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清华大学材料科学与工程研究院《材料科学论坛》:近红外二区磷光成像
清华大学材料科学与工程研究院《材料科学论坛》:四方Sr4Al2O7:一种用于制备高质量...
Massive Particles at Spatial Infinity
An update on holography of information (Review)
报告题目:
The formation of Jupiter's diluted core by a giant impact
 报告人:
Prof. Shangfei Liu (Sun Yat-sen University)
报告时间:
2019-09-26 14:00
报告地点:
蒙民伟科技南楼S727
主办单位:
天文系
  简介:

ABSTRACT

The Juno mission has provided an accurate determination of Jupiter’s gravitational field, which has been used to obtain information about the planet’s composition and internal structure. Several models of Jupiter’s structure that fit the probe’s data suggest that the planet has a diluted core, with a total heavy-element mass ranging from ten to a few tens of Earth masses (about 5 to 15 per cent of the Jovian mass), and that heavy elements (elements other than hydrogen and helium) are distributed within a region extending to nearly half of Jupiter’s radius. Planet-formation models indicate that most heavy elements are accreted during the early stages of a planet's formation to create a relatively compact core and that almost no solids are accreted during subsequent runaway gas accretion. Jupiter’s diluted core, combined with its possible high heavy-element enrichment, thus challenges standard planet-formation theory. A possible explanation is erosion of the initially compact heavy-element core, but the efficiency of such erosion is uncertain and depends on both the immiscibility of heavy materials in metallic hydrogen and on convective mixing as the planet evolves. Another mechanism that can explain this structure is planetesimal enrichment and vaporization during the formation process, although relevant models typically cannot produce an extended diluted core. Here we show that a sufficiently energetic head-on collision (giant impact) between a large planetary embryo and the proto-Jupiter could have shattered its primordial compact core and mixed the heavy elements with the inner envelope. Models of such a scenario lead to an internal structure that is consistent with a diluted core, persisting over billions of years. We suggest that collisions were common in the young Solar system and that a similar event may have also occurred for Saturn, contributing to the structural differences between Jupiter and Saturn.

BIO
Shangfei Liu obtained his PhD degree from Peking University in 2013 under the supervision of Prof. Doug Lin. He did his first postdoc at the University of California at Santa Cruz working on giant impact simulations. Then he spent one year in Los Alamos National Laboratory as a visiting scholar. After that, he moved to Rice University as a postdoc to work on protoplanetary disks. In 2018, he joined the faculty of School of Physics and Astronomy at Sun Yat-sen University in Zhuhai China.

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