HR: 0830h
AN: S51C-0061 [PDF]
TI: The Effect of Plume Impingement on Lithospheric Preservation Beneath the Kenya Rift, East
Africa
AU: * Hamblock, J M
EM: hamblock@hotmail.com
AF: Univ. Texas - El Paso, Dept. Geol. Sci., El Paso, TX 79968 United States
AU: Anthony, E Y
AF: Univ. Texas - El Paso, Dept. Geol. Sci., El Paso, TX 79968 United States
AU: Chesley, J T
AF: Univ. Arizona, Dept. Geos., Tucson, AZ 85721
AU: Omenda, P A
AF: KenGen, Olkaria Geothermal Power Station, Naivasha, 00000
Kenya
AB:
The Kenya Rift is located at the transition between Archean Tanzanian craton and Proterozoic mobile belt. Currently,
discrepancies exist between geochemical and geophysical interpretations of lithospheric preservation in the Kenya Rift.
Seismic data show a sharp vertical boundary between low velocity mantle in the axis and higher velocity mantle on the flanks,
which is interpreted to reflect lithospheric erosion from the axis (Mechie et al., 1997; Prodehl et al., 1997). However,
geochemical data suggest that the lithospheric mantle is intact beneath both the axis and the flanks.
Different elemental groups are observed for rocks from Kenya (Hamblock et al., 2003). One group is characterized by elemental
concentrations greater than ocean island basalts (OIB), negative K and Sr anomalies, and Lan and Cen greater than 100. These
characteristics are found in silica-undersaturated rocks such as nephelinites, basanites, and some alkali basalts from the
flank and the axis and are interpreted to represent melting of an enriched lithosphere. A second group is characterized by
elemental concentrations less than OIB, a flat overall pattern, and Lan and Cen less than 100. This pattern is found in
alkali basalts and hypersthene-normative rocks. The multi-element pattern varies minimally between axis and flank lavas, with
axial lavas containing higher concentrations of Ba (Macdonald et al., 2001). Because rocks of both groups are present in the
axis and the flanks, lithosphere appears to be intact across the Kenya Rift, and strong lateral contrasts in composition do
not exist. Sr, Nd, and Pb isotopes also suggest that ancient lithospheric mantle is present in Kenya and Tanzania (Macdonald
et al., 2001; Paslick et al., 1995). A consistent difference between axis and flank is lower La/Yb for axis lavas, indicating
that they originate in the spinel stability field. Flank lavas, regardless of their silica saturation, have higher La/Yb and
are interpreted to come from garnet peridotite.
Discrepancies between geophysical and geochemical data exist for other parts of the East African Rift as well.
In the axis of the rift in Tanzania, tomography suggests that upwelling asthenosphere has eroded the lithosphere (Nyblade,
2002). However, gravity models (Simiyu and Keller, 1997, 2001) and the presence of subchondritic 187Os/188Os in spinel and
garnet-bearing xenoliths (TRD of 2.6 Ga) suggest that the lithosphere is intact (Chesley et al., 1999). In contrast, for the
Tanzanian craton, Os isotopes, gravity, and tomography are consistent with 2.5-2.9 Ga lithosphere existing to depths of 140
km and a broad thermal and geochemical anomaly (plume?) below the lithosphere (Chesley et al., 1999; Owens et al., 2000;
Nyblade et al., 2000; Simiyu and Keller, 1997, 2001). In the Sidamo region of Ethiopia, Os isotopes suggest that ancient
depleted mantle is present and has been modified by recent melt percolation (Lorand et al., 2003; Reisberg et al., in press).
Finally, for Ethiopian flood basalts, element chemistry, petrology, and 3He/4He (Marty et al., 1996; Scarsi and Craig, 1996)
indicate a dominant role for plume. Os isotopes (Davies et al., 2003), however, are lower than PUM, indicating that an
ancient lithospheric mantle reservoir is present.
In order to help resolve the discrepancies between geophysical and geochemical interpretations, we will obtain petrologic and
isotopic data for xenoliths and mafic lavas in both east-west and north-south directions. The lavas span a wide range of
silica saturation and La/Yb ratios, and thus are intended to represent lithospheric as well as asthenospheric sources.
DE: 1025 Composition of the mantle
DE: 3640 Igneous petrology
DE: 7218 Lithosphere and upper mantle
DE: 8109 Continental tectonics--extensional (0905)
DE: 8120 Dynamics of lithosphere and mantle--general
SC: Seismology [S]
MN: 2003 Fall Meeting