Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines

In an incoherent scattering radar experiment, the spectral measurement of the so-called up- and downshifted electron plasma lines provides information about their intensity and their Doppler frequency. These two spectral lines correspond, in the backscatter geometry, to two Langmuir waves travelling...

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Bibliographic Details
Main Authors: Guio, P, Lilensten, J
Format: Article in Journal/Newspaper
Language:unknown
Published: SPRINGER VERLAG 1999
Subjects:
Online Access:http://discovery.ucl.ac.uk/56631/
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author Guio, P
Lilensten, J
author_facet Guio, P
Lilensten, J
author_sort Guio, P
collection University College London: UCL Discovery
description In an incoherent scattering radar experiment, the spectral measurement of the so-called up- and downshifted electron plasma lines provides information about their intensity and their Doppler frequency. These two spectral lines correspond, in the backscatter geometry, to two Langmuir waves travelling towards and away from the radar. In the daytime ionosphere, the presence of a small percentage of photoelectrons produced by the solar EUV of the total electron population can excite or damp these Langmuir waves above the thermal equilibrium, resulting in an enhancement of the intensity of the lines above the thermal level. The presence of photo-electrons also modifies the dielectric response function of the plasma from the Maxwellian and thus influences the Doppler frequency of the plasma lines. In this paper, we present a high time-resolution plasma-line data set collected on the EISCAT VHF radar. The analysed data are compared with a model that includes the effect of a suprathermal electron population calculated by a transport code. By comparing the intensity of the analysed plasma lines data to our model, we show that two sharp peaks in the electron suprathermal distribution in the energy range 20-30 eV causes an increased Landau damping around 24.25 eV and 26.25 eV. We have identified these two sharp peaks as the effect of the photoionisation of N-2 and O by the intense flux of monochromatic HeII radiation of wavelength 30.378 nm (40.812 eV) created in the chromospheric network and coronal holes. Furthermore, we see that what would have been interpreted as a mean Doppler drift velocity for a Maxwellian plasma is actually a shift of the Doppler frequency of the plasma lines due to suprathermal electrons.
format Article in Journal/Newspaper
genre EISCAT
genre_facet EISCAT
geographic Langmuir
geographic_facet Langmuir
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institution Open Polar
language unknown
long_lat ENVELOPE(-67.150,-67.150,-66.967,-66.967)
op_collection_id ftucl
op_rights open
op_source ANN GEOPHYS-ATM HYDR , 17 (7) 903 - 912. (1999)
publishDate 1999
publisher SPRINGER VERLAG
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spelling ftucl:oai:eprints.ucl.ac.uk.OAI2:56631 2025-01-16T21:42:23+00:00 Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines Guio, P Lilensten, J 1999-07 http://discovery.ucl.ac.uk/56631/ unknown SPRINGER VERLAG open ANN GEOPHYS-ATM HYDR , 17 (7) 903 - 912. (1999) ionosphere (electric fields and currents solar radiation and cosmic ray effects EUV IRRADIANCE REFERENCE SPECTRUM QUIET SUN MODEL Article 1999 ftucl 2016-01-15T01:30:04Z In an incoherent scattering radar experiment, the spectral measurement of the so-called up- and downshifted electron plasma lines provides information about their intensity and their Doppler frequency. These two spectral lines correspond, in the backscatter geometry, to two Langmuir waves travelling towards and away from the radar. In the daytime ionosphere, the presence of a small percentage of photoelectrons produced by the solar EUV of the total electron population can excite or damp these Langmuir waves above the thermal equilibrium, resulting in an enhancement of the intensity of the lines above the thermal level. The presence of photo-electrons also modifies the dielectric response function of the plasma from the Maxwellian and thus influences the Doppler frequency of the plasma lines. In this paper, we present a high time-resolution plasma-line data set collected on the EISCAT VHF radar. The analysed data are compared with a model that includes the effect of a suprathermal electron population calculated by a transport code. By comparing the intensity of the analysed plasma lines data to our model, we show that two sharp peaks in the electron suprathermal distribution in the energy range 20-30 eV causes an increased Landau damping around 24.25 eV and 26.25 eV. We have identified these two sharp peaks as the effect of the photoionisation of N-2 and O by the intense flux of monochromatic HeII radiation of wavelength 30.378 nm (40.812 eV) created in the chromospheric network and coronal holes. Furthermore, we see that what would have been interpreted as a mean Doppler drift velocity for a Maxwellian plasma is actually a shift of the Doppler frequency of the plasma lines due to suprathermal electrons. Article in Journal/Newspaper EISCAT University College London: UCL Discovery Langmuir ENVELOPE(-67.150,-67.150,-66.967,-66.967)
spellingShingle ionosphere (electric fields and currents
solar radiation and cosmic ray effects
EUV IRRADIANCE
REFERENCE SPECTRUM
QUIET SUN
MODEL
Guio, P
Lilensten, J
Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines
title Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines
title_full Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines
title_fullStr Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines
title_full_unstemmed Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines
title_short Effect of suprathermal electrons on the intensity and Doppler frequency of electron plasma lines
title_sort effect of suprathermal electrons on the intensity and doppler frequency of electron plasma lines
topic ionosphere (electric fields and currents
solar radiation and cosmic ray effects
EUV IRRADIANCE
REFERENCE SPECTRUM
QUIET SUN
MODEL
topic_facet ionosphere (electric fields and currents
solar radiation and cosmic ray effects
EUV IRRADIANCE
REFERENCE SPECTRUM
QUIET SUN
MODEL
url http://discovery.ucl.ac.uk/56631/