Earth mineralogical model: Gibbs free energy minimization computation in the system MgO-FeO-SiO2

被引:86
作者
Saxena, SK
机构
[1] Institute of Earth Sciences, Uppsala University, S-75236, Uppsala
关键词
D O I
10.1016/0016-7037(96)00096-8
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A thermodynamic database which is consistent with most available phase equilibrium experiments and calorimetric and physical measurements on the solids in the system MgO-FeO-SiO2 is established for the phases with the compositions (Mg, Fe)SiO3 (garnet, perovskite, pyroxene, and ilmenite), (Mg, Fe)(2)SiO4 (olivine, beta, and gamma phases), SiO2 (stishovite and coesite), and (Mg, Fe)O (periclase and wustite). The data are systematized by using the high temperature Birch-Murnaghan equation of state which includes the pressure and temperature dependent bulk modulus (K) and temperature dependent thermal expansion (alpha) of the solids. The systematized thermodynamic data contains heat capacity (C-p) data, which is internally consistent with the data on alpha, K, volume, and temperature. Such a systematized database is used to calculate, by the method of minimization of Gibbs free energy, the mineralogical composition of the peridotitic/pyrolitic and chondritic MgO-FeO-SiO2 mantles. The model corresponds closely to the seismological PREM (Preliminary Earth Reference Model) in predicting the major seismic discontinuities. However, such discontinuities resulting from reactions or phase transformation are not as sharp as the seismic ones. Calculated adiabatic geothermal gradient starting at 6 GPa and 1500 K reaches a temperature of 2046 K at the core/mantle pressure (135 GPa) in a pyrolite mantle. The model Earth parameters in the lower mantle are (PREM parameters in bracket): K-s = 308 (306) to 687 (656) GPa; phi = 70 (69) to 121 (118)km(2) s(-2).
引用
收藏
页码:2379 / 2395
页数:17
相关论文
共 125 条
[1]  
AKAOGI M, 1984, AM MINERAL, V69, P499
[2]   THERMODYNAMIC PROPERTIES OF ALPHA-QUARTZ, COESITE, AND STISHOVITE AND EQUILIBRIUM PHASE-RELATIONS AT HIGH-PRESSURES AND HIGH-TEMPERATURES [J].
AKAOGI, M ;
YUSA, H ;
SHIRAISHI, K ;
SUZUKI, T .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1995, 100 (B11) :22337-22347
[3]   REFINEMENT OF ENTHALPY MEASUREMENT OF MGSIO3 PEROVSKITE AND NEGATIVE PRESSURE-TEMPERATURE SLOPES FOR PEROVSKITE-FORMING REACTIONS [J].
AKAOGI, M ;
ITO, E .
GEOPHYSICAL RESEARCH LETTERS, 1993, 20 (17) :1839-1842
[4]   PYROXENE-GARNET SOLID-SOLUTION EQUILIBRIA IN SYSTEMS MG4S14012-MG3AL2S13O12 AND FE4S14O12-FE3AL2S13O12 AT HIGH-PRESSURES AND TEMPERATURES [J].
AKAOGI, M ;
AKIMOTO, S .
PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 1977, 15 (01) :90-106
[5]   OLIVINE-MODIFIED SPINEL-SPINEL TRANSITIONS IN THE SYSTEM MG2SIO4-FE2SIO4 - CALORIMETRIC MEASUREMENTS, THERMOCHEMICAL CALCULATION, AND GEOPHYSICAL APPLICATION [J].
AKAOGI, M ;
ITO, E ;
NAVROTSKY, A .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1989, 94 (B11) :15671-15685
[6]  
Akaogi M., 1987, High-Pressure Research in Mineral Physics: A Volume in Honor of Syun-Iti Akimoto, P251, DOI 10.1029
[7]  
AKIMOTO S, 1976, PHYS CHEM MINER, P327
[8]  
Anderson D. L., 1989, THEORY EARTH
[9]   PHASE CHANGES IN UPPER MANTLE [J].
ANDERSON, DL .
SCIENCE, 1967, 157 (3793) :1165-&
[10]  
Anderson O., 1995, EQUATIONS STATE SOLI