Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution

Abstract: This study presents an improved method to estimate differential energy flux, auroral power and field‐aligned current of electron precipitation from incoherent scatter radar data. The method is based on a newly developed data analysis technique that uses Bayesian filtering to fit altitude p...

Full description

Bibliographic Details
Published in:Journal of Geophysical Research: Space Physics
Main Authors: Tesfaw, Habtamu W., Virtanen, Ilkka I., Aikio, Anita T., Nel, Amoré, Kosch, Michael, Ogawa, Yasunobu
Format: Article in Journal/Newspaper
Language:unknown
Published: 2022
Subjects:
Online Access:https://eprints.lancs.ac.uk/id/eprint/168675/
https://doi.org/10.1029/2021ja029880
id ftulancaster:oai:eprints.lancs.ac.uk:168675
record_format openpolar
spelling ftulancaster:oai:eprints.lancs.ac.uk:168675 2023-08-27T04:09:14+02:00 Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution Tesfaw, Habtamu W. Virtanen, Ilkka I. Aikio, Anita T. Nel, Amoré Kosch, Michael Ogawa, Yasunobu 2022-04-30 https://eprints.lancs.ac.uk/id/eprint/168675/ https://doi.org/10.1029/2021ja029880 unknown Tesfaw, Habtamu W. and Virtanen, Ilkka I. and Aikio, Anita T. and Nel, Amoré and Kosch, Michael and Ogawa, Yasunobu (2022) Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution. Journal of Geophysical Research: Space Physics, 127 (4). ISSN 2169-9402 Journal Article PeerReviewed 2022 ftulancaster https://doi.org/10.1029/2021ja029880 2023-08-03T22:41:17Z Abstract: This study presents an improved method to estimate differential energy flux, auroral power and field‐aligned current of electron precipitation from incoherent scatter radar data. The method is based on a newly developed data analysis technique that uses Bayesian filtering to fit altitude profiles of electron density, electron temperature, and ion temperature to observed incoherent scatter spectra with high time and range resolutions. The electron energy spectra are inverted from the electron density profiles. Previous high‐time resolution fits have relied on the raw electron density, which is calculated from the backscattered power assuming that the ion and electron temperatures are equal. The improved technique is applied to one auroral event measured by the EISCAT UHF radar and it is demonstrated that the effect of electron heating on electron energy spectra, auroral power, and upward field‐aligned current can be significant at times. Using the fitted electron densities instead of the raw ones may lead to wider electron energy spectra and auroral power up to 75% larger. The largest differences take place for precipitation that produces enhanced electron heating in the upper E region, and in this study correspond to fluxes of electrons with peak energies from 3 to 5 keV. Finally, the auroral power estimates are verified by comparison to the 427.8 nm auroral emission intensity, which shows good correlation. The improved method makes it possible to calculate unbiased estimates of electron energy spectra with high time resolution and thereby to study rapidly varying aurora. Article in Journal/Newspaper EISCAT Lancaster University: Lancaster Eprints Journal of Geophysical Research: Space Physics 127 4
institution Open Polar
collection Lancaster University: Lancaster Eprints
op_collection_id ftulancaster
language unknown
description Abstract: This study presents an improved method to estimate differential energy flux, auroral power and field‐aligned current of electron precipitation from incoherent scatter radar data. The method is based on a newly developed data analysis technique that uses Bayesian filtering to fit altitude profiles of electron density, electron temperature, and ion temperature to observed incoherent scatter spectra with high time and range resolutions. The electron energy spectra are inverted from the electron density profiles. Previous high‐time resolution fits have relied on the raw electron density, which is calculated from the backscattered power assuming that the ion and electron temperatures are equal. The improved technique is applied to one auroral event measured by the EISCAT UHF radar and it is demonstrated that the effect of electron heating on electron energy spectra, auroral power, and upward field‐aligned current can be significant at times. Using the fitted electron densities instead of the raw ones may lead to wider electron energy spectra and auroral power up to 75% larger. The largest differences take place for precipitation that produces enhanced electron heating in the upper E region, and in this study correspond to fluxes of electrons with peak energies from 3 to 5 keV. Finally, the auroral power estimates are verified by comparison to the 427.8 nm auroral emission intensity, which shows good correlation. The improved method makes it possible to calculate unbiased estimates of electron energy spectra with high time resolution and thereby to study rapidly varying aurora.
format Article in Journal/Newspaper
author Tesfaw, Habtamu W.
Virtanen, Ilkka I.
Aikio, Anita T.
Nel, Amoré
Kosch, Michael
Ogawa, Yasunobu
spellingShingle Tesfaw, Habtamu W.
Virtanen, Ilkka I.
Aikio, Anita T.
Nel, Amoré
Kosch, Michael
Ogawa, Yasunobu
Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution
author_facet Tesfaw, Habtamu W.
Virtanen, Ilkka I.
Aikio, Anita T.
Nel, Amoré
Kosch, Michael
Ogawa, Yasunobu
author_sort Tesfaw, Habtamu W.
title Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution
title_short Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution
title_full Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution
title_fullStr Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution
title_full_unstemmed Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution
title_sort precipitating electron energy spectra and auroral power estimation by incoherent scatter radar with high temporal resolution
publishDate 2022
url https://eprints.lancs.ac.uk/id/eprint/168675/
https://doi.org/10.1029/2021ja029880
genre EISCAT
genre_facet EISCAT
op_relation Tesfaw, Habtamu W. and Virtanen, Ilkka I. and Aikio, Anita T. and Nel, Amoré and Kosch, Michael and Ogawa, Yasunobu (2022) Precipitating Electron Energy Spectra and Auroral Power Estimation by Incoherent Scatter Radar With High Temporal Resolution. Journal of Geophysical Research: Space Physics, 127 (4). ISSN 2169-9402
op_doi https://doi.org/10.1029/2021ja029880
container_title Journal of Geophysical Research: Space Physics
container_volume 127
container_issue 4
_version_ 1775350394872922112