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Collaborative Research: Rivers, Faults, and Growing Mountains: Dynamic Feedback between Crustal Deformation, Rock Strength, and Erosion

Collaborative Research: Rivers, Faults, and Growing Mountains: Dynamic Feedback between Crustal Deformation, Rock Strength, and Erosion
合作研究:河流、断层和生长的山脉:地壳变形、岩石强度和侵蚀之间的动态反馈
批准号:
1323137
负责人:
Gregory Tucker
金额:
$1.94万
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:
2013-09-01 至 2016-08-31

项目摘要

项目成果

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中文摘要
翻译
最活跃山脉的地形显示了变形和侵蚀之间的明确联系,其形式是与断层和剪切带紧密相连的山谷网络。我们认为,这种联系是变形、岩石破坏和地表侵蚀之间动态反馈的特征,这种反馈在造山带的演化中起着基础性的作用。通过这项研究计划,我们将检验我们的假设,即与构造驱动的地震相关的岩石粉碎降低了地球上地壳的强度和颗粒尺寸,在更容易被河流、山体滑坡和冰川侵蚀的物质表面产生带。沿着这些软弱断裂带的侵蚀比未变形的物质进行得更快,因此,变形历史被记录在地形组构中。这些断层弱化带的三维方向在很大程度上由与地幔对流有关的大尺度板块构造决定。因此,如果我们的假设成立,那么我们将能够使用地表特征(山谷和山脊)的方向来描述相对较高分辨率的地幔对流的长期历史。为了验证这一假设,我们提出了一个程序,将先进的数值模拟和新西兰南阿尔卑斯山的现场数据收集结合起来,以评估两个可检验的预测:(1)地形和岩石强度之间应该存在相关性,这反映在体积粘聚力、裂缝密度、摩擦系数、抗拉强度和粒度等性质上;(2)根据我们目前对相关物理的理解,三维变形和侵蚀的耦合模型应该产生与观测一致的地形、侵蚀和应变模式,并且与均匀岩石强度的情况有很大不同。我们预计,这项研究将为研究从地幔对流到个别流域的尺度上地表过程和构造过程的相互依存关系的科学家提供关键信息。作为与该计划相关的推广活动的一部分,我们将制作和测试一个可通过网络访问的景观建模模块,该模块将允许K12和景观开发的普通观众在一个简化的、耦合的地貌/构造造山系统中进行数值实验。该项目得到地貌和土地利用动力学计划和构造计划的支持。此外,该奖项被指定为OIIA/ISE全球风险基金奖,由NSF的OIIA国际科学和工程科共同资助。
英文摘要
The topography of most active mountain ranges shows a clear link between deformation and erosion in the form of valley networks that align closely with faults and shear zones. We propose that this association is the signature of dynamic feedback between deformation, rock damage, and surface erosion, and that this feedback plays a fundamental role in the evolution of orogens. With this research program, we will test our hypothesis that the rock crushing associated with tectonically-driven earthquakes reduces the strength and grain size of the upper crust of the Earth, producing zones at the surface of material that is more readily eroded by rivers, landslides and glaciers. Erosion along these weakened fault zones proceeds more rapidly than the non-deformed material, and consequently, the deformation history is recorded within the topographic fabric. The 3D orientation of these fault-weakened zones is largely determined by large scale plate tectonics related to mantle convection. Consequently, if our hypothesis is sustained, then we will be able to use the orientation of surface features (valleys and ridges) to describe the long term history of mantle convection at relatively high resolution.To test this hypothesis, we propose a program that combines advanced numerical modeling and field data collection in the Southern Alps of New Zealand to evaluate two testable predictions: (1) that there should exist a correlation between topography and rock strength, as reflected in properties such as bulk cohesion, fracture density, friction coefficient, tensile strength and grain size; and (2) that a coupled model of 3D deformation and erosion, based on our current understanding of the relevant physics, should produce patterns of topography, erosion, and strain that are both consistent with observations and substantially different from the case of uniform rock strength. We anticipate that this research will provide critical information for scientists working on the interdependence of surface and tectonic processes at scales ranging from those of mantle convection to those of individual drainage basins. As part of the outreach associated with this program, we will produce and test a Web-accessible landscape modeling module that will permit numerical experimentation by k12 and general audiences of landscape development in a simplified, coupled geomorphic/tectonic orogenic system.This project is supported by the Geomorphology and Land-use Dynamics program and the Tectonics program. In addition, this award is designated as an OIIA/ISE Global Venture Fund Award and is being co-funded by NSF's OIIA International Science and Engineering Section.
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国内基金
海外基金
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  • 负责人:
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  • 依托单位:
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