The influence of solar variability on the polar atmosphere and climate due to energetic electron precipitation (EEP) has remained an open question largely due to lack of a long‐term EEP forcing data set that could be used in chemistry‐climate models. Motivated by this, we have developed a model for 30–1000 keV radiation belt driven EEP. The model is based on precipitation data from low Earth orbiting POES satellites in the period 2002–2012 and empirically described plasmasphere structure, which are both scaled to a geomagnetic index. This geomagnetic index is the only input of the model and can be either Dst or Ap. Because of this, the model can be used to calculate the energy‐flux spectrum of precipitating electrons from 1957 (Dst) or 1932...
Energetic electrons are deposited into the atmosphere from Earth's inner magnetosphere, resulting in...
The radiation belts are regions in the near-Earth space where solar wind electrons are captured by t...
Magnetospheric substorms drive energetic electron precipitation into the Earth's atmosphere. We use ...
The influence of solar variability on the polar atmosphere and climate due to energetic electron pre...
The influence of solar variability on the polar atmosphere and climate due to energetic electron pre...
The influence of solar variability on the polar atmosphere and climate due to energetic electron pre...
In this study 30‐ to 1,000‐keV energetic electron precipitation (EEP) data from low Earth orbiting N...
Observations have shown that mesospheric hydroxyl (OH) is affected by energetic electron precipitati...
Precipitating auroral and radiation belt electrons are considered an important part of the natural f...
The atmospheric effects of precipitating electrons are not fully understood, and uncertainties are l...
One of the key challenges in polar middle atmosphere research is to quantify the total forcing by en...
Energetic Electron Precipitation (EEP) from the plasma sheet and the radiation belts ionizes the pol...
Transmissions from three U.S. VLF (very low frequency) transmitters were received at Churchill, Cana...
AARDDVARK data from a radio wave receiver in Sodankyla, Finland have been used to monitor transmissi...
In this study we investigate the link between precipitating electrons from the Van Allen radiation b...
Energetic electrons are deposited into the atmosphere from Earth's inner magnetosphere, resulting in...
The radiation belts are regions in the near-Earth space where solar wind electrons are captured by t...
Magnetospheric substorms drive energetic electron precipitation into the Earth's atmosphere. We use ...
The influence of solar variability on the polar atmosphere and climate due to energetic electron pre...
The influence of solar variability on the polar atmosphere and climate due to energetic electron pre...
The influence of solar variability on the polar atmosphere and climate due to energetic electron pre...
In this study 30‐ to 1,000‐keV energetic electron precipitation (EEP) data from low Earth orbiting N...
Observations have shown that mesospheric hydroxyl (OH) is affected by energetic electron precipitati...
Precipitating auroral and radiation belt electrons are considered an important part of the natural f...
The atmospheric effects of precipitating electrons are not fully understood, and uncertainties are l...
One of the key challenges in polar middle atmosphere research is to quantify the total forcing by en...
Energetic Electron Precipitation (EEP) from the plasma sheet and the radiation belts ionizes the pol...
Transmissions from three U.S. VLF (very low frequency) transmitters were received at Churchill, Cana...
AARDDVARK data from a radio wave receiver in Sodankyla, Finland have been used to monitor transmissi...
In this study we investigate the link between precipitating electrons from the Van Allen radiation b...
Energetic electrons are deposited into the atmosphere from Earth's inner magnetosphere, resulting in...
The radiation belts are regions in the near-Earth space where solar wind electrons are captured by t...
Magnetospheric substorms drive energetic electron precipitation into the Earth's atmosphere. We use ...