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Generation of parallel electric fields in the Jupiter-Io torus wake region

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Generation of parallel electric fields in the Jupiter-Io torus wake region. / Ergun, R. E.; Ray, L.; Delamere, P. A. et al.
In: Journal of Geophysical Research: Space Physics, Vol. 114, No. 5, A05201, 05.2009.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Ergun, RE, Ray, L, Delamere, PA, Bagenal, F, Dols, V & Su, YJ 2009, 'Generation of parallel electric fields in the Jupiter-Io torus wake region', Journal of Geophysical Research: Space Physics, vol. 114, no. 5, A05201. https://doi.org/10.1029/2008JA013968

APA

Ergun, R. E., Ray, L., Delamere, P. A., Bagenal, F., Dols, V., & Su, Y. J. (2009). Generation of parallel electric fields in the Jupiter-Io torus wake region. Journal of Geophysical Research: Space Physics, 114(5), Article A05201. https://doi.org/10.1029/2008JA013968

Vancouver

Ergun RE, Ray L, Delamere PA, Bagenal F, Dols V, Su YJ. Generation of parallel electric fields in the Jupiter-Io torus wake region. Journal of Geophysical Research: Space Physics. 2009 May;114(5):A05201. Epub 2009 May 2. doi: 10.1029/2008JA013968

Author

Ergun, R. E. ; Ray, L. ; Delamere, P. A. et al. / Generation of parallel electric fields in the Jupiter-Io torus wake region. In: Journal of Geophysical Research: Space Physics. 2009 ; Vol. 114, No. 5.

Bibtex

@article{a97fde794e9c44408ddad152cb8f9c85,
title = "Generation of parallel electric fields in the Jupiter-Io torus wake region",
abstract = "Infrared and ultraviolet images have established that auroral emissions at Jupiter caused by the electromagnetic interaction with Io not only produce a bright spot, but an emission trail that extends in longitude from Io's magnetic footprint. Electron acceleration that produces the bright spot is believed to be dominated by Alfv{\'e}n waves whereas we argue that the trail or wake aurora results from quasi-static parallel electric fields associated with large-scale, field-aligned currents between the Io torus and Jupiter's ionosphere. These currents ultimately transfer angular momentum from Jupiter to the Io torus. We examine the generation and the impact of the quasi-static parallel electric fields in the Io trail aurora. A critical component to our analysis is a current-voltage relation that accounts for the low-density plasma along the magnetic flux tubes that connect the Io torus and Jupiter. This low-density region, ∼2 Rj from Jupiter's center, can significantly limit the field-aligned current, essentially acting as a {"}high-latitude current choke.{"} Once parallel electric fields are introduced, the governing equations that couple Jupiter's ionosphere to the Io torus become nonlinear and, while the large-scale behavior is similar to that expected with no parallel electric field, there are substantial deviations on smaller scales. The solutions, bound by properties of the Io torus and Jupiter's ionosphere, indicate that the parallel potentials are on the order of 1 kV when constrained by peak energy fluxes of a few milliwatts per square meter. The parallel potentials that we predict are significantly lower than earlier reports.",
author = "Ergun, {R. E.} and L. Ray and Delamere, {P. A.} and F. Bagenal and V. Dols and Su, {Y. J.}",
note = "Copyright 2009 by the American Geophysical Union",
year = "2009",
month = may,
doi = "10.1029/2008JA013968",
language = "English",
volume = "114",
journal = "Journal of Geophysical Research: Space Physics",
issn = "2169-9402",
publisher = "Blackwell Publishing Ltd",
number = "5",

}

RIS

TY - JOUR

T1 - Generation of parallel electric fields in the Jupiter-Io torus wake region

AU - Ergun, R. E.

AU - Ray, L.

AU - Delamere, P. A.

AU - Bagenal, F.

AU - Dols, V.

AU - Su, Y. J.

N1 - Copyright 2009 by the American Geophysical Union

PY - 2009/5

Y1 - 2009/5

N2 - Infrared and ultraviolet images have established that auroral emissions at Jupiter caused by the electromagnetic interaction with Io not only produce a bright spot, but an emission trail that extends in longitude from Io's magnetic footprint. Electron acceleration that produces the bright spot is believed to be dominated by Alfvén waves whereas we argue that the trail or wake aurora results from quasi-static parallel electric fields associated with large-scale, field-aligned currents between the Io torus and Jupiter's ionosphere. These currents ultimately transfer angular momentum from Jupiter to the Io torus. We examine the generation and the impact of the quasi-static parallel electric fields in the Io trail aurora. A critical component to our analysis is a current-voltage relation that accounts for the low-density plasma along the magnetic flux tubes that connect the Io torus and Jupiter. This low-density region, ∼2 Rj from Jupiter's center, can significantly limit the field-aligned current, essentially acting as a "high-latitude current choke." Once parallel electric fields are introduced, the governing equations that couple Jupiter's ionosphere to the Io torus become nonlinear and, while the large-scale behavior is similar to that expected with no parallel electric field, there are substantial deviations on smaller scales. The solutions, bound by properties of the Io torus and Jupiter's ionosphere, indicate that the parallel potentials are on the order of 1 kV when constrained by peak energy fluxes of a few milliwatts per square meter. The parallel potentials that we predict are significantly lower than earlier reports.

AB - Infrared and ultraviolet images have established that auroral emissions at Jupiter caused by the electromagnetic interaction with Io not only produce a bright spot, but an emission trail that extends in longitude from Io's magnetic footprint. Electron acceleration that produces the bright spot is believed to be dominated by Alfvén waves whereas we argue that the trail or wake aurora results from quasi-static parallel electric fields associated with large-scale, field-aligned currents between the Io torus and Jupiter's ionosphere. These currents ultimately transfer angular momentum from Jupiter to the Io torus. We examine the generation and the impact of the quasi-static parallel electric fields in the Io trail aurora. A critical component to our analysis is a current-voltage relation that accounts for the low-density plasma along the magnetic flux tubes that connect the Io torus and Jupiter. This low-density region, ∼2 Rj from Jupiter's center, can significantly limit the field-aligned current, essentially acting as a "high-latitude current choke." Once parallel electric fields are introduced, the governing equations that couple Jupiter's ionosphere to the Io torus become nonlinear and, while the large-scale behavior is similar to that expected with no parallel electric field, there are substantial deviations on smaller scales. The solutions, bound by properties of the Io torus and Jupiter's ionosphere, indicate that the parallel potentials are on the order of 1 kV when constrained by peak energy fluxes of a few milliwatts per square meter. The parallel potentials that we predict are significantly lower than earlier reports.

U2 - 10.1029/2008JA013968

DO - 10.1029/2008JA013968

M3 - Journal article

AN - SCOPUS:68749103662

VL - 114

JO - Journal of Geophysical Research: Space Physics

JF - Journal of Geophysical Research: Space Physics

SN - 2169-9402

IS - 5

M1 - A05201

ER -