Recent studies strongly suggest that a majority of the observed O+ cusp outflows will eventually escape into the solar wind, rather than be transported to the plasma sheet. Therefore, an investigation of plasma sheet flows will add to these studies and give a more complete picture of magnetospheric ion dynamics. Specifically, it will provide a greater understanding of atmospheric loss. We have used Cluster spacecraft 4 to quantify the H+ and O+ total transports in the near-Earth plasma sheet, using data covering 2001-2005. The results show that both H+ and O+ have earthward net fluxes of the orders of 1026 and 1024 s(-1), respectively. The O+ plasma sheet return flux is 1 order of magnitude smaller than the O+ outflows observed in the cusps...
International audienceRecent observations have quantified the auroral wind O+ outflow in response to...
Low-energy ions escape from the ionosphere and constitute a large part of the magnetospheric conten...
Both particle and electromagnetic energy flow into the Earth’s high latitude ionosphere. This energy...
Recent studies strongly suggest that a majority of the observed O+ cusp outflows will eventually esc...
In February 2007, the STEREO‐B spacecraft encountered the magnetosheath, plasma sheet and plasma she...
Ion escape is of particular interest for studying the evolution of the atmosphere on geological time...
The contemporary terrestrial atmosphere loses matter at a rate of around 100,000 tons per year. A ma...
We have investigated the oxygen escape-to-capture ratio from the high-altitude cusp regions for vari...
International audienceEnergetic O + outflow is observed from both the dayside cusp and the nightside...
Using Cluster/CODIF data, we have determined the occurrence frequency of the cusp-source O+ in the m...
Numerous observations have shown that ions flow out of the ionosphere during substorms with more flu...
Every day, the Earth looses a significant amount of mass through ions escaping from the polar ionosp...
The Earth and its atmosphere are embedded in the magnetosphere, a region in space dominated by the g...
International audienceRecent observations have quantified the auroral wind O+ outflow in response to...
Low-energy ions escape from the ionosphere and constitute a large part of the magnetospheric conten...
Both particle and electromagnetic energy flow into the Earth’s high latitude ionosphere. This energy...
Recent studies strongly suggest that a majority of the observed O+ cusp outflows will eventually esc...
In February 2007, the STEREO‐B spacecraft encountered the magnetosheath, plasma sheet and plasma she...
Ion escape is of particular interest for studying the evolution of the atmosphere on geological time...
The contemporary terrestrial atmosphere loses matter at a rate of around 100,000 tons per year. A ma...
We have investigated the oxygen escape-to-capture ratio from the high-altitude cusp regions for vari...
International audienceEnergetic O + outflow is observed from both the dayside cusp and the nightside...
Using Cluster/CODIF data, we have determined the occurrence frequency of the cusp-source O+ in the m...
Numerous observations have shown that ions flow out of the ionosphere during substorms with more flu...
Every day, the Earth looses a significant amount of mass through ions escaping from the polar ionosp...
The Earth and its atmosphere are embedded in the magnetosphere, a region in space dominated by the g...
International audienceRecent observations have quantified the auroral wind O+ outflow in response to...
Low-energy ions escape from the ionosphere and constitute a large part of the magnetospheric conten...
Both particle and electromagnetic energy flow into the Earth’s high latitude ionosphere. This energy...