NASA NTRS · 19890046463
Time-dependent polar wind modeling
Abstract
In the presence of a strong magnetic field (such as the geomagnetic field) the plasma tends to flow along the magnetic-field lines; therefore, in most ionospheric flow calculations the use of the gyrotropic approximation is justified. Here, it is shown that the gyrotropic 20-moment approximation is equivalent to the gyrotropic 16-moment approximation. Consideration is then given to return-current-generated polar wind transients. Ionospheric return currents generate significant downward heavy ion flows in the topside ionosphere with peak values well exceeding 10 to the 8th/sq cm sec. When the return current ceases, the polar ionosphere rapidly returns to its previous equilibrium state. During the recovery phase of the return-current event, an upward-propagating heavy-ion transient is formed, which is mainly characterized by a relatively short O(+) upwelling event. The H(+) escape flux remains a relatively constant (within 10-20 percent) during field-aligned-current events.
Keep this discovery
Explore connections, maps & timelines
Gombosi, T. I., Nagy, A. F.. 1988-01-01. Time-dependent polar wind modeling. https://ntrs.nasa.gov/citations/19890046463
Cite the original work for its findings. Save a collection to share your selection of sources.