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Journal of Petrology Volume 42 Number 1 Pages 141-158 2001
© Oxford University Press 2001

The Recrystallization Front of the Ronda Peridotite: Evidence for Melting and Thermal Erosion of Subcontinental Lithospheric Mantle beneath the Alboran Basin

XAVIER LENOIR1,*, CARLOS J. GARRIDO1,2, JEAN-LOUIS BODINIER1, JEAN-MARIE DAUTRIA1 and FERNANDO GERVILLA2

1LABORATOIRE DE TECTONOPHYSIQUE, UMR 5568, INSTITUT DES SCIENCES DE LA TERRE, DE L’EAU ET DE L’ESPACE DE MONTPELLIER, CNRS & UNIVERSITÉ DE MONTPELLIER 2, CASE 49, PLACE E. BATAILLON, 34095 MONTPELLIER CEDEX 05, FRANCE
2INSTITUTO ANDALUZ DE CIENCIAS DE LA TIERRA, CSIC & UNIVERSIDAD DE GRANADA, FACULTAD DE CIENCIAS, FUENTENUEVA S/N, 18002 GRANADA, SPAIN

Evidence for a major heating event accompanied by decompression was recently reported from crustal rocks drilled in the Alboran basin. The metamorphic evolution recorded by these rocks implies complete removal of lithospheric mantle during the Cenozoic, a process that is confirmed by geophysical modelling indicating thin lithosphere beneath the Alboran domain. In this region, the Ronda lherzolite massif (Betic Cordillera, southern Spain) provides a unique opportunity for the observation of mantle processes associated with lithospheric thinning. A striking feature of the Ronda peridotite is a narrow recrystallization front, which has been ascribed to kilometre-scale porous melt flow through the massif. The front separates the spinel tectonite domain, interpreted as old, veined lithospheric mantle, from the granular domain where the lithospheric microstructures, mineralogical assemblages and geochemical signatures were obliterated by grain growth coeval with pervasive infiltration of basaltic melts. On the basis of trace-element abundances in peridotites collected over a distance of 12 km along the recrystallization front, our study confirms that the front is a relatively sharp (<=400 m) geochemical discontinuity at the scale of the Ronda massif. Compared with the spinel tectonites, the coarse-granular peridotites are more homogeneous, more refractory in terms of major elements and more depleted in incompatible trace elements. These features are consistent with a process involving partial melting, kilometre-scale migration of melts by diffuse porous flow and limited melt extraction (2·5–6·5%). Hence, the Ronda recrystallization front is interpreted as the narrow boundary of a partial-melting domain (the coarse-granular peridotites) formed at the expense of subcontinental lithospheric mantle (the spinel tectonites). The existence of melt-consuming reactions in the transitional peridotites, a few hundred metres ahead of the melting front, demonstrates that the front was thermally controlled. This implies that a smooth thermal gradient existed across the Ronda massif during the development of the recrystallization front. Differences in pyroxene compositions on either side of the front may be explained by a transient heating event at >=1200°C (~1·5 GPa) coeval with partial melting. Consistent with the geodynamic scenario proposed for the Alboran domain during the Cenozoic, the evolution of the Ronda recrystallization front is considered as an example of thermal erosion and partial melting of lithospheric mantle above upwelling asthenosphere.

KEY WORDS: asthenosphere–lithosphere interaction; partial melting; Ronda peridotite; subcontinental mantle; trace elements


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