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Collaborative Research: Testing the timing and direction of mantle exhumation at the Iberia-Newfoundland margins with low-temperature thermochronology

Collaborative Research: Testing the timing and direction of mantle exhumation at the Iberia-Newfoundland margins with low-temperature thermochronology
合作研究:用低温热年代学测试伊比利亚-纽芬兰边缘地幔折返的时间和方向
批准号:
2049848
负责人:
Michael Eddy
金额:
$4.61万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-07-15 至 2025-06-30

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中文摘要
翻译
大陆向海底的转变是导致洋盆形成的重要构造过程。在海底扩张开始之前,大陆裂解导致大陆地壳极度减薄,地幔岩石圈暴露于海底。研究得最好的边缘是北大西洋的伊比利亚-纽芬兰边缘。先前在伊比利亚-纽芬兰边缘的工作为我们了解这些盆地的结构提供了基础。然而,已经提出了多个模型,每个模型都略有不同。断层的时间、方向和数量对这些边缘的演变以及随后的海水蚀变有直接影响,海水蚀变影响海底的可居住性。这项研究将解决导致大陆分离的断层的时间和结构问题。这项研究将使用矿物磷灰石和锆石来评估断层的时间和方向,以及当边缘冷却到足以允许关键化学反应发生时。这些关键反应被认为是理解地球生命进化的关键。该项目将与南加州大学通信博士生合作,制作一个播客迷你系列,探讨本提案中的科学研究和面向不同受众的科学传播实践。此外,PI实验室的一名研究生将为南加州大学地球科学系和海洋与环境生物学系的研究生和本科生发起第一次多样性,公平性和包容性(DEI)海报会议。断层,岩浆作用和蛇纹化之间的复杂相互作用在超扩展的边缘已经推动了地球物理,地球化学和数值模拟研究几十年。然而,关于大陆断裂向地幔折返和海底扩张过渡的时间和机制等一级问题仍有争议。这些包括断层的时间关系,容纳地幔折返,在折返的地幔部分断层的数量和方向性,以及地幔折返和海底蚀变过程中的岩石圈的热历史。该项目是第一个全面的低温热年代学研究,以限制伊比利亚-纽芬兰边缘的挖出地幔部分内和附近暴露的岩石的冷却历史,这是唯一一个系统采样的超扩展边缘。该项目将使用从火成岩侵入体、同裂谷沉积物和从九个钻孔岩芯中挖出的大陆地壳中回收的锆石和磷灰石,这些钻孔岩芯构成了一个横跨挖出的地幔部分的水平断面。这些数据将被用来跟踪岩石圈冷却低于~ 200 C(锆石(U-Th)/He)和~ 80 C(磷灰石(U-Th)/He),在蛇纹石化和蛇纹方解石形成的热窗口,分别。结果将被用来测试拟议的折返模型,并解决三个首要的研究问题:1)什么是断层之间的时间关系,容纳地幔折返和海底扩张?2)地幔是沿沿着一个主要的拆离断层还是多个断层被折返出来的?3)地幔折返断层的时间与其他构造和岩石学过程,包括海底扩张、蛇纹石化和岩浆作用的发生有何关系?这些数据将被用来评估断层,蛇纹化,和/或岩浆活动是否发生在从东到西的渐进折返或同时发生在几个地点,从大陆分裂到海底扩张的过渡和岩浆活动,岩石圈伸展,洋中脊发展之间的关系的关键影响。蛇纹石化和蛇纹方解石形成的速度和程度也将对了解适合地球生命的条件的发展产生影响。该项目将与南加州大学通信博士生合作,制作一个播客迷你系列,探讨本提案中的科学研究和面向不同受众的科学传播实践。此外,PI实验室的一名研究生将为南加州大学地球科学系和海洋与环境生物系的研究生和本科生发起第一次多样性、公平性和包容性(DEI)海报会议。该奖项反映了NSF的法定使命,并被认为值得通过使用基金会的智力价值和更广泛的影响审查标准进行评估来支持。
英文摘要
The change from continents to seafloor is an important tectonic process that leads to the formation of oceanic basins. Continental breakup results in extreme thinning of continental crust and exposure of mantle lithosphere to the seafloor before the start of seafloor spreading. The best-studied margin is the Iberia-Newfoundland margin in the North Atlantic. Previous work on the Iberia-Newfoundland margin provides the foundation for our understanding of the structure of these basins. However, multiple models have been proposed, each with slight differences. The timing, direction, and number of faults have direct implications on the evolution of these margins, as well as subsequent seawater alteration, which affects the habitability of the seafloor. This study will address questions on timing and structure of faulting that leads to separation of continents. This study will use the minerals apatite and zircon to evaluate the timing and direction of faulting, as well as when the margin cooled enough to allow key chemical reactions to occur. These key reactions are believed to be critical to understanding the evolution of life on Earth. The project will engage with a USC Communications PhD student to produce a podcast mini-series that explores the scientific research in this proposal and scientific communication practices for diverse audiences. In addition, a graduate student in the PIs lab will initiate the first Diversity, Equity, and Inclusion (DEI) poster session for graduate and undergraduate students from the Department of Earth Sciences and Department of Marine and Environmental Biology at USC.The complex interactions between faulting, magmatism, and serpentinization at hyper-extended margins have fueled geophysical, geochemical, and numerical modeling investigations for decades. However, there is still debate over first order questions about timing and mechanics of the transition from continental breakup to mantle exhumation and seafloor spreading. These include the temporal relationship of faults that accommodate mantle exhumation, the number and directionality of faults in the exhumed mantle section, and the thermal history of the lithosphere during mantle exhumation and seafloor alteration. This project is the first comprehensive low temperature thermochronology study to constrain the cooling history of the rocks exposed within and adjacent to the exhumed mantle section of the Iberia-Newfoundland margins, the only hyper-extended margin that has been systemically sampled. The project will use zircon and apatite recovered from igneous intrusions, syn-rift sediments, and exhumed continental crust from nine drill cores that make up a horizontal transect across the exhumed mantle section. These data will be used to track lithospheric cooling below ~200C (zircon (U-Th)/He) and ~80C (apatite (U-Th)/He), within the thermal window of serpentinization and ophicalcite formation, respectively. The results will be used to test proposed exhumation models and address three overarching research questions: 1) What is the temporal relationship between the faulting that accommodates mantle exhumation and seafloor spreading? 2) Was the mantle exhumed along one major detachment or multiple faults? 3) How does the timing of mantle exhumation faulting relate to other tectonic and petrologic processes, including the onset of seafloor spreading, serpentinization, and magmatism? These data will be used to evaluate whether faulting, serpentinization, and/or magmatism occurred over progressive exhumation from east to west or occurred in several locations simultaneously, with key implications for the transition from continental breakup to seafloor spreading and the relationship between magmatism, lithospheric extension, and mid-ocean ridge development. The rates and extents of serpentinization and ophicalcite formation will also have implications for understanding the development of conditions suitable for life on Earth. The project will engage with a USC Communications PhD student to produce a podcast mini-series that explores the scientific research in this proposal and scientific communication practices for diverse audiences. In addition, a graduate student in the PIs lab will initiate the first Diversity, Equity, and Inclusion (DEI) poster session for graduate and undergraduate students from the Department of Earth Sciences and Department of Marine and Environmental Biology at USC.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.
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