In this study we investigate two distinct loss mechanisms responsible for the rapid dropouts of radiation belt electrons by assimilating data from Van Allen Probes A and B and Geostationary Operational Environmental Satellites (GOES) 13 and 15 into a 3-D diffusion model. In particular, we examine the respective contribution of electromagnetic ion cyclotron (EMIC) wave scattering and magnetopause shadowing for values of the first adiabatic invariant μ ranging from 300 to 3,000 MeV G−1. We inspect the innovation vector and perform a statistical analysis to quantitatively assess the effect of both processes as a function of various geomagnetic indices, solar wind parameters, and radial distance from the Earth. Our results are in agreement with...
Electromagnetic Ion Cyclotron (EMIC) waves cause electron loss in the radiation belts by resonating ...
Outer zone radiation belt electrons can undergo gyroresonant interaction with various magnetospheric...
The outer electron radiation belt is highly dynamic in space and time. Understanding the mechanisms ...
Energetic radiation belt electron fluxes can undergo sudden dropouts in response to different solar...
The radiation belts are highly dynamic regions of relativistic particles trapped in the Earth’s magn...
The dynamic variability of Earth's outer radiation belt is due to the competition among various part...
Magnetopause shadowing and wave-particle interactions are recognized as the two primary mechanisms f...
Geomagnetic storms can either increase or decrease relativistic electron fluxes in the outer radiati...
A flux dropout is a sudden and sizable decrease in the energetic electron population of the outer ra...
Energetic electrons are trapped in the Earth’s radiation belts which occupy a toroidal region betwee...
Loss mechanisms act independently or in unison to drive rapid loss of electrons in the radiation bel...
The interactions between electromagnetic ion cyclotron (EMIC) waves and relativistic electrons are i...
Electron flux in the Earth's outer radiation belt is highly variable due to a delicate balance betwe...
Radiation belt electron flux dropouts are a kind of drastic variation in the Earth's magnetosphere,...
Measurements from 7 spacecraft in geosynchronous orbit are analyzed to determine the decay rate of t...
Electromagnetic Ion Cyclotron (EMIC) waves cause electron loss in the radiation belts by resonating ...
Outer zone radiation belt electrons can undergo gyroresonant interaction with various magnetospheric...
The outer electron radiation belt is highly dynamic in space and time. Understanding the mechanisms ...
Energetic radiation belt electron fluxes can undergo sudden dropouts in response to different solar...
The radiation belts are highly dynamic regions of relativistic particles trapped in the Earth’s magn...
The dynamic variability of Earth's outer radiation belt is due to the competition among various part...
Magnetopause shadowing and wave-particle interactions are recognized as the two primary mechanisms f...
Geomagnetic storms can either increase or decrease relativistic electron fluxes in the outer radiati...
A flux dropout is a sudden and sizable decrease in the energetic electron population of the outer ra...
Energetic electrons are trapped in the Earth’s radiation belts which occupy a toroidal region betwee...
Loss mechanisms act independently or in unison to drive rapid loss of electrons in the radiation bel...
The interactions between electromagnetic ion cyclotron (EMIC) waves and relativistic electrons are i...
Electron flux in the Earth's outer radiation belt is highly variable due to a delicate balance betwe...
Radiation belt electron flux dropouts are a kind of drastic variation in the Earth's magnetosphere,...
Measurements from 7 spacecraft in geosynchronous orbit are analyzed to determine the decay rate of t...
Electromagnetic Ion Cyclotron (EMIC) waves cause electron loss in the radiation belts by resonating ...
Outer zone radiation belt electrons can undergo gyroresonant interaction with various magnetospheric...
The outer electron radiation belt is highly dynamic in space and time. Understanding the mechanisms ...