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  • Geological Society of America (GSA)  (1)
  • Wiley  (1)
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  • 1
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    Wiley
    In:  In: The Galápagos: A natural laboratory for Earth Sciences. , ed. by Harpp, K., Mittelstaedt, E., d'Ozouville, N. and Graham, D. W. AGU Geophysical Monograph, 204 . Wiley, Hoboken, NJ, pp. 393-414. ISBN 978-1-118-85241-5
    Publication Date: 2014-09-22
    Description: Along the Galápagos Spreading Center (GSC), 3He/4He varies from 8.5–5.9 RA. High 3He/4He ratios, resembling those in the western and southern Galápagos islands, are absent. This lack of high 3He/4He contrasts markedly with other localities of plume–ridge interaction, such as Iceland, Easter, and Amsterdam/St. Paul. The most striking feature is a 3He/4He gradient, decreasing westward from 8.4–7.0 RA between 89 and 93°W, where the GSC is shallowest and shows “axial high” morphology. The intra-segment 3He/4He variability within this region indicates that magma crosses the mantle/crust boundary at multiple points beneath individual ridge segments, and lateral mixing within the crust and upper mantle is limited. Some of the 3He/4He variability may also reflect transfer of discrete heterogeneity from beneath the northern sector of the Galápagos plateau. One possible explanation for the absence of high 3He/4He along the GSC is that helium is a relatively ineffective downstream tracer of mantle material from the core of the Galápagos plume, due to its preferential extraction beneath the archipelago compared to other incompatible, lithophile tracers. A second explanation is that the heterogeneous Galápagos plume is sheared in the upper mantle by motion of the Nazca Plate relative to the migrating GSC. In this case, plume core material having high 3He/4He (from beneath Fernandina and Isabela) would be dispersed mostly away from the ridge, while plume edge material having low 3He/4He plus enriched Sr and Pb isotope signatures (from beneath the northern periphery of the archipelago) is smeared into the sub-ridge mantle.
    Type: Book chapter , NonPeerReviewed
    Format: text
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  • 2
    Publication Date: 2011-09-01
    Description: Strombolian-style volcanic activity has persisted for six years at the NW Rota-1 submarine volcano in the southern Mariana Arc, allowing direct observation and sampling of gas-rich fluids produced by actively degassing lavas, and permitting study of the magma-hydrothermal transition zone. Fluids sampled centimeters above erupting lava and percolating through volcaniclastic sediments around an active vent have dissolved sulfite 〉100 mmol/kg, total dissolved sulfide 1 mmol/kg. If NW Rota is representative of submarine arc eruptions, then volcanic vent fluids from seawater-lava interaction on submarine arcs have a significant impact on the global hydrothermal flux of sulfur and Al to the oceans, but a minimal impact on Mg removal. Gas ratios (SO2, CO2, H2, and He) are variable on small spatial and temporal scales, indicative of solubility fractionation and gas scrubbing. Elemental sulfur (Se) is abundant in solid and molten form, produced primarily by disproportionation of magmatic SO2 injected into seawater. Se accumulates within the porous rock surrounding the lava conduit connecting the magma source to the seafloor. Accumulated Se can be heated, melted, and pushed upward by rising magma to produce molten Se flows and lavas saturated with Se. Molten Se near the top of the lava conduit may be ejected up into the water column by escaping gases or boiling water. This mechanism of Se accumulation and refluxing may underlie the relatively widespread occurrence of Se deposits of many sizes found on submarine arc volcanoes.
    Print ISSN: 0091-7613
    Electronic ISSN: 1943-2682
    Topics: Geosciences
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