Trace Element and Isotope Geochemistry of Tschicoma Formation Intermediate Composition Dome Complexes, Jemez Mountains Volcanic Field, New Mexico, USA

Author:

Waelkens Clara M12ORCID,Stix John1,Goff Fraser3,Weis Dominique4

Affiliation:

1. McGill University Department of Earth and Planetary Sciences, , 3450 University Street, Montreal, QC H3A 0E8, Canada

2. Leibniz University Hannover Institute of Earth System Sciences, , Callinstraße 3, 30169 Hannover, Germany

3. New Mexico Institute of Mining and Technology Department of Earth and Environmental Sciences, , 801 Leroy Place, Socorro, NM 87801, USA

4. University of British Columbia Pacific Centre for Isotopic and Geochemical Research, Department of Earth, Ocean and Atmospheric Sciences, , 2207 Main Mall, Vancouver, BC, V6T 1Z4, Canada

Abstract

Abstract Repeated intrusions of mafic magma have long been known to be a driver of long-lived magmatic systems. Although the importance of mafic recharge of silicic magma systems is well-documented in igneous petrology, the origin of this recharge magma is sometimes obscure. By examining the pre-caldera intermediate dome complexes of the Tschicoma Formation and their relationship to a dacitic recharge event into the Tshirege Member of the Bandelier Tuff, we aim to better understand the origin of mafic recharge events into the Bandelier magma chamber of Valles caldera, and the relationship between different stages of volcanic activity within the broader Jemez Mountains volcanic field (JMVF). Based on major, trace element and radiogenic isotopic data, we divide the Tschicoma Formation into three geochemical groups with similar petrologic evolutionary paths. The Cerro Grande, Cerro Rubio and Pajarito Mountain volcanic dome complexes form group A and have assimilated various amounts of a granitoid crustal component with low εNd, εHf and radiogenic Pb. Group B consists of the Sawyer Dome, Rendija Canyon and Caballo Mountain dome complexes, which have principally evolved through different degrees of fractional crystallization of the same parent magma, itself a result of complex interactions of a mafic mantle-derived magma with the crust. The dacite domes and flows around Tschicoma Peak and the newly described Cañada Bonita dacite form group C and are the result of mixing of Rendija Canyon magma with mafic recharge magma which is preserved as distinct mafic enclaves. At a later stage of the JMVF, during the eruption of the Tshirege Member, distinctive hornblende–dacite pumices formed as a result of the influx of more mafic recharge magma into the system, which mobilized a pre-existing dacite intrusion and injected it into the Tshirege rhyolite ( Stimac, 1996; Boroet al.,2020). Based on trace element and isotopic compositions, we propose that dacite which was injected into the Tshirege magma chamber was related to the earlier-erupted Tschicoma Formation and itself represents a mixing product of Tshirege rhyolite and a precursor to the Tschicoma dacites. This implies that the Tschicoma magmatic system was long-lived yet dormant during the eruption of the Otowi Member of the Bandelier Tuff, then was reactivated shortly before the Tshirege eruption, temporarily co-existing and interacting with the Bandelier system as it erupted.

Publisher

Oxford University Press (OUP)

Reference90 articles.

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2. Stratigraphic nomenclature of volcanic rocks in the Jemez Mountains, New Mexico;Bailey;U.S. Geological Survey Bulletin,1969

3. The interplay between crystallization, replenishment and hybridization in large felsic magma chambers;Bateman;Earth Science Reviews,1995

4. Petrogenesis of mafic inclusions in granitoids of the Adamello Massif, Italy;Blundy;Journal of Petrology,1992

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