File Download

There are no files associated with this item.

  Links for fulltext
     (May Require Subscription)
Supplementary

Article: A direct examination of the dynamics of dipolarization fronts using MMS

TitleA direct examination of the dynamics of dipolarization fronts using MMS
Authors
Keywordscurrent carrier
diamagnetic current
dipolarization front
generalized Ohm's law
Issue Date2017
Citation
Journal of Geophysical Research: Space Physics, 2017, v. 122, n. 4, p. 4335-4347 How to Cite?
AbstractEnergy conversion on the dipolarization fronts (DFs) has attracted much research attention through the suggestion that intense current densities associated with DFs can modify the more global magnetotail current system. The current structures associated with a DF are at the scale of one to a few ion gyroradii, and their duration is comparable to a spacecraft's spin period. Hence, it is crucial to understand the physical mechanisms of DFs with measurements at a timescale shorter than a spin period. We present a case study whereby we use measurements from the Magnetospheric Multiscale (MMS) Mission, which provides full 3-D particle distributions with a cadence much shorter than a spin period. We provide a cross validation amongst the current density calculations and examine the assumptions that have been adopted in previous literature using the advantages of MMS mission (i.e., small-scale tetrahedron and high temporal resolution). We also provide a cross validation on the terms in the generalized Ohm's law using these advantageous measurements. Our results clearly show that the majority of the currents on the DF are contributed by both ion and electron diamagnetic drifts. Our analysis also implies that the ion frozen-in condition does not hold on the DF, while electron frozen-in condition likely holds. The new experimental capabilities allow us to accurately calculate Joule heating within the DF, which shows that plasma energy is being converted to magnetic energy in our event.
Persistent Identifierhttp://hdl.handle.net/10722/334475
ISSN
2023 Impact Factor: 2.6
2023 SCImago Journal Rankings: 0.845
ISI Accession Number ID

 

DC FieldValueLanguage
dc.contributor.authorYao, Z. H.-
dc.contributor.authorRae, I. J.-
dc.contributor.authorGuo, R. L.-
dc.contributor.authorFazakerley, A. N.-
dc.contributor.authorOwen, C. J.-
dc.contributor.authorNakamura, R.-
dc.contributor.authorBaumjohann, W.-
dc.contributor.authorWatt, C. E.J.-
dc.contributor.authorHwang, K. J.-
dc.contributor.authorGiles, B. L.-
dc.contributor.authorRussell, C. T.-
dc.contributor.authorTorbert, R. B.-
dc.contributor.authorVarsani, A.-
dc.contributor.authorFu, H. S.-
dc.contributor.authorShi, Q. Q.-
dc.contributor.authorZhang, X. J.-
dc.date.accessioned2023-10-20T06:48:24Z-
dc.date.available2023-10-20T06:48:24Z-
dc.date.issued2017-
dc.identifier.citationJournal of Geophysical Research: Space Physics, 2017, v. 122, n. 4, p. 4335-4347-
dc.identifier.issn2169-9380-
dc.identifier.urihttp://hdl.handle.net/10722/334475-
dc.description.abstractEnergy conversion on the dipolarization fronts (DFs) has attracted much research attention through the suggestion that intense current densities associated with DFs can modify the more global magnetotail current system. The current structures associated with a DF are at the scale of one to a few ion gyroradii, and their duration is comparable to a spacecraft's spin period. Hence, it is crucial to understand the physical mechanisms of DFs with measurements at a timescale shorter than a spin period. We present a case study whereby we use measurements from the Magnetospheric Multiscale (MMS) Mission, which provides full 3-D particle distributions with a cadence much shorter than a spin period. We provide a cross validation amongst the current density calculations and examine the assumptions that have been adopted in previous literature using the advantages of MMS mission (i.e., small-scale tetrahedron and high temporal resolution). We also provide a cross validation on the terms in the generalized Ohm's law using these advantageous measurements. Our results clearly show that the majority of the currents on the DF are contributed by both ion and electron diamagnetic drifts. Our analysis also implies that the ion frozen-in condition does not hold on the DF, while electron frozen-in condition likely holds. The new experimental capabilities allow us to accurately calculate Joule heating within the DF, which shows that plasma energy is being converted to magnetic energy in our event.-
dc.languageeng-
dc.relation.ispartofJournal of Geophysical Research: Space Physics-
dc.subjectcurrent carrier-
dc.subjectdiamagnetic current-
dc.subjectdipolarization front-
dc.subjectgeneralized Ohm's law-
dc.titleA direct examination of the dynamics of dipolarization fronts using MMS-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1002/2016JA023401-
dc.identifier.scopuseid_2-s2.0-85018596551-
dc.identifier.volume122-
dc.identifier.issue4-
dc.identifier.spage4335-
dc.identifier.epage4347-
dc.identifier.eissn2169-9402-
dc.identifier.isiWOS:000401340800031-

Export via OAI-PMH Interface in XML Formats


OR


Export to Other Non-XML Formats