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dc.contributor.author King S.D.
dc.contributor.author Anderson D.L.
dc.date.accessioned 2020-12-29T05:09:46Z
dc.date.available 2020-12-29T05:09:46Z
dc.date.issued 1998
dc.identifier https://elibrary.ru/item.asp?id=76316
dc.identifier.citation Earth and Planetary Science Letters, 1998, , 3, 289-296
dc.identifier.issn 0012-821X
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/21627
dc.description.abstract We consider a series of simple calculations with a step-function change in thickness of the lithosphere and imposed, far-field boundary conditions to illustrate the influence of the lithosphere on mantle flow. We consider the effect of aspect ratio and far-field boundary conditions on the small-scale flow driven by a discontinuity in the thickness of the lithosphere. In an isothermal mantle, with no other outside influences, the basic small-scale flow aligns with the lithosphere such that there is a downwelling at the lithospheric discontinuity (edge-driven flow); however, the pattern of the small-scale flow is strongly dependent on the large-scale thermal structure of a much broader area of the upper mantle. Long-wavelength temperature anomalies in the upper mantle can overwhelm edge-driven flow on a short timescale; however, convective motions work to homogenize these anomalies on the order of 100 million years while cratonic roots can remain stable for longer time periods. A systematic study of the effect of the boundary conditions and aspect ratio of the domain shows that small-scale, and large-scale flows are driven by the lithosphere. Edge-driven flow produces velocities on the order of 20 mm/yr. This is comparable to calculations by others and we can expect an increase in this rate as the mantle viscosity is decreased.
dc.subject MANTLE
dc.subject CONVECTION
dc.subject FLOOD BASALTS
dc.subject MANTLE PLUMES
dc.title EDGE-DRIVEN CONVECTION
dc.type Статья


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