New geochemical and age constraints ( 40 Ar/ 39 Ar and U–Pb) on forearc intrusive rocks from the New Caledonia Ophiolite (SW Pacific): diversity of melts generated at hot subduction inception

Author:

Cluzel Dominique1ORCID,Montanini Alessandra2ORCID,Secchiari Arianna3ORCID,Ferrari Elisa24,Heizler Matt5,Jourdan Fred6ORCID,Meffre Sebastien7ORCID,Zhou Renjie8ORCID,Teyssier Christian9ORCID

Affiliation:

1. Institut de Sciences Exactes et Appliquées, University of New Caledonia, BP R4, 98851 Nouméa Cedex, New Caledonia

2. Department of Chemistry, Life Sciences and Environmental Sustainability, University of Parma, Parco Area delle Scienze 157/a, 43124 Parma, Italy

3. Earth Sciences Department, University of Milan, Via Botticelli 23, 20133 Milano, Italy

4. Instituto Nazionale di Geofisica e Vulcanologia, Sezione di Milano, Via Alfonso Corti, 12, 20133 Milano, Italy

5. New Mexico Institute of Mining & Technology, 801 Leroy Place, Socorro, NM 87801-4796, USA

6. Western Australian Argon Isotope Facility, John de Laeter Centre & School of Earth and Planetary Sciences, Curtin University, Perth, Australia

7. Earth Sciences, University of Tasmania, Sandy Bay Campus, Hobart, Tasmania, Australia

8. School of Earth and Environmental Sciences, The University of Queensland, Brisbane, QLD, Australia

9. Earth and Environmental Sciences, 116 Church Street SE, University of Minnesota Twin Cities, Minneapolis, MN 55455-2070, USA

Abstract

The New Caledonia Ophiolite is cross-cut by coarse- to medium-grained pyroxenite and hornblende gabbro/diorite dykes intruded between 55.5 and 50 Ma (U–Pb zircon and 40 Ar/ 39 Ar hornblende), whereas the finer grained dolerites of tholeiitic affinity are younger (50–47 Ma). The production of hornblende gabbros/diorites was modelled by moderate degrees (20–40%) of partial melting of the high-temperature amphibolites of the metamorphic sole. The end-member compositions (hornblendites and anorthosites) resulted from solid-state phase segregation of crystal mushes within tectonically active magmatic conduits. Cascade reactions of the slab melts with mantle wedge peridotites successively formed clinoenstatite-bearing boninite magmas, which fed gabbronorite cumulate lenses at the mantle–crust transition; in turn, the clinoenstatite-bearing boninite melts reacted with peridotites to form websterites. The youngest magmas (of tholeiitic affinity) appeared c. 6 Myr after the inception of subduction when the cooler subducting slab plunged more steeply. Incipient slab retreat allowed corner flow, triggering low-pressure hydrous melting of the uplifted asthenosphere. The early stages of forearc magmatism were closely associated with transcurrent shear zones, which recorded oblique subduction inception. The early Eocene tectonic and magmatic features of the New Caledonia Ophiolite provide evidence for a north- or NE-dipping hot (forced) subduction zone in the SW Pacific, notably distinct from the slightly younger west-dipping Izu-Bonin–Marianna cold (spontaneous) subduction system. Supplementary material: Field pictures, additional diagrams, GPS location of dated samples, whole-rock geochemical and isotope data, Ar/Ar data, U–Pb zircon data, and distribution coefficients ( K d ) of trace elements used for modelling are available at https://doi.org/10.6084/m9.figshare.c.6949265 Thematic collection: This article is part of the Ophiolites, melanges and blueschists collection available at: https://www.lyellcollection.org/topic/collections/ophiolites-melanges-and-blueschists

Publisher

Geological Society of London

Subject

Geology

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