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Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body

Supereruptions violently transfer huge amounts (100 s–1000 s km(3)) of magma to the surface in a matter of days and testify to the existence of giant pools of magma at depth. The longevity of these giant magma bodies is of significant scientific and societal interest. Radiometric data on whole rocks...

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Autores principales: Gualda, Guilherme A. R., Pamukcu, Ayla S., Ghiorso, Mark S., Anderson, Alfred T., Sutton, Stephen R., Rivers, Mark L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3364253/
https://www.ncbi.nlm.nih.gov/pubmed/22666359
http://dx.doi.org/10.1371/journal.pone.0037492
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author Gualda, Guilherme A. R.
Pamukcu, Ayla S.
Ghiorso, Mark S.
Anderson, Alfred T.
Sutton, Stephen R.
Rivers, Mark L.
author_facet Gualda, Guilherme A. R.
Pamukcu, Ayla S.
Ghiorso, Mark S.
Anderson, Alfred T.
Sutton, Stephen R.
Rivers, Mark L.
author_sort Gualda, Guilherme A. R.
collection PubMed
description Supereruptions violently transfer huge amounts (100 s–1000 s km(3)) of magma to the surface in a matter of days and testify to the existence of giant pools of magma at depth. The longevity of these giant magma bodies is of significant scientific and societal interest. Radiometric data on whole rocks, glasses, feldspar and zircon crystals have been used to suggest that the Bishop Tuff giant magma body, which erupted ∼760,000 years ago and created the Long Valley caldera (California), was long-lived (>100,000 years) and evolved rather slowly. In this work, we present four lines of evidence to constrain the timescales of crystallization of the Bishop magma body: (1) quartz residence times based on diffusional relaxation of Ti profiles, (2) quartz residence times based on the kinetics of faceting of melt inclusions, (3) quartz and feldspar crystallization times derived using quartz+feldspar crystal size distributions, and (4) timescales of cooling and crystallization based on thermodynamic and heat flow modeling. All of our estimates suggest quartz crystallization on timescales of <10,000 years, more typically within 500–3,000 years before eruption. We conclude that large-volume, crystal-poor magma bodies are ephemeral features that, once established, evolve on millennial timescales. We also suggest that zircon crystals, rather than recording the timescales of crystallization of a large pool of crystal-poor magma, record the extended periods of time necessary for maturation of the crust and establishment of these giant magma bodies.
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spelling pubmed-33642532012-06-04 Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body Gualda, Guilherme A. R. Pamukcu, Ayla S. Ghiorso, Mark S. Anderson, Alfred T. Sutton, Stephen R. Rivers, Mark L. PLoS One Research Article Supereruptions violently transfer huge amounts (100 s–1000 s km(3)) of magma to the surface in a matter of days and testify to the existence of giant pools of magma at depth. The longevity of these giant magma bodies is of significant scientific and societal interest. Radiometric data on whole rocks, glasses, feldspar and zircon crystals have been used to suggest that the Bishop Tuff giant magma body, which erupted ∼760,000 years ago and created the Long Valley caldera (California), was long-lived (>100,000 years) and evolved rather slowly. In this work, we present four lines of evidence to constrain the timescales of crystallization of the Bishop magma body: (1) quartz residence times based on diffusional relaxation of Ti profiles, (2) quartz residence times based on the kinetics of faceting of melt inclusions, (3) quartz and feldspar crystallization times derived using quartz+feldspar crystal size distributions, and (4) timescales of cooling and crystallization based on thermodynamic and heat flow modeling. All of our estimates suggest quartz crystallization on timescales of <10,000 years, more typically within 500–3,000 years before eruption. We conclude that large-volume, crystal-poor magma bodies are ephemeral features that, once established, evolve on millennial timescales. We also suggest that zircon crystals, rather than recording the timescales of crystallization of a large pool of crystal-poor magma, record the extended periods of time necessary for maturation of the crust and establishment of these giant magma bodies. Public Library of Science 2012-05-30 /pmc/articles/PMC3364253/ /pubmed/22666359 http://dx.doi.org/10.1371/journal.pone.0037492 Text en Gualda et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Gualda, Guilherme A. R.
Pamukcu, Ayla S.
Ghiorso, Mark S.
Anderson, Alfred T.
Sutton, Stephen R.
Rivers, Mark L.
Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body
title Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body
title_full Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body
title_fullStr Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body
title_full_unstemmed Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body
title_short Timescales of Quartz Crystallization and the Longevity of the Bishop Giant Magma Body
title_sort timescales of quartz crystallization and the longevity of the bishop giant magma body
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3364253/
https://www.ncbi.nlm.nih.gov/pubmed/22666359
http://dx.doi.org/10.1371/journal.pone.0037492
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