On the origin of the ultradeep East Barents Sea basin

被引:21
|
作者
Gac, Sebastien [1 ]
Huismans, Ritske S. [1 ]
Podladchikov, Yuri Y. [2 ]
Faleide, Jan Inge [3 ]
机构
[1] Univ Bergen, Dept Earth Sci, N-5020 Bergen, Norway
[2] Univ Oslo, PGP, N-0316 Oslo, Norway
[3] Univ Oslo, Dept Geosci, N-0316 Oslo, Norway
关键词
PHASE-CHANGE BOUNDARY; KARA SEAS; INTRACRATONIC BASINS; SEDIMENTARY BASINS; NUMERICAL-MODELS; EVOLUTION; SUBSIDENCE; REGION; DYNAMICS; UNDERLAIN;
D O I
10.1029/2011JB008533
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Very large subsidence, with up to 20 km thick sediment layers, is observed in the East Barents Sea basin. Subsidence started in early Paleozoic, accelerated in Permo-Triassic times, finished during the middle Cretaceous, and was followed by moderate uplift in Cenozoic times. The observed gravity signal suggests that the East Barents Sea is at present in isostatic balance and indicates that a mass excess is required in the lithosphere to produce the observed large subsidence. Several origins have been proposed for the mass excess. We use 1-D thermokinematic modeling and 2-D isostatic density models of continental lithosphere to evaluate these competing hypotheses. The crustal density in 2-D thermokinematic models resulting from pressure-, temperature-, and composition-dependent phase change models is computed along transects crossing the East Barents Sea. The results indicate the following. (1) Extension can only explain the observed subsidence provided that a 10 km thick serpentinized mantle lens beneath the basin center is present. We conclude that this is unlikely given that this highly serpentinized layer should be formed below a sedimentary basin with more than 10 km of sediments and crust at least 10 km thick. (2) Phase changes in a compositionally homogeneous crust do not provide enough mass excess to explain the present-day basin geometry. (3) Phase change induced densification of a preexisting lower crustal gabbroic body, interpreted as a mafic magmatic underplate, can explain the basin geometry and observed gravity anomalies. The following model is proposed for the formation of the East Barents Sea basin: (1) Devonian rifting and extension related magmatism resulted in moderate thinning of the crust and a mafic underplate below the central basin area explaining initial late Paleozoic subsidence. (2) East-west shortening during the Permian and Triassic resulted in densification of the previously emplaced mafic underplated body and enhanced subsidence dramatically, explaining the present-day deep basin geometry.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] ORIGIN OF ANTICLINAL STRUCTURES IN THE EAST BARENTS SEA HYDROCARBON FIELDS
    SHIPILOV, EV
    YUNOV, AY
    [J]. DOKLADY AKADEMII NAUK, 1995, 342 (01) : 87 - 88
  • [2] ORIGIN AND EVOLUTION OF THE EAST CHINA SEA BASIN
    汪龙文
    李全兴
    吴声迪
    林长松
    [J]. Acta Oceanologica Sinica, 1984, (04) : 527 - 538
  • [3] Basin modelling of the SW Barents Sea
    Gac, Sebastien
    Hansford, Peter Anthony
    Faleide, Jan Inge
    [J]. MARINE AND PETROLEUM GEOLOGY, 2018, 95 : 167 - 187
  • [4] THE SORVESTSNAGET BASIN, SOUTHWEST BARENTS SEA
    STEWART, D
    LUNDE, A
    [J]. AAPG BULLETIN-AMERICAN ASSOCIATION OF PETROLEUM GEOLOGISTS, 1991, 75 (03): : 676 - 676
  • [5] Origin of diamictons on the Barents Sea shelf
    Krapivner, R. B.
    [J]. LITHOLOGY AND MINERAL RESOURCES, 2009, 44 (02) : 120 - 134
  • [6] Sedimentary filling characteristics of the East Barents Sea Basin and its hydrocarbon exploration potential
    Wu, Yiping
    Ji, Zhifeng
    Zhang, Yanmin
    Hu, Guangcheng
    Li, Chunlei
    Yuan, Shengqiang
    Xue, Zong'an
    Gao, Xia
    [J]. Earth Science Frontiers, 2014, 21 (03) : 145 - 154
  • [7] Origin of diamictons on the Barents Sea shelf
    R. B. Krapivner
    [J]. Lithology and Mineral Resources, 2009, 44 : 120 - 134
  • [8] Origin of friable sediments of the Barents Sea shelf
    Krapivner, R. B.
    [J]. LITHOLOGY AND MINERAL RESOURCES, 2009, 44 (01) : 87 - 99
  • [9] Formation mechanisms of ultradeep sedimentary basins: the North Barents basin. Petroleum potential implications
    Artyushkov, E. V.
    Belyaev, I. V.
    Kazanin, G. S.
    Pavlov, S. P.
    Chekhovich, P. A.
    Shkarubo, S. I.
    [J]. RUSSIAN GEOLOGY AND GEOPHYSICS, 2014, 55 (5-6) : 649 - 667
  • [10] Sulfate Reduction and Origin of Organic Matter in the Ulleung Basin, East Sea
    Park, Myong-Ho
    Kim, Ji-Hoon
    Ryu, Byong-Jae
    Kim, Il-Soo
    Lee, Youngju
    Chang, Ho-Wan
    [J]. ECONOMIC AND ENVIRONMENTAL GEOLOGY, 2005, 38 (03): : 335 - 346