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Role of temperature-dependent viscosity and surface plates in spherical shell models of mantle convection

dc.contributor.authorZhong, Shijieen
dc.contributor.authorZuber, Maria T.en
dc.contributor.authorMoresi, Louisen
dc.contributor.authorGurnis, Michaelen
dc.date.accessioned2025-05-27T03:27:21Z
dc.date.available2025-05-27T03:27:21Z
dc.date.issued2000-05-10en
dc.description.abstractLayered viscosity, temperature-dependent viscosity, and surface plates have an important effect on the scale and morphology of structure in spherical models of mantle convection. We find that long-wavelength structures can be produced either by a layered viscosity with a weak upper mantle or temperature-dependent viscosity even in the absence of surface plates, corroborating earlier studies. However, combining the layered viscosity structure with a temperature-dependent viscosity results in structure with significantly shorter wavelengths. Our models show that the scale of convection is mainly controlled by the surface plates, supporting the previous two-dimensional studies. Our models with surface plates, layered and temperature-dependent viscosity, and internal heating explain mantle structures inferred from seismic tomography. The models show that hot upwellings initiate at the core-mantle boundary (CMB) with linear structures, and as they depart from CMB, the linear upwellings quickly change into quasi-cylindrical plumes that dynamically interact with the ambient mantle and surface plates while ascending through the mantle. A linear upwelling structure is generated again at shallow depths (<200 km) in the vicinity of diverging plate margins because of the surface plates. At shallow depths, cold downwelling sheets form at converging plate margins. The evolution of downwelling sheets depends on the mantle rheology. The temperature-dependent viscosity strengthens the downwelling sheets so that the sheet structure can be maintained throughout the mantle. The tendency for linear upwelling and downwelling structures to break into plume-like structures is stronger at higher Rayleigh numbers. Our models also show that downwellings to first-order control surface plate motions and the locations and horizontal motion of upwellings. Upwellings tend to form at stagnation points predicted solely from the buoyancy forces of downwellings. Temperature-dependent viscosity greatly enhances the ascending velocity of developed upwelling plumes, and this may reduce the influence of global mantle flow on the motion of plumes. Our results can explain the anticorrelation between hotspot distribution and fast seismic wave speed anomalies in the lower mantle and may also have significant implications to the observed stationarity of hotspots.en
dc.description.statusPeer-revieweden
dc.format.extent20en
dc.identifier.issn2169-9313en
dc.identifier.otherORCID:/0000-0003-3685-174X/work/162950228en
dc.identifier.scopus0034630688en
dc.identifier.urihttp://www.scopus.com/inward/record.url?scp=0034630688&partnerID=8YFLogxKen
dc.identifier.urihttps://hdl.handle.net/1885/733753884
dc.language.isoenen
dc.sourceJournal of Geophysical Research: Solid Earthen
dc.titleRole of temperature-dependent viscosity and surface plates in spherical shell models of mantle convectionen
dc.typeJournal articleen
dspace.entity.typePublicationen
local.bibliographicCitation.lastpage11082en
local.bibliographicCitation.startpage11063en
local.contributor.affiliationZhong, Shijie; Massachusetts Institute of Technologyen
local.contributor.affiliationZuber, Maria T.; Massachusetts Institute of Technologyen
local.contributor.affiliationMoresi, Louis; CSIROen
local.contributor.affiliationGurnis, Michael; California Institute of Technologyen
local.identifier.citationvolume105en
local.identifier.doi10.1029/2000jb900003en
local.identifier.pureb849b35a-7e82-4275-bd2a-9d6277c6e9c7en
local.identifier.urlhttps://www.scopus.com/pages/publications/0034630688en
local.type.statusPublisheden

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