Constraints on the resistivity of the oceanic lithosphere and asthenosphere from seafloor ocean tidal electromagnetic measurements

被引:16
作者
Zhang, H. [1 ,2 ]
Egbert, G. D. [2 ]
Chave, A. D. [3 ]
Huang, Q. [1 ]
Kelbert, A. [4 ]
Erofeeva, S. Y. [2 ]
机构
[1] Peking Univ, Sch Earth & Space Sci, Beijing, Peoples R China
[2] Oregon State Univ, Coll Earth Ocean & Atmospher Sci, Corvallis, OR 97331 USA
[3] Woods Hole Oceanog Inst, Dept Appl Ocean Phys & Engn, Woods Hole, MA 02543 USA
[4] USGS, Geomagnetism Program, Golden, CO USA
基金
中国国家自然科学基金;
关键词
Composition and structure of the mantle; Pacific Ocean; Electromagnetic theory; Geomagnetic induction; Satellite magnetics; ZONE WATER-CONTENT; EAST PACIFIC RISE; ELECTRICAL-CONDUCTIVITY; UPPER-MANTLE; MAGNETIC-FIELDS; LOW-FREQUENCY; SATELLITE; SIGNALS; INDUCTION; MODEL;
D O I
10.1093/gji/ggz315
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
The electromagnetic (EM) field generated by ocean tidal flow is readily detectable in both satellite magnetic field data, and in ocean-bottom measurements of electric and magnetic fields. The availability of accurate charts of tidal currents, constrained by assimilation of modern satellite altimetry data, opens the possibility of using tidal EM fields as a source to image mantle electrical resistivity beneath the ocean basins, as highlighted by the recent success in defining the globally averaged lithosphere-asthenosphere boundary (LAB) with satellite data. In fact, seafloor EM data would be expected to provide better constraints on the structure of resistive oceanic lithosphere, since the toroidal magnetic mode, which can constrain resistive features, is a significant component of the tidal EM field within the ocean, but is absent above the surface (in particular in satellite data). Here we consider this issue in more detail, using a combination of simplified theoretical analysis and 1-D and 3-D numerical modelling to provide a thorough discussion of the sensitivity of satellite and seafloor data to subsurface electrical structure. As part of this effort, and as a step toward 3-D inversion of seafloor tidal data, we have developed a new flexible 3-D spherical-coordinate finite difference scheme for both global and regional scale modelling, with higher resolution models nested in larger scale solutions. We use the new 3-D model, together with Monte Carlo simulations of errors in tidal current estimates, to provide a quantitative assessment of errors in the computed tidal EM signal caused by uncertainty in the tidal source. Over the open ocean this component of error is below 0.01 nT in B-z at satellite height and 0.05 nT in B-x on the seafloor, well below typical signal levels. However, as coastlines are approached error levels can increase substantially. Both analytical and 3-D modelling demonstrate that the seafloor magnetic field is most sensitive to the lithospheric resistance (the product of resistivity and thickness), and is more weakly influenced (primarily in the phase) by resistivity of the underlying asthenosphere. Satellite data, which contain only the poloidal magnetic mode, are more sensitive to the conductive asthenosphere, but have little sensitivity to lithospheric resistance. For both seafloor and satellite data's changes due to plausible variations in Earth parameters are well above error levels associated with source uncertainty, at least in the ocean interior. Although the 3-D modelling results are qualitatively consistent with theoretical analysis, the presence of coastlines and bathymetric variations generates a complex response, confirming that quantitative interpretation of ocean tidal EM fields will require a 3-D treatment. As an illustration of the nested 3-D scheme, seafloor data at five magnetic and seven electric stations in the northeastern Pacific (41 degrees N, 165 degrees W) are fit with trial-and-error forward modelling of a local domain. The simulation results indicate that the lithospheric resistance is roughly 7 x 10(8) Omega m(2). The phase of the seafloor data in this region are inconsistent with a sharp transition between the resistive lithosphere and conductive asthenosphere.
引用
收藏
页码:464 / 478
页数:15
相关论文
共 65 条
  • [1] Mantle dynamics beneath the East Pacific Rise at 17°S:: Insights from the Mantle Electromagnetic and Tomography (MELT) experiment
    Baba, K
    Chave, AD
    Evans, RL
    Hirth, G
    Mackie, RL
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2006, 111 (B2)
  • [2] Electrical conductivity of old oceanic mantle in the northwestern Pacific I: 1-D profiles suggesting differences in thermal structure not predictable from a plate cooling model
    Baba, Kiyoshi
    Tada, Noriko
    Matsuno, Tetsuo
    Liang, Pengfei
    Li, Ruibai
    Zhang, Luolei
    Shimizu, Hisayoshi
    Abe, Natsue
    Hirano, Naoto
    Ichiki, Masahiro
    Utada, Hisashi
    [J]. EARTH PLANETS AND SPACE, 2017, 69
  • [3] Electrical conductivity imaging of the Philippine Sea upper mantle using seafloor magnetotelluric data
    Baba, Kiyoshi
    Utada, Hisashi
    Goto, Tada-nori
    Kasaya, Takafumi
    Shimizu, Hisayoshi
    Tada, Noriko
    [J]. PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 2010, 183 (1-2) : 44 - 62
  • [4] POLOIDAL AND TOROIDAL FIELDS IN GEOMAGNETIC-FIELD MODELING
    BACKUS, G
    [J]. REVIEWS OF GEOPHYSICS, 1986, 24 (01) : 75 - 109
  • [5] NEW COMPUTATIONS OF TIDE-GENERATING POTENTIAL
    CARTWRIGHT, DE
    TAYLER, RJ
    [J]. GEOPHYSICAL JOURNAL OF THE ROYAL ASTRONOMICAL SOCIETY, 1971, 23 (01): : 45 - +
  • [6] Chave A.D., 2012, MAGNETOTELLURIC METH, P19
  • [7] LOW-FREQUENCY, MOTIONALLY INDUCED ELECTROMAGNETIC-FIELDS IN THE OCEAN .1. THEORY
    CHAVE, AD
    LUTHER, DS
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1990, 95 (C5) : 7185 - 7200
  • [8] ON THE THEORY OF ELECTROMAGNETIC INDUCTION IN THE EARTH BY OCEAN CURRENTS
    CHAVE, AD
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH, 1983, 88 (NB4): : 3531 - 3542
  • [9] Chave AD, 2004, J ATMOS OCEAN TECH, V21, P317, DOI 10.1175/1520-0426(2004)021<0317:COMEFM>2.0.CO
  • [10] 2