Collaborative Research: From Silicate Melts Properties to the Dynamics and Evolution of an Early Basal Magma Ocean
合作研究:从硅酸盐熔体特性到早期基底岩浆洋的动力学和演化
基本信息
- 批准号:2153968
- 负责人:
- 金额:$ 25万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Standard Grant
- 财政年份:2022
- 资助国家:美国
- 起止时间:2022-08-15 至 2025-07-31
- 项目状态:未结题
- 来源:
- 关键词:
项目摘要
The goal of this project is to understand the potential role of a basal magma ocean in influencing magnetic field processes in the early Earth. A basal magma ocean arises when an initially molten mantle begins solidifying from the middle outwards, and a downward crystallizing basal magma ocean has been proposed as a mechanism to power an early magnetic field in our planet. The research team will collect key, currently missing measurements on the physical properties of iron-bearing silicate melts to better understand the dynamics and evolution of an early basal magma ocean and further evaluate the scenario that a basal magma ocean powered the early Earth's magnetic field. The main questions to be addressed are: What is the initial depth of the basal magma ocean? How long would a basal magma ocean exist? What affects the strength of a magnetic field generated within a basal magma ocean? Would the evolution of iron-enriched melts be consistent with seismic anomalies observed at the base of the mantle? This work represents a new, multidisciplinary collaboration between experimental mineral physics (dynamic and static compression techniques) and computational geodynamics to advance our understanding of deep and early Earth processes. This work will support the training of graduate students in a variety of experimental methods: dynamic and static compression techniques and X-ray and in-house characterization tools at unique world-class facilities, as well as modeling approaches to develop and refine models of planetary interiors that use state-of-the-art experimental constraints. This work will also support research experiences to undergraduate and high school interns, using a cohort-building model with multiple layers of support and mentoring.This project includes three crucial, collaborative research pieces: 1) dynamic compression experiments to measure iron spin state and liquid structure of dense melts; 2) static compression experiments in a laser-heated diamond-anvil cell measurements to constrain iron partitioning and melting temperature; 3) geodynamic modelling which will use the experimental constraints to understand the thermal and magnetic evolution of the coupled solid mantle-basal magma ocean system. The research team will collect new measurements on the physical properties of iron-bearing silicate melts which represent crucial experimental constraints for modeling the dynamics and evolution of an early basal magma ocean. These properties include iron-spin state (which has only recently become feasible for high pressure melts) and density of silicate melt, iron partitioning between silicate melt and lower-mantle minerals, and the effect of iron on melting temperature. These new measurements will provide a deeper understanding of the evolution of a basal magma ocean, from its initial conditions to properties and compositions of late-stage solidification products, which may still be present in the deep mantle. The team will further investigate the possibility that the Earth's magnetic field may have been generated from within the basal magma ocean. Evaluating the duration of time this might have occurred will be accomplished by supplying new geodynamic models of basal magma oceans with relevant, high-pressure, high-temperature physical properties measurements of constituent materials.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
