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Structure and thermal history of the H-chondrite parent asteroid revealed by thermochronometry

机译:热计时法揭示的H形陨石母体小行星的结构和热历史

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Our Solar System formed, similar to4.6 billion years ago from the collapse of a dense core inside an interstellar molecular cloud. The subsequent formation of solid bodies took place rapidly. The period of < 10 million years over which planetesimals were assembled can be investigated through the study of meteorites(1-3). Although some planetesimals differentiated and formed metallic cores like the larger terrestrial planets, the parent bodies of undifferentiated chondritic meteorites experienced comparatively mild thermal metamorphism that was insufficient to separate metal from silicate(4,5). There is debate about the nature of the heat source(6-9) as well as the structure and cooling history of the parent bodies(10-12). Here we report a study of Pu-244 fission-track and Ar-40-Ar-39 thermochronologies of unshocked H chondrites, which are presumed to have a common, single, parent body. We show that, after fast accretion, an internal heating source ( most probably Al-26 decay(8-10,13)) resulted in a layered parent body(6) that cooled relatively undisturbed: rocks in the outer shells reached lower maximum metamorphic temperatures and cooled faster than the more recrystallized and chemically equilibrated rocks from the centre, which needed &SIM;160 Myr to reach 390K. [References: 30]
机译:我们的太阳系形成于大约46亿年前,是由星际分子云内部的致密核心坍塌形成的。固体的随后形成迅速发生。可以通过研究陨石来研究小于1000万年的小行星组装时期(1-3)。尽管有些行星像大地行星一样分化并形成了金属核,但未分化的软骨陨石的母体经历了相对温和的热变质作用,不足以将金属与硅酸盐分离(4,5)。关于热源的性质(6-9)以及母体的结构和冷却历史(10-12)存在争议。在这里,我们报告了对未震荡的H球粒陨石的Pu-244裂变径迹和Ar-40-Ar-39热年代学的研究,推测它们具有共同的单一母体。我们表明,在快速增生之后,内部热源(最有可能是Al-26衰变(8-10,13))导致分层的母体(6)相对不受干扰地冷却:外壳中的岩石达到了较低的最大变质作用温度和冷却速度比中心的更重结晶和化学平衡的岩石快,这需要&160; Myr才能达到390K。 [参考:30]

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