Energetic auroral electron distributions derived from global X-ray measurements and comparison with in-situ particle measurements
On May, 27, 1996, the Polar Ionospheric X‐ray Imaging Experiment (PIXIE) on board NASA's POLAR spacecraft was imaging the southern auroral oval during an auroral substorm. Near simultaneous particle measurements by the DMSP F12 and F13 and POLAR satellites allow us to compare measured energetic...
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Veröffentlicht in: | Geophysical research letters 1998-11, Vol.25 (22), p.4105-4108 |
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creator | Anderson, P. C. Chenette, D. L. McKenzie, D. L. Quinn, J. M. Grande, M. Carter, M. |
description | On May, 27, 1996, the Polar Ionospheric X‐ray Imaging Experiment (PIXIE) on board NASA's POLAR spacecraft was imaging the southern auroral oval during an auroral substorm. Near simultaneous particle measurements by the DMSP F12 and F13 and POLAR satellites allow us to compare measured energetic electron distributions with distributions derived from the x‐ray measurements; agreement is achieved where the assumed electron distribution used in the x‐ray derivations is a reasonable approximation to the measured distribution. The PIXIE data show an energy dispersion in the precipitating electrons in the morning sector such that energy increases with increasing MLT, the result of the dependence of the electron drift speed on energy and its dominance over the loss rate due to precipitation. Strong pitch angle diffusion in the morning sector depletes the source of injected electrons creating the absence of significant electron fluxes, and thus x‐ray fluxes, above 1.5 keV in the afternoon sector. |
doi_str_mv | 10.1029/1998GL900068 |
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The PIXIE data show an energy dispersion in the precipitating electrons in the morning sector such that energy increases with increasing MLT, the result of the dependence of the electron drift speed on energy and its dominance over the loss rate due to precipitation. 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Near simultaneous particle measurements by the DMSP F12 and F13 and POLAR satellites allow us to compare measured energetic electron distributions with distributions derived from the x‐ray measurements; agreement is achieved where the assumed electron distribution used in the x‐ray derivations is a reasonable approximation to the measured distribution. The PIXIE data show an energy dispersion in the precipitating electrons in the morning sector such that energy increases with increasing MLT, the result of the dependence of the electron drift speed on energy and its dominance over the loss rate due to precipitation. Strong pitch angle diffusion in the morning sector depletes the source of injected electrons creating the absence of significant electron fluxes, and thus x‐ray fluxes, above 1.5 keV in the afternoon sector.</description><subject>Earth, ocean, space</subject><subject>Exact sciences and technology</subject><subject>External geophysics</subject><subject>Particle precipitation</subject><subject>Physics of the ionosphere</subject><issn>0094-8276</issn><issn>1944-8007</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>1998</creationdate><recordtype>article</recordtype><recordid>eNp9kU2LFDEQhoMoOK7e_AE5iCd7TdI9-TjqsI6Lg7J-oHgJ6aR6jaY7Y6XbdY7-cyOz-HHxVEXxPG9BFSH3OTvlTJjH3Bi93RnGmNQ3yIqbrms0Y-omWTFmai-UvE3ulPK5Ii1r-Yr8OJsAL2GOnroFM7pEIYGfMU80xDJj7Jc55qnQABi_QaAD5pFeptxX9EOD7kBHcGVBGGGaC3VToD6Pe4ex1IyrOH-icWpKnBdah3VRgn-Mu-TW4FKBe9f1hLx7dvZ287zZvdqeb57sGt9xIRpQvel9GPpWyrXRQq6VYAFayftegmEGut5opwT3WuogROfBeR-MMjA4F9oT8vCYu8f8dYEy2zEWDym5CfJSLNecSa7XFXx0BD3mUhAGu8c4OjxYzuyvO9u_71zxB9e5rniXBnSTj-WPI4VojamYOGJXMcHhv5F2-3rHueKiSs1Rqp-A778lh1-sVK1a2_cvt1a_eXpx0X18YTftT4_9no0</recordid><startdate>19981115</startdate><enddate>19981115</enddate><creator>Anderson, P. 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M.</creatorcontrib><creatorcontrib>Grande, M.</creatorcontrib><creatorcontrib>Carter, M.</creatorcontrib><collection>Istex</collection><collection>Pascal-Francis</collection><collection>CrossRef</collection><collection>Meteorological & Geoastrophysical Abstracts</collection><collection>Meteorological & Geoastrophysical Abstracts - Academic</collection><jtitle>Geophysical research letters</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Anderson, P. C.</au><au>Chenette, D. L.</au><au>McKenzie, D. L.</au><au>Quinn, J. M.</au><au>Grande, M.</au><au>Carter, M.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Energetic auroral electron distributions derived from global X-ray measurements and comparison with in-situ particle measurements</atitle><jtitle>Geophysical research letters</jtitle><addtitle>Geophys. Res. Lett</addtitle><date>1998-11-15</date><risdate>1998</risdate><volume>25</volume><issue>22</issue><spage>4105</spage><epage>4108</epage><pages>4105-4108</pages><issn>0094-8276</issn><eissn>1944-8007</eissn><coden>GPRLAJ</coden><abstract>On May, 27, 1996, the Polar Ionospheric X‐ray Imaging Experiment (PIXIE) on board NASA's POLAR spacecraft was imaging the southern auroral oval during an auroral substorm. Near simultaneous particle measurements by the DMSP F12 and F13 and POLAR satellites allow us to compare measured energetic electron distributions with distributions derived from the x‐ray measurements; agreement is achieved where the assumed electron distribution used in the x‐ray derivations is a reasonable approximation to the measured distribution. The PIXIE data show an energy dispersion in the precipitating electrons in the morning sector such that energy increases with increasing MLT, the result of the dependence of the electron drift speed on energy and its dominance over the loss rate due to precipitation. Strong pitch angle diffusion in the morning sector depletes the source of injected electrons creating the absence of significant electron fluxes, and thus x‐ray fluxes, above 1.5 keV in the afternoon sector.</abstract><cop>Washington, DC</cop><pub>Blackwell Publishing Ltd</pub><doi>10.1029/1998GL900068</doi><tpages>4</tpages><oa>free_for_read</oa></addata></record> |
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source | Elektronische Zeitschriftenbibliothek - Frei zugängliche E-Journals; Access via Wiley Online Library; Wiley Free Content; Wiley-Blackwell AGU Digital Library |
subjects | Earth, ocean, space Exact sciences and technology External geophysics Particle precipitation Physics of the ionosphere |
title | Energetic auroral electron distributions derived from global X-ray measurements and comparison with in-situ particle measurements |
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