Mantle composition controls the development of an Oceanic Core Complex
Mantle composition controls the development of an Oceanic Core Complex
The thickness and continuity of oceanic crust is variable. Slow-spreading ridge segments often contain areas of ‘amagmatic’ or tectonic extension, exposing areas of lower-crust and upper-mantle, and having little or no recent volcanism. These are interspersed with areas of ‘normal’ volcanic crust generated by ‘robust’ magmatic accretion. Tectonic spreading is accommodated by displacement on low-angle extensional detachment faults, forming Oceanic Core Complexes. Although ‘amagmatic’ extension appears to be common at slow spreading rates, little is known about the mechanisms that drive the transition from magmatic spreading. Here, we report results from a detailed study of the Mid-Atlantic Ridge (13°N–14°N) and show, paradoxically, that despite the presence of several Core Complexes, melt production remains similar along the present-day spreading axis, which erupts homogeneous ‘normal’ mid-ocean ridge basalt. However, melt production during formation of the older crust off-axis was derived from substantially lower degrees of melting of a heterogeneous mantle. During this magmatically restricted phase, melt production was limited by source composition. Small volumes of an enriched basalt (M1) were produced, derived from low-fraction melts of enriched compositional heterogeneities embedded in an otherwise compositionally depleted upper-mantle, which, in turn, erupted low-fraction incompatible-element-poor basalts (M2). As a consequence of low magma flux, the crust was thin and insufficient to fully accommodate seafloor spreading. Faulting of this thin crust resulted in the development of detachment faults and the formation of OCCs. Thus, we propose that periods of low melt production, resulting directly from depleted, heterogeneous mantle drives the transition from magmatic to amagmatic spreading.
979-995
Wilson, S.C.
0c535a52-7371-442a-bd42-f60455304ec2
Murton, B.J.
9076d07f-a3c1-4f90-a5d5-99b27fe2cb12
Taylor, R.N.
094be7fd-ef61-4acd-a795-7daba2bc6183
April 2013
Wilson, S.C.
0c535a52-7371-442a-bd42-f60455304ec2
Murton, B.J.
9076d07f-a3c1-4f90-a5d5-99b27fe2cb12
Taylor, R.N.
094be7fd-ef61-4acd-a795-7daba2bc6183
Wilson, S.C., Murton, B.J. and Taylor, R.N.
(2013)
Mantle composition controls the development of an Oceanic Core Complex.
Geochemistry, Geophysics, Geosystems, 14 (4), .
(doi:10.1002/ggge.20046).
Abstract
The thickness and continuity of oceanic crust is variable. Slow-spreading ridge segments often contain areas of ‘amagmatic’ or tectonic extension, exposing areas of lower-crust and upper-mantle, and having little or no recent volcanism. These are interspersed with areas of ‘normal’ volcanic crust generated by ‘robust’ magmatic accretion. Tectonic spreading is accommodated by displacement on low-angle extensional detachment faults, forming Oceanic Core Complexes. Although ‘amagmatic’ extension appears to be common at slow spreading rates, little is known about the mechanisms that drive the transition from magmatic spreading. Here, we report results from a detailed study of the Mid-Atlantic Ridge (13°N–14°N) and show, paradoxically, that despite the presence of several Core Complexes, melt production remains similar along the present-day spreading axis, which erupts homogeneous ‘normal’ mid-ocean ridge basalt. However, melt production during formation of the older crust off-axis was derived from substantially lower degrees of melting of a heterogeneous mantle. During this magmatically restricted phase, melt production was limited by source composition. Small volumes of an enriched basalt (M1) were produced, derived from low-fraction melts of enriched compositional heterogeneities embedded in an otherwise compositionally depleted upper-mantle, which, in turn, erupted low-fraction incompatible-element-poor basalts (M2). As a consequence of low magma flux, the crust was thin and insufficient to fully accommodate seafloor spreading. Faulting of this thin crust resulted in the development of detachment faults and the formation of OCCs. Thus, we propose that periods of low melt production, resulting directly from depleted, heterogeneous mantle drives the transition from magmatic to amagmatic spreading.
Text
ggge20046_Wilson.pdf
- Version of Record
More information
Published date: April 2013
Organisations:
Geochemistry, Marine Geoscience
Identifiers
Local EPrints ID: 363029
URI: http://eprints.soton.ac.uk/id/eprint/363029
ISSN: 1525-2027
PURE UUID: 091b7fdf-43ea-457b-8521-83692ab70469
Catalogue record
Date deposited: 11 Mar 2014 13:17
Last modified: 15 Mar 2024 02:50
Export record
Altmetrics
Contributors
Author:
S.C. Wilson
Author:
B.J. Murton
Download statistics
Downloads from ePrints over the past year. Other digital versions may also be available to download e.g. from the publisher's website.
View more statistics