Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Locations of auroral kilometric radiation bursts inferred from multispacecraft wideband Cluster VLBI observations. 1: Description of technique and initial results

View through CrossRef
The Cluster Wideband Data instrument has been used to determine the locations of auroral kilometric radiation (AKR) using very long baseline interferometry. The technique involves cross‐correlating individual AKR bursts from all six Cluster baselines using time and frequency filtered waveforms. The resulting differential delay peaks are used to determine source locations with an uncertainty as small as 500 km in a plane perpendicular to the source‐spacecraft line of sight or about 200 km when the burst position is projected onto the auroral zone along the magnetic field lines passing through the source. The uncertainty along the line of sight is much larger, but this is mitigated by assuming that the emission arises from a height corresponding to the electron gyrofrequency. We report the locations of over 1700 individual AKR bursts during six observing epochs between 10 July 2002 and 22 January 2003 when the Cluster constellation was high above the Southern or Northern Hemisphere. In general we find that the AKR burst locations lie along magnetic field lines which map onto the nighttime auroral zone as expected from previous AKR studies. For the three observing epochs viewing the Northern Hemisphere, there is a strong tendency for AKR burst locations to be centered within the auroral oval and in the evening sector. The Southern Hemisphere burst locations favor magnetic local midnight to early morning and have somewhat higher invariant magnetic latitudes. The distribution of AKR auroral footprint locations at each epoch had a overall spatial scale between 1000 and 2000 km, much larger than the positional uncertainty of an individual AKR burst location magnetic footprint, but a small fraction of the auroral oval. This indicates that on a timescale of 1–3 hours conditions for suitable generation of AKR emission are found on only a fraction of all magnetic field lines crossing through the auroral oval. For two of the six epochs, there was a significant drift in the mean location of AKR activity over a period of 1–2 hours. The drift was predominantly in latitude at one epoch and in longitude at the other, with average drift speed V ∼ 80–90 m s−1 at the AKR emission location.
Title: Locations of auroral kilometric radiation bursts inferred from multispacecraft wideband Cluster VLBI observations. 1: Description of technique and initial results
Description:
The Cluster Wideband Data instrument has been used to determine the locations of auroral kilometric radiation (AKR) using very long baseline interferometry.
The technique involves cross‐correlating individual AKR bursts from all six Cluster baselines using time and frequency filtered waveforms.
The resulting differential delay peaks are used to determine source locations with an uncertainty as small as 500 km in a plane perpendicular to the source‐spacecraft line of sight or about 200 km when the burst position is projected onto the auroral zone along the magnetic field lines passing through the source.
The uncertainty along the line of sight is much larger, but this is mitigated by assuming that the emission arises from a height corresponding to the electron gyrofrequency.
We report the locations of over 1700 individual AKR bursts during six observing epochs between 10 July 2002 and 22 January 2003 when the Cluster constellation was high above the Southern or Northern Hemisphere.
In general we find that the AKR burst locations lie along magnetic field lines which map onto the nighttime auroral zone as expected from previous AKR studies.
For the three observing epochs viewing the Northern Hemisphere, there is a strong tendency for AKR burst locations to be centered within the auroral oval and in the evening sector.
The Southern Hemisphere burst locations favor magnetic local midnight to early morning and have somewhat higher invariant magnetic latitudes.
The distribution of AKR auroral footprint locations at each epoch had a overall spatial scale between 1000 and 2000 km, much larger than the positional uncertainty of an individual AKR burst location magnetic footprint, but a small fraction of the auroral oval.
This indicates that on a timescale of 1–3 hours conditions for suitable generation of AKR emission are found on only a fraction of all magnetic field lines crossing through the auroral oval.
For two of the six epochs, there was a significant drift in the mean location of AKR activity over a period of 1–2 hours.
The drift was predominantly in latitude at one epoch and in longitude at the other, with average drift speed V ∼ 80–90 m s−1 at the AKR emission location.

Related Results

First results from the Cluster wideband plasma wave investigation
First results from the Cluster wideband plasma wave investigation
Abstract. In this report we present the first results from the Cluster wideband plasma wave investigation. The four Cluster spacecraft were successfully placed in closely spaced, h...
Sporadic aurorae observed in East Asia
Sporadic aurorae observed in East Asia
Abstract. All the accessible auroral observations recorded in Chinese and Japanese histories during the interval AD 1840–1911 are investigated in detail. Most of these auroral reco...
Danish auroral science history
Danish auroral science history
Abstract. Danish auroral science history begins with the early auroral observations made by the Danish astronomer Tycho Brahe during the years from 1582 to 1601 preceding the Maund...
Improvement of Geodetic Parameters Estimation by Continuous VLBI Campaign 2017 Using a Simulated Station in the Middle East
Improvement of Geodetic Parameters Estimation by Continuous VLBI Campaign 2017 Using a Simulated Station in the Middle East
Abstract Very long baseline interferometry (VLBI) is one of the most important techniques in geodesy. In this technique the differences between arrival times of a radio sig...
VLBI celestial and terrestrial reference frames VIE2022b
VLBI celestial and terrestrial reference frames VIE2022b
Context. We present the computation of global reference frames from very long baseline interferometry (VLBI) observations at the Vienna International VLBI Service for Geodesy and A...
Observing GNSS Satellites with the AuScope VLBI Array: A Testbed for the VLBI Component of the GENESIS Mission
Observing GNSS Satellites with the AuScope VLBI Array: A Testbed for the VLBI Component of the GENESIS Mission
Set for launch in 2028, geodesy’s flagship mission GENESIS is equipped with the instruments of the four space geodetic techniques. The co-location satellite aims to impro...
Observing APOD with the AuScope VLBI Array
Observing APOD with the AuScope VLBI Array
The possibility to observe satellites with the geodetic Very Long Baseline Interferometry (VLBI) technique is vividly discussed in the geodetic community, particularly with regard ...
Opportunities with VLBI Transmitters on Satellites
Opportunities with VLBI Transmitters on Satellites
Abstract Very Long Baseline Interferometry (VLBI) transmitters on satellites are considered for future satellites of Global Navigation Satellite Systems (GNSS) as well as...

Back to Top