HR: 1340h
AN: V13A-1438 [Abstracts]
TI: Serpentinized Peridotites of the Stonyford Volcanic Complex: Melt Depletions and Enrichments in a
Fore-arc Mantle Wedge.
AU: * Shervais, J W
EM: shervais@cc.usu.edu
AF: Utah State University, 4505 Old Main Hill, Logan, Ut 84322-4505
United States
AB:
The question of geochemical flux in the mantle wedge during subduction is critical to our understanding of arc volcanism, and
forms an important aspect of the global geochemical flux. The MARGINS program attempts to understand these processes by
studying active subduction zones, where direct observations can be made. An alternative approach is to examine outcrops of
lithospheric mantle that underlie crust known to have formed by supra-subduction zone (SSZ) magmatism. This lithospheric
mantle represents, in part, the source from which the overlying crust was extracted, and its mineralogy and composition
reflect the processes that have affected it through time, including melt extraction, fluid phase enrichment, and subsequent
interactions with melt derived from lower in the mantle. These processes have been frozen in place by cooling and emplacement
of the mantle lithosphere and its overlying crust. Fore-arc peridotites are characterized by spinels with higher cr\#s than
abyssal peridotites, indicating significantly higher fractions of partial melting compared to abyssal peridotites. High
fractions of partial melting are confirmed by whole rock incompatible trace element concentrations, which are strongly
depleted when compared to abyssal peridotites.
Forearc peridotites near Stonyford, California, preserve evidence for variable melt extraction under different pressure
regimes and subsequent melt reactions that have re-enriched most samples in LREE. Many of these samples are less than 50%
serpentinized and many of the harzburgites contain pristine, optically clear Cpx, Opx, olivine, and spinel. Cr-spinels are
characterized by a range in cr\#s, consistent with up to 40% partial melting in the most Cr-rich rocks. Spinels from two of
the harzburgites have low cr\#s and high mg\#s that plot at the undepleted end of the abyssal peridotite array. Three
harzburgites have spinels that plot below the Cr-rich end of the abyssal peridotite array, within the less-depleted end of
the Izu-Bonin-Mariana fore-arc peridotite array. Spinels in the other peridotites plot within the most depleted end of the
fore-arc peridotite array. These Cr-rich spinels are also comparable to chromite microphenocrysts in boninite lavas
associated with extended fore-arcs. Pyroxenes in the depleted harzburgites have higher mg\#s and lower Al, Ti, and Na
contents than pyroxenes from the abyssal harzburgites. Samples that preserve primary olivine have Cr-spinels that fall on the
Olivine-Spinel Mantle Array (OSMA) and melting trend defined by Arai (1994). The fraction of melt extracted from a fertile
MORB mantle, based on Arai's model, ranges from less than 5% in one of the enriched samples to 28%; spinels from several
samples with no relict olivine have cr\#s that imply approximately 40% melt extraction.
Our preliminary trace element data for the Stonyford peridotites show that melting in the depleted fore-arc peridotites
initiated within the garnet facies and continued into the spinel facies. The peridotite compositions fall on melt reaction
trends (pyroxene dissolved, olivine precipitated) that are distinct from simple melt addition trends, and imply percolation
of melt through a porous medium with which it was not in equilibrium. The effects of this melt reaction can be seen in spider
plot normalized to primitive mantle, in which the LREE are enriched in the depleted harzburgites and dunites, whereas all
REE are elevated in the "enriched" harzburgites (those with aluminous spinel and enriched pyroxene). Preliminary ion probe
data on pyroxene from one harzburgite suggest that this melt was an alkali basalt similar to those found within the Stonyford
volcanic complex.
DE: 3640 Igneous petrology
DE: 3670 Minor and trace element composition
DE: 1025 Composition of the mantle
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2004 AGU Fall Meeting