Manchester Cosmochemistry 2011
Manchester Cosmochemistry 2011
批准号:
ST/J001643/1
负责人:
Ian Lyon
金额:
$166.49万
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 --
中文摘要
我们专注于太阳系的史前史,形成和演化,以了解能够支持生命的行星是否像我们的地球一样常见。为了做到这一点,我们开创了新技术,并将其应用于外星物质的样本,特别是来自太空任务的样本,陨石和进入我们大气层的太阳系尘埃。我们还希望在通过目前计划的小行星、月球和火星飞行任务将样品送回地球时,准备好最新和最灵敏的仪器和技术。我们的太阳系是由尘埃和气体云坍缩形成的。我们通过前太阳颗粒研究它-陨石内部幸存的尘埃颗粒。这些揭示了太阳形成之前银河系的历史,以及元素是如何在前几代恒星中形成的。陨石中这种物质比例的轻微变化可以作为指纹,使我们能够识别哪些类型的小行星为地球提供了物质。除了这些太阳前颗粒,我们还发现了太阳系中形成的第一批尘埃样本。这些是最终导致行星形成的一系列事件中第一步的幸存产物。我们试图了解它们是如何形成的,以及它们是如何被第一批小行星上的过程所改变的。早期太阳系中存在的某些放射性同位素的寿命如此之短,它们一定是在太阳和太阳系形成之前的几百万年附近制造的。有相当多的证据表明,这些放射性同位素中的一些必须来自超新星爆炸。我们的太阳系在这方面似乎是不寻常的-它是如何影响生命起源和生存的地方的发展的?通过这种方式,我们可以更多地了解恒星是如何制造物质的,以及它们是如何与周围环境混合的。此外,早期太阳系中的这种放射性衰变也让我们能够测量小行星和行星形成的事件之间的时间。在陨石中,我们有第一批小行星生命阶段的快照,告诉我们它们花了多长时间成长,加热,形成核心和岩石地幔,冷却。创世纪使命任务返回了一个太阳风样本,它被认为代表了太阳本身的组成(因此也代表了太阳系)。测量这些物质的组成为我们提供了所有行星和太阳系天体演化的起点。这有助于我们了解行星,特别是地球,是如何形成现在的形态的。彗星样本,如星尘号任务返回的彗星,以及在平流层收集的或从南极冰中提取的太阳系尘埃颗粒,提供了了解它们的成分以及它们是否提供了大部分挥发性元素的机会。(在低温下凝结的东西,如水),地球上的生命依赖于它。一旦行星被组装起来,这个故事就不完整了。像我们地球这样的类地行星自形成以来一直受到许多过程的影响。这些过程可以通过它们在火星和月球陨石等样品上留下的痕迹来研究。通过研究火星陨石,我们可以了解火星表面流体流动的时间以及这些流体来自什么样的环境。特别是,我们可以将它们与陆地流体进行比较,并寻找生命影响的证据。月球样本是未来从小行星返回的表面样本的很好的模拟物-通过将它们一粒一粒地分离,我们可以了解月球表面的历史(包括大型撞击盆地形成的时间),同时开发和测试即将到来的任务所需的技术。
英文摘要
We focus on the prehistory, formation and evolution of our solar system, to understand whether planets capable of supporting life, like our Earth, are common. To do this we pioneer new technology and apply it to samples of extraterrestrial material, notably samples from space missions, meteorites, and dust from the solar system that enters our atmosphere. We also want to be ready with the latest and most sensitive instruments and techniques when samples are returned to Earth by currently planned missions to asteroids, the Moon and Mars. Our solar system formed by the collapse of a cloud of dust and gas. We study it via presolar grains - particles of the dust that survived inside meteorites. These reveal the history of the galaxy before our sun formed and how the elements were made in previous generations of stars,. Slight variations in the proportions of this material among meteorites act as fingerprints that will allow us to identify which types of asteroids contributed material to the Earth. Alongside these presolar grains we find samples of the first dust to form in our solar system. These are surviving products of the first step in a sequence of events that eventually led to the formation of planets. We seek to understand both how they formed and how they were modified by processes on the first asteroids.The lifetime of certain radioactive isotopes that were present in the early solar system is so short that they must have been made nearby, at most a few million years before the sun and solar system formed. There is considerable evidence that some of these radioactive isotopes had to come from a supernova explosion. It seems our solar system is unusual in this respect - how did it affect the development of places where life could originate and survive? In this way we learn more about how the stars made material and how it was mixed into their surroundings. Additionally, this radioactive decay in the early solar system also lets us measure the time between events as asteroids and planets formed. In meteorites we have snapshots of stages in the life of the first asteroids that tell us how long it took them to grow, heat up, form cores and rocky mantles, and cool. The Genesis mission returned a solar wind sample, which is believed to represent the composition of the bulk sun itself (and thus the bulk solar system). Measuring the composition of this material gives us the starting point from which all the planets and solar system bodies evolved. This helps us understand how the planets and particularly the Earth grew into their current form.Samples of comets, such as that returned by the Stardust missions and solar system dust particles collected in the stratosphere or extracted from Antarctic ice, provide the opportunity to understand their composition and whether they could have supplied a large fraction of the volatile elements (things that condense at low temperature, like water) on which life on Earth depends. The story wasn't complete once planets were assembled. Terrestrial planets like our Earth have been affected by many processes since they formed. These processes can be studied through the traces they have left on samples such as meteorites from Mars and the Moon. By studying Martian meteorites we can understand the timing of fluid flows on the Martian surface and what sort of environment these fluids had come from. In particular, we can compare them with terrestrial fluids and seek evidence of the effects of life. Lunar samples are good analogues of the surface samples that will be returned from asteroids in the future - by taking them apart grain by grain we can understand the history of the Moon's surface (including when the large impact basins formed) while developing and testing techniques that forthcoming missions will require.
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The petrology, geochemistry, and age of lunar regolith breccias Miller Range 090036 and 090070: Insights into the crustal history of the Moon
米勒范围 090036 和 090070 月球风化角砾岩的岩石学、地球化学和年龄:深入了解月球地壳历史
DOI:
10.1111/maps.12737
发表时间:
2016
期刊:
Meteoritics & Planetary Science
影响因子:
2.2
作者:
[Calzada-Diaz A]
通讯作者:
Calzada-Diaz A
A conspicuous clay ovoid in Nakhla: evidence for subsurface hydrothermal alteration on Mars with implications for astrobiology.
纳赫拉的一个明显的粘土卵形体:火星地下热液蚀变的证据对天体生物学的影响。
DOI:
10.1089/ast.2013.1069
发表时间:
2014
期刊:
Astrobiology
影响因子:
4.2
作者:
[Chatzitheodoridis E]
通讯作者:
Chatzitheodoridis E
DOI:
10.1080/00206814.2014.951003
发表时间:
2015-09
期刊:
International Geology Review
影响因子:
2.6
作者:
[Akwinga Victor Asaah;B. Zoheir;B. Lehmann;D. Frei;R. Burgess;C. E. Suh]
通讯作者:
Akwinga Victor Asaah;B. Zoheir;B. Lehmann;D. Frei;R. Burgess;C. E. Suh
Characteristics of djerfisherite from fluid-rich, metasomatized alkaline intrusive environments and anhydrous enstatite chondrites and achondrites
富含流体、交代碱性侵入环境的辉辉石和无水顽火辉石球粒陨石和无球粒陨石的特征
DOI:
10.2138/am.2014.4700
发表时间:
2014
期刊:
American Mineralogist
影响因子:
3.1
作者:
[Clay P]
通讯作者:
Clay P
DOI:
10.1016/j.epsl.2013.11.036
发表时间:
2014-02-01
期刊:
EARTH AND PLANETARY SCIENCE LETTERS
影响因子:
5.3
作者:
[Chavrit, D., Humler, E., Grasset, O.]
通讯作者:
Grasset, O.
共 8 条
Investigating the Solar System with Isotope Cosmochemistry
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批准号:ST/G003068/1
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项目类别:Research Grant
-
资助金额:$357.57万
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财政年份:2009
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负责人:Ian Lyon
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依托单位:
UKCAN
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批准号:PP/E000894/1
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项目类别:Research Grant
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资助金额:$36.97万
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财政年份:2006
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负责人:Ian Lyon
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依托单位:
海外基金