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The Primordial Solar Wind as a Sculptor of Terrestrial Planet Formation

机译:原始太阳风作为陆地行星形成的雕塑家

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Our solar system is almost entirely devoid of material interior to Mercury's orbit, in sharp contrast to the multiple Earth masses of material commonly residing within the analogous region of extrasolar planetary systems. Recent work has suggested that Jupiter's orbital migration early in the solar system's history fragmented primordial planetary material within the inner solar system. However, the reason for the absence of subsequent planet formation within 0.4 au remains unsolved. Here, we show that leftover debris interior to Mercury's current orbit was susceptible to outward migration driven by the early Solar wind, enhanced by the Sun's primordial rapid rotation and strong magnetic field. The ram pressure arising from azimuthal motion of the Solar wind plasma transported ~100 m-sized objects and smaller from 0.1 au out to the terrestrial planet-forming zone within the suspected ~30–50 Myr timespan of the Earth's formation. The mass of material within this size class typically exceeds Mercury, and can rival that of Earth. Consequently, the present-day region of terrestrial planets and the asteroid belt has been supplied by a large mass of material from the innermost, hot solar system, providing a potential explanation for the evidence of high-temperature alteration within some asteroids and the high iron content of Mercury.
机译:我们的太阳能系统几乎完全没有材料内部到汞的轨道,与通常驻留在辐射行星系统类似地区内的多地层材料鲜明对比。最近的工作表明,木星在太阳系的历史上早期轨道移植了内阳系统内的碎片原始行星材料。然而,在0.4 au内没有随后的行星形成的原因仍未解决。在这里,我们表明,剩余的碎片内部到汞目前的轨道易受早期太阳风驱动的向外迁移,由太阳的原始快速旋转和强磁场增强。太阳风等距离的方位角运动产生的压撞压力〜100米尺寸的物体,较小从0.1 Au Out到地球形成的涉嫌〜30-50微米母音母星内的陆地行星形成区。该尺寸类内的材料的质量通常超过汞,并且可以媲美地球的竞争力。因此,地球行星和小行星带的当今地区已经由来自最热的太阳系的大量材料提供,为某些小行星和高铁内的高温变化的证据提供了潜在的解释汞的内容。

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