Thermal Structure and Thickness of the Lithospheric Mantle Underlying the Siberian Craton from the Kraton and Kimberlit Superlong Seismic Profiles

被引:23
|
作者
Kuskov, O. L. [1 ]
Kronrod, V. A. [1 ]
Prokof'ev, A. A. [1 ]
机构
[1] Russian Acad Sci, Vernadsky Inst Geochem & Analyt Chem, Moscow 117975, Russia
基金
俄罗斯基础研究基金会;
关键词
Siberian Craton; xenoliths; temperature; seismic properties; GEOCHEMICAL CONSTRAINTS; PRECAMBRIAN LITHOSPHERE; CONTINENTAL LITHOSPHERE; TRAVEL-TIMES; BENEATH; MOON; CONSTITUTION; TEMPERATURES; TOMOGRAPHY; ANISOTROPY;
D O I
10.1134/S1069351310111011
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
A self-consistent approach is proposed for the investigation of the thermal conditions, chemical composition, and internal structure of the upper mantle of the Earth. Using this approach, the thermal state of the lithospheric mantle beneath the Siberian Craton (SC) is reconstructed from P velocities, taking into account the phase transitions, anharmonicity, and the effects of anelasticity. The velocities of seismic waves are more sensitive to temperature than to the composition of the mantle rocks, which allows the velocity models to be effectively used for reconstruction of the thermal regime of the mantle. The temperature at depths 100-300 km is reconstructed by inversion of the Kraton and Kimberlit superlong seismic profiles for compositions of the garnet harzburgite, lherzolite, and intermediate composition of garnet peridotite. The averaged temperature in the normal continental mantle is reconstructed by inversion of the IASP91 reference model for depleted and fertile substance. One-dimensional models and two-dimensional thermal fields undergo a substantial fall in temperature (similar to 300-600 degrees C) beneath the Siberian Craton as compared to the temperatures of the continental mantle and paleotemperatures inferred from the thermobarometry of xenoliths. Temperature profiles of the Siberian Craton deduced from seismic data lie between the conductive geotherms of 32.5-40.0 mW/m(2) and below the P(H)-T values obtained for low- and high-temperature xenoliths from the Mir, Udachnaya, and Obnazhennaya kimberlite pipes. The thickness of the thermal lithosphere estimated from the intersection with the potential adiabat is 300-320 km, which is consistent with the data on heat flows and seismotomographic observations. This provides grounds for the assumption that the low-temperature anomalies (thermal roots of continents) penetrate down to a depth of 300 km. The analysis of the sensitivity of seismic velocity and density to the variations in temperature, pressure, and chemical and phase composition of petrological models shows that recognition of fine differences in chemical composition of the lithospheric rocks by seismic methods is impossible.
引用
收藏
页码:155 / 175
页数:21
相关论文
共 50 条
  • [11] Petrological-geophysical models of the internal structure of the lithospheric mantle of the Siberian Craton
    O. L. Kuskov
    V. A. Kronrod
    A. A. Prokof’ev
    N. I. Pavlenkova
    Petrology, 2014, 22 : 17 - 44
  • [12] The Thickness and Thermal State of the Lithospheric Mantle beneath the Yubileinaya Pipe (Alakit-Markha Kimberlite Field, Siberian Craton)
    Milaushkin, M. V.
    Malkovets, V. G.
    Gibsher, A. A.
    Dymshits, A. M.
    Yakovlev, I. V.
    Pokhilenko, N. P.
    DOKLADY EARTH SCIENCES, 2024, 519 (02) : 2236 - 2242
  • [13] Seismic properties of the Siberian craton mantle from Udachnaya xenoliths
    Saumet, S.
    Bascou, J.
    Ionov, D.
    Doucet, L.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2009, 73 (13) : A1160 - A1160
  • [14] Mesozoic lithospheric mantle of the northeastern Siberian craton (evidence from inclusions in kimberlite)
    Tychkov, N. S.
    Yudin, D. S.
    Nikolenko, E. I.
    Malygina, E. V.
    Sobolev, N. V.
    RUSSIAN GEOLOGY AND GEOPHYSICS, 2018, 59 (10) : 1254 - 1270
  • [15] Thermal and compositional anomalies in a detailed xenolith-based lithospheric mantle profile of the Siberian craton and the origin of seismic midlithosphere discontinuities
    Liu, Zhe
    Ionov, Dmitri A.
    Nimis, Paolo
    Xu, Yigang
    He, Pengli
    Golovin, Alexander V.
    GEOLOGY, 2022, 50 (08) : 891 - 896
  • [16] Velocity-density models of the Earth's crust and upper mantle from the quartz, Craton, and Kimberlite superlong seismic profiles
    Yegorova, T. P.
    Pavlenkova, G. A.
    IZVESTIYA-PHYSICS OF THE SOLID EARTH, 2015, 51 (02) : 250 - 267
  • [17] Velocity-density models of the Earth’s crust and upper mantle from the quartz, Craton, and Kimberlite superlong seismic profiles
    T. P. Yegorova
    G. A. Pavlenkova
    Izvestiya, Physics of the Solid Earth, 2015, 51 : 250 - 267
  • [18] THE STRUCTURE OF THE LITHOSPHERIC MANTLE OF THE SIBERAIN CRATON AND SEISMODYNAMICS OF DEFORMATION WAVES IN THE BAIKAL SEISMIC ZONE
    Stepashko, A. A.
    GEODYNAMICS & TECTONOPHYSICS, 2013, 4 (04): : 387 - 415
  • [19] The evolution of refertilized lithospheric mantle beneath the northeastern Siberian craton: Links between mantle metasomatism, thermal state and diamond potential
    Skuzovatov, Sergei
    Shatsky, Vladislav S.
    Ragozin, Alexey L.
    Smelov, Alexander P.
    GEOSCIENCE FRONTIERS, 2022, 13 (06)
  • [20] Composition of the lithospheric mantle in the northern part of Siberian craton: Constraints from peridotites in the Obnazhennaya kimberlite
    Sun, Jing
    Liu, Chuan-Zhou
    Kostrovisky, Sergey I.
    Wu, Fu-Yuan
    Yang, Jin-Hui
    Chu, Zhu-Yin
    Yang, Yue-Heng
    Kalashnikova, Tatiana
    Fan, Sheng
    LITHOS, 2017, 294 : 383 - 396