The formation and fate of large oceanic igneous provinces

被引:121
作者
Saunders, AD
Tarney, J
Kerr, AC
Kent, RW
机构
[1] Department of Geology, University of Leicester, Leicester
关键词
D O I
10.1016/0024-4937(95)00030-5
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
Large igneous provinces are conspicuous features of late Phanerozoic geology, and include continental flood basalts, rifted continental margin volcanic sequences and oceanic plateaus. The latter are formed in an environment which typically recycles back into the mantle on a time scale of < 200 m.y., but because comparisons have recently been made between oceanic plateaus and Precambrian greenstone belt sequences, new questions arise about their formation, their fate and their preservation. Here we review some critical aspects of three oceanic plateaus, Ontong Java, Kerguelen and the Caribbean/Colombian obducted plateau, and comment on their make-up and the factors governing their preservation, with particular relevance to ancient terranes. Many large igneous provinces can be linked to mantle plumes. Where plumes ascend beneath spreading ridges, their energy is transformed into a large melt volume, producing over-thickened plateau crust. Where the spreading rate is low in relation to magma supply, the plateau may become subaerial (e.g. Iceland), but with fast spreading the plateau remains submarine. Thicker lithosphere may result in plume incubation before magma extrusion, and there are many intermediate situations where plumes could readily break through thin lithosphere (oceanic or continental). Because magma supply exceeds extension rate, plateaus may be characterised by thick sequences of flows and sills rather than the sheeted dykes typical of Phanerozoic ophiolites. Precambrian greenstones could represent imbricated oceanic plateaus, or plumes penetrating thin continental lithosphere. The initial high temperature and the buoyant nature of the depleted refractory keel of plateaus contributes to their preservation relative to normal oceanic crust. When they collide with active margins they choke the subduction zone, causing subduction ''flip'' or ''backstep'' and the development of extensive calc-alkaline are volcanism on top of the plateau sequences. However, after much greater than 100 m.y. they are potentially negatively buoyant, so if fluids become available to promote transformation of the deeper zones to eclogite, they may be able to spontaneously subduct.
引用
收藏
页码:81 / 95
页数:15
相关论文
共 99 条
[21]  
2
[22]   FORMATION OF AN ARCHEAN CONTINENT [J].
DEWIT, MJ ;
ROERING, C ;
HART, RJ ;
ARMSTRONG, RA ;
DERONDE, CEJ ;
GREEN, RWE ;
TREDOUX, M ;
PEBERDY, E ;
HART, RA .
NATURE, 1992, 357 (6379) :553-562
[23]  
DUNCAN RA, 1984, GEOL SOC AM MEM, V162, P81
[25]  
ELLAM RM, 1988, GEOLOGY, V16, P314, DOI 10.1130/0091-7613(1988)016<0314:IACCGA>2.3.CO
[26]  
2
[27]   MAGMA SOURCES AND PLUMBING SYSTEMS DURING BREAK-UP OF THE SE GREENLAND MARGIN - PRELIMINARY-RESULTS FROM ODP LEG-152 [J].
FITTON, JG ;
SAUNDERS, AD ;
LARSEN, LM ;
FRAM, MS ;
DEMANT, A ;
SINTON, C .
JOURNAL OF THE GEOLOGICAL SOCIETY, 1995, 152 :985-990
[28]   STRUCTURE AND EVOLUTION OF THE HENGILL-GRENSDALUR VOLCANIC COMPLEX, ICELAND - GEOLOGY, GEOPHYSICS, AND SEISMIC TOMOGRAPHY [J].
FOULGER, GR ;
TOOMEY, DR .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1989, 94 (B12) :17511-17522
[29]   MAGMA EVOLUTION IN A PROTEROZOIC RIFTING ENVIRONMENT [J].
FRANCIS, D ;
LUDDEN, J ;
HYNES, A .
JOURNAL OF PETROLOGY, 1983, 24 (04) :556-582
[30]   SEISMIC STUDIES ON ONTONG JAVA']JAVA PLATEAU, 1970 [J].
FURUMOTO, AS ;
WEBB, JP ;
ODEGARD, ME ;
HUSSONG, DM .
TECTONOPHYSICS, 1976, 34 (1-2) :71-90