated in order to reveal the relationship between the CD and uranium mineralization, response of the CD and uranium mineralization to diabase dikes, and origin of the CD. Three types of CD have been identified in the Yaojia Formation: CD serving as trapped sediments, CD serving as laminae of cross bedding, and CD occurring in lumpy sandstones. With an average content of 91.2% in the CD, organic macerals are primarily composed of homoeollinite, desmocollinite and inertinite. Inorganic macerals of the CD mainly include pyrite with an average content of 8.8%. Average contents of the desmocollinite, inertinite and pyrite from the CD in the ore bearing section are higher than that in the non-ore bearing section, respectively. The study demonstrates that the CD rich in inertinite and desmocollinite facilitates uranium mineralization. Uranium is frequently adsorbed in the desmocollinite and inertinite, and coffinite is embedded in the inertinite, inferring that roles of the CD in uranium mineralization are both adsorption and reduction. Vitrinite reflectance (VR) of the CD ranges from 0.24% to 0.513% with an average value of 0.335%. The VR of the CD in the ore bearing section is generally larger than that in the non-ore bearing section. Uranium mineralization and enlargement of the VR are both attributed to the diabase dikes. The CD originated from the Late Cretaceous wildfire-related woody plants, and it has been transported into fluvial channels and preserved in sandstones.
引用
收藏
页码:336 / 352
页数:17
相关论文
共 86 条
[31]  
Ielpi A., 2015, J SEDIMENT RES, V85, P999
[32]   Basin-related uranium mineral systems in Australia: A review of critical features [J].
Jaireth, Subhash ;
Roach, Ian C. ;
Bastrakov, Evgeniy ;
Liu, Songfa .
ORE GEOLOGY REVIEWS, 2016, 76 :360-394
[33]   Lipids of sulfate-reducing bacteria and sulfur-oxidizing bacteria found in the Dongsheng uranium deposit [J].
Jiang Lei ;
Cai ChunFang ;
Zhang YongDong ;
Mao ShengYi ;
Sun YongGe ;
Li KaiKai ;
Xiang Lei ;
Zhang ChunMing .
CHINESE SCIENCE BULLETIN, 2012, 57 (11) :1311-1319
[34]  
[姜耀辉 Jiang Yaohui], 2004, [地学前缘, Earth science frontiers], V11, P491
[35]   Model of Inner and Outer Reductive Media Within Uranium Reservoir Sandstone of Sandstone-Type Uranium Deposits and Its Ore-Controlling Mechanism: Case Studies in Daying and Qianjiadian Uranium Deposits [J].
Jiao Y. ;
Wu L. ;
Rong H. .
Diqiu Kexue - Zhongguo Dizhi Daxue Xuebao/Earth Science - Journal of China University of Geosciences, 2018, 43 (02) :459-474
[36]   The Relationship between Jurassic Coal Measures and Sandstone-type Uranium Deposits in the Northeastern Ordos Basin, China [J].
Jiao Yangquan ;
Wu Liqun ;
Rong Hui ;
Peng Yunbiao ;
Miao Aisheng ;
Wang Xiaoming .
ACTA GEOLOGICA SINICA-ENGLISH EDITION, 2016, 90 (06) :2117-2132
[37]  
[焦养泉 Jiao Yangquan], 2015, [地学前缘, Earth Science Frontiers], V22, P189
[38]  
Lehmann B., 2008, Reviews in Economic Geology AMS Online, V2, P16
[39]   MINERALOGICAL, CHEMICAL AND ISOTOPIC (U-PB METHOD) STUDIES OF HERCYNIAN URANIFEROUS MINERALIZATIONS (MARGNAC AND FANAY MINES, LIMOUSIN, FRANCE) [J].
LEROY, J ;
HOLLIGER, P .
CHEMICAL GEOLOGY, 1984, 45 (1-2) :121-134