Published February 1, 1978 | Version v1
Journal article

An assessment of local and regional isotopic equilibrium in the mantle

  • 1. Carnegie Institution of Washington, D.C. (USA). Dept. of Terrestrial Magnetism

Description

The assumption of local equilibrium during partial melting is fundamental to the interpretation of isotope and trace element data for mantle-derived rocks. If disequilibrium melting is significant, the scale of the chemical and isotopic heterogeneity in the mantle indicated by the data could be as small as the grain size of the mantle rock, and the isotope data themselves are then of doubtful value to the understanding of mantle processes. To assess the scale of isotopic heterogeneity in a partially molten asthenosphere the authors review the Sr isotopic data of volcanic rocks from oceanic regions and the available experimental data on diffusion kinetics in minerals and melts similar to those existing in the mantle. Although diffusion data are acarce and afflicted with uncertainties, most of the diffusion coefficients for cations in mantle minerals at temperatures of 1000-12000C appear to be greater than 10-13 cm2 s-1. Sr diffusion in liquid basalt is more rapid, with diffusion coefficients of D = 10-7 to 10-6 cm2 s-1 near 13000C. Simple model calculations show that, with these D values, a fluid-free mantle can maintain a state of disequilibrium on a centimeter scale for periods of 108 to 109 years. The state of disequilibrium found in many mantle-derived xenoliths is thus easily explained. A partially molten mantle, on the other hand, will tend to equilibrate locally in less than 105 to 106 years. The analytical data on natural rocks likewise indicate that the inhomogeneities are both old (> 1.5 b.y.) and regional in character and that the consistent isotopic differences between ocean island and ocean floor volcanics cannot be explained by small-scall hetorogeneity of the source rock. (Auth.)

Additional details

Identifiers

Publishing Information

Journal Title
Earth and Planetary Science Letters
Journal Volume
38
Journal Issue
1
Series
Earth Planet. Sci. Lett.
Journal Page Range
44-62
ISSN
0012-821X

Optional Information

Notes
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