Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and Flow

Abstract Lava flows erupted at Axial Seamount in 1998, 2011, and 2015 are chemically heterogeneous and display decreases in MgO content in their glass rinds with increasing distance from the summit. The trends are consistent with eruption temperature decreases down the rift zones of ~0.5 °C/km withi...

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Main Authors: David A. Clague, Jennifer B. Paduan, Brian M. Dreyer, William W. Chadwick Jr, Kenna H. Rubin, Michael R. Perfit, Allison T. Fundis
Format: Article
Language:English
Published: Wiley 2018-09-01
Series:Geochemistry, Geophysics, Geosystems
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Online Access:https://doi.org/10.1029/2018GC007708
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author David A. Clague
Jennifer B. Paduan
Brian M. Dreyer
William W. Chadwick Jr
Kenna H. Rubin
Michael R. Perfit
Allison T. Fundis
author_facet David A. Clague
Jennifer B. Paduan
Brian M. Dreyer
William W. Chadwick Jr
Kenna H. Rubin
Michael R. Perfit
Allison T. Fundis
author_sort David A. Clague
collection DOAJ
description Abstract Lava flows erupted at Axial Seamount in 1998, 2011, and 2015 are chemically heterogeneous and display decreases in MgO content in their glass rinds with increasing distance from the summit. The trends are consistent with eruption temperature decreases down the rift zones of ~0.5 °C/km within 20 km of the caldera and ~0.9 °C/km at greater distance (only observed in the 2011 eruption). Cooling during magma transport in dikes is the likely cause of the temperature trends observed, related to the effects of cooler wall rocks in areas with less frequent dike intrusions. Flows also cooled as they advanced on the seafloor at rates 3–5 times greater than observed at Kilauea volcano in Hawaii for subaerial tube‐fed pahoehoe flows. Lavas erupted in and near the caldera in 1998 and 2011 are slightly enriched transitional mid‐ocean ridge basalt that are aphyric and have glass MgO content of 7.1–7.6 wt %. The 2015 lavas have similarly enriched incompatible element compositions typical of transitional mid‐ocean ridge basalt, but those erupted inside and on the northeast rim of the caldera contain higher glass MgO of 7.8–8.3 wt % and more abundant plagioclase phenocrysts typical of the normal mid‐ocean ridge basaltic lavas erupted between 1290 and 1370 CE. The brief recharge period between the 2011 and 2015 eruptions did not allow magma stored in the shallow reservoir to cool and degas as much as between prior eruptions since 1650 CE, suggesting that the most recent recharge period was shorter than the multicentennial average.
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spelling doaj-art-ce1e27ae90a94de089442d4ee10536462025-08-20T02:35:36ZengWileyGeochemistry, Geophysics, Geosystems1525-20272018-09-011992915293310.1029/2018GC007708Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and FlowDavid A. Clague0Jennifer B. Paduan1Brian M. Dreyer2William W. Chadwick Jr3Kenna H. Rubin4Michael R. Perfit5Allison T. Fundis6Research Division Monterey Bay Aquarium Research Institute Moss Landing CA USAResearch Division Monterey Bay Aquarium Research Institute Moss Landing CA USAEarth and Planetary Sciences Department University of California Santa Cruz CA USAPacific Marine Environmental Laboratory NOAA, Hatfield Marine Science Center Newport OR USADepartment of Geology and Geophysics University of Hawai‘i at Mānoa Honolulu HI USADepartment of Geological Sciences University of Florida Gainesville FL USAOcean Exploration Trust Old Lyme CT USAAbstract Lava flows erupted at Axial Seamount in 1998, 2011, and 2015 are chemically heterogeneous and display decreases in MgO content in their glass rinds with increasing distance from the summit. The trends are consistent with eruption temperature decreases down the rift zones of ~0.5 °C/km within 20 km of the caldera and ~0.9 °C/km at greater distance (only observed in the 2011 eruption). Cooling during magma transport in dikes is the likely cause of the temperature trends observed, related to the effects of cooler wall rocks in areas with less frequent dike intrusions. Flows also cooled as they advanced on the seafloor at rates 3–5 times greater than observed at Kilauea volcano in Hawaii for subaerial tube‐fed pahoehoe flows. Lavas erupted in and near the caldera in 1998 and 2011 are slightly enriched transitional mid‐ocean ridge basalt that are aphyric and have glass MgO content of 7.1–7.6 wt %. The 2015 lavas have similarly enriched incompatible element compositions typical of transitional mid‐ocean ridge basalt, but those erupted inside and on the northeast rim of the caldera contain higher glass MgO of 7.8–8.3 wt % and more abundant plagioclase phenocrysts typical of the normal mid‐ocean ridge basaltic lavas erupted between 1290 and 1370 CE. The brief recharge period between the 2011 and 2015 eruptions did not allow magma stored in the shallow reservoir to cool and degas as much as between prior eruptions since 1650 CE, suggesting that the most recent recharge period was shorter than the multicentennial average.https://doi.org/10.1029/2018GC007708Axial Seamountlava flowscompositionshistorical flows
spellingShingle David A. Clague
Jennifer B. Paduan
Brian M. Dreyer
William W. Chadwick Jr
Kenna H. Rubin
Michael R. Perfit
Allison T. Fundis
Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and Flow
Geochemistry, Geophysics, Geosystems
Axial Seamount
lava flows
compositions
historical flows
title Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and Flow
title_full Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and Flow
title_fullStr Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and Flow
title_full_unstemmed Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and Flow
title_short Chemical Variations in the 1998, 2011, and 2015 Lava Flows From Axial Seamount, Juan de Fuca Ridge: Cooling During Ascent, Lateral Transport, and Flow
title_sort chemical variations in the 1998 2011 and 2015 lava flows from axial seamount juan de fuca ridge cooling during ascent lateral transport and flow
topic Axial Seamount
lava flows
compositions
historical flows
url https://doi.org/10.1029/2018GC007708
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