Understanding energetic particle effects on atmospheric processes
Understanding energetic particle effects on atmospheric processes
批准号:
NE/L011514/1
负责人:
Keri Nicoll
金额:
$56.14万
依托单位:
依托单位国家:
英国
项目类别:
Fellowship
财政年份:
2014
资助国家:
英国
项目状态:
已结题
起止时间:
2014 至 --
中文摘要
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英文摘要
Our moderate climate makes life on Earth possible. In order to predict how our climate will change in future, it is necessary to understand all of the processes, both natural and man made, which can contribute to climate change. Climate scientists have a fairly good grasp of the anthropogenic factors, but there are gaps in our knowledge about the contribution to climate change from natural variability. One of the major sources of uncertainty is the variability caused by our sun. The brightness of the sun influences Earth's climate directly by heating, and varies mainly on an 11 year timescale. This direct effect is relatively well understood, however there are other indirect effects (which are linked to solar output, but require another physical process in between) which are thought to influence Earth's climate, and are not at all well understood. It is essential that these indirect effects are better understood if we are to accurately account for solar effects in predicting future climate change. My research will investigate one of the potential indirect effects of solar variability on atmospheric processes, which is the effect of electrical charge on clouds. Charge is created in the atmosphere by ionisation from Galactic Cosmic Rays (GCRs) (highly energetic particles from outside our solar system). When GCRs approach Earth, they are deflected by both the Solar and Earth's magnetic field, which act as a selective energy barrier to GCRs. The sun's magnetic field varies mainly on an 11 year timescale, therefore GCR fluxes, and thus charge in the atmosphere is controlled by solar activity. Due to constant vertical flow of charge in the atmosphere, charge accumulates at the upper and lower boundaries of layer clouds (the very common sort of clouds that you see on an overcast day). The charge sticks to the cloud droplets, which is thought to influence the behaviour of the droplets, such as how they grow and stick together, which can be seen in large scale cloud properties like cloud height. Since such clouds control heating and cooling in the atmosphere, and cover around 40% of the Earth's surface at one time, charge effects on clouds may have implications for climate. My research will investigate the factors that control charge in the atmosphere, determine whether charge plays a role in cloud processes, and ultimately determine whether this is important for climate.In order to characterise the factors controlling charge in the atmosphere, and the typical charge present inside layer clouds, measurements will be made using a suite of newly developed sensors which have been designed to fly alongside conventional weather balloons. These lightweight, disposable sensors provide a cost effective method of obtaining extra science data above the surface, from weather balloons which are already being launched around the world by global meteorological services. These airborne measurements will be combined with surface measurements of charge and atmospheric electricity at various sites around the world to understand the global response of charge to changes in solar variability. Such measurements are rare and are vital to understand the physical mechanisms responsible for modulating vertical charge flow and therefore coupling between Space Weather and the lower atmosphere. This topic sits at the intersection of physics and meteorology and presents an opportunity to investigate processes that we are still very much in our infancy of understanding. There is a great deal of exciting and potentially very important fundamental research to be done in this field, which will ultimately help us to understand whether these new processes are relevant to climate.
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DOI:
10.1029/2022gl099827
发表时间:
2022-09
期刊:
Geophysical Research Letters
影响因子:
5.2
作者:
[R. Harrison;K. Nicoll;G. Marlton;Douglas J. Tilley;Pejman Iravani]
通讯作者:
R. Harrison;K. Nicoll;G. Marlton;Douglas J. Tilley;Pejman Iravani
DOI:
10.1002/qj.2554
发表时间:
2015-10-01
期刊:
QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY
影响因子:
8.9
作者:
[Harrison, R. G., Nicoll, K. A., Ambaum, M. H. P.]
通讯作者:
Ambaum, M. H. P.
In situ cloud ground-based measurements in the Finnish sub-Arctic: intercomparison of three cloud spectrometer setups
芬兰亚北极地区的原位云地基测量:三个云光谱仪设置的相互比较
DOI:
10.5194/amt-13-5129-2020
发表时间:
2020
期刊:
Atmospheric Measurement Techniques
影响因子:
3.8
作者:
[Doulgeris K]
通讯作者:
Doulgeris K
An extensive data set for in situ microphysical characterization of low-level clouds in a Finnish sub-Arctic site
用于芬兰亚北极地区低层云的现场微物理表征的广泛数据集
DOI:
10.5194/essd-14-637-2022
发表时间:
2022
期刊:
Earth System Science Data
影响因子:
11.4
作者:
[Doulgeris K]
通讯作者:
Doulgeris K
Measuring electrical properties of the lower troposphere using enhanced meteorological radiosondes
使用增强型气象无线电探空仪测量对流层低层的电特性
DOI:
10.5194/gi-2021-26
发表时间:
2021
期刊:
影响因子:
--
作者:
[Harrison R]
通讯作者:
Harrison R
共 9 条
Global Coordination of Atmospheric Electricity Measurements (GloCAEM)
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批准号:NE/N013689/1
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项目类别:Research Grant
-
资助金额:$3.98万
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财政年份:2016
-
负责人:Keri Nicoll
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依托单位:
Understanding energetic particle effects on atmospheric processes
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批准号:NE/L011514/2
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项目类别:Fellowship
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资助金额:$39.64万
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财政年份:2016
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负责人:Keri Nicoll
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依托单位:
海外基金