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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Mobility of iron and nickel at low temperatures: Implications for Fe-60-Ni-60 systematics of chondrules from unequilibrated ordinary chondrites
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Mobility of iron and nickel at low temperatures: Implications for Fe-60-Ni-60 systematics of chondrules from unequilibrated ordinary chondrites

机译:铁和镍在低温下的迁移性:对非平衡普通球粒陨石的Fe-60-Ni-60体系的暗示

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The Fe and Ni isotopic composition of ferromagnesian silicates in chondrules from unequilibrated ordinary chondrites (UOCs) have been used to estimate the initial abundance of the short-lived radionuclide, Fe-60, in the early Solar System. However, these estimates vary widely, and there are systematic discrepancies in initial Fe-60/Fe-56 ratios inferred from in situ and bulk analyses of chondrules. A possible explanation is that the Fe-Ni isotope system in UOC chondrules has not remained closed (a necessary condition for isotopic dating), and Fe and Ni have been redistributed since the chondrules formed. In order to evaluate this, we collected high-spatial-resolution X-ray fluorescence (XRF) maps of UOC chondrules to better understand the distribution and mobility of Fe and Ni at the low metamorphic temperatures of these chondrites. We used synchrotron X-ray-fluorescence microscopy to map the distribution of Fe, Ni and other elements in portions of 71 chondrules from 8 UOCs (types 3.00-3.2). The synchrotron XRF maps show clear enrichment of Fe and/or Ni in fractures ranging down to micrometer scale in chondrules from all UOCs analyzed for this study regardless of petrologic type and regardless of whether fall or find, indicating that there was significant exchange of Fe and Ni between chondrules and matrix and that the Fe-Ni system was not closed. Sixty percent of chondrules in Semarkona (LL3.00) have Fe and Ni enrichment along fractures, while 80-100% of chondrules analyzed from the other UOCs show these enrichments. Mobilization was likely a result of fluid transport of Fe and Ni during aqueous alteration on the parent body and/or during terrestrial weathering. In situ and bulk Fe-Ni analyses that incorporate extraneous Fe and Ni from chondrule fractures will result in lowering the inferred initial Fe-60/Fe-56 ratios. (C) 2016 Elsevier Ltd. All rights reserved.
机译:来自未平衡普通球粒体(UOC)的球粒中铁镁硅酸盐中铁和镍的同位素组成已用于估算早期太阳系中短寿命放射性核素Fe-60的初始丰度。然而,这些估计值相差很大,并且根据对软骨的原位和大量分析推断出的初始Fe-60 / Fe-56比率存在系统差异。一个可能的解释是,UOC软骨中的Fe-Ni同位素体系尚未保持封闭(同位素测年的必要条件),并且自形成软骨以来,Fe和Ni已重新分布。为了对此进行评估,我们收集了UOC球状晶体的高空间分辨率X射线荧光(XRF)图,以更好地了解这些球状陨石在低变质温度下的分布和迁移率。我们使用同步加速器X射线荧光显微镜绘制了来自8个UOC(类型3.00-3.2)的71个球状晶体中Fe,Ni和其他元素的分布图。 X射线同步加速器X射线图显示,从这项研究分析的所有UOC的软骨中直至微米级的裂缝中,Fe和/或Ni的富集程度均明显,无论岩石类型如何,是否跌落或发现,表明Fe和/或Ni的交换量很大。球状体与基体之间存在Ni,而Fe-Ni系统未封闭。撒马尔科纳(LL3.00)的软骨中60%具有沿裂缝的铁和镍富集,而其他UOC分析的软骨中80-100%则显示这些富集。动员可能是铁和镍在母体发生水相变化期间和/或在地球风化过程中流体运输的结果。原位和整体Fe-Ni分析(包括软骨碎裂中的多余Fe和Ni)将导致推断的初始Fe-60 / Fe-56比值降低。 (C)2016 Elsevier Ltd.保留所有权利。

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