该项目的目标是了解基底岩浆海洋在影响早期地球磁场过程中的潜在作用。当最初熔融的地幔开始从中间向外凝固时,基底岩浆海洋就出现了,向下结晶的基底岩浆海洋被认为是地球早期磁场的动力机制。研究小组将收集目前缺失的关于含铁硅酸盐熔体物理性质的关键测量结果,以更好地了解早期基底岩浆海洋的动力学和演化,并进一步评估基底岩浆海洋为早期地球磁场提供动力的情景。 需要解决的主要问题是:基底岩浆海的初始深度是多少?基底岩浆海洋存在多久?是什么影响了在基底岩浆海洋中产生的磁场强度?富铁熔体的演化是否与地幔底部观测到的地震异常相一致?这项工作代表了实验矿物物理学(动态和静态压缩技术)和计算地球动力学之间新的多学科合作,以促进我们对地球深部和早期过程的理解。这项工作将支持研究生在各种实验方法的培训:动态和静态压缩技术和X射线和内部表征工具在独特的世界一流的设施,以及建模方法来开发和完善模型的行星内部使用国家的最先进的实验约束。这项工作也将支持本科生和高中实习生的研究经验,使用一个具有多层支持和指导的群体建设模型。这个项目包括三个关键的合作研究部分:1)动态压缩实验,以测量铁的自旋状态和致密熔体的液体结构; 2)在激光加热金刚石压砧中进行静态压缩实验,测量铁的分配和熔化温度;(3)地球动力学模拟,利用实验约束来了解耦合的固体地幔-基底岩浆海洋系统的热演化和磁演化。研究小组将收集关于含铁硅酸盐熔体物理性质的新测量结果,这些测量结果代表了模拟早期基底岩浆海洋动力学和演化的关键实验约束。这些属性包括铁自旋状态(最近才成为可行的高压熔体)和硅酸盐熔体的密度,硅酸盐熔体和下地幔矿物之间的铁分配,以及铁对熔化温度的影响。这些新的测量将提供一个更深入的了解基岩浆海洋的演变,从它的初始条件到后期凝固产品的性质和成分,这可能仍然存在于地幔深处。该团队将进一步研究地球磁场可能是从基底岩浆海洋内部产生的可能性。通过提供新的基底岩浆海洋的地球动力学模型,以及对组成物质的相关高压高温物理性质的测量,可以评估这种情况可能发生的持续时间。该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Sang-Heon Shim其他文献
Continent-sized anomalous zones with low seismic velocity at the base of Earth's mantle
地幔底部具有低地震波速的大陆规模异常区
- DOI:
10.1038/ngeo2733 - 发表时间:
2016-06-20 - 期刊:
- 影响因子:16.100
- 作者:
Edward J. Garnero;Allen K. McNamara;Sang-Heon Shim - 通讯作者:
Sang-Heon Shim
Post-perovskite at ten
后钙钛矿在十
- DOI:
10.1038/ngeo2237 - 发表时间:
2014-08-28 - 期刊:
- 影响因子:16.100
- 作者:
Sang-Heon Shim;Thorne Lay - 通讯作者:
Thorne Lay
Raman spectroscopy and x-ray diffraction of phase transitions in Cr 2 O 3 to 61 GPa
- DOI:
10.1103/physrevb.69.144107 - 发表时间:
2004-04 - 期刊:
- 影响因子:3.7
- 作者:
Sang-Heon Shim - 通讯作者:
Sang-Heon Shim
Sang-Heon Shim的其他文献
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{{ truncateString('Sang-Heon Shim', 18)}}的其他基金
EA: Upgrade of the Laser Heating System in the High-Pressure Diamond-Anvil Cell Laboratory at Arizona State University
EA:亚利桑那州立大学高压金刚石砧室实验室激光加热系统升级
- 批准号:
2335071 - 财政年份:2024
- 资助金额:
$ 25万 - 项目类别:
Standard Grant
Upgrade of the Raman Spectroscopy System at the High-Pressure Lab of Arizona State University
亚利桑那州立大学高压实验室拉曼光谱系统升级
- 批准号:
2140416 - 财政年份:2022
- 资助金额:
$ 25万 - 项目类别:
Standard Grant
Ingassing of Hydrogen in the Interiors of Sub-Neptunes and Gas Giants
亚海王星和气态巨行星内部的氢气吸收
- 批准号:
2108129 - 财政年份:2021
- 资助金额:
$ 25万 - 项目类别:
Continuing Grant
Possible Storage of H2O in Mantle Ca(Ti,Si)O3 Perovskite
地幔 Ca(Ti,Si)O3 钙钛矿中 H2O 的可能储存
- 批准号:
2019565 - 财政年份:2020
- 资助金额:
$ 25万 - 项目类别:
Standard Grant
Effect of Hydrogen on the Sulfur-rich Martian Core
氢对富含硫的火星核心的影响
- 批准号:
2005567 - 财政年份:2020
- 资助金额:
$ 25万 - 项目类别:
Standard Grant
Effect of Hydrogen on the Properties of Fe alloys in the Earth's Core
氢对地核铁合金性能的影响
- 批准号:
1921298 - 财政年份:2019
- 资助金额:
$ 25万 - 项目类别:
Standard Grant
Calcium in Bridgmanite in the Deep Mantle
深部地幔布里奇曼石中的钙
- 批准号:
1725094 - 财政年份:2017
- 资助金额:
$ 25万 - 项目类别:
Standard Grant
Understanding the complexity of the 660-km seismic discontinuity
了解 660 公里地震间断面的复杂性
- 批准号:
1316007 - 财政年份:2012
- 资助金额:
$ 25万 - 项目类别:
Continuing Grant
CSEDI Collaborative Research: Valence state of iron in the lower mantle
CSEDI合作研究:下地幔铁的价态
- 批准号:
1316022 - 财政年份:2012
- 资助金额:
$ 25万 - 项目类别:
Continuing Grant
The Perovskite to Post-Perovskite Phase Boundary in Mantle Rocks
地幔岩石中的钙钛矿到后钙钛矿相边界
- 批准号:
1301813 - 财政年份:2012
- 资助金额:
$ 25万 - 项目类别:
Continuing Grant
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