DATA ASSIMILATION FOR THE STUDY OF MAGNETOSPHERE-IONOSPHERE-ATMOSPHERE COUPLING
Lead Research Organisation:
University of Bath
Abstract
State-of-the-art ionospheric imaging techniques use Global Positioning System (GPS) satellite data. In a similar manner to medical imaging, where the patient is examined by X-rays, in ionospheric imaging the upper atmosphere (ionosphere) is examined by radio waves. The next big step for ionospheric imaging is to combine it with models of the ionosphere. The reason to do this is to discover the underlying physics, which we cannot do very well by just looking at the images. We need to link the images to models of winds, solar radiation and electric fields in order to understand what causes the upper atmospheric environment to behave as it does during extreme events called storms. These are not the weather storms we are familiar with but rather these space-weather storms are caused by the bombardment of the outer realms of the atmosphere with particles and radiation from the Sun. The mathematics we need to link the measurements to the models is called data assimilation. Data assimilation has already been strikingly successful in meteorology. The data assimilation to be developed under this grant is for much higher up in the atmosphere (above 100 km) and will be used to investigate the coupling between the neutral and ionized atmosphere and to determine the relationships between ionosphere-atmosphere dynamics and magnetosphere dynamics.
Publications

Pokhotelov D
(2009)
Ionospheric response to the corotating interaction region-driven geomagnetic storm of October 2002 IONOSPHERIC RESPONSE TO CIR STORM
in Journal of Geophysical Research: Space Physics

Kinrade J
(2012)
Ionospheric scintillation over Antarctica during the storm of 5-6 April 2010 GPS SCINTILLATION OVER ANTARCTICA
in Journal of Geophysical Research: Space Physics

Chartier A
(2012)
The use of ionosondes in GPS ionospheric tomography at low latitudes IONOSONDES IN GPS TOMOGRAPHY
in Journal of Geophysical Research: Space Physics

Pokhotelov D
(2008)
Ionospheric storm time dynamics as seen by GPS tomography and in situ spacecraft observations IONOSPHERIC STORM TIME DYNAMICS
in Journal of Geophysical Research: Space Physics

Burston R
(2016)
Polar cap plasma patch primary linear instability growth rates compared
in Journal of Geophysical Research: Space Physics

Burston R
(2010)
Turbulent times in the northern polar ionosphere? TURBULENT TIMES IN NORTHERN POLAR IONOSPHERE?
in Journal of Geophysical Research: Space Physics

Burston R
(2009)
Correlation between scintillation indices and gradient drift wave amplitudes in the northern polar ionosphere SCINTILLATION INDICES/GDI CORRELATIONS
in Journal of Geophysical Research: Space Physics

Forte B
(2017)
Identification of scintillation signatures on GPS signals originating from plasma structures detected with EISCAT incoherent scatter radar along the same line of sight.
in Journal of geophysical research. Space physics

Yin P
(2009)
Imaging of the Antarctic ionosphere: Experimental results
in Journal of Atmospheric and Solar-Terrestrial Physics

Katamzi Z
(2012)
Analysis of diurnal double maxima observed above Italy during 1975-1991
in Journal of Atmospheric and Solar-Terrestrial Physics