Gravity modelling of the Hellenic subduction zone - a regional study

被引:25
作者
Casten, U [1 ]
Snopek, K [1 ]
机构
[1] Ruhr Univ Bochum, Inst Geol Mineral & Geophys, D-44780 Bochum, Germany
关键词
African-Eurasian plate collision; Bouguer gravity field; 3D forward modelling; density structure; plate boundaries;
D O I
10.1016/j.tecto.2005.11.002
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 Hellenic subduction zone is clearly expressed in the arc-shaped distribution of earthquake epicenters and gravity anomalies, which connect the Peloponnesos with Crete and Anatolia. In this region, oceanic crust of the African plate collides northward with continental crust of the Aegean microplate, which itself is pushed apart to the south-west by the Anatolian plate and, at the same time, is characterised by crustal extension. The result is an overall collision rate of up to 4 cm/year and a retreating subduction process. Recent passive and active seismic studies on and around Crete gave first, but not in all details consistent, structural results useful for supporting gravity modelling. This was undertaken with the aim of presenting the first 3D density structure of the entire subduction zone. Gravity interpretation was based on a Bouguer map, newly compiled using data from land, marine and satellite sources. The anomalies range from +170 mGal (Cretan Sea) to -10 mGal (Mediterranean Ridge). 3D gravity modelling was done applying the modelling software IGMAS. The computed Bouguer map fits the low frequency part of the observed one, which is controlled by variations in Moho depth (less than 20 km below the Cretan Sea and extending 30 km below Crete) and the extremely thick sedimentary cover (partly up to 18 km) of the Mediterranean Ridge. The southernmost edge of the Eurasian plate, with its more triangular-shaped backstop area, was traced south off Crete. Only 50 to 100 km further to the south, the edge of the African continent was traced as well. In between these boundaries there is African oceanic crust, which has a clear arc-shaped detachment line situated at the Eurasian continental edge. The subduction arc is open towards the north, its slab separates hotter mantle material (lower density) below the updoming Moho of the Cretan Sea from colder one (higher density) in the south. Subjacent to the upper continental crust of Crete is a thickened layer of lower crust followed by the subducted oceanic crust with some mantle material as intermediate layer. The depth of the oceanic Moho below Crete is 50 km. The presence and structure of subducted or underplated sediments remains uncertain, (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:183 / 200
页数:18
相关论文
共 53 条
[1]   THE TECTONIC DEVELOPMENT OF THE HELLENIC ARC AND THE SEA OF CRETE - A SYNTHESIS [J].
ANGELIER, J ;
LYBERIS, N ;
LEPICHON, X ;
BARRIER, E ;
HUCHON, P .
TECTONOPHYSICS, 1982, 86 (1-3) :159-196
[2]  
[Anonymous], LEADING EDGE
[3]  
[Anonymous], B GEOF TEOR APPL
[4]   DENSITY + COMPOSITION OF MANTLE + CORE [J].
BIRCH, F .
JOURNAL OF GEOPHYSICAL RESEARCH, 1964, 69 (20) :4377-+
[5]   Crustal investigation of the Hellenic subduction zone using wide aperture seismic data [J].
Bohnhoff, M ;
Makris, J ;
Papanikolaou, D ;
Stavrakakis, G .
TECTONOPHYSICS, 2001, 343 (3-4) :239-262
[6]  
BOHNHOFF M, 2000, BERICHTE ZENTRUM MEE, V19
[7]  
BRONNER M, 2003, BERICHTE ZENTRUM MEE, V21
[8]   Deformation of the western Mediterranean Ridge: Importance of Messinian evaporitic formations [J].
Chaumillon, E ;
Mascle, J ;
Hoffmann, HJ .
TECTONOPHYSICS, 1996, 263 (1-4) :163-&
[9]   From foreland to forearc domains: New multichannel seismic reflection survey of the Mediterranean ridge accretionary complex (Eastern Mediterranean) [J].
Chaumillon, E ;
Mascle, J .
MARINE GEOLOGY, 1997, 138 (3-4) :237-259
[10]   Lithospheric structure in the area of Crete constrained by receiver functions and dispersion analysis of Rayleigh phase velocities [J].
Endrun, B ;
Meier, T ;
Bischoff, M ;
Harjes, HP .
GEOPHYSICAL JOURNAL INTERNATIONAL, 2004, 158 (02) :592-608