HR: 14:15h
AN: S52G-03 [PDF]
TI: Geochemical Overview of the East African Rift System
AU: * Furman, T
EM: furman@geosc.psu.edu
AF: Pennsylvania State University, Department of Geosciences, University Park, PA 16802 United States
AB:
Mafic volcanics of the East African Rift System (EARS) record a protracted history of continental extension that is linked to
mantle plume activity. The modern EARS traverses two post-Miocene topographic domes separated by a region of polyphase
extension in northern Kenya and southern Ethiopia. Basaltic magmatism commenced $\sim$45 Ma in this highly extended region,
while the onset of plume-related activity took place $\sim$30 Ma with eruption of flood basalts in central Ethiopia. A
spatial and temporal synthesis of EARS volcanic geochemistry shows progressive lithospheric removal (by erosion and melting)
as the degree of rifting increases, with basalts in the most highly extended areas recording melting of depleted
asthenosphere. Plume contributions are indicated locally in the northern half of the EARS, but are absent from the southern
half. The geochemical signatures are compatible with a physical model in which the entire EARS is fed by a discontinuous
plume emanating from the core-mantle boundary as the South African Superswell.
Quaternary basaltic lavas erupted in the Afar triangle, Red Sea and Gulf of Aden define the geochemical signature attributed
to the Afar plume ($^{87}$Sr/$^{86}$Sr 0.7034-0.7037, $^{143}$Nd/$^{144}$Nd 0.5129-0.5130; La/Nb 0.6-0.9; Nb/U 40-50). These
suites commonly record mixing with ambient upper mantle having less radiogenic isotopes but generally overlapping
incompatible trace element abundances. Within the Ethiopian dome both lithospheric and sub-lithoshperic contributions can be
documented clearly; lithospheric contributions are manifest in more radiogenic isotope values ($^{87}$Sr/$^{86}$Sr up to
0.7050) and distinctive trace element abundances (e.g., La/Nb $<$2.0, Nb/U $>$ 10). The degree of lithospheric contribution
is lowest within the active Main Ethiopian Rift and increases towards the southern margin of the dome. The estimated depth of
melting (65-75 km) is consistent with geophysical observations of lithospheric thickness. In regions of prolonged volcanism
the lithospheric contributions and estimated melting depths decrease through time, corresponding to a higher degree of
rifting.
In the Kenyan dome, including the western rift, the degree of extension is low and lithospheric melting is the dominant
source for basaltic magmatism. Mafic lavas from these regions have generally lower MgO but higher contents of alkalis, P2O5
and many incompatible trace elements than are observed in the Ethiopian Rift. High values of $^{87}$Sr/$^{86}$Sr,
$^{207}$Pb/$^{204}$Pb and Zr/Hf relative to other parts of the EARS indicate melting of metasomatized lithosphere. Melting in
this area occurs at depths up to 100+ km, consistent with the thick crustal section observed seismically. Between the
topographic domes, basalts from the Turkana region record melting at shallow levels ($\sim$35 km) consistent with seismic
evidence for nearly complete rifting of the crustal section. The geochemistry of these lavas is dominated by asthenospheric
source materials, with only minor lithospheric involvement.
Temporal evolution of EARS geochemistry reflects progressive rifting of the thick craton. This change is manifest within
lavas that are interpreted as plume-derived, as Tb/Yb values decrease from 30 Ma through the present. The modern thermal
anomaly associated with Afar volcanism does not appear to extend below the shallow mantle, but may reflect a large blob of
deep mantle material that became stuck to Africa 30 Ma and has contributed to regional volcanism ever since. Relative
contributions from this deep mantle source, shallow asthenosphere and lithosphere are controlled by the extent of rifting and
cannot be predicted solely on the basis of surface topography.
DE: 1040 Isotopic composition/chemistry
DE: 3670 Minor and trace element composition
DE: 8121 Dynamics, convection currents and mantle plumes
SC: Seismology [S]
MN: 2003 Fall Meeting