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When on Earth did modern plate tectonics begin?

When on Earth did modern plate tectonics begin?
现代板块构造到底是什么时候开始的?
批准号:
NE/I025573/1
负责人:
Craig Storey
金额:
$51.45万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2012
资助国家:
英国
项目状态:
已结题
起止时间:
2012 至 --

项目摘要

项目成果

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中文摘要
翻译
地球是一个动态的行星,原因很简单,它仍然在从吸积和随后的放射性元素衰变的热量冷却下来。它失去热量的主要机制是板块构造,这一理论自20世纪70年代以来一直被广泛接受。地球是由一个致密的金属核所形成的,它被部分熔融的硅酸盐地幔所包围,而硅酸盐地幔本身又被一个漂浮的地壳所覆盖,无论是大陆地壳还是海洋地壳。我们生活在大部分位于海平面以上的大陆地壳上。洋壳形成了洋底,很少暴露在外。洋壳是由洋中脊的地幔熔化形成的,例如冰岛火山岛所在的大西洋中脊。新的地壳不断形成,迫使老的地壳向外扩张,海洋变大。随着洋壳从海脊向外扩散,它冷却并变得更致密。最终它与一个由密度较小的物质组成的大陆相互作用。洋壳被驱回大陆之下的地幔,这一过程被称为俯冲。火山沿着俯冲带上方的大陆边缘形成,至少有一些火山活动会导致新的大陆地壳的增加。这可能是我们大陆最初形成和随后演变的主要过程。它现在可以在太平洋边缘观察到,那里广泛的火山活动被称为“火环”。然而,并不是所有的海洋都能继续生长!作为对太平洋持续增长的回应,大西洋已经停止变大。最终,海洋将完全闭合,周围的大陆将碰撞,形成线性山脉。一个很好的例子是喜马拉雅山,印度与亚洲在那里相撞。被称为板块构造的整个过程对我们的星球有着深远的影响,为我们提供了居住的土地,捕鱼的海洋,饮用的淡水和复杂的天气模式。它也是我们气候的调节器,因为大陆岩石的风化导致二氧化碳下降到深海储存。了解板块构造是地球和环境科学家的核心。还有一些重要的细节我们知之甚少,比如它是如何以及何时开始的。这项提议试图通过一项新的研究来调查这一点,即对板块构造的关键岩石进行研究,特别是那些由俯冲作用产生的岩石。当洋壳俯冲时,压力和温度的增加使其变成更致密的岩石。随着地球的演化,这种“变质作用”的确切压力和温度条件也发生了变化。我们建议通过使用在俯冲过程中在海洋地壳内形成的矿物来研究这一点。岩石本身经常被侵蚀破坏,但一种叫做金红石(二氧化钛)的坚固矿物的微小晶体可以在它们衍生的沉积物中找到。通过测定它们的年龄,并利用它们的化学成分作为指纹,我们可以计算出侵蚀俯冲带内的压力和温度。同样,在俯冲过程中形成的火山岩也随着时间的推移而变化。这些也经常被侵蚀破坏,因此暴露的记录可能不具有代表性。另一种被称为锆石(硅酸锆)的坚固矿物通常会在风化中幸存下来,并最终与年轻沉积物中的金红石一起出现。使用类似的方法与锆石,我们也可以调查不断变化的风格岩浆活动在整个地球的历史。.目前的岩浆记录表明,现代俯冲开始于大约25亿年前,而变质记录则表明开始于大约7亿年前。我们的新方法将检验这一点。我们将能够说,较年轻的日期是否正确,较老的日期是否标志着不同类型的板块构造,或者较老的日期是否确实代表了现代板块构造的开始,暴露的岩石记录是否有偏差。
英文摘要
Earth is a dynamic planet, for the simple reason that it is still cooling down from the heat of accretion and subsequent decay of radioactive elements. The main mechanism by which it loses heat is plate tectonics, a theory that has been widely accepted since the 1970s. The Earth is formed of a dense metallic core surrounded by a partially molten silicate mantle which itself is capped by a buoyant crust, either continental or oceanic. We live on the continental crust which largely exists above sea level. The ocean crust forms the floors of oceans and is only rarely exposed. The ocean crust forms by mantle melting at mid ocean ridges, such as the mid Atlantic ridge upon which sits the volcanic island of Iceland. New crust is constantly formed, forcing the older crust to spread outwards and oceans to grow larger. As the ocean crust spreads away from the ridge, it cools and becomes denser. Eventually it interacts with a continent, made of less dense material. The ocean crust is driven beneath the continent back into the mantle, a process known as subduction. Volcanoes form along the continental margin above the subduction zone and at least some of this activity results in addition of new continental crust. This may have been the main process responsible for initial formation and subsequent evolution of our continents. It can be observed now around the margin of the Pacific Ocean, where widespread volcanism is known as the "Ring of Fire". However, not all oceans can continue to grow! The Atlantic Ocean has stopped getting bigger as a response to the continued growth of the Pacific. Eventually, an ocean will close completely and the surrounding continents will collide, resulting in a linear mountain chain. A good example is the Himalaya, where India has collided with Asia. This whole process known as plate