课题基金 / 基金详情

Feedbacks between mineral reactions and mantle convection

Feedbacks between mineral reactions and mantle convection
矿物反应与地幔对流之间的反馈
批准号:
NE/V018477/1
负责人:
John Wheeler
金额:
$148.91万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

项目摘要

项目成果

John Wheeler的其他基金

相似基金

相关文献

中文摘要
翻译
固体地球和许多地表特征的演化受内部深处的运动控制。我们的目标是通过对矿物行为的新理解来改变我们对这些运动的理解。地幔中的岩石是地球的外半部分,即使是固体,也可以流动,就像冰川流动一样。这种流动是由密度的对比驱动的,例如,稠密的材料下沉。控制密度的因素之一是矿物学,因此我们需要了解控制矿物变化的因素。压力是关键,例如,随着压力的增加,石墨(碳的一种形式)转化为钻石(碳的一种密度更高的形式)。压力随着地球深度的增加而增加,就像在深海中一样。然而,在流动系统中,压力可能不仅仅与深度有关。矿物学的另一个控制因素是地应力(在不同方向上单位面积的不同力),地幔在变形时占主导地位。这些观点可以通过云的简单类比来说明。在风平浪静的日子里,云的底部通常在特定的高度看起来没有受到干扰,高于这个高度的水正在凝结。在天气更活跃的一天,云底可能会受到扰动,因为风把它们吹得上上下下,水分需要时间来蒸发或凝结。因此,从远处观察云层的底部可以告诉我们一些关于大气中正在进行的动态的信息。同样,在地幔中,我们可以利用地震波在特定的水平上看到矿物的变化。在一些地方,这些水平是横向变化的,有时可以用不同的化学成分来解释。我们认为,在某些地方,这可能类似于对云底的影响,在这种情况下,观测到的水平是正在进行的动力学的印记。我们的目标是了解流动地幔中的压力和应力,并预测它们对矿物学的影响。不断变化的矿物学会影响密度,而密度又会影响流动模式。变化的矿物学影响流动,流动影响矿物学--这被称为反馈。我们将承担四项任务来理解这种反馈1。在地幔条件下(250,000大气压,温度高达1800摄氏度)对矿物进行的新实验,测量不断演变的矿物特性。为了了解矿物是如何变化的,我们将检查实验产品,以发现单个颗粒内的结构和化学细节。这些细节将使我们能够了解原子是如何移动的,这是第二项任务所需的信息。2.建立数学模型来解释实验结果。数学需要使用实验中几天内发生的事情来预测数百万年来地幔中发生的事情。3.将这些预测包含在整个地幔流动的数值模式中。这个模型将被用来预测当大型致密物体(构造板块)沉入地幔(例如日本和南美)时会发生什么,并找出矿物变化的影响。它还将被用来模拟当热的密度较低的物质(例如夏威夷和冰岛下面)上升到表面时会发生什么。地幔矿物学的预测将利用地震的地震波进行测试,地震波在穿过密度不同的岩石时以不同的速度传播。由于地球上矿物的急剧变化,地震波被反射和折射。计算将使我们能够测试地震波如何映射步骤3中预测的特征。我们还将收集来自地球各地的大量观测地震波数据集,以成像深处发生的矿物变化,并根据正在进行的流动模式来解释它们。总而言之,我们将产生新的地幔模型,我们将使用地震波观测来测试这些模型,并使用它们来产生关于矿物变化和地幔流动(控制地球如何演化)彼此反馈的新见解。
英文摘要
The evolution of the solid Earth and many surface features are controlled by movements deep within. We aim to transform our understanding of those movements through a new understanding of mineral behaviour. Rocks in the mantle, the outer half of the Earth, can flow despite being solid, in the same way that a glacier flows. This flow is driven by contrasts in density, for example dense material sinks. One control on density is mineralogy, so we need to understand the controls on mineral changes. Pressure is key, for example, graphite (a form of carbon) transforms into diamond (a denser form of carbon) with increasing pressure. Pressure increases with depth in the Earth, in the same way as it does in the deep oceans. However, in a flowing system, pressure may not relate simply to depth. Another control on mineralogy is stress (different force per unit area in different directions), which prevails in the mantle as it deforms.These ideas are illustrated by a simple analogy with clouds. On a calm day, the bases of clouds often appear undisturbed at a particular level, above which water is condensing. On a day of livelier weather, the cloud bases can be disturbed, as the wind wafts them up and down, and it takes time for water to evaporate or condense in response. Thus, looking at the bases of the clouds from a distance tells us something about the on-going dynamics in the atmosphere. Similarly, in the mantle, we have mineral changes at specific levels which we can "see" using seismic waves. In places the levels vary sideways, sometimes explained in terms of varying chemistry. We propose that this may in some places be like the effects on the cloud bases, in which case the observed levels are an imprint of the on-going dynamics. We aim to understand the pressures and stresses in a flowing mantle and predict their effects on mineralogy. The changing mineralogy will affect density, which in turn affects the flow patterns. Changing mineralogy affects flow, and flow affects mineralogy - this is called feedback. We will undertake four tasks to understand this feedback.1. New experiments on minerals at mantle conditions (250,000 atmospheres pressure, temperatures up to 1800 C) measuring evolving mineral properties. To understand how the minerals change, we will examine the experimental products to discover the details of structure and chemistry within individual grains. These details will enable us to understand how the atoms have moved around, information needed for the second task. 2. Creation of mathematical models to explain the results of the experiments. The mathematics is required to use what happens in days in the experiments to predict what happens in the mantle over millions of years. 3. Taking those predictions and including them in a numerical model for flow in the whole mantle. This model will be used to predict what happens when large dense objects (tectonic plates) sink into the mantle (e.g under Japan and South America) and find out what effect the mineral changes have. It will also be used to model what happens when hot less dense material (e.g. under Hawaii and Iceland) rises towards the surface.4. Predictions of mantle mineralogy will be tested using seismic waves from earthquake, which travel at varying speeds as they pass through rocks with varying densities. Seismic waves reflect and refract due to the sharp mineral changes in the Earth. Calculations will allow us to test how seismic waves can map the features predicted in step 3. We will also collect a large data set of observed earthquake waves from across the planet to image the mineral changes occurring deep within and interpret them in terms of on-going flow patterns. In summary we will produce new mantle models that we will test using seismic wave observations and use them to produce new insights into how mineral changes and mantle flow (which controls how the Earth evolves) feedback on each other.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Scholarships and Science Opportunities, Activities, and Research to Support Undergraduate STEM Student Success
  • 批准号:
    2030650
  • 项目类别:
    Standard Grant
  • 资助金额:
    $99.98万
  • 财政年份:
    2020
  • 负责人:
    John Wheeler
  • 依托单位:
Collaborative Research: Searching for the Expelled Envelope of Stripped-Envelope Supernovae
  • 批准号:
    1813825
  • 项目类别:
    Standard Grant
  • 资助金额:
    $46.37万
  • 财政年份:
    2018
  • 负责人:
    John Wheeler
  • 依托单位:
Creating Scientific Leaders among Students Underrepresented in STEM Disciplines via a Holistic Model at a Research-Active, Liberal Arts College
  • 批准号:
    1154413
  • 项目类别:
    Standard Grant
  • 资助金额:
    $60.0万
  • 财政年份:
    2012
  • 负责人:
    John Wheeler
  • 依托单位:
Fluid flow in the Earth: the influence of dehydration reactions and stress
  • 批准号:
    NE/J008303/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $60.11万
  • 财政年份:
    2012
  • 负责人:
    John Wheeler
  • 依托单位:
海外基金