TY - JOUR
T1 - Density of carbonated peridotite magma at high pressure using an X-ray absorption method
AU - Sakamaki, Tatsuya
AU - Ohtani, Eiji
AU - Urakawa, Satoru
AU - Terasaki, Hidenori
AU - Katayama, Yoshinori
PY - 2011/4
Y1 - 2011/4
N2 - The density of carbonated peridotite magma was measured up to 3.8 GPa and 2100 K using an X-ray absorption method. A fit of the pressure-density- temperature data to the high-temperature Birch-Murnaghan equation of state yielded the isothermal bulk modulus, KT0 = 22.9 ± 1.4 GPa, its pressure derivative, K0' = 7.4 ± 1.4, and the temperature derivative of the bulk modulus (∂KT∂T)P = -0.006 ± 0.002 GPa/K at 1800 K. The bulk modulus of carbonated peridotite magma is larger than that of hydrous peridotite magma. The partial molar volume of CO2 in magma under high pressure and temperature conditions was calculated and fit using the Vinet equation of state. The isothermal bulk modulus was KT0 = 8.1 ± 1.7GPa, and its pressure derivative was K0' = 7.2 ± 2.0 at 2000 K. Our results show that the partial molar volume of CO2 is less compressible than that of H 2O, suggesting that, on an equal molar basis, CO2 is more effective than H2O in reducing peridotite melt density at high pressure.
AB - The density of carbonated peridotite magma was measured up to 3.8 GPa and 2100 K using an X-ray absorption method. A fit of the pressure-density- temperature data to the high-temperature Birch-Murnaghan equation of state yielded the isothermal bulk modulus, KT0 = 22.9 ± 1.4 GPa, its pressure derivative, K0' = 7.4 ± 1.4, and the temperature derivative of the bulk modulus (∂KT∂T)P = -0.006 ± 0.002 GPa/K at 1800 K. The bulk modulus of carbonated peridotite magma is larger than that of hydrous peridotite magma. The partial molar volume of CO2 in magma under high pressure and temperature conditions was calculated and fit using the Vinet equation of state. The isothermal bulk modulus was KT0 = 8.1 ± 1.7GPa, and its pressure derivative was K0' = 7.2 ± 2.0 at 2000 K. Our results show that the partial molar volume of CO2 is less compressible than that of H 2O, suggesting that, on an equal molar basis, CO2 is more effective than H2O in reducing peridotite melt density at high pressure.
KW - Carbonated perdotite magma
KW - Density
KW - Equation of state
KW - High pressure
KW - X-ray absorption method
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U2 - 10.2138/am.2011.3577
DO - 10.2138/am.2011.3577
M3 - Article
AN - SCOPUS:79955108213
SN - 0003-004X
VL - 96
SP - 553
EP - 557
JO - American Mineralogist
JF - American Mineralogist
IS - 4
ER -