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Petrogenesis of Cenezoic volcanic rocks from the Aegean island arc

Identifieur interne : 000460 ( Main/Exploration ); précédent : 000459; suivant : 000461

Petrogenesis of Cenezoic volcanic rocks from the Aegean island arc

Auteurs : P. Mitropolous [Grèce] ; J. Tarney [Royaume-Uni] ; A. D. Saunders [Royaume-Uni] ; N. G. Marsh [Royaume-Uni]

Source :

RBID : ISTEX:0917800D6BB4A1B98E77589DA269747DA470B757

English descriptors

Abstract

Abstract: The Aegean volcanic arc formed in response to northeasterly subduction of the Mediterranean sea floor beneath the Aegean Sea. The active arc lies over 250 km from the Hellenic Trench in a region which has suffered considerable extension and subsidence since the mid-Tertiary. Suites of samples from the different volcanic centres making up the arc have been studied geochemically in order to assess lateral variations and to constrain the contribution of crustal contamination and sediment subduction in their petrogenesis.Lavas from all the major volcanic centres exhibit typical calc-alkaline major-element characteristics, and show enrichment in light REE and LIL elements but low contents of HFS elements. The enrichment in light REE is greater in the eastern (Nisyros, Kos) and western (Milos, Poros, Methana, Aegina) sectors of the arc (Cen/Ybn=4) than in the central Santorini sector (Cen/Ybn=2). All lavas have significant negative Eu anomalies and many have slight negative Ce anomalies. Less coherence is observed in the abundances and ratios of the other LIL elements, compared with the REE, along the island chain.Whereas the effects of crystal fractionation are evident in the trace-element patterns of lavas from individual islands, and are particularly well marked for Santorini, it is clear that there are consistent differences in trace-element abundances and ratios in the lavas of the various islands which reflect compositional differences in the mantle source and/or in melting conditions. Lavas from the eastern and western sectors have much higher levels of Ba and Sr but relatively lower Th, K and Rb than those from Santorini. Although some geochemical features could be explained through involvement of a component of subducted sediment in the source regions of the volcanoes, other element abundances and ratios indicate that this component must be very small. Detailed consideration of the inter-island geochemical variations suggests a complex make-up of the underlying lithosphere, resulting from a long history of subduction. In the region of Santorini, where crustal stretching is greatest, the underlying asthenosphere may be involved in magma production.

