太阳内部的“指纹”或许能揭示它是否曾吞噬过一颗行星
'Fingerprints' inside the Sun could reveal if it once swallowed a planet

原始链接: https://ras.ac.uk/news-and-press/research-highlights/fingerprints-inside-sun-could-reveal-if-it-once-swallowed-planet

发表在《皇家天文学会月刊》上的一项新研究表明,太阳在其历史早期可能吞噬了一颗超级地球大小的行星。由穆特卢·伊尔迪兹(Mutlu Yildiz)教授领导的研究团队提出,这一事件在太阳深处留下了“化学指纹”,这或许能解释长期以来太阳模型中存在的不一致之处。 标准的太阳物理学一直难以调和日震观测结果(特别是关于太阳内部声速和对流层深度的数据)与太阳表面异常低的锂丰度之间的矛盾。通过对太阳演化进行建模,研究人员发现,吞噬一颗质量约为地球5至10倍的行星,可以同时解决这些不一致的问题。 尽管行星吞噬目前仍是一个假说,但该研究指出,太阳的内部结构如同历史记录一般。如果未来观测能够证实这些预测的化学和结构特征,将为我们的太阳系在数十亿年前曾拥有过现已消失的超级地球提供有力的证据。这一发现或许还能解释为什么与许多其他恒星系统不同,我们的太阳系中如今缺乏这类行星。

英国皇家天文学会的研究人员提出了一项理论,认为早期的太阳可能吞噬了一颗“超级地球”(质量约为地球的 5 到 10 倍)。通过分析太阳内部特定的化学“指纹”,科学家希望确定太阳的成分究竟是由于吞噬了一颗巨大的天体,还是吞噬了数十亿颗较小的岩石和碎屑所改变的。 Hacker News 上的讨论对这一区分的可行性表示怀疑。评论者质疑研究人员如何能在化学层面区分吞噬一颗大行星与吞噬大量小型金属及碳质碎片,一些用户幽默地将其比作在检查一个巨大的“指纹”与无数细小“指纹”的区别。
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原文

It is thought the Sun may have engulfed a super-Earth-sized planet early in its history.

Now a new study has gone a step further by suggesting that such an event may have left behind detectable clues inside our star which could still be visible today.

This idea of a measurable signature or 'fingerprints' in the present-day solar interior was explored by research published today in Monthly Notices of the Royal Astronomical Society.

Professor Mutlu Yildiz, of Ege University in Turkey, said: "Our new study suggests that a planet several times more massive than Earth may have fallen into the young Sun and left a lasting chemical imprint deep inside it.

"By modelling the Sun's evolution and comparing the results with precise observations of its interior, we find that the ingestion of a super-Earth could help explain long-standing differences between standard solar models and observations, including subtle changes in the Sun's internal structure and its depleted lithium abundance."

Researchers also found that such a world could survive its passage through the Sun's outer layers while losing very little mass, which suggests that planets may leave detectable fingerprints inside their host stars long after they have disappeared.

For many years, solar models based on the standard physics of stellar evolution have had difficulty reproducing some helioseismic observations simultaneously, particularly the sound-speed structure just below the convection zone and the depth of the solar convection zone.

At the same time, the Sun shows a strong and well-known depletion of lithium at its surface.

"We were interested whether these problems might have a common origin in the early chemical history of the Sun," Professor Yildiz explained.

"Young stars are surrounded by protoplanetary discs, where substantial amounts of material can move between the disc and the star.

"Since planets are made of material that is chemically different from the gas in the disc, we wondered whether the early engulfment of a planet could have left a chemical signature inside the young Sun."

The researchers used the MESA stellar-evolution code to test their idea. They explored different accretion histories and compared the resulting solar models with helioseismic constraints and surface abundances, while also testing alternative explanations involving the equation of state, opacity, and different prescriptions for turbulent and convective mixing.

Their results favour a scenario in which the young Sun engulfed a super-Earth around 5–10 times the mass of Earth.

Importantly, their modelling also does not explain just one puzzle. It simultaneously matches several independent measurements of the Sun, including observations of its interior and its unusually low lithium abundance.

"We thought planetary engulfment might affect the solar structure but did not expect the calculations to converge on such a specific super-Earth mass range," said Professor Yildiz. "That was one of the most interesting outcomes of the study."

He added that while it may not be possible to definitively prove the Sun swallowed a planet, if the predicted structural and chemical signature could be independently identified through helioseismic or other observations, it would provide strong evidence for such an event happening billions of years ago.

Astronomers have long wondered why many other star systems appear to have large super-Earths, while ours has none.

The new study cites previous research from a decade ago by Martin & Livio (2016), which suggested that one or more super-Earths could have formed inside the orbit of Mercury and migrated inward through the gas disc, potentially falling into the young Sun.

However, although this research provided a theoretical pathway for an engulfment event, it did not require that such a planet was ultimately swallowed by our star.

"The earlier work proposed that a super-Earth could have formed and migrated into the young Sun. Our paper asks whether the Sun itself could still carry observable evidence that such an engulfment actually happened, and we believe it could," Professor Yildiz concluded.

"The next step is to see if these fingerprints can be independently detected."

ENDS


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Sam Tonkin

Royal Astronomical Society

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Science contacts

Professor Mutlu Yildiz

Ege University

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Images & captions

Swallowed by the Sun

Caption: An artist's impression of a star engulfing a planet. The blue line traces the path of the planet as it spirals toward the star and ultimately collides with it.

Credit: NASA, ESA, CSA, Ralf Crawford (STScI)


Further information

The paper 'Planetary engulfment as a solution to solar-model discrepancies and its implications for planetary systems' by M. Yildiz has been published in Monthly Notices of the Royal Astronomical Society. DOI: 10.1093/mnras/stag1527.


Notes for editors

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