HR: 14:10h
AN: V53C-03 [Abstracts]
TI: A Fossil Mantle Plume under the Emeishan Flood Basalts: Integration of Geology, Geophysics and
Geochemistry
AU: * Xu, Y
EM: yigangxu@gig.ac.cn
AF: Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Wushan, Guangzhou, 510640
China
AU: He, B
EM: hebin@gig.ac.cn
AF: Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Wushan, Guangzhou, 510640
China
AU: Chung, S
EM: sunlin@ntu.edu.tw
AF: Department of Geosciences, National Taiwan University, Choushan Road, Taipei, 10699
Taiwan
AB:
The plume hypothesis is now challenged because some fundamental aspects predicted by the modeling of plumes are found to be
lacking in classic regions like Iceland and Yellowstone. Instead of invoking a øbottom-upñ process, some researchers favor
a øtop-downñ hypothesis for the formation of large igneous provinces (LIPs), in which shallow lithospheric processes may
fuel melt production. Seismic investigations and tomographic models help trace mantle plumes in modern, active hotspots, but
are of limited benefit in identifying ancient plumes, mainly because geophysics provides us with a snapshot of the
present-day Earth_s structure. Consequently the geological øfootprintñ associated with thermal anomalies are the clues to
tracing ancient plumes. According to some theoretical models, pre-volcanic lithospheric uplift is the most important criteria
used to identify the presence of plumes. The lack of such evidence, on the other hand, is an argument against the
involvement of plumes in the formation of LIPs.
Recent examination of the middle-late Permian sedimentology in southwest China reveals kilometer-scale lithospheric doming
prior to the Emeishan flood volcanism (He et al., 2003). This, and correlations between diverse, independent parameters
involving crustal doming, paleo-geography, sea level change, mantle melting mechanism and crust-mantle structure, provide
evidence for a fossil mantle plume under the Emeishan LIP. Specifically, the consequences of plume-lithosphere interaction
include: (a) pre-volcanic uplift including thinning of marine carbonates, a marine to sub-aerial transition, local provenance
of clastic sediments, and a marked erosional unconformity, evident as palaeokarstic surfaces on the marine carbonates; (b) a
domal structure (700 km radius); (c) variations in the thickness of volcanic rocks across the domal structure; (d)
variations in flood basalt geochemistry from the center to the edge of the domal structure that are interpreted as high
temperature melts in the center and lower temperature melts at the edge; (e) gradual decrease in crustal thickness from the
center to the margin of the dome; and (f) the presence of high velocity lower crust (20-30km) immediately beneath the domal
structure which is consistent with significant melt production and possible underplating/intrusion into the lower crust.
DE: 8450 Planetary volcanism (5480)
DE: 8121 Dynamics, convection currents and mantle plumes
DE: 7207 Core and mantle
DE: 3640 Igneous petrology
DE: 1025 Composition of the mantle
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2004 AGU Fall Meeting