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Melting relations in the system FeCO3–MgCO3 and thermodynamic modelling of Fe–Mg carbonate melts.

Authors :
Kang, Nathan
Schmidt, Max W.
Poli, Stefano
Connolly, James A. D.
Franzolin, Ettore
Source :
Contributions to Mineralogy & Petrology; Sep2016, Vol. 171 Issue 8/9, p1-16, 16p
Publication Year :
2016

Abstract

To constrain the thermodynamics and melting relations of the siderite–magnesite (FeCO<subscript>3</subscript>–MgCO<subscript>3</subscript>) system, 27 piston cylinder experiments were conducted at 3.5 GPa and 1170–1575 °C. Fe-rich compositions were also investigated with 13 multi-anvil experiments at 10, 13.6 and 20 GPa, 1500–1890 °C. At 3.5 GPa, the solid solution siderite–magnesite coexists with melt over a compositional range of X<subscript>Mg</subscript> (=Mg/(Mg + Fe<subscript>tot</subscript>)) = 0.38–1.0, while at ≥10 GPa solid solution appears to be complete. At 3.5 GPa, the system is pseudo-binary because of the limited stability of siderite or liquid FeCO<subscript>3</subscript>, Fe-rich carbonates decomposing at subsolidus conditions to magnetite–magnesioferrite solid solution, graphite and CO<subscript>2</subscript>. Similar reactions also occur with liquid FeCO<subscript>3</subscript> resulting in melt species with ferric iron components, but the decomposition of the liquid decreases in importance with pressure. At 3.5 GPa, the metastable melting temperature of pure siderite is located at 1264 °C, whereas pure magnesite melts at 1629 °C. The melting loop is non-ideal on the Fe side where the dissociation reaction resulting in Fe<superscript>3+</superscript> in the melt depresses melting temperatures and causes a minimum. Over the pressure range of 3.5–20 GPa, this minimum is 20–35 °C lower than the (metastable) siderite melting temperature. By merging all present and previous experimental data, standard state (298.15 K, 1 bar) thermodynamic properties of the magnesite melt (MgCO<subscript>3</subscript>L) end member are calculated and the properties of (Fe,Mg)CO<subscript>3</subscript> melt fit by a regular solution model with an interaction parameter of −7600 J/mol. The solution model reproduces the asymmetric melting loop and predicts the thermal minimum at 1240 °C near the siderite side at X<subscript>Mg</subscript> = 0.2 (3.5 GPa). The solution model is applicable to pressures reaching to the bottom of the upper mantle and allows calculation of phase relations in the FeO–MgO–O<subscript>2</subscript>–C system. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00107999
Volume :
171
Issue :
8/9
Database :
Complementary Index
Journal :
Contributions to Mineralogy & Petrology
Publication Type :
Academic Journal
Accession number :
177974555
Full Text :
https://doi.org/10.1007/s00410-016-1283-3