Mass transport and loss in planetary and astrophysical magnetospheres
Mass transport and loss in planetary and astrophysical magnetospheres
批准号:
ST/L004399/1
负责人:
Caitriona Jackman
金额:
$57.9万
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
I want to understand how charged material (plasma) is transported in the space around the planets Mercury, Jupiter and Saturn, and around stars in our galaxy and beyond. The solar wind is a stream of plasma that comes off the Sun and blows out into interplanetary space. Some planets have their own invisible magnetic field which stretches huge distances out into space and acts like a "shield", holding off this solar wind flow so that much of it is deflected around the planet. Behind this shield lies the planet's magnetosphere, like a giant magnetic bubble. Outside of our solar system, there are similar "winds", blowing near stars and creating stellar magnetospheres. Both planetary and stellar magnetospheres are full of plasma. Plasma parcels are "tied" to magnetic field lines, like beads on a string. There are several ways for this plasma to get into the magnetosphere. It can erupt from volcanic moons or spew out of the rings. It can also enter from the outside, when plasma from the solar wind or stellar winds can penetrate the magnetospheric boundary (the edge of the bubble). As with any system, what goes in must come out. The magnetospheric bubble cannot inflate forever. Orbiting spacecraft have seen material moving around inside magnetospheres and escaping out the sides. There are several sophisticated theories about how charged material can move around under the influence of a magnetic field, but there is a problem: The current theories cannot explain the observations. There is a significant imbalance in the "mass budget" of magnetospheres. We know roughly how much material goes in, but we don't see it all leave. This work will find out where this "missing" material goes. It will involve searching for close-up evidence of several fascinating plasma processes, including plasma interchange and magnetic reconnection. Plasma interchange is a slippy, slinky process in which regions of hot, "thin" plasma silently swap places with regions of cold, "thick" plasma. In this way, the thick plasma can move away from the centre of the magnetosphere, stretch out on its accompanying field lines, and form a thin disk around the equatorial plane. Reconnection is a noisy and explosive process where these stretched field lines can dramatically break, releasing huge amounts of stored up energy. We know a lot about these processes in Earth's magnetosphere because there are many satellites flying around in space near Earth measuring these plasma motions. However, we can learn much more by applying this knowledge further afield and exploring how the situation may be different in other environments. Saturn and Jupiter are huge planets which rotate very rapidly and have a lot of plasma inside their magnetospheres due to exotic volcanic moons and rings. Mercury on the other hand is a much smaller planet and is much more vulnerable to the effects of the solar wind blowing at it as it is so close to the Sun. Stellar magnetospheres are the most dramatic of all due to their enormous size. It is fascinating to think that energy release processes at stars many millions of kilometres away can be so dramatic that we can observe them with telescopes here on Earth! Every planet and every star has a unique character, which is why I find studying similar physics in these exotic and diverse environments so challenging. The rewards for studying a range of environments for me are much greater than studying one place only.
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Planetary period modulations of Saturn's magnetotail current sheet: A simple illustrative mathematical model
土星磁尾电流片的行星周期调制:一个简单的说明性数学模型
DOI:
10.1002/2016ja023367
发表时间:
2017
期刊:
Space Physics
影响因子:
--
作者:
[Cowley S]
通讯作者:
Cowley S
Open flux in Saturn's magnetosphere
土星磁层中的开放通量
DOI:
10.1016/j.icarus.2013.12.004
发表时间:
2014
期刊:
Icarus
影响因子:
3.2
作者:
[Badman S]
通讯作者:
Badman S
Sources of Local Time Asymmetries in Magnetodiscs
磁盘中本地时间不对称的来源
DOI:
10.1007/s11214-015-0145-z
发表时间:
2015
期刊:
Space Science Reviews
影响因子:
10.3
作者:
[Arridge C]
通讯作者:
Arridge C
DOI:
10.1002/2017sw001775
发表时间:
2018-01
期刊:
Space Weather
影响因子:
--
作者:
[E. Camporeale;S. Wing;Jay R. Johnson;C. Jackman;Ryan McGranaghan]
通讯作者:
E. Camporeale;S. Wing;Jay R. Johnson;C. Jackman;Ryan McGranaghan
DOI:
10.1007/s11214-015-0172-9
发表时间:
2015-09
期刊:
Space Science Reviews
影响因子:
10.3
作者:
[Michel Blanc;David Andrews;A. J. Coates;D. Hamilton;C. Jackman;Xianzhe Jia;A. Kotova;M. Morooka;H. Smith;J. Westlake]
通讯作者:
Michel Blanc;David Andrews;A. J. Coates;D. Hamilton;C. Jackman;Xianzhe Jia;A. Kotova;M. Morooka;H. Smith;J. Westlake
共 7 条
Determining and understanding substorm energy loss and partitioning
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批准号:NE/L007177/1
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项目类别:Research Grant
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资助金额:$21.27万
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财政年份:2014
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负责人:Caitriona Jackman
-
依托单位:
国内基金
海外基金
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