课题基金 / 基金详情

CSEDI: Collaborative Experimental and Fluid-Dynamical Study on Core Formation of the Earth

CSEDI: Collaborative Experimental and Fluid-Dynamical Study on Core Formation of the Earth
CSEDI:地球核心形成的协作实验和流体动力学研究
批准号:
0552010
负责人:
Oliver Tschauner
金额:
$11.02万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-09-01 至 2008-08-31

项目摘要

项目成果

Oliver Tschauner的其他基金

相似基金

相关文献

中文摘要
翻译
该项目是一项合作努力,旨在研究地核的起源及其与行星吸积的时间和机制的关系。这项工作结合了实验和理论工作,并依赖于金刚石细胞中的高压-温度化学研究的新概念,多相流和行星演化的流体动力学建模,以及结合实验和流体动力学建模参数的地球化学建模,以建立撞击引起的岩浆海洋的核心形成和演化模型的置信限。实验计划将确定一组亲石亲铁边界附近的关键元素和某些高度亲铁元素参与重要的放射性衰变系统的分区。地幔中这两种元素的地球化学特征提供了核形成的记录,因为这个过程有效地从地幔中提取了亲铁元素。温度,压力和时间尺度的提取过程是未知参数的实验,理论和地球化学研究结果的建议组合应约束。拟议的实验将集中在Hf和W和Re和Os之间的分配液体硅酸盐和金属使用W,Re和Os丰富的铁合金作为内部金属加热器嵌入在液体硅酸盐系统中的高压实验。不同的散装铁含量的起始材料提供了一套铁归一化的分配系数(kD值)的硅酸盐-金属系统,然后可以外推从实际的实验氧化还原条件(接近各自的金属氧化物缓冲)的地球核心形成的更多的还原条件,并从高度富集的实验金属硅酸盐系统的自然丰度的检查元素。沿着这一实验努力,这些研究人员将首次开始将理解流体混合物乳化的基本进展纳入撞击吸积和行星分化过程的流体动力学建模方法中。
英文摘要
This project is a collaborative effort to study the origin of Earth's core and its relationship to the timing and mechanism of planetary accretion. This effort combines experimental and theoretical work and relies on a novel concept of high pressure-temperature chemical studies in diamond cells, on fluid dynamic modeling of multiphase flows and planetary evolution, and on geochemical modeling combining parameters from the experiments and the fluid-dynamic modeling to establish confidence limits on models of core-formation and evolution of an impact-induced magma-ocean. The experimental program will determine the partitioning of a set of key elements near the lithophile-siderophile boundary and certain highly siderophile elements that are involved in important radioactive decay systems. Geochemical signatures of both types of elements in the Earth's mantle provide the record of core-formation, because this process efficiently extracted siderophile elements out of the mantle. Temperature, pressure, and time-scale of this extraction processes are the unknown parameters the proposed combination of experimental, theoretical, and geochemical findings shall constrain. The proposed experiments will focus on partitioning of Hf and W and of Re and Os between liquid silicate and metal using W-, Re-, and Os-rich iron-alloys as internal metal heaters embedded in liquid silicate systems in high-pressure experiments. Varying bulk Fe content in the starting materials provides sets of Fe-normalized partition coefficients (kD-values) for the silicate-metal system which then can be extrapolated from the actual experimental redox conditions (close to the respective metal-oxide buffers) to the more reducing conditions of Earth's core formation and from the highly enriched experimental metal-silicate systems to natural abundances of the examined elements. Along with this experimental effort these researchers will start to incorporate for the first time fundamental advances in understanding emulsification of fluid mixtures into methods of fluid dynamic modeling of impact accretion and planetary differentiation processes.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.epsl.2020.116323
发表时间: 2020-07-15
期刊: EARTH AND PLANETARY SCIENCE LETTERS
影响因子: 5.3
作者: [Huang, Shichun, Tschauner, Oliver, Tischler, Jon]
通讯作者: Tischler, Jon
EaGER: Inclusions of fluid-related minerals in diamonds from the transition zone or lower mantle
  • 批准号:
    1838330
  • 项目类别:
    Standard Grant
  • 资助金额:
    $4.04万
  • 财政年份:
    2018
  • 负责人:
    Oliver Tschauner
  • 依托单位:
海外基金