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The Genesis solar wind sample return mission: Past, present, and future

机译:创世纪太阳风样本返回任务:过去,现在和将来

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The Genesis Discovery mission returned solar matter in the form of the solar wind with the goal of obtaining precise solar isotopic abundances (for the first time) and greatly improved elemental abundances. Measurements of the light noble gases in regime samples demonstrate that isotopes are fractionated in the solar wind relative to the solar photosphere. Theory is required for correction. Measurement of the solar wind O and N isotopes shows that these are very different from any inner solar system materials. The solar O isotopic composition is consistent with photochemical self-shielding. For unknown reasons, the solar N isotopic composition is much lighter than essentially all other known solar system materials, except the atmosphere of Jupiter. Ne depth profiling on Genesis materials has demonstrated that Ne isotopic variations in lunar samples are due to isotopic fractionation during implantation without appealing to higher energy solar particles. Genesis provides a precise measurement of the isotopic differences of Ar between the solar wind and the terrestrial atmosphere. The Genesis isotopic compositions of Kr and Xe agree with data from lunar ilmenite separates, showing that lunar processes have not affected the ilmenite data and that solar wind composition has not changed on 100 Ma time scales. Relative to Genesis solar wind, ArKrXe in Q (the chondrite noble gas carrier) and the terrestrial atmosphere show relatively large light isotope depletions.
机译:“创世纪发现”任务以太阳风的形式返回了太阳物质,目的是(首次)获得精确的太阳同位素丰度并大大提高元素丰度。对环境样品中的稀有稀有气体的测量表明,相对于太阳光球,同位素在太阳风中被分馏。理论是需要纠正的。对太阳风中O和N同位素的测量表明,它们与任何内部太阳系材料都非常不同。太阳O同位素组成与光化学自屏蔽一致。出于未知原因,除了木星大气,太阳N同位素组成比所有其他已知的太阳系材料轻得多。在创世纪材料上的Ne深度剖析表明,月球样品中Ne的同位素变化是由于植入过程中的同位素分馏所致,而不吸引更高能量的太阳粒子。创世纪提供了对太阳风和陆地大气之间Ar同位素差异的精确测量。 Kr和Xe的创世同位素组成与月钛铁矿分离的数据一致,表明月球过程并未影响钛铁矿数据,并且太阳风的组成在100 Ma时标上没有变化。相对于创世纪的太阳风,Q(球粒状稀有气体载体)中的ArKrXe和陆地大气显示出相对较大的光同位素消耗。

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