tectonics has a profound affect on our planet, providing us with land on which to live, seas in which to fish, freshwater to drink and our complex weather patterns. It is also a regulator of our climate since weathering of continental rocks results in drawdown of CO2 to the deep sea where it is stored. Understanding plate tectonics is central to Earth and Environmental Scientists. There are still important details that we know little about, such as how and when it began. This proposal seeks to investigate this by a novel study of critical rocks that characterise plate tectonics, in particular those that result from subduction. When ocean crust is subducted, increasing pressure and temperature change it into denser rock. As the Earth has evolved, the exact pressure and temperature conditions of this "metamorphism" have also changed. We propose to study this by using minerals that form within ocean crust during subduction. The rocks themselves are often destroyed by erosion, but tiny crystals of a robust mineral called rutile (titanium dioxide) can survive to be found in sediments derived from them. By dating these and using their chemical composition as a fingerprint, we can work out the pressure and temperature within the eroded subduction zone. Similarly, the volcanic rocks that form during subduction have changed through time. These are also often destroyed by erosion so that the exposed record may not be representative. Another robust mineral known as zircon (zirconium silicate) often survives the weathering and ends up alongside rutile in the younger sediments. Using similar methods with zircon we can also investigate changing styles of magmatism throughout Earth's history. . Currently the magmatic record implies that modern subduction began around 2500 million years ago, yet the metamorphic record implies a later start of around 700 million years ago. Our novel approach will test this. We will be able to say whether the younger date is correct and the older marks a different kind of plate tectonics, or whether the older date does indeed represent the onset of modern plate tectonics, and the exposed rock record is biased.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
The Eoarchaean foundation of the North Atlantic Craton
北大西洋克拉通的太古宙基础
DOI: 10.1144/sp389.11
发表时间: 2014
期刊: Geological Society, London, Special Publications
影响因子: --
作者: [Lancaster P]
通讯作者: Lancaster P
DOI: 10.7185/geochemlet.2006
发表时间: 2020-02
期刊: Geochemical Perspectives Letters
影响因子: 4.9
作者: [E. Bruand;M. Fowler;C. Storey;O. Laurent;C. Antoine;M. Guitreau;E. Heilimo;O. Nebel]
通讯作者: E. Bruand;M. Fowler;C. Storey;O. Laurent;C. Antoine;M. Guitreau;E. Heilimo;O. Nebel
The Niemcza diorites and moznodiorites (Sudetes, SW Poland): a record of changing geotectonic setting at ca. 340 Ma.
Niemcza 闪长岩和莫兹诺闪长岩(波兰西南部苏台德):约 1970 年大地构造环境变化的记录。
DOI: 10.7306/gq.1084
发表时间: 2013
期刊: Geological Quarterly
影响因子: 1
作者: [Anna PIETRANIK A]
通讯作者: Anna PIETRANIK A
DOI: 10.1093/petrology/egu037
发表时间: 2014-08
期刊: Journal of Petrology
影响因子: 3.9
作者: [E. Bruand;C. Storey;M. Fowler]
通讯作者: E. Bruand;C. Storey;M. Fowler
共 10 条
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    • 项目类别:
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    • 财政年份:
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    • 资助金额:
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