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Collaborative Research: Titanium in Deforming Quartz and the Thermo-mechanics of Detachment and Thrust Systems

Collaborative Research: Titanium in Deforming Quartz and the Thermo-mechanics of Detachment and Thrust Systems
合作研究:变形石英中的钛以及分离和推力系统的热力学
批准号:
0911497
负责人:
Donna Whitney
金额:
$34.05万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-08-01 至 2013-07-31

项目摘要

项目成果

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中文摘要
翻译
该奖项是根据2009年美国复苏和再投资法案(公法111-5)资助的。该项目在自然界和实验中,在广泛的温度和变形条件下,研究变形在石英中钛(Ti)和其他微量元素分布中的作用。通过高压/高温实验测试了动态再结晶对钛在石英中的迁移的作用,研究了钛在变形石英中的迁移率。同时,本研究利用天然石英岩研究了两种构造环境:(1)收缩(逆冲)系统,岩石在加热和埋藏过程中发生变形;石英显微结构锁定在狭窄的温度范围内,但显示出广泛的显微结构;(2)伸展(脱离)系统,其中岩石在很宽的温度范围内变形,但发展出类似于向地球表面挖掘的热岩石的微观结构。在实验和来自剥离和冲断系统的天然岩石中,该项目研究了作为变形和温度条件的函数,继承的Ti是如何重新分布的。天然样品来自澳大利亚中部Ruby Gap双相(逆冲)的Heavitree石英岩;瑞士西阿尔卑斯山Siviez-Mischabel推覆构造(逆冲构造);以及美国西部的Kettle和Snake Range伸展分离系统。研究方法包括岩石学和电子背散射衍射表征石英微观结构、再结晶类型和晶体学优选取向;石英中微量元素分带的阴极发光成像离子探针分析石英中钛的实验和天然样品。石英是二氧化硅(SiO2),但可能含有微量的其他元素,如钛和铝。这些微量元素的丰度可能与温度有关,从而提供了一种方法来计算含石英岩石在构造事件期间形成时锁定其成分的温度。记录地壳在不同构造环境(收缩、伸展)下的热演化对于理解构造过程如何随时间运作是很重要的。虽然石英的Ti含量越来越多地用于计算富石英岩石的古温度,但必须了解变形在石英中微量元素分布中的作用。通过对不同热环境和构造环境下的变形影响进行现场和实验相结合的研究,可以评价变形对石英中微量元素分布的影响。
英文摘要
This award is funded under the American Recovery and Reinvestment Act of 2009 (Public Law 111-5).The project investigates the role of deformation in the distribution of titanium (Ti) and other trace elements in quartz over a wide range of temperature and deformation conditions in nature and experiments. The mobility of Ti in deforming quartz is addressed by high-pressure/high-temperature experiments that test the role of dynamic recrystallization on Ti migration in quartz. In parallel, this research uses natural quartz rocks to investigate two tectonic settings: (1) contractional (thrust) systems, in which rocks deformed during heating and burial; quartz microstructures locked in over a narrow range of temperatures but display a wide range of microstructures; and (2) extensional (detachment) systems, in which rocks deformed over a wide temperature range but developed similar microstructures as hot rocks exhumed towards the Earth's surface. In experiments and natural rocks from detachment and thrust systems, this project examines how inherited Ti is redistributed as a function of deformation and temperature conditions. Natural samples are from the Heavitree Quartzite in the Ruby Gap Duplex, central Australia (thrust); the Siviez-Mischabel nappe in the western Alps, Switzerland (thrust); and the Kettle and Snake Range extensional detachment systems, western United States. Research methods include petrographic and electron backscatter diffraction characterization of quartz microstructure, types of recrystallization, and crystallographic preferred orientation; cathodoluminescence imaging of trace element zoning in quartz; and ion microprobe analysis of Ti in quartz in experimental and natural samples.Quartz is silicon dioxide (SiO2) but may contain trace amounts of other elements, such as titanium and aluminum. The abundance of these trace elements may correlate with temperature, thereby providing a means to calculate the temperature at which quartz-bearing rocks locked in their composition when they formed during tectonic events. Documenting the thermal evolution of the crust in different tectonic settings (contraction, extension) is important for understanding how tectonic processes operate over time. Although the Ti content of quartz is increasingly used to calculate paleo-temperatures of quartz-rich rocks, the role of deformation in the distribution of trace elements in quartz must be understood. A combined field and experimental study of the effect of deformation in different thermal and tectonic settings can evaluate the effect of deformation on trace element distribution in quartz.
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