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1Academic Journal
المؤلفون: Yu-Zhang Ma, Qing-He Zhang, Larry R. Lyons, Kjellmar Oksavik, Zan-Yang Xing, Marc R. Hairston, Balan Nanan, Ze-Jun Hu, Yong-Wang, Si-Han Zhao
مصطلحات موضوعية: Aurora, Poleward moving auroral forms
Relation: https://doi.org/10.5281/zenodo.7672301; https://doi.org/10.5281/zenodo.7672302; oai:zenodo.org:7672302
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2
المؤلفون: Hwang, K. -J, Nishimura, Y., Coster, A. J., Gillies, R. G., Fear, R. C., Fuselier, S. A., Petrinec, S. M., Burch, J. L., Dokgo, K., Sibeck, D. G., Giles, B. L., Russell, C. T., Strangeway, R. J., Gershman, D. J., Pollock, C. J., Khotyaintsev, Yuri V., Torbert, R. B., Ergun, R. E., Moen, J. I., Clausen, L. B.
المصدر: Journal of Geophysical Research - Space Physics. 125(6)
مصطلحات موضوