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Taking Earth's volcanic pulse: understanding global volcanic hazards by unlocking the ice core isotope archive

Taking Earth's volcanic pulse: understanding global volcanic hazards by unlocking the ice core isotope archive
掌握地球火山脉搏:通过解锁冰芯同位素档案了解全球火山危害
批准号:
MR/S033505/1
负责人:
William Hutchison
金额:
$59.64万
依托单位:
依托单位国家:
英国
项目类别:
Fellowship
财政年份:
2019
资助国家:
英国
项目状态:
已结题
起止时间:
2019 至 --

项目摘要

项目成果

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中文摘要
翻译
爆炸性的火山喷发向大气中喷发了大量的火山灰和气体。每年大约有5-10次重大火山事件,大约有7亿人(占世界人口的10%)居住在足够近的地方,当它们喷发时可以直接受到影响。这些喷发可能会导致重大的人类死亡,也可能会产生毁灭性的环境影响,火山灰和酸性尘埃覆盖了整个景观,破坏了庄稼,伤害了家畜。尽管我们大多数英国人永远不会近距离目睹这些喷发,但它们仍然会影响我们的生活。2010年4月和5月冰岛Eyjafjallajökull火山喷发证明了这一点。尽管火山喷发的规模相对较小,没有造成人员死亡,但它扰乱了数百万人的旅行,给全球经济造成了数十亿英镑的损失。这一紧急情况突显了我们全球贸易和运输网络的脆弱性,以及英国不断受到火山事件破坏的威胁。火山学的主要目标之一是研究过去的火山事件,以便我们能够了解它们的重现期和对环境的影响,并帮助社会为下一次“大灾难”做好准备。令人惊讶的是,大型爆炸性喷发产生的火山产物经历了区域和全球分布,并可以从喷发源传播数千公里。然而,在大多数地表环境中,这种细小的火山尘埃很快就会被冲走并消失。冰盖是这方面的探险者,通过钻探冰层并提取冰芯,科学家们可以识别出这些过去喷发沉积的富硫层和火山灰。尽管冰芯提供了过去火山活动的无可争议的最好档案,但解释这一记录并不简单。我们面临的主要困难是了解源火山位于哪里,以及它对气候的影响可能是什么。即使在过去2500年的记录中,我们也只知道25次最大的火山喷发中的7次的位置。如果科学家能够了解如何从这些记录中提取更多关于这些喷发可能的来源和环境影响的信息,这将是一项重大突破。这不仅有助于科学家针对全球容易发生大型火山事件的地区进行火山监测,而且通过了解这些过去事件的频率和影响,我们可以为未来的喷发做好社会准备,并减少其经济影响。我的项目将利用最近在冰芯研究方面的分析突破。特别是,最近的分析表明,火山硫化学编码了有关火山羽流在大气中达到的高度以及喷发源与冰盖的接近程度的关键信息。因此,这种方法将提供有关火山位置及其气候影响的关键新信息(因为向大气中注入更高的羽流往往会造成最大的全球降温)。我将仔细询问几个著名的火山喷发的技术,在这些火山喷发中,我们已经有了关于它们的源头位置、喷发方式和气候影响的良好信息。一旦校准,我将使用这种化学指纹技术来确定过去2000年来所有重大喷发的喷发风格(羽流高度)和来源位置。因此,该项目将提供有关过去火山喷发的规模、频率和类型的关键信息,这些信息将用于改进对未来火山事件的预测。做好准备将有助于减少生命损失,减少经济损失。对于英国,我们将彻底了解冰岛大型火山事件的喷发频率。对于全球社会,我们将帮助查明过去火山喷发的源头,并评估地球上气候变化喷发的频率。
英文摘要
Explosive volcanic eruptions spew enormous quantities of ash and gas into the atmosphere. There are about 5-10 major volcanic events every year, and roughly 700 million people (10 % of the world's population) live close enough to be directly affected when they erupt. These eruptions may lead to significant human fatalities, and can also have devastating environmental impacts, covering the landscape in ash and acidic fallout, which destroys crops and harms livestock.Although most of us in the UK will never witness one of these eruptions up close they can still impact our lives. This was demonstrated by the eruption of Eyjafjallajökull volcano in Iceland in April and May 2010. Although the eruption was relatively minor and did not kill anyone, it disrupted the travel of millions of people and cost global economies billions of pounds. This emergency highlighted the vulnerability of our global trade and transport networks, and the fact that the UK is at constant threat from disruption by volcanic events. One of the key goals of volcanology is to study past volcanic events so that we can understand their return periods and environmental impacts, and help prepare society for the next 'big one'. Amazingly, the volcanic products from large explosive eruptions undergo regional and global distribution and can travel thousands of kilometres from their eruption source. However, in most surface environments this fine grained volcanic fallout is rapidly washed away and lost. Ice sheets are the expedition to this, and by drilling into the ice and extracting ice cores scientists can identify the sulphur-rich layers and ash deposited by these past eruptions. Although ice cores provide the undisputed best archive of past volcanism, interpreting this record is not straightforward. The main difficulties we face are understanding where the source volcano was located and what its climate impact might have been. Even in records that span the last 2500 years, we only know the location of 7 of the 25 largest