Electrical structure in marine tectonic settings

被引:31
作者
Baba, K
机构
[1] Japan Agcy Marine Earth Sci & Technol, Inst Res Earth Evolut, Kanagawa 2370061, Japan
[2] Univ Tokyo, Earthquake Res Inst, Bunkyo Ku, Tokyo 1130032, Japan
关键词
controlled-source electromagnetics; electrical conductivity; magnetotellurics; marine tectonic settings;
D O I
10.1007/s10712-005-1831-2
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
This review paper presents recent research on electrical conductivity structure in various marine tectonic settings. In at least three areas, marine electromagnetic studies for structural exploration have increasingly progressed: (1) data accumulations, (2) technical advances both for hardware and software, and (3) interpretations based on multidisciplinary approaches. The mid-ocean ridge system is the best-studied tectonic setting. Recent works have revealed evidence of conductive zones of hydrothermal circulation and axial magma chambers in the crust and partial melt zones of the mid-ocean ridge basalt source in the mantle. The role of water or dissolved hydrogen and its redistribution at mid-ocean ridges is emphasized for the conductivity pattern of the oceanic lithosphere and asthenosphere. Regions of mantle upwelling (hotspot or plume) and downwelling (subducting slab) are attracting attention. Evidence of heterogeneity exists not only in the crust and the upper mantle, but also in the mantle transition zone. Electrical conductive zones frequently overlap seismic low-velocity zones, but discrepancies are also apparent. Some studies have compared conductivity models with the results of seismic and other studies to investigate the physical properties or processes. A new laboratory-based conductivity model for matured oceanic lithosphere and asthenosphere is proposed. It takes account of both the water distribution in the mantle as well as the thermal structure. It explains observed conductivity patterns in the depth range of 60-200 km.
引用
收藏
页码:701 / 731
页数:31
相关论文
共 84 条
[1]   A new technique for the incorporation of seafloor topography in electromagnetic modelling [J].
Baba, K ;
Seama, N .
GEOPHYSICAL JOURNAL INTERNATIONAL, 2002, 150 (02) :392-402
[2]  
BABA K, 2005, IN PRESS J GEOPHYS R
[3]  
BABA K, 2004, UNPUB J GEOPHYS RES
[4]  
BABA K, 2004, P 17 WORKSH EL IND E
[5]   ON ELECTRIC AND MAGNETIC GALVANIC DISTORTION TENSOR DECOMPOSITIONS [J].
CHAVE, AD ;
SMITH, JT .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1994, 99 (B3) :4669-4682
[6]  
CHAVE AD, 2001, OHP ION JOINT S LONG, P119
[7]  
CHAVE AD, 1991, ELECTROMAGNETIC METH, V2, P931
[8]   Marine controlled-source electromagnetic sounding .2. The PEGASUS experiment [J].
Constable, S ;
Cox, CS .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1996, 101 (B3) :5519-5530
[9]   Hawaiian hot-spot swell structure from seafloor MT sounding [J].
Constable, S ;
Heinson, G .
TECTONOPHYSICS, 2004, 389 (1-2) :111-124
[10]   THE ELECTRICAL-CONDUCTIVITY OF AN ISOTROPIC OLIVINE MANTLE [J].
CONSTABLE, S ;
SHANKLAND, TJ ;
DUBA, A .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1992, 97 (B3) :3397-3404