Behaviors of Ionospheric Topside Ion Density, Ion Temperature, and Electron Temperature During the 20 November 2003 Superstorm
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Semigroup solution of time dependent continuity equation for ion density in ionospheric F 2 region
Consistency of laboratory measurements of ion-molecule reaction rates and recombination coefficients with mass spectrometric data on ionospheric ion density
Ion distribution and temperature in topside ionosphere from plasma scale height profiles from Alouette electron density data
Number densities of ions and electrons in D region measured, using Arcas rocket
Time-of-flight spectrometer for examining ionospheric ion density in D and E regions
Observations from Apollo 14 suprathermal ion detector including ionospheric ion density, mass and energy spectra during venting in LM cabin, large ion cloud, and ion resulting from impacts
Analysis of electron and ion density measurements obtained with rockets suggests simple model of the quiet ionosphere
Day- and nighttime electron and ion density profiles in lower ionosphere deduced from blunt probe theory and measurements
Ionospheric characteristics from altitude variations of positive ion densities at night
We have solved the coupled momentum and continuity equations for NO(+), O2(+), and O(+) ions in the E- and F-regions of the ionosphere. This theoretical model has enabled us to examine the relative importance of various processes that affect molecular ion densities. We find that transport processes are not important during the day; the molecular ions are in chemical equilibrium at all altitudes. At night, however, both diffusion and vertical drifts induced by winds or electric fields are important in determining molecular ion densities below about 200 km. Nitric oxide plays an important role in determining the NO(+) to O2(+) ratio in the E-region, particularly at night. Nocturnal sources of ionization are required to maintain the E-region through the night. Vertical velocities induced by expansion and contraction of the neutral atmosphere are too small to affect ion densities at any altitude.
Nightime concentration profiles of O, NO and molecular oxygen ions in ionosphere calculated from daytime values
Positive ion density and electron temperature in ionospheric e and f regions, using ejected electrostatic probe measurements
Low energy ion density in d-, e-, & f-regions of ionosphere
Electron temperature and ion density measurements for ionospheric behavior at time of solar minimum, using Explorer XVII satellite
The 2008-2009 long-lasting solar minimum activity has been the one of its kind since the dawn of space age, offering exceptional conditions for investigating space weather in the near-Earth environment. First ever detection of Ionospheric Alfven Resonator (IAR) signatures in orbit offers new means for investigating ionospheric electrodynamics, namely MHD (MagnetoHydroDynamics) wave propagation, aeronomy processes, ionospheric dynamics, and Sun-Earth connection mechanisms at a local scale. Local and global plasma density heterogeneities in the ionosphere and magnetosphere allow for formation of waveguides and resonators where magnetosonic and shear Alfven waves propagate. The ionospheric magnetosonic waveguide results from complete magnetosonic wave reflection about the ionospheric F-region peak, where the Alfven index of refraction presents a maximum. MHD waves can also be partially trapped in the vertical direction between the lower boundary of the ionosphere and the magnetosphere, a resonance mechanism known as IAR. In this work we present C/NOFS (Communications/Navigation Outage Forecasting System) Extremely Low Frequency (ELF) electric field measurements related to IAR signatures, discuss the resonance and wave propagation mechanisms in the ionosphere, and address the electromagnetic inverse problem from which electron/ion distributions can be derived. These peculiar IAR electric field measurements provide new, complementary methodologies for inferring ionospheric electron and ion density profiles, and also contribute for the investigation of ionosphere dynamics and space weather monitoring. Specifically, IAR spectral signatures measured by C/NOFS contribute for improving the International Reference Ionosphere (IRI) model, namely electron density and ion composition.
Thermal diffusion in topside ionosphere, stressing effect on ion density profiles
Polar ionospheric plasma transport, predicting ion density profiles from ionospheric processes models consistent with polar wind theory