The plastic deformation of iron at pressures of the Earth's inner core

被引:0
|
作者
H.-R. Wenk
S. Matthies
R. J. Hemley
H.-K. Mao
J. Shu
机构
[1] Department of Geology and Geophysics University of California,
[2] Geophysical Laboratory and Center for High-Pressure Research,undefined
[3] Carnegie Institution of Washington,undefined
来源
Nature | 2000年 / 405卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Soon after the discovery of seismic anisotropy in the Earth's inner core1, it was suggested that crystal alignment attained during deformation might be responsible2. Since then, several other mechanisms have been proposed to account for the observed anisotropy3,4, but the lack of deformation experiments performed at the extreme pressure conditions corresponding to the solid inner core has limited our ability to determine which deformation mechanism applies to this region of the Earth5. Here we determine directly the elastic and plastic deformation mechanism of iron at pressures of the Earth's core, from synchrotron X-ray diffraction measurements of iron, under imposed axial stress, in diamond-anvil cells. The ε-iron (hexagonally close packed) crystals display strong preferred orientation, with c-axes parallel to the axis of the diamond-anvil cell. Polycrystal plasticity theory predicts an alignment of c-axes parallel to the compression direction as a result of basal slip, if basal slip is either the primary or a secondary slip system. The experiments provide direct observations of deformation mechanisms that occur in the Earth's inner core, and introduce a method for investigating, within the laboratory, the rheology of materials at extreme pressures.
引用
收藏
页码:1044 / 1047
页数:3
相关论文
共 50 条
  • [31] Shear Relaxation in Iron under the Conditions of Earth's Inner Core
    Belonoshko, A. B.
    Bryk, T.
    Rosengren, A.
    PHYSICAL REVIEW LETTERS, 2010, 104 (24)
  • [32] Thermal conductivity of iron under the Earth's inner core pressure
    Hu, Cui-E
    Jiao, Mu-Xin
    Yang, Xue-Nan
    Zeng, Zhao-Yi
    Chen, Jun
    CHINESE PHYSICS B, 2024, 33 (10)
  • [33] Stability of B2-type FeS at Earth's inner core pressures
    Gavryushkin, Pavel N.
    Popov, Zakhar I.
    Litasov, Konstantin D.
    Belonoshko, Anatoly B.
    Gavryushkin, Alex
    GEOPHYSICAL RESEARCH LETTERS, 2016, 43 (16) : 8435 - 8440
  • [34] Magnetic susceptibility of hcp iron and the seismic anisotropy of Earth's inner core
    Grechnev, GE
    Ahuja, R
    Eriksson, O
    PHYSICAL REVIEW B, 2003, 68 (06):
  • [35] Viscosities of hcp iron alloys under Earth's inner core conditions
    Xu, Yunfan
    He, Yu
    Sun, Shichuan
    Zhang, Wei
    Dai, Weiru
    Kim, Duck Young
    Li, Heping
    GEOSCIENCE FRONTIERS, 2025, 16 (01)
  • [36] Raman spectroscopy of iron to 152 gigapascals: Implications for Earth's inner core
    Merkel, S
    Goncharov, AF
    Mao, HK
    Gillet, P
    Hemley, RJ
    SCIENCE, 2000, 288 (5471) : 1626 - 1629
  • [37] Compression of iron hydride to 80 GPa and hydrogen in the Earth's inner core
    Hirao, N
    Kondo, T
    Ohtani, E
    Takemura, K
    Kikegawa, T
    GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (06)
  • [38] Earth's inner core: Innermost inner core or hemispherical variations?
    Lythgoe, K. H.
    Deuss, A.
    Rudge, J. F.
    Neufeld, J. A.
    EARTH AND PLANETARY SCIENCE LETTERS, 2014, 385 : 181 - 189
  • [39] The rigidity of the Earth's inner core
    Bullen, Keith Edward
    ANNALS OF GEOPHYSICS, 2010, 53 (01) : 1 - 5
  • [40] Sulfur in the Earth's inner core
    Li, J
    Fei, Y
    Mao, HK
    Hirose, K
    Shieh, SR
    EARTH AND PLANETARY SCIENCE LETTERS, 2001, 193 (3-4) : 509 - 514