HR: 1340h
AN: V33A-1165 [Abstracts]
TI: Not all Primordial Noble Gas Signatures are Associated with OIBs and Mantle Plumes – Mantle Heterogeneity, Primordial Shallow Sources and a Solar-like He, Ne Signature in an Ancient North American Craton
AU: * Ma, L
EM: linma@umich.edu
AF: Dept. of Geological Sciences, U. of Michigan, Ann Arbor, MI 48109-1005, United States
AU: Castro, M C
EM: mccastro@umich.edu
AF: Dept. of Geological Sciences, U. of Michigan, Ann Arbor, MI 48109-1005, United States
AU: Hall, C M
EM: cmhall@umich.edu
AF: Dept. of Geological Sciences, U. of Michigan, Ann Arbor, MI 48109-1005, United States
AB:
The presence of primordial He and Ne components in ocean island basalts (OIBs) as well as a mantle He/heat
flux ratio lower than the production ratio near mid-ocean ridges have historically been used to support the
existence of a two-layer mantle convection model. This would comprise a lower, primordial, undegassed
reservoir from which He removal to the upper degassed mantle would be impeded. Arguments based on He and
heat transport have been recently invalidated by Castro et al. (2005) and should no longer be used to justify the
presence of two such distinct mantle reservoirs. Indeed, it was shown that such low He/heat flux ratios are
expected and do not reflect a He deficit in the original crust or mantle reservoir. By contrast, the occurrence of a
He/heat flux ratio greater than the radiogenic production ratio can only result from a past mantle thermal event in
which the released heat has already escaped while the released He remains, and is slowly rising to the surface.
Such a high He/heat flux ratio is present in shallow groundwaters of the Michigan Basin.
We now present results of a new noble gas study conducted in the Michigan Basin, in which 38 deep (0.5-3.6km)
brine samples were collected and analyzed for all noble gas abundances and isotopic ratios. As expected from
previously computed shallow high He/heat flux ratios, both He and Ne isotopic ratios clearly indicate the presence
of a mantle component. Of greater significance is the primordial, solar-like signature, of this mantle component.
It is also the first primordial signature ever recorded in crustal fluids in a continental region. Because no hotspots
or hotspot tracks are known in the area, it is highly unlikely for such primordial, solar-like signature to result from
a mantle plume-related mechanism originating deep in the mantle. We argue that such a primordial signature
can be explained by a shallow noble gas reservoir in the subcontinental lithospheric mantle (SCLM) beneath the
Michigan Basin, possibly created by a mechanism similar to that proposed by Anderson (1998) for oceanic
regions. Indeed, the Michigan Basin, located within the ancient North American craton (~1.1->2.5Ga), lies
on a very thick U-Th depleted SCLM, possibly allowing preservation of a primordial, residual, mantle reservoir
beneath the continental crust. Recent reactivation of the old mid-continent rift transecting the crystalline basement
is likely responsible for the release of this primordial signature into the basin.
The solar-like He and Ne signatures present in the Michigan Basin fluids not only suggest that a deep primordial
mantle reservoir is not required to explain the presence of such components, they also point to a very
heterogeneous mantle as previously suggested by Anderson (1998), Albarede (2005), and others. Consequently,
the presence of a primordial noble gas signature, at least if observed in a continental region, should not be used
to conclude at the existence of a deep mantle source and thus, of a hotspot as typically defined. The SCLM
underneath ancient cratons is a great candidate for hosting primitive ancient mantle reservoirs. Arguments based
on He/heat flux ratios as well as the presence of a primordial noble gas signature should not be used to support
the existence of a lower, primordial, versus an upper, degassed mantle reservoir. Our study provides the first
observational case for long-term primordial lithospheric storage.
Anderson, 1998, Proc. Natl. Acad. Sci. USA, 95, 9087-9092.
Albarede, 2005, AGU Monograph, 160, 27-46.
Castro et al., 2005, EPSL, 237, 893-910.
DE: 1038 Mantle processes (3621)
DE: 1829 Groundwater hydrology
DE: 8103 Continental cratons
DE: 8137 Hotspots, large igneous provinces, and flood basalt volcanism
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2007 Fall Meeting