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Testing ice sheet models and modelled estimates of Earth's climate sensitivity using Miocene palaeoclimate data

Testing ice sheet models and modelled estimates of Earth's climate sensitivity using Miocene palaeoclimate data
使用中新世古气候数据测试冰盖模型和地球气候敏感性的模型估计
批准号:
NE/I006176/1
负责人:
Gavin Foster
金额:
$4.11万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2010
资助国家:
英国
项目状态:
已结题
起止时间:
2010 至 --

项目摘要

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中文摘要
翻译
气候模型使用计算技术来模拟气候系统中真实的物理和化学过程,以预测未来的气候变化。这些模型已经被用来量化地球气候对大气二氧化碳水平的敏感度。了解这种“气候敏感性”对于政治家们为未来的二氧化碳排放设定目标至关重要,这些目标将使地球气候保持在“安全”范围内。直到最近,对这种气候敏感性的估计一直是基于只考虑二氧化碳增加和气温上升的短期(例如,几年-几十年)影响的模型。它们不包括其他更长期的影响,如冰盖融化或全球植被覆盖的变化。这种反馈的一个例子是格陵兰冰盖的融化,这除了导致海平面上升外,还将导致进一步的区域变暖。忽视气候系统的这些组成部分的问题是,它们运行的时间尺度存在很大的不确定性。因此,最近学术界建议,对地球对大气二氧化碳水平的敏感性的估计应包括气候系统内的所有反馈:既包括运行速度较快的反馈,也包括运行较慢的反馈。这种关于地球气候和二氧化碳之间关系的更全面的观点被称为“地球系统敏感性”。估计地球系统灵敏度的最好方法是使用地质过去的时间间隔,当时我们知道二氧化碳和温度与今天不同。然而,到目前为止,这种方法导致了截然不同的估计,这主要是由于为这些间隔重建的大气二氧化碳水平的不确定性。在拟议工作的第一部分,我们将使用一种相对较新的估计二氧化碳的方法(使用海洋浮游微化石中的硼同位素比率)来生成新的二氧化碳记录,该方法最近得到了改进。我们还将使用几种方法来重建过去同一时间段的温度,以便我们可以计算地球系统的灵敏度。拟议工作的第二部分是使用数据来测试计算冰盖模型。冰盖在动态上是复杂的,需要复杂的模型来预测它们对气候变化的反应,从而预测它们对全球海平面的影响。如果我们要对这些模型的预测有信心,就需要对它们进行测试。冰盖动力学涉及的时间尺度很长,这意味着我们无法用实时观测数据来测试冰盖模型。测试冰盖模型的最好方法是使用它们来预测地质历史上我们有良好的地球温度梯度记录的一段时期的冰盖变化,并将模型结果与同一时间间隔内冰盖生长的良好约束记录进行比较。在拟议的工作中,我们将使用中中新世气候转变来测试冰盖模型。我们知道,此时(约1400万年前),二氧化碳减少,气候变冷,南极冰盖扩张。在这项工作中,我们将获得新的、准确的二氧化碳分压和温度记录,以驱动我们的模型。然后,这些模型将预测冰盖的变化,我们可以将其与气候过渡期间冰盖增长的现有记录进行比较。如果模型和数据吻合得很好,那么我们对冰盖模型的信心就会增加。如果模型和数据不能很好地吻合,那么这项工作可能会导致识别模型中可能需要调整的某些参数。这可能会改善对未来冰盖的预测,从而导致海平面变化。
英文摘要
Climate models use computational techniques to mimic real physical and chemical processes in the climate system in order to predict future climate change. Such models have been used to quantify how sensitive Earth's climate is to atmospheric carbon dioxide levels. Knowing this 'climate sensitivity' is essential for politicians to set goals for future CO2 emissions that will keep Earth's climate within 'safe' limits. Until recently, the estimates for this climate sensitivity have been based on models that look only at the short-term (e.g., years-decades) effects of increasing CO2 and rising temperatures. They do not include other longer-term effects, such as melting ice sheets or changing global vegetation cover. An example of such a feedback is the melting of the Greenland ice-sheet, which in addition to causing rising sea levels will also cause further regional warming. The problem with ignoring such components of the climate system is that there are large uncertainties regarding the timescales on which they operate. Recently there have therefore been suggestions from the academic community that estimates of Earth's sensitivity to atmospheric CO2 levels should include all feedbacks within the climate system: both those that operate fast and those that operate more slowly. This more comprehensive view of the relationship between Earth's climate and pCO2 is termed 'Earth System Sensitivity'. The best way to estimate Earth System Sensitivity is to use intervals in the geological past when we know that CO2 and temperature were different to today. However, thus far this approach has led to very different estimates, largely due to uncertainties in the levels of atmospheric pCO2 reconstructed for these intervals. In the first part of the proposed work we will generate new pCO2 records using a relatively new method of estimating pCO2 (using the ratio of boron isotopes within marine planktonic microfossils) that has recently been refined. We will also use several methods for reconstructing temperatures from the same interval in the past, so that we can calculate Earth System Sensitivity. The second part of the proposed work is to use data to test a computational ice sheet model. Ice sheets are dynamically complex, and sophisticated models are required in order to predict their response to changing climate and therefore their effect on global sea level. The models need to be tested if we are to have confidence in their predictions. The long timescales involved with ice sheet dynamics means that we cannot test ice sheet models with real-time observational data. The best way to test ice sheet models is to use them to predict ice sheet changes for a period in the geological past where we have good records of Earth's temperature gradients, and compare the model results with well-constrained records of ice sheet growth for the same interval. In the proposed work we will use the Middle Miocene Climate Transition to test an ice sheet model. We know that CO2 decreased, climate cooled, and the Antarctic ice sheet expanded at this time (~14 million years ago). In this work we will obtain new, accurate records of pCO2 and temperature to drive our models. The models will then predict ice sheet changes, which we can compare to an existing record of ice sheet growth across the climate transition. If the model and the data are in good agreement then our confidence in the ice sheet model will be increased. If the model and the data are not in good agreement, then this work could lead to the identification of certain parameters within the model that may need to be adjusted. This may then lead to improved future predictions of ice sheet, and hence sea level change.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1002/2015pa002833
发表时间: 2015-11
期刊: Paleoceanography
影响因子: --
作者: [C. Lear;H. Coxall;G. Foster;D. Lunt;E. Mawbey;Y. Rosenthal;S. Sosdian;E. Thomas;P. Wilson]
通讯作者: C. Lear;H. Coxall;G. Foster;D. Lunt;E. Mawbey;Y. Rosenthal;S. Sosdian;E. Thomas;P. Wilson
DOI: 10.5194/cp-2015-177
发表时间: 2016
期刊:
影响因子: --
作者: [Greenop R]
通讯作者: Greenop R
DOI: 10.1016/j.epsl.2014.06.040
发表时间: 2014-10-01
期刊: EARTH AND PLANETARY SCIENCE LETTERS
影响因子: 5.3
作者: [Armstrong McKay, David I., Tyrrell, Toby, Foster, Gavin L.]
通讯作者: Foster, Gavin L.
DOI: 10.1016/j.epsl.2012.06.007
发表时间: 2012-08-01
期刊: EARTH AND PLANETARY SCIENCE LETTERS
影响因子: 5.3
作者: [Foster, Gavin L., Lear, Caroline H., Rae, James W. B.]
通讯作者: Rae, James W. B.
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