从球粒Cr-Ti-O同位素系统推断的太阳原行星盘中毫米级固体的径向输运和星云热加工

IF 2.2 4区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
Kohei Fukuda, Yuki Hibiya, Craig R. Kastelle, Katsuhiko Suzuki, Tsuyoshi Iizuka, Katsuyuki Yamashita, Thomas E. Helser, Noriko T. Kita
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引用次数: 0

摘要

了解太阳原行星盘中的物质运输和混合过程对我们行星化学和同位素多样性的起源提供了重要的约束。基于非碳质(NC)和碳质(CC)陨石群的基本同位素二分法,提出了内外太阳系之间的径向输运和混合的有限程度。有限的运输和混合可以通过追踪单个陨石成分的形成区域来进一步测试,例如富钙铝包裹体(CAIs)和球粒。本文基于Vigarano-like (CV)碳质球粒陨石Allende的岩石学和球粒的Cr-Ti-O同位素组合系统,进一步证明了cai和球粒在原行星盘外部区域的内部和后续热处理过程中的向外运输。研究的一个球粒由橄榄石核组成,显示出类似nc的Ti和O,但类似cc的Cr同位素特征,它被一个具有类似cc的O同位素比率的辉石火成岩边缘所包围。这些观测结果表明,橄榄石内核形成于太阳系内部。橄榄石核心随后迁移到外太阳系,并经历了星云热处理,产生了辉石火成岩边缘。星云热加工过程会导致橄榄石核与类cc物质之间的Cr同位素交换,但对母体的次生蚀变作用也是类cc Cr同位素特征的原因。结合先前报道的CV球粒的Cr-Ti-O同位素系统,我们表明一些大于1 mm的CV球粒可能在太阳系内部形成。毫米大小的内太阳系固体在CV碳质球粒陨石母体上的吸积需要它们在太阳系形成后的前100万年内非常早地迁移到外太阳系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Radial transport and nebular thermal processing of millimeter-sized solids in the Solar protoplanetary disk inferred from Cr-Ti-O isotope systematics of chondrules

Radial transport and nebular thermal processing of millimeter-sized solids in the Solar protoplanetary disk inferred from Cr-Ti-O isotope systematics of chondrules

Understanding the material transport and mixing processes in the Solar protoplanetary disk provides important constraints on the origin of chemical and isotopic diversities of our planets. The limited extent of radial transport and mixing between the inner and outer Solar System has been suggested based on a fundamental isotopic dichotomy between non-carbonaceous (NC) and carbonaceous (CC) meteorite groups. The limited transport and mixing could be further tested by tracing the formation regions of individual meteoritic components, such as Ca-Al-rich inclusions (CAIs) and chondrules. Here, we show further evidence for the outward transport of CAIs and chondrules from the inner and subsequent thermal processing in the outer region of the protoplanetary disk based on the petrography and combined Cr-Ti-O isotope systematics of chondrules from the Vigarano-like (CV) carbonaceous chondrite Allende. One chondrule studied consists of an olivine core that exhibits NC-like Ti and O, but CC-like Cr isotopic signatures, which is enclosed by a pyroxene igneous rim with CC-like O isotope ratios. These observations indicate that the olivine core formed in the inner Solar System. The olivine core then migrated into the outer Solar System and experienced nebular thermal processing that generated the pyroxene igneous rim. The nebular thermal processing would result in Cr isotope exchange between the olivine core and CC-like materials, but secondary alteration effects on the parent body are also responsible for the CC-like Cr isotope signature. By combining previously reported Cr-Ti-O isotope systematics of CV chondrules, we show that some CV chondrules larger than ~1 mm would have formed in the inner Solar System. The accretion of the millimeter-sized, inner Solar System solids onto the CV carbonaceous chondrite parent body would require their very early migration into the outer Solar System within the first 1 million years after the Solar System formation.

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来源期刊
Meteoritics & Planetary Science
Meteoritics & Planetary Science 地学天文-地球化学与地球物理
CiteScore
3.90
自引率
31.80%
发文量
121
审稿时长
3 months
期刊介绍: First issued in 1953, the journal publishes research articles describing the latest results of new studies, invited reviews of major topics in planetary science, editorials on issues of current interest in the field, and book reviews. The publications are original, not considered for publication elsewhere, and undergo peer-review. The topics include the origin and history of the solar system, planets and natural satellites, interplanetary dust and interstellar medium, lunar samples, meteors, and meteorites, asteroids, comets, craters, and tektites. Our authors and editors are professional scientists representing numerous disciplines, including astronomy, astrophysics, physics, geophysics, chemistry, isotope geochemistry, mineralogy, earth science, geology, and biology. MAPS has subscribers in over 40 countries. Fifty percent of MAPS'' readers are based outside the USA. The journal is available in hard copy and online.
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