Pressure Dependence of the Liquidus and ...
Type de document :
Article dans une revue scientifique
DOI :
URL permanente :
Titre :
Pressure Dependence of the Liquidus and Solidus Temperatures in the Fe-P Binary System Determined by In Situ Ultrasonics: Implications to the Solidification of Fe-P Liquids in Planetary Cores
Auteur(s) :
Chantel, Julien [Auteur]
Case Western Reserve University [Cleveland]
174496|||Unité Matériaux et Transformations - UMR 8207 [UMET]
Jing, Zhicheng [Auteur]
Case Western Reserve University [Cleveland]
Xu, Man [Auteur]
Case Western Reserve University [Cleveland]
Yu, Tony [Auteur]
Center for Advanced Radiation Sources [University of Chicago] [CARS]
Wang, Yanbin [Auteur]
Center for Advanced Radiation Sources [University of Chicago] [CARS]
Case Western Reserve University [Cleveland]
174496|||Unité Matériaux et Transformations - UMR 8207 [UMET]
Jing, Zhicheng [Auteur]
Case Western Reserve University [Cleveland]
Xu, Man [Auteur]
Case Western Reserve University [Cleveland]
Yu, Tony [Auteur]
Center for Advanced Radiation Sources [University of Chicago] [CARS]
Wang, Yanbin [Auteur]
Center for Advanced Radiation Sources [University of Chicago] [CARS]
Titre de la revue :
Journal of Geophysical Research. Planets
Numéro :
123
Pagination :
1001-1342
Date de publication :
2018-05
Discipline(s) HAL :
Planète et Univers [physics]/Astrophysique [astro-ph]
Physique [physics]/Matière Condensée [cond-mat]/Science des matériaux [cond-mat.mtrl-sci]
Physique [physics]/Astrophysique [astro-ph]
Planète et Univers [physics]/Sciences de la Terre
Chimie/Matériaux
Physique [physics]/Physique [physics]/Géophysique [physics.geo-ph]
Physique [physics]/Matière Condensée [cond-mat]/Science des matériaux [cond-mat.mtrl-sci]
Physique [physics]/Astrophysique [astro-ph]
Planète et Univers [physics]/Sciences de la Terre
Chimie/Matériaux
Physique [physics]/Physique [physics]/Géophysique [physics.geo-ph]
Résumé en anglais : [en]
We have developed a new technique for determining the liquidus and eutectic (or solidus) temperatures of Fe-light element alloys at high pressures in a multianvil apparatus, by studying ultrasonic wave propagation through ...
Lire la suite >We have developed a new technique for determining the liquidus and eutectic (or solidus) temperatures of Fe-light element alloys at high pressures in a multianvil apparatus, by studying ultrasonic wave propagation through the sample. While the onset of melting is manifested by the loss of both compressional (P-) and shear (S-) wave signals due to the scattering of sound waves by partial melts, the completion of melting is confirmed by the reappearance of the P wave signal when the scattering due to residual crystals disappears. By applying this technique to the Fe-P binary system with three different phosphorus contents, we were able to constrain the Fe-rich portion of the phase diagram up to 7 GPa and 1,733 K. Our results show that for phosphorus-poor compositions, ranging from Fe-5wt%P to the eutectic composition, the liquidus temperature exhibits a weak negative pressure dependence (dT/dP = −10.4 K GPa−1 for Fe-5wt%P). While for the phosphorus-richer compositions, including Fe-10wt%P and Fe3P, the liquidus temperature increases significantly with pressure (dT/dP = 71.3 and 62.5 K GPa−1, respectively). This indicates a shift of the eutectic composition to lower phosphorus contents with increasing pressure. Consequently, molten metallic cores of planetary bodies with phosphorus contents ranging from Fe-5wt%P to the eutectic composition would start crystallization from the top of the core and proceed downward. Whereas cores with phosphorus-richer compositions (Fe-10wt%P to Fe3P) would undergo a bottom-up crystallization, resulting in a growing solid inner core.Lire moins >
Lire la suite >We have developed a new technique for determining the liquidus and eutectic (or solidus) temperatures of Fe-light element alloys at high pressures in a multianvil apparatus, by studying ultrasonic wave propagation through the sample. While the onset of melting is manifested by the loss of both compressional (P-) and shear (S-) wave signals due to the scattering of sound waves by partial melts, the completion of melting is confirmed by the reappearance of the P wave signal when the scattering due to residual crystals disappears. By applying this technique to the Fe-P binary system with three different phosphorus contents, we were able to constrain the Fe-rich portion of the phase diagram up to 7 GPa and 1,733 K. Our results show that for phosphorus-poor compositions, ranging from Fe-5wt%P to the eutectic composition, the liquidus temperature exhibits a weak negative pressure dependence (dT/dP = −10.4 K GPa−1 for Fe-5wt%P). While for the phosphorus-richer compositions, including Fe-10wt%P and Fe3P, the liquidus temperature increases significantly with pressure (dT/dP = 71.3 and 62.5 K GPa−1, respectively). This indicates a shift of the eutectic composition to lower phosphorus contents with increasing pressure. Consequently, molten metallic cores of planetary bodies with phosphorus contents ranging from Fe-5wt%P to the eutectic composition would start crystallization from the top of the core and proceed downward. Whereas cores with phosphorus-richer compositions (Fe-10wt%P to Fe3P) would undergo a bottom-up crystallization, resulting in a growing solid inner core.Lire moins >
Langue :
Anglais
Audience :
Internationale
Vulgarisation :
Non
Établissement(s) :
Université de Lille
ENSCL
CNRS
INRA
ENSCL
CNRS
INRA
Collections :
Équipe(s) de recherche :
Matériaux Terrestres et Planétaires
Date de dépôt :
2019-05-17T09:15:06Z
2023-11-15T14:42:09Z
2023-11-15T14:42:09Z