Quantifying diffuse and discrete venting at the Tour Eiffel vent site, Lucky Strike hydrothermal field
dc.contributor.author
dc.date.accessioned
2013-10-25T12:09:26Z
dc.date.available
2013-10-25T12:09:26Z
dc.date.issued
2012
dc.identifier.issn
1525-2027
dc.identifier.uri
dc.description.abstract
The relative heat carried by diffuse versus discrete venting of hydrothermal fluids at mid-ocean ridges is poorly constrained and likely varies among vent sites. Estimates of the proportion of heat carried by diffuse flow range from 0% to 100% of the total axial heat flux. Here, we present an approach that integrates imagery, video, and temperature measurements to accurately estimate this partitioning at a single vent site, Tour Eiffel in the Lucky Strike hydrothermal field along the Mid-Atlantic Ridge. Fluid temperatures, photographic mosaics of the vent site, and video sequences of fluid flow were acquired during the Bathyluck’09 cruise (Fall, 2009) and the Momarsat’10 cruise (Summer, 2010) to the Lucky Strike hydrothermal field by the ROV Victor6000 aboard the French research vessel the ‘Pourquoi Pas’? (IFREMER, France). We use two optical methods to calculate the velocities of imaged hydrothermal fluids: (1) for diffuse venting, Diffuse Flow Velocimetry tracks the displacement of refractive index anomalies through time, and (2) for discrete jets, Particle Image Velocimetry tracks eddies by crosscorrelation of pixel intensities between subsequent images. To circumvent video blurring associated with rapid velocities at vent orifices, exit velocities at discrete vents are calculated from the best fit of the observed velocity field to a model of a steady state turbulent plume where we vary the model vent radius and fluid exit velocity. Our results yield vertical velocities of diffuse effluent between 0.9 cm s-1 and 11.1 cm s-1 for fluid temperatures between 3°C and 33.5°C above that of ambient seawater, and exit velocities of discrete jets between 22 cm s-1 and 119 cm s-1 for fluid temperatures between 200°C and 301°C above ambient seawater. Using the calculated fluid velocities, temperature measurements, and photo mosaics of the actively venting areas, we calculate a heat flux due to diffuse venting from thin fractures of 3.15 ±2.22 MW, discrete venting of 1.07± 0.66 MW, and, by incorporating previous estimates of diffuse heat flux density from Tour Eiffel, diffuse flux from the main sulfide mound of ~15.6 MW. We estimate that the total integrated heat flux from the Tour Eiffel site is 19.82 ± 2.88MWand that the ratio of diffuse to discrete heat flux is ~18. We discuss the implication of these results for the characterization of different vent sites within Lucky Strike and in the context of a compilation of all available measurements of the ratio of diffuse to discrete heat flux
dc.description.sponsorship
Funding for the 2006, 2008, 2009, and 2010 cruises was provided by CNRS/IFREMER through the MoMAR program (France), by ANR
(France), the Mothseim Project NT05–3 42213 to J. Escartín and by grant CTM2010–15216/MAR from the Spanish Ministry of Science to R. Garcia and J. Escartín
dc.format.mimetype
application/pdf
dc.language.iso
eng
dc.publisher
American Geophysical Union
dc.relation
info:eu-repo/grantAgreement/MICINN//CTM2010-15216/ES/SISTEMA DE CONSTRUCCION DE MAPAS MULTIMODALES PARA LA CARACTERIZACION DEL FONDO MARINO MEDIANTE LA UTILIZACION DE UN ROBOT AUTONOMO/
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Reproducció digital del document publicat a: http://dx.doi.org/10.1029/2011GC003991
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© Geochemistry, Geophysics, Geosystems, 2012, vol.13, núm. 4, p. Q04008
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Articles publicats (D-ATC)
dc.rights
Tots els drets reservats
dc.subject
dc.title
Quantifying diffuse and discrete venting at the Tour Eiffel vent site, Lucky Strike hydrothermal field
dc.type
info:eu-repo/semantics/article
dc.rights.accessRights
info:eu-repo/semantics/openAccess
dc.embargo.terms
Cap
dc.type.version
info:eu-repo/semantics/publishedVersion
dc.identifier.doi
dc.identifier.idgrec
015995
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dc.relation.ProjectAcronym