Chemical heterogeneity, convection and asymmetry beneath mid-ocean ridges

Author:

Pusok Adina E1,Katz Richard F1,May Dave A23,Li Yuan1

Affiliation:

1. Department of Earth Sciences, University of Oxford , Oxford OX1 3AN, United Kingdom

2. Scripps Institution of Oceanography , , UC San Diego, La Jolla, CA 92037, USA

3. Institute of Geophysics and Planetary Physics , , UC San Diego, La Jolla, CA 92037, USA

Abstract

SUMMARY Geophysical observations at some mid-ocean ridges document an across-axis asymmetry in indicators of magma production. Other observations are interpreted as showing non-monotonic variations in the depth of the lithosphere–asthenosphere boundary. These patterns are inconsistent with the classical models of mantle corner flow and half-space cooling. To investigate this discrepancy, we use models of coupled magma/mantle dynamics beneath mid-ocean ridges in which phase densities are determined by melt–residue partitioning of iron and magnesium, and bulk density is affected by residual porosity. Our models predict that emergent gradients in density drive ridge-local convection. In particular, we show that convective upwelling is enhanced by porous buoyancy and suppressed by compositional buoyancy. Despite this suppression, models that include both compositional and porous buoyancy are more sensitive to long-wavelength mantle heterogeneity than models with porous buoyancy alone. This sensitivity enables models to readily form across-axis asymmetry of upwelling. In some cases, it leads to lithospheric delamination and time-dependent, small-scale convection. We conclude that melting-induced buoyancy effects may explain the magmatic asymmetry and variations in lithospheric thickness that are inferred from observations.

Funder

European Research Council

Horizon 2020

ARC

Oxford University

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

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