Partial melting below the magmatic arc in the central Andes deduced from geoelectromagnetic field experiments and laboratory data

被引:136
作者
Schilling, FR
Partzsch, GM
Brasse, H
Schwarz, G
机构
[1] Free Univ Berlin, Inst Mineral, D-14195 Berlin, Germany
[2] Free Univ Berlin, Fachrichtung Geophys, D-12249 Berlin, Germany
关键词
northern Chile; high conductivity zone; magmatic arc; magnetotelluric; geomagnetic deep sounding;
D O I
10.1016/S0031-9201(97)00011-3
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
Magnetotelluric and geomagnetic deep soundings in northern Chile revealed a pronounced high conductivity zone (HCZ). Below the Western Cordillera, which constitutes the present magmatic are with active volcanism of the South American continental margin, conductivities in the range of 1 S/m are observed. The anomalously high conductivities in a broad depth range from approximately 20 km to at least 60 km, are interpreted in terms of partial melting. Other geophysical observations, such as a zone of low seismic velocities (LVZ) at similar depths, high heat flow values (> 100 mW/m(2)) and a pronounced negative anomaly in the residual gravity field, are also considered. Impedance spectroscopic laboratory experiments up to and in the temperature range of partial melting were performed under controlled oxygen fugacities. At sub-solidus temperatures, electrical behavior is described by defect electrons with an activation energy of 1.34 eV and a conductivity of 2.5 mS/m at 900 degrees C. Model calculations using a modified-brick-layer model (MEL) were compared with experimental observations. A good agreement between calculations and experiments is achieved with an electrical resistivity of the melt phase of 7 S/m at 1250 degrees C assuming an activation energy of 1 eV. The same MBL model is used to calculate melt proportions beneath the Western Cordillera. Between 14 and 27 vol.% of interconnected melt are necessary to explain the observed HCZ. The stability of the melt rich crust is explained by a dynamic melting-crystallisation behavior during crustal anatexis and by magma filled dikes. (C) 1997 Elsevier Science B.V.
引用
收藏
页码:17 / 31
页数:15
相关论文
共 73 条
[11]   TECTONIC AND MAGMATIC EVOLUTION OF THE ANDES OF NORTHERN ARGENTINA AND CHILE [J].
COIRA, B ;
DAVIDSON, J ;
MPODOZIS, C ;
RAMOS, V .
EARTH-SCIENCE REVIEWS, 1982, 18 (3-4) :303-332
[12]   EVIDENCE FROM BOREHOLE SAMPLES FOR THE ROLE OF ACCESSORY MINERALS IN LOWER-CRUSTAL CONDUCTIVITY [J].
DUBA, A ;
HEIKAMP, S ;
MEURER, W ;
NOVER, G ;
WILL, G .
NATURE, 1994, 367 (6458) :59-61
[13]   FREE CARBON AND ELECTRICAL-CONDUCTIVITY IN THE EARTHS MANTLE [J].
DUBA, AG ;
SHANKLAND, TJ .
GEOPHYSICAL RESEARCH LETTERS, 1982, 9 (11) :1271-1274
[14]  
ECHTERNACHT F, 1997, IN PRESS PHYS EARTH
[15]   IS WATER RESPONSIBLE FOR GEOPHYSICAL ANOMALIES IN THE DEEP CONTINENTAL-CRUST - A PETROLOGICAL PERSPECTIVE [J].
FROST, BR ;
BUCHER, K .
TECTONOPHYSICS, 1994, 231 (04) :293-309
[16]   GRAIN-BOUNDARY GRAPHITE IN ROCKS AND IMPLICATIONS FOR HIGH ELECTRICAL-CONDUCTIVITY IN THE LOWER CRUST [J].
FROST, BR ;
FYFE, WS ;
TAZAKI, K ;
CHAN, T .
NATURE, 1989, 340 (6229) :134-136
[17]  
Giese P., 1994, TECTONICS SO CENTRAL, P69, DOI [10.1007/978-3-642-77353-2_4, DOI 10.1007/978-3-642-77353-2_4]
[18]  
Gill J.B., 2012, OROGENIC ANDESITES P, DOI DOI 10.1007/978-3-642-68012-0_2
[19]  
GOTZE HJ, 1994, TECTONICS SO CENTRAL, P23
[20]   WHY IS THE ELECTRICAL-RESISTIVITY AROUND THE KTB HOLE SO LOW [J].
HAAK, V ;
STOLL, J ;
WINTER, H .
PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 1991, 66 (1-2) :12-23