Mantle Mixing: The Generation, Preservation, and Destruction of Chemical Heterogeneity
- 1 May 2002
- journal article
- review article
- Published by Annual Reviews in Annual Review of Earth and Planetary Sciences
- Vol. 30 (1) , 493-525
- https://doi.org/10.1146/annurev.earth.30.091201.141236
Abstract
Observations of the geochemical diversity of mid-oceanic ridge and ocean-island basalts have traditionally been attributed to the existence of large-scale mantle heterogeneity. In particular, the layered convection model has provided an important conceptual basis for discussing the chemical evolution of the Earth. In this model, a long-term boundary is assumed between a well-mixed and depleted upper mantle and a heterogeneous and more primitive lower mantle. The existence of high He-3/He-4 in ocean-island sources has been used to argue for the preservation of a primitive component in the deep mantle. Nevertheless, a primitive deep layer is difficult to reconcile with the abundant lithophile isotopic evidence for recycling of oceanic crust and the lack of preservation of primitive mantle. In addition, the widespread acceptance of geophysical evidence for whole mantle flow has made straightforward application of the layered convection model problematic. Model calculations show that whole mantle convection with present day heat flow and surface velocities is sufficiently vigorous to mix large-scale heterogeneity to an extent that is incompatible with the geochemical observations. Several concepts have been proposed in recent years to resolve the apparent conflicts between the various observational constraints and theoretical interpretations. The suggestions include the presence of deeper layering, preservation of highly viscous blobs, core mantle interaction, and strong temporal variations in mantle dynamics. Although these models generally appear to solve parts of the puzzle, at present no single model is able to account for all of the major observations. The reconciliation of conflicting evidence awaits improvements in observational and experimental techniques integrated with better model testing of hypotheses for the generation and destruction of mantle heterogeneity.Keywords
This publication has 181 references indexed in Scilit:
- Mixing properties in the Earth's mantle: Effects of the viscosity stratification and of oceanic crust segregationGeochemistry, Geophysics, Geosystems, 2001
- Noble gases in the Cameroon line and the He, Ne, and Ar isotopic compositions of high μ (HIMU) mantleJournal of Geophysical Research: Solid Earth, 1999
- Can lower mantle slab‐like seismic anomalies be explained by thermal coupling between the upper and lower mantles?Geophysical Research Letters, 1999
- Extreme HIMU in an oceanic setting: the geochemistry of Mangaia Island (Polynesia), and temporal evolution of the Cook—Austral hotspotPublished by Elsevier ,1999
- The scales of mantle convectionTectonophysics, 1998
- Investigating the base of the mantle using differential travel timesPhysics of the Earth and Planetary Interiors, 1995
- Nature and composition of the continental crust: A lower crustal perspectiveReviews of Geophysics, 1995
- Speculations about the cosmic origin of He and Ne in the interior of the EarthEarth and Planetary Science Letters, 1993
- Plasticity-crystal structure systematics in dense oxides and its implications for the creep strength of the Earth's deep interior: a preliminary resultPhysics of the Earth and Planetary Interiors, 1989
- The NdSr isotopic correlation in mantle materials and geodynamic consequencesPhysics of the Earth and Planetary Interiors, 1979