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Collaborative Research: 3D Dynamics of Buoyant Diapirs in Subduction Zones

Collaborative Research: 3D Dynamics of Buoyant Diapirs in Subduction Zones
合作研究:俯冲带浮力底辟的 3D 动力学
批准号:
1316333
负责人:
Mark Behn
金额:
$24.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-08-01 至 2016-07-31

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中文摘要
翻译
地球表面和内部的热和化学物质的交换是由板块构造控制的。具体来说,是地球吗?S板块在俯冲带被重新循环到地幔中,在那里一个构造板块被迫在另一个板块之下。在俯冲过程中,来自下降板块的一些物质返回地表形成地球。地壳。这种运输大部分是通过俯冲物质的融化和随后的地表火山活动发生的,然而,浮力物质也可以通过底辟岩中的固态流动返回地表。这个项目的目标是通过实验室实验和数值模型的结合来研究这些浮力底辟的上升。我们将使用这些模型来确定底辟形成的地点和时间,并确定底辟特征(体积/浮力)与从下降板块到地表的上升路径之间的关系。由于浮力底辟岩与直接从俯冲板块产生的熔体具有不同的化学特征,因此了解这一过程的效率对于确定地球的化学演化至关重要。该项目还将支持培养1名博士生和1名博士后。虽然以前的许多研究都研究了俯冲板块驱动的地幔流动,但相对较少的研究集中在浮力物质从板块上升回地表的过程中。在本项目中,我们将描述底辟演化的三个阶段:形成阶段、上升阶段和到达阶段,并确定每个阶段如何受到板块驱动的地幔楔流场的影响。实验室实验将用于模拟上升底辟的路径和相互作用,作为板块驱动流场的特定方面的三维函数,包括板块回滚、板块几何形状的沿走向变化(例如,板块边缘、间隙、倾角的变化)和上覆板块的变形。假设不同的浮力源,包括点源、线源和下沉板块表面的浮力材料,将启动底喷。我们预计底辟上升路径将受到底辟体积(浮力)通量和地幔楔内流动模式的强烈影响。可能导致浮力板衍生物质向地表的大量水平净输送。基于密度对比、底辟大小、路径形状和穿越时间,高分辨率数值模型将用于研究上升底辟光谱内的熔融和熔融-基质相互作用。这些模型对于表征底辟内部的化学分化具有重要意义。将实验室实验与数值模型相结合,我们将能够对化学信号如何在俯冲带中从板块传输到地表提出重要的新限制。
英文摘要
The exchange of heat and chemical species between the surface and interior of the Earth are controlled by plate tectonics. Specifically, the Earth?s plates are recycled back into the mantle at subduction zones, where one tectonic plate is forced beneath another. During subduction some of the material from the descending plate is returned to surface forming the Earth?s crust. Much of this transport occurs via melting of the subducted material and subsequent volcanism at the surface, however, buoyant material can also return to the surface via solid-state flow in ?diapirs?. The goal of this project is to study the rise of these buoyant diapirs using a combination of laboratory experiments and numerical models. We will use these models to ascertain where and when diapirs form and to determine the relationship between diapir characteristics (volume/buoyancy) and ascent paths from the descending slab to the surface. Because buoyant diapirs will have different chemical signatures than the melts generated directly from the subducting plate, understanding the efficiency of this process is critical for determining chemical evolution of the Earth. This project will also support the education of a PhD student and a post-doctoral research fellow.While many previous studies have investigated mantle flow driven by the subducting slab, relatively few have focused on the ascent of buoyant material from the slab back to the surface. In this project we will characterize the 3 stages of diapir evolution: formation stage, rise stage, and arrival stage, and determine how each is influenced by the plate-driven mantle wedge flow field. The laboratory experiments will be used to model the pathways and interaction of ascending diapirs in three dimensions as a function of specific aspects of the plate-driven flow field, including slab rollback, along-strike variations in slab geometry (e.g., slab edges, gaps, changes in dip), and deformation of the overriding plate. Diapirs will be initiated assuming different buoyancy sources including a point source, line source, and sheet of buoyant material on the surface of the down-going slab. We expect that diapir ascent paths will be strongly influenced by diapir volume (buoyancy) flux and the pattern of flow in the mantle wedge?potentially resulting in large horizontal net transport of buoyant slab-derived material to the surface. High-resolution numerical models will then be used to study melting and melt-matrix interaction within the spectrum of ascending diapirs based upon density contrast, diapir size, path shape and transit time. Such models are important for characterizing chemical differentiation within diapirs. Combining the laboratory experiments with the numerical models, we will be able to place important new constraints on how chemical signals can be transported from the slab to the surface in subduction zones.
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