GSTDTAP  > 气候变化
DOI10.1029/2018GL080405
Magnesium Partitioning Between Earth's Mantle and Core and its Potential to Drive an Early Exsolution Geodynamo
Badro, James1,2; Aubert, Julien1; Hirose, Kei3,4; Nomura, Ryuichi5; Blanchard, Ingrid1; Borensztajn, Stephan1; Siebert, Julien1,6
2018-12-28
发表期刊GEOPHYSICAL RESEARCH LETTERS
ISSN0094-8276
EISSN1944-8007
出版年2018
卷号45期号:24页码:13240-13248
文章类型Article
语种英语
国家France; Switzerland; Japan
英文摘要

Magnesium partitioning between metal and silicate was experimentally investigated between 34 and 138GPa, 3,500 and 5,450K using laser-heated diamond anvil cells. The 22 measurements are combined with previously published data (total of 49 measurements) to model magnesium metal-silicate partitioning using a thermodynamically consistent framework based on the interaction parameter formalism. The observations support the mechanism of MgO dissolution in the metal, ruling out other mechanisms. The magnesium partition coefficient depends on temperature and metal composition, but not on pressure or silicate composition. The equilibrium concentration and the exsolution rate of MgO in Earth's core can therefore be calculated for any P, T, and composition. Using a core thermal evolution model, the buoyancy flux converts to a magnetic field at Earth's surface, with dipole intensities between 40 and 70 mu T prior to inner core growth, consistent with the paleomagnetic record going back to the Archean.


Plain Language Summary We measure the incorporation of magnesium oxide (one of the main components of Earth's mantle) into iron (the main constituent Earth's core), using extremely high pressure and temperature experiments that mimic the conditions of Earth's mantle and core. We find that magnesium oxide dissolution depends on temperature but not on pressure, and on metal (i.e., core) composition but not silicate (i.e., mantle) composition. Our findings support the idea that magnesium oxide dissolved in the core during its formation will precipitate out during subsequent core cooling. The precipitation should stir the entire core to produce a magnetic field in Earth's distant past, at least as intense as the present-day field.


领域气候变化
收录类别SCI-E
WOS记录号WOS:000456404600008
WOS关键词THERMAL EVOLUTION ; FIELD ; PRECIPITATION ; CONSTRAINTS ; INTENSITY ; ACCRETION ; PRESSURE ; DYNAMOS ; IRON
WOS类目Geosciences, Multidisciplinary
WOS研究方向Geology
引用统计
被引频次:52[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/28595
专题气候变化
作者单位1.Univ Paris, Inst Phys Globe Paris, Paris, France;
2.Ecole Polytech Fed Lausanne, Earth & Planetary Sci Lab, Lausanne, Switzerland;
3.Univ Tokyo, Earth & Planetary Sci, Tokyo, Japan;
4.Tokyo Inst Technol, ELSI, Tokyo, Japan;
5.Ehime Univ, Geodynam Res Ctr, Matsuyama, Ehime, Japan;
6.Inst Univ France, Paris, France
推荐引用方式
GB/T 7714
Badro, James,Aubert, Julien,Hirose, Kei,et al. Magnesium Partitioning Between Earth's Mantle and Core and its Potential to Drive an Early Exsolution Geodynamo[J]. GEOPHYSICAL RESEARCH LETTERS,2018,45(24):13240-13248.
APA Badro, James.,Aubert, Julien.,Hirose, Kei.,Nomura, Ryuichi.,Blanchard, Ingrid.,...&Siebert, Julien.(2018).Magnesium Partitioning Between Earth's Mantle and Core and its Potential to Drive an Early Exsolution Geodynamo.GEOPHYSICAL RESEARCH LETTERS,45(24),13240-13248.
MLA Badro, James,et al."Magnesium Partitioning Between Earth's Mantle and Core and its Potential to Drive an Early Exsolution Geodynamo".GEOPHYSICAL RESEARCH LETTERS 45.24(2018):13240-13248.
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