Abundances in the Universe/Crust Fe Be Mg Al Si Pb.

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Abundances in the Universe/Crust Fe Be Mg Al Si Pb

Transcript of Abundances in the Universe/Crust Fe Be Mg Al Si Pb.

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Abundances in the Universe/Crust

Fe

Be

Mg Al Si

Pb

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Melting Temperature

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Goldschmidt Classification

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Chondrite

Siderophile (Fe, Ni...)

Lithophile (Si, Mg, Ca, Al, K...)

Atmophile (N, He...)

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INCOMPATIBLES

U

Th

Al

He

COMPATIBILITY/INCOMPATIBILITY DURING PARTIAL MELTING

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From Doin

Sea surface (Geoid)

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Backgroundvelocity

Poiseuille

Stokes

Guess?

Measured

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Backgroundvelocity

Poiseuille

Stokes

Hawaii 7.0 t/sBowie 0.3 t/s

All hostpots 55 t/sSlabs 650 t/s

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From Hofmann

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DEPLETED MORB SOURCEENRICHED HIMU, EM, CC SOURCESPRIMITIVE/DEPLETED LOIHI SOURCE?CC and MORB SOURCE complementaryNb, Pb, Ti anomalies due to subduction (CC, MORB and OIB)

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D/N=D0/N+P

0/N(1-exp(t/T))

D=daughterP=parent

N=reference stable isotope of DT=time constant

P D N106

87 Sr 86 Sr 49

40 K 1U 0.7

Tln(2) Ga

147 Sm 143 Nd 144 Nd87 Rb

40 Ar 36 Ar4 He 3 He

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ISOTOPIC RATIOS

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Rares Gas

From Hart & Zindler

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Primitive

Himu

EM2

EM1

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MORB Midocean ridge basaltextracted from MORB source or DMM

OIB Oceanic ridge basaltextracted from?????

Primitive Mantle (PREMA) Loihi-Icelandic Type (Primitive HE Mantle)EM1 (Enriched Mantle=oceanic sediments?)EM2 (Enriched Mantle=continental sediments?)HIMU (high U/Pb=oceanic crust?)FOZO-C

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M

Mass Balance for trace elements

Primitive Mantle = Crust+Morb source+Hidden res

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40Argon

Produced in the Earth 940 pmol/g

Atmosphere 44%

Crust 3.5%

Upper mantle .9 % (25 pmol/g)

Lower mantle 52 % (720 pmol/g)

But K/U??

50-200 pmol/g

Another K-rich reservoir?

From Davies

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OIBs are more heterogeneous than MORBsBut the same trends are seen in MORBs and OIBsThere is a hidden reservoirSlightly depleted=lower mantlePrimitive=50% of the mantleEnriched (D'' with MORBs composition)

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Hiding a layer:

Density and density jumpsPhase changesCoupling between chemistry and phase jumpsViscous stratification

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Less density chemical density difference is required at larger depth

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MINERALOGY VS SEISMOLOGY

From Matas

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CLAPEYRON SLOPE

P

T

Phase Dense

Light Phase

AveragePhase transition depth

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From Machetel

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Crust density: Mineralogy

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Mantle, Lithosphere and oceanic crust

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DOUBLE PHASE CHANGES

P

T

Dense Phase A

Light Phase A

Average Phase transition depthsfor A and B

Light Phase B

Dense Phase B

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Seismic tomography

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From Grant/Van der Hilst

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Seismic tomography

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Paleomap

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Geoid

Comp. Geoid

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The Mantle viscosity increases with depth by a factor 10-100

Can it help preserving primitive compositions?

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Poloidal/Toroidal

Bercovici

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Poincar₫ Section

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From Ferrachat

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Farnetani or Schmalzl and Hansen

Hotspot (no)Entrainment

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Persistance of blobs

Spence, Manga

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Persistance of blobs

Merveilleux

Stretching StretchingStretching Stretching

Reorientation Reorientation

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500

myr

s

2 byrs

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Mantle, Lithosphere and oceanic crust

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MANTLE

Atmosphere

C. Crust

D ''

Residual lith.

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MANTLE

Atmosphere

C. Crust

D ''

Residual lith.Flux fromhotspots

Uniformgrowth

Uniform growth

Degassing

No crustalrecycling

Fractionation +

Fractionation -

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No real geochemical indication of the existence of primitive material

Strong indications that the 670 km depth boundary is permeable

Strong indications of a viscosity increase with depth by 10-100

This viscosity increase does not stratify the mixing

3D convection more efficient mixer with, than without plates

Highly viscous, small, primitive blobs may survive(?)

Need of a reservoir to store incompatible elements

Seems difficult to hide a dense reservoir in the mantle

Crust segregation in D'' may be the deep enriched reservoir(EM, HIMU)

The remaining lithosphere may be the depleted (''primitive-like'')reservoir

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