Url:
DOI: 10.1016/0377-0273(87)90043-6


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Le document en format XML

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<term>Aegean</term>
<term>Aegean island</term>
<term>Aegean lavas</term>
<term>Aegean region</term>
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<term>Anomaly</term>
<term>Benioff zone</term>
<term>Bransfield strait</term>
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<term>Continental crust</term>
<term>Convergent margins</term>
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<term>Crustal</term>
<term>Crustal contamination</term>
<term>Crystal fractionation</term>
<term>Crystallisation</term>
<term>Decoupled behaviour</term>
<term>Drilling project</term>
<term>Earth planet</term>
<term>Element abundances</term>
<term>Element ratios</term>
<term>Enrichment</term>
<term>Equivalent data</term>
<term>Fractional crystallisation</term>
<term>Fractionation range</term>
<term>Geochemical</term>
<term>Geochemical evidence</term>
<term>Geochronological data</term>
<term>Hellenic trench</term>
<term>High element ratios</term>
<term>High levels</term>
<term>Instrumental neutron activation analysis</term>
<term>International reference samples</term>
<term>Island chain</term>
<term>Isotope</term>
<term>Isotope ratios</term>
<term>Isotopic studies</term>
<term>Large variation</term>
<term>Lava</term>
<term>Lava compositions</term>
<term>Lithosphere</term>
<term>Magma</term>
<term>Mainland greece</term>
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<term>Mantle normalised plots</term>
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<term>Mantle wedge</term>
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<term>Mariana lavas</term>
<term>Methana</term>
<term>Milo</term>
<term>Negative anomaly</term>
<term>Nisyros</term>
<term>Normalised</term>
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<term>Orogenic andesites</term>
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<term>Other hand</term>
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<term>Other trace elements</term>
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<term>Pelagic sediment</term>
<term>Pelagic sediments</term>
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<term>Poros aegina</term>
<term>Present subduction regime</term>
<term>Primitive lava</term>
<term>Primordial mantle compositions</term>
<term>Primordial mantle values</term>
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<term>Representative analyses</term>
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<term>Saunders</term>
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<term>Abyssal pelagic sediments</term>
<term>Abyssal sediments</term>
<term>Aegean</term>
<term>Aegean island</term>
<term>Aegean lavas</term>
<term>Aegean region</term>
<term>Aegina</term>
<term>Anomaly</term>
<term>Benioff zone</term>
<term>Bransfield strait</term>
<term>Centre</term>
<term>Continental crust</term>
<term>Convergent margins</term>
<term>Crust</term>
<term>Crustal</term>
<term>Crustal contamination</term>
<term>Crystal fractionation</term>
<term>Crystallisation</term>
<term>Decoupled behaviour</term>
<term>Drilling project</term>
<term>Earth planet</term>
<term>Element abundances</term>
<term>Element ratios</term>
<term>Enrichment</term>
<term>Equivalent data</term>
<term>Fractional crystallisation</term>
<term>Fractionation range</term>
<term>Geochemical</term>
<term>Geochemical evidence</term>
<term>Geochronological data</term>
<term>Hellenic trench</term>
<term>High element ratios</term>
<term>High levels</term>
<term>Instrumental neutron activation analysis</term>
<term>International reference samples</term>
<term>Island chain</term>
<term>Isotope</term>
<term>Isotope ratios</term>
<term>Isotopic studies</term>
<term>Large variation</term>
<term>Lava</term>
<term>Lava compositions</term>
<term>Lithosphere</term>
<term>Magma</term>
<term>Mainland greece</term>
<term>Major differences</term>
<term>Mantle enrichment processes</term>
<term>Mantle normalised plots</term>
<term>Mantle source</term>
<term>Mantle wedge</term>
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<term>Mariana lavas</term>
<term>Methana</term>
<term>Milo</term>
<term>Negative anomaly</term>
<term>Nisyros</term>
<term>Normalised</term>
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<term>Orogenic andesites</term>
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<term>Other hand</term>
<term>Other islands</term>
<term>Other trace elements</term>
<term>Parental magmas</term>
<term>Pelagic</term>
<term>Pelagic sediment</term>
<term>Pelagic sediments</term>
<term>Poros</term>
<term>Poros aegina</term>
<term>Present subduction regime</term>
<term>Primitive lava</term>
<term>Primordial mantle compositions</term>
<term>Primordial mantle values</term>
<term>Printing office</term>
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<term>Representative analyses</term>
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<term>Santorini patterns</term>
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<term>Sediment</term>
<term>Sediment subduction</term>
<term>Source regions</term>
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<term>Subcontinental lithosphere</term>
<term>Subcontinental mantle</term>
<term>Subducted</term>
<term>Subducted sediment</term>
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<term>Subduction</term>
<term>Subduction processes</term>
<term>Systematic increase</term>
<term>Tarney</term>
<term>Terrigenous sediment</term>
<term>Terrigenous sediments</term>
<term>Total alkalis</term>
<term>Trace elements</term>
<term>Trench</term>
<term>Various islands</term>
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<div type="abstract" xml:lang="en">Abstract: The Aegean volcanic arc formed in response to northeasterly subduction of the Mediterranean sea floor beneath the Aegean Sea. The active arc lies over 250 km from the Hellenic Trench in a region which has suffered considerable extension and subsidence since the mid-Tertiary. Suites of samples from the different volcanic centres making up the arc have been studied geochemically in order to assess lateral variations and to constrain the contribution of crustal contamination and sediment subduction in their petrogenesis.Lavas from all the major volcanic centres exhibit typical calc-alkaline major-element characteristics, and show enrichment in light REE and LIL elements but low contents of HFS elements. The enrichment in light REE is greater in the eastern (Nisyros, Kos) and western (Milos, Poros, Methana, Aegina) sectors of the arc (Cen/Ybn=4) than in the central Santorini sector (Cen/Ybn=2). All lavas have significant negative Eu anomalies and many have slight negative Ce anomalies. Less coherence is observed in the abundances and ratios of the other LIL elements, compared with the REE, along the island chain.Whereas the effects of crystal fractionation are evident in the trace-element patterns of lavas from individual islands, and are particularly well marked for Santorini, it is clear that there are consistent differences in trace-element abundances and ratios in the lavas of the various islands which reflect compositional differences in the mantle source and/or in melting conditions. Lavas from the eastern and western sectors have much higher levels of Ba and Sr but relatively lower Th, K and Rb than those from Santorini. Although some geochemical features could be explained through involvement of a component of subducted sediment in the source regions of the volcanoes, other element abundances and ratios indicate that this component must be very small. Detailed consideration of the inter-island geochemical variations suggests a complex make-up of the underlying lithosphere, resulting from a long history of subduction. In the region of Santorini, where crustal stretching is greatest, the underlying asthenosphere may be involved in magma production.</div>
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