Ediacaran - Earliest Cambrian arc-tholeiite and adakite associations of the Malcocinado Formation (Ossa-Morena Zone, SW Spain): Juvenile continental crust and deep crustal reworking in northern Gondwana

The Ossa-Morena Zone of the SW Iberian Massif encloses an arc-related assemblage ascribable to subduction processes that encompass the latest Cryogenian-early Cambrian. It started ca. 645 Ma ago and is recorded by coeval N-MORB and E-MORB type magmatic rocks. Mature stages of the arc generated the M...

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Detalles Bibliográficos
Autores: Sarrionandia-Ibarra Eguidazu, Fernando, Abalos Villaro, Benito, Errandonea Martín, Jon, Eguíluz Alarcón, Luis, Santos Zalduegui, José Francisco, García de Madinabeitia Martínez de Lizarduy, Sonia, Carracedo Sánchez, Manuel, Gil Ibarguchi, José Ignacio
Tipo de recurso: artículo
Fecha de publicación:2020
País:España
Institución:Universidad del País Vasco
Repositorio:Addi. Archivo Digital para la Docencia y la Investigación
OAI Identifier:oai:addi.ehu.eus:10810/75549
Acceso en línea:http://hdl.handle.net/10810/75549
Access Level:acceso abierto
Palabra clave:arc-tholeiites
adakites
convergent margin
Ediacaran
Ossa-Morena Zone
Descripción
Sumario:The Ossa-Morena Zone of the SW Iberian Massif encloses an arc-related assemblage ascribable to subduction processes that encompass the latest Cryogenian-early Cambrian. It started ca. 645 Ma ago and is recorded by coeval N-MORB and E-MORB type magmatic rocks. Mature stages of the arc generated the Malcocinado Formation volcano-sedimentary complex. We study 15 coherent andesite units (usually lava flows) from this unit with a focus on their whole-rock geochemical and isotopic signatures and their geochronology. Lavas consist of sub-alkali andesites and basaltic andesites enriched in Th and LREE, depleted in P, Nb and, to a lesser extent, in Ti, Zr and Yb. Their εNd(t) – Mg# relations disclose three igneous associations: 1) arc-tholeiites derived from fluid-modified garnet lherzolites; 2) silica-poor adakites generated by partial melting of basic/ultrabasic sills; and 3) hybrid rocks generated by mixing of evolved melts from the previous associations plus variable assimilation of volcano-sedimentary country rocks. Formation of youngest lavas is dated ca. 534 Ma. It involved partial melting of enriched garnet lherzolite accompanied by deep crustal reworking of previous, subduction-related igneous rocks. Subduction was either still active at ca. 534 Ma or, likely, stopped some time before. The relationships with regional low-pressure metamorphism and ophiolite emplacement point to interaction between oceanic ridge/transform lithosphere and the trench at a steep subduction scenario. We envisage an active margin involving Gondwana hyper-extended crust North of the West African Craton and the Tuareg Shield.