HR: 08:20h
AN: T31A-02 INVITED [PDF]
TI: Changes in Lava Compositions and With Time From the Eocene Through the Miocene for the Mariana
Forearc
AU: * Reagan, M K
EM: mark-reagan@uiowa.edu
AF: U. Iowa, Geoscience, Iowa City, IA 52242-1379 United States
AU: Mohler, D
EM: david-mohler@uiowa.edu
AF: U. Iowa, Geoscience, Iowa City, IA 52242-1379 United States
AU: Brian, H
EM: brian-hartman@uiowa.edu
AF: U. Iowa, Geoscience, Iowa City, IA 52242-1379 United States
AU: Hickey-Vargas, R
EM: hickey@fiu.edu
AF: Florida International Univ., Earth Sciences, Miami, FL 33199 United States
AU: Hanan, B
EM: bhanan@mail.sdsu.edu
AF: San Diego State, Geological Sciences, San Diego, CA 92182
AB:
We are investigating the evolution of volcanism in the Mariana arc from the initiation of subduction of the Pacific plate
beneath the Philippine plate in the Eocene through the Miocene. The oldest lavas in the Mariana fore-arc region are a ca 49
Ma tholeiite to boninite sequence from DSDP sites 458 and 459. These tholeiites have NMORB-like REE, HFSE, and Th
concentrations, but are enriched in LIL elements, Pb, and U. The capping boninite-series glasses have similar slab-derived
trace element abundance patterns, but lower and flatter REE contents (1-2 x PUM). $^{40}$Ar/$^{39}$Ar ages obtained on
boninite series lavas from Guam stretch back to 44Ma. These lavas have U-shaped REE patterns and HREE concentrations about
3-8 x PUM. La/Nb decrease and Hf/Sm increase with increasing Ba/La for both the DSDP and Guam lavas. Pb isotope values plot
within fields defined by Pacific plate lavas and volcanogenic sediments (Meijer, 1976, GSA Bull., v. 87; Pearce et al., 1999,
J. Petrol., v. 40). Hf and Pb isotopic compositions change consistently with Hf/Sm and Ba/La ratios for lavas from the DSDP
sites, but not for those from Guam. The data suggest either that little of the Pb in these lavas was derived from subducting
sediments, or that the contrast in Pb isotopes between lavas from Guam and slab fluids was inconsequential. The source of the
DSDP site lavas was similar to a Pacific or transitional Pacific-Indian Ocean MORB-source. Fluxed melting at high-P
generated the tholeiites. Boninites were generated at low-P by continued fluxed melting. The mantle source for the
boninite-series lavas from Guam was less depleted. Progressive fluxed melting here apparently occurred with less mantle
upwelling. In both locations, the variations in La/Nb and perhaps the Hf/Sm ratios appear to be related to changes in the
residual mantle source mineralogy with progressive melting. Rhyolites erupted on Saipan at 45- 46 Ma are unusually high in
silica for an oceanic island arc setting. These lavas are enigmatic in that they have trace element and isotopic compositions
similar to those of Oligocene (36-32 Ma) mature arc andesites and dacites from forearc sites. Pb isotope values for all of
these lavas plot along a trend that stretches from the NHRL toward Pacific siliceous sediments, with the rhyolites plotting
at the least radiogenic end of the array. Basalt dikes with ages of ca. 41 Ma cut the boninite series lavas in Guam. These
basalts have trace element patterns of typical arc tholeiites, and mark the first appearance of relatively normal mafic arc
lavas in this system. Pb isotope compositions for these samples indicate that siliceous sediment also makes its first
appearance at this time. A second stage of normal arc volcanism began on Guam and Saipan at about 14 Ma, after spreading in
the Parece Vela Basin ceased. These lavas have incompatible trace element and isotopic ratios that are remarkably similar to
those of the modern Mariana arc. In conclusion: lavas from DSDP sites 458 and 459 were apparently generated from upwelling
mantle that rushed in behind the newly subducting Pacific lithosphere (see Stern and Bloomer, 1992, GSA Bull. v. 104; Hall et
al., 2003, EPSL, v. 212). The transition from an upwelling mantle wedge to relatively normal mantle counterflow and P-T
distributions in the mantle wedge apparently required several million years of subduction and cooling of the corner of the
mantle wedge. The compositions of the mantle (Pacific to Indian) and the subducted components (basaltic to silicic sediment)
both changed with the mantle convection regime.
DE: 1040 Isotopic composition/chemistry
DE: 1065 Trace elements (3670)
DE: 3640 Igneous petrology
DE: 3670 Minor and trace element composition
DE: 8150 Plate boundary--general (3040)
SC: Tectonophysics [T]
MN: 2003 Fall Meeting