T. John
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Articles (18)
Halogen (F, Cl, Br, and I) Devolatilization During Prograde Subduction: Insights From Western Alps Ophiolites
In order to examine the progressive chemical evolution of halogens (F, Cl, Br, I) in altered ocean crust (AOC) during prograde subduction, this study compares bulk and in situ halogen concentrations in mafic samples from three petrogenetically related exhumed terrains in the Western Alps (the Chenaillet ophiolite, the Queyras ophiolites of the Schistes Lustrés, and the Monviso ophiolite). Samples from the Chenaillet ophiolite represent oceanic crust unaffected by metamorphic halogen loss and define a protolith halogen content (122 μg/g F, 29 μg/g Cl, 82 ng/g Br, and 98 ng/g I). Samples from the Queyras ophiolites experienced blueschist facies conditions, undergoing recrystallization and halogen loss (74 μg/g F, 19 μg/g Cl, 70 ng/g Br, and 63 ng/g I). Eclogite facies samples from the Monviso meta‐ophiolite exhibit markedly reduced Cl (8 μg/g Cl) and Br (42 ng/g Br) contents relative to samples from Chenaillet and Queyras. Using electron probe microanalysis (EPMA), F and Cl host minerals (e.g., amphibole, chlorite, epidote) are identified and characterized in selected samples, showing a broad distribution of F and Cl, lending support to the view that halogen devolatilization in the subducting slab occurs continuously and is not dependent on the breakdown of a particular phase. In situ Cl concentrations decrease significantly between sub‐greenschist and blueschist assemblages. Fluorine is retained within subducting AOC and is decoupled from the heavy halogens (Cl, Br, I), which undergo continuous devolatilization during prograde metamorphism.
Year:
2024
A porous-media model for reactive fluid–rock interaction in a dehydrating rock
We study the General Equations of Non-Equilibrium Reversible–Irreversible Coupling (GENERIC) structure of models for reactive two-phase flows and their connection to a porous-media model for a reactive fluid–rock interaction used in geosciences. For this, we discuss the equilibration of fast dissipative processes in the GENERIC framework. Mathematical properties of the porous-media model and first results on its mathematical analysis are provided. The mathematical assumptions imposed for the analysis are critically validated with the thermodynamical rock datasets.
Year:
2023
Collaborators (15)
Yury Y. Podladchikov
University of Lausanne
Oliver Plümper
Assistant professor
Utrecht University
Stefan Markus Schmalholz
Professor of Tectonics and Geodynamics
University of Lausanne
Andreas Beinlich
Associate Professor
University of Bergen
Thomas Roy O'Sullivan
Visiting Lecturer
International Space University
Lyudmila Khakimova
University of Lausanne
Jan Pleuger
Freie Universität Berlin
Torgeir Bjørge Andersen
Professor
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Marita Thomas
-
Fabian Klenner
University of Washington
Xin Zhong
Freie Universität Berlin
Dirk Peschka
Weierstrass-Institut fur Angewandte Analysis und Stochastik
Esther Schwarzenbach
Professor in Mineralogy
University of Fribourg
Maryse Napoleoni
Freie Universität Berlin
Nozair Khawaja
Freie Universität Berlin

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