Uniform “water” content in quartz phenocrysts from silicic pyroclastic fallout deposits – implications on pre-eruptive conditions
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Published:2021-09-24
Issue:5
Volume:33
Page:571-589
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ISSN:1617-4011
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Container-title:European Journal of Mineralogy
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language:en
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Short-container-title:Eur. J. Mineral.
Author:
Hencz MátyásORCID, Biró Tamás, Kovács István János, Stalder Roland, Németh KárolyORCID, Szakács Alexandru, Pálos Zsófia, Pécskay Zoltán, Karátson Dávid
Abstract
Abstract. Structural hydroxyl content of volcanic quartz phenocrysts was
investigated with unpolarized Fourier-transform infrared spectroscopy. The
phenocrysts originated from five pyroclastic fallout deposits from the
Bükk Foreland Volcanic Area (BFVA), Hungary, and two from the AD 1314
Kaharoa eruption (KH eruption), Okataina Volcanic Complex (Taupo Volcanic
Zone), New Zealand. All investigated quartz populations contain structural
hydroxyl content in a narrow range with an average of 9.3 (±1.7) wt ppm. The earlier correlated horizons in the BFVA had the same average
structural hydroxyl content (within uncertainty). Thus, it can be concluded
that the structural hydroxyl content does not depend on the geographical
distance of outcrops of the same units or the temperature or type of the
covering deposit. The rare outlier values and similar structural hydroxyl
contents show that the fallout horizons cooled fast enough to retain their
original structural hydroxyl content. The similarity of the structural
hydroxyl contents may be the result of similar P, T, and x (most importantly
H2O and the availability of other monovalent cations) conditions in the
magmatic plumbing system just before eruption. Therefore, we envisage common
physical–chemical conditions, which set the structural hydroxyl content in
the quartz phenocrysts and, consequently, the water content of the host
magma (∼ 5.5 wt %–7 wt % H2O) in a relatively narrow
range close to water saturation.
Funder
Hungarian Scientific Research Fund
Publisher
Copernicus GmbH
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