The thermal signature of subducted lithospheric slabs at the core-mantle boundary

被引:4
|
作者
Meriaux, C
Agnon, A
Lister, JR
机构
[1] Univ Cambridge, Dept Appl Math & Theoret Phys, Inst Theoret Geophys, Cambridge CB3 9EW, England
[2] Hebrew Univ Jerusalem, Inst Earth Sci, IL-91904 Jerusalem, Israel
关键词
D ' layer; thermal anomalies; subduction; core-mantle boundary; plate tectonics; slabs; discontinuities; seismology;
D O I
10.1016/S0012-821X(98)00110-1
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
We study the thermal structure around a cold deformable lithospheric slab as it sinks to the core-mantle boundary and migrates along it. We present analytical results for the steady thermal structure established by a steady but spatially varying motion. The analysis gives a time-like criterion for the thermal signature of a cold slab to persist by the time that the slab moves along the core-mantle boundary. The model is used to assess the feasibility of a purely thermal origin for some of the observed seismic reflectors near the core-mantle boundary. Calculations of the time-like criterion show that the dynamical conditions in our model, namely the velocity and the thickness of the descending slab, are hard to reconcile with observations of subduction and seismic features. Seismic reflections and refractions from anomalously fast regions above the core-mantle boundary could be explained as thermal slabs if the thickness of the slab at subduction was larger than 200 km or somewhat less if the slab did not split at the core-mantle boundary. A simple thermal model also predicts from mineral physics a certain correlation between S- and P-wave velocity anomalies, which is not observed. However, a purely thermal origin cannot be ruled out if the slab is buckling. This process could be in agreement with the observations: the amplitude of the seismic anomalies, the vertical extent of high-gradient zones and the P versus S comparisons. Chemical heterogeneities and phase transformations remain alternative or complementary explanations. (C) 1998 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:551 / 562
页数:12
相关论文
共 50 条
  • [1] Retention of water in subducted slabs under core-mantle boundary conditions
    Tsutsumi, Yutaro
    Sakamoto, Naoya
    Hirose, Kei
    Tagawa, Shoh
    Umemoto, Koichiro
    Ohishi, Yasuo
    Yurimoto, Hisayoshi
    NATURE GEOSCIENCE, 2024, 17 (07) : 697 - 704
  • [2] Melting of subducted basalt at the core-mantle boundary
    Andrault, Denis
    Pesce, Giacomo
    Bouhifd, Mohamed Ali
    Bolfan-Casanova, Nathalie
    Henot, Jean-Marc
    Mezouar, Mohamed
    SCIENCE, 2014, 344 (6186) : 892 - 895
  • [3] Seismic detection of folded, subducted lithosphere at the core-mantle boundary
    Hutko, AR
    Lay, T
    Garnero, EJ
    Revenaugh, J
    NATURE, 2006, 441 (7091) : 333 - 336
  • [4] Seismic images of mantle plumes, subducting slabs and the core-mantle boundary
    Zhao, Dapeng
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2006, 70 (18) : A739 - A739
  • [5] Deformation modes of subducted lithosphere at the core-mantle boundary: An experimental investigation
    Loubet, N.
    Ribe, N. M.
    Gamblin, Y.
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2009, 10
  • [6] MANTLE FLOW DRIVEN BY LITHOSPHERIC THICKENING AND SUBDUCTED SLABS
    HAGER, BH
    OCONNELL, RJ
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1978, 59 (12): : 1194 - 1194
  • [7] THE CORE-MANTLE BOUNDARY
    YOUNG, CJ
    LAY, T
    ANNUAL REVIEW OF EARTH AND PLANETARY SCIENCES, 1987, 15 : 25 - 46
  • [8] THE CORE-MANTLE BOUNDARY
    JEANLOZ, R
    LAY, T
    SCIENTIFIC AMERICAN, 1993, 268 (05) : 48 - 55
  • [9] The difficulty for subducted oceanic crust to accumulate at the Earth's core-mantle boundary
    Li, Mingming
    McNamara, Allen K.
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2013, 118 (04) : 1807 - 1816
  • [10] The core-mantle boundary region
    Jeanloz, R
    Williams, Q
    ULTRAHIGH-PRESSURE MINERALOGY: PHYSICS AND CHEMISTRY OF THE EARTH'S DEEP INTERIOR, 1998, 37 : 241 - 259