Magmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosity

Melting beneath mid-ocean ridges occurs over a region that is much broader than the zone of magmatic emplacement to form the oceanic crust. Magma is focused into this zone by lateral transport. This focusing has typically been explained by dynamic pressure gradients associated with corner flow, or b...

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Váldodahkkit: Turner, AJ, Katz, RF, Behn, MD, Keller, T
Materiálatiipa: Journal article
Almmustuhtton: American Geophysical Union 2017
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author Turner, AJ
Katz, RF
Behn, MD
Keller, T
author_facet Turner, AJ
Katz, RF
Behn, MD
Keller, T
author_sort Turner, AJ
collection OXFORD
description Melting beneath mid-ocean ridges occurs over a region that is much broader than the zone of magmatic emplacement to form the oceanic crust. Magma is focused into this zone by lateral transport. This focusing has typically been explained by dynamic pressure gradients associated with corner flow, or by a sub-lithospheric channel sloping upward toward the ridge axis. Here we discuss a novel mechanism for magmatic focusing: lateral transport driven by gradients in compaction pressure within the asthenosphere. These gradients arise from the co-variation of melting rate and compaction viscosity. The compaction viscosity, in previous models, was given as a function of melt fraction and temperature. In contrast, we show that the viscosity variations relevant to melt focusing arise from grain-size variability and non-Newtonian creep. The asthenospheric distribution of melt fraction predicted by our models provides an improved ex- planation of the electrical resistivity structure beneath one location on the East Pacific Rise. More generally, although grain size and non-Newtonian viscosity are properties of the solid phase, we find that in the context of mid-ocean ridges, their effect on melt transport is more profound than their effect on the mantle corner-flow.
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spelling oxford-uuid:d98be395-894f-432c-85fe-d76949fd02e02022-03-27T08:56:36ZMagmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosityJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:d98be395-894f-432c-85fe-d76949fd02e0Symplectic Elements at OxfordAmerican Geophysical Union2017Turner, AJKatz, RFBehn, MDKeller, TMelting beneath mid-ocean ridges occurs over a region that is much broader than the zone of magmatic emplacement to form the oceanic crust. Magma is focused into this zone by lateral transport. This focusing has typically been explained by dynamic pressure gradients associated with corner flow, or by a sub-lithospheric channel sloping upward toward the ridge axis. Here we discuss a novel mechanism for magmatic focusing: lateral transport driven by gradients in compaction pressure within the asthenosphere. These gradients arise from the co-variation of melting rate and compaction viscosity. The compaction viscosity, in previous models, was given as a function of melt fraction and temperature. In contrast, we show that the viscosity variations relevant to melt focusing arise from grain-size variability and non-Newtonian creep. The asthenospheric distribution of melt fraction predicted by our models provides an improved ex- planation of the electrical resistivity structure beneath one location on the East Pacific Rise. More generally, although grain size and non-Newtonian viscosity are properties of the solid phase, we find that in the context of mid-ocean ridges, their effect on melt transport is more profound than their effect on the mantle corner-flow.
spellingShingle Turner, AJ
Katz, RF
Behn, MD
Keller, T
Magmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosity
title Magmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosity
title_full Magmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosity
title_fullStr Magmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosity
title_full_unstemmed Magmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosity
title_short Magmatic focusing to mid-ocean ridges: the role of grain size variability and non-Newtonian viscosity
title_sort magmatic focusing to mid ocean ridges the role of grain size variability and non newtonian viscosity
work_keys_str_mv AT turneraj magmaticfocusingtomidoceanridgestheroleofgrainsizevariabilityandnonnewtonianviscosity
AT katzrf magmaticfocusingtomidoceanridgestheroleofgrainsizevariabilityandnonnewtonianviscosity
AT behnmd magmaticfocusingtomidoceanridgestheroleofgrainsizevariabilityandnonnewtonianviscosity
AT kellert magmaticfocusingtomidoceanridgestheroleofgrainsizevariabilityandnonnewtonianviscosity