volcanic eruptions. If scientists could learn how to extract more information about the likely source and environmental impacts of these eruptions from these records it would represent a major breakthrough. Not only would this help scientists target volcano monitoring in regions of the globe that are prone to large volcanic events, but by understanding the frequency and impacts of these past events we can prepare societies for future eruptions and reduce their economic impacts.My project will take advantage of recent analytical breakthroughs in ice core research. In particular, recent analyses suggest that volcanic sulphur chemistry encodes critical information about the height the volcanic plume reached in the atmosphere and the proximity of the eruptive source to the ice sheet. This method would therefore provide critical new information about where the volcano was located and its climate impact (since plumes injected higher into the atmosphere tend to cause the greatest global cooling). I will carefully interrogate these techniques for several well-known volcanic eruptions, where we already have good information on their source location, eruption style and climate impacts. Once calibrated, I will use this chemical fingerprinting technique to determine the eruptive style (plume height) and source location of all significant eruptions over the last 2000 years. Thus, this project will provide critical information about the magnitude, frequency and style of past eruptions which will be used to improve forecasts of future volcanic events. Being better prepared will help limit the loss of life and reduce the economic losses. For the UK, we'll gain a thorough understanding of the eruption frequency of large volcanic events in Iceland. For global society, we'll help pinpoint the source of past eruptions and evaluate the frequency of climate-changing eruptions on Earth.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.gca.2020.07.042
发表时间: 2020-11-01
期刊: GEOCHIMICA ET COSMOCHIMICA ACTA
影响因子: 5
作者: [Hutchison, William, Finch, Adrian A., Boyce, Adrian J.]
通讯作者: Boyce, Adrian J.
Gas Emissions and Subsurface Architecture of Fault-Controlled Geothermal Systems: A Case Study of the North Abaya Geothermal Area
断层控制的地热系统的气体排放和地下结构:北阿巴亚地热区的案例研究
DOI: 10.1029/2022gc010822
发表时间: 2023
期刊: Geochemistry, Geophysics, Geosystems
影响因子: --
作者: [Hutchison W]
通讯作者: Hutchison W
DOI: 10.1038/s41467-021-27166-y
发表时间: 2021-11-25
期刊: Nature communications
影响因子: 16.6
作者: [Biggs J, Ayele A, Fischer TP, Fontijn K, Hutchison W, Kazimoto E, Whaler K, Wright TJ]
通讯作者: Wright TJ
DOI: 10.1038/s41467-019-12218-1
发表时间: 2019-09
期刊: Nature Communications
影响因子: 16.6
作者: [W. Hutchison;Rainer J. Babiel;A. Finch;M. Marks;G. Markl;A. Boyce;E. Stüeken;H. Friis;A. Borst;N. Horsburgh]
通讯作者: W. Hutchison;Rainer J. Babiel;A. Finch;M. Marks;G. Markl;A. Boyce;E. Stüeken;H. Friis;A. Borst;N. Horsburgh
共 7 条
    Taking Earth's volcanic pulse: understanding global volcanic hazards by unlocking the ice core archive
    • 批准号:
      MR/X024016/1
    • 项目类别:
      Fellowship
    • 资助金额:
      $75.77万
    • 财政年份:
      2023
    • 负责人:
      William Hutchison
    • 依托单位:
    A new multi-parameter toolkit to interrogate the source and climate impact of past volcanism
    • 批准号:
      NE/S015345/1
    • 项目类别:
      Fellowship
    • 资助金额:
      $72.31万
    • 财政年份:
      2019
    • 负责人:
      William Hutchison
    • 依托单位:
    国内基金
    海外基金
    基于Google Earth Engine云平台的遥感图像去云研究
    • 批准号:
    • 项目类别:
      省市级项目
    • 资助金额:
      10.0万元
    • 批准年份:
      2021
    • 负责人:
      徐萌
    • 依托单位:
    SCIENCE CHINA: Earth Sciences
    SCIENCE CHINA Earth Sciences(中国科学:地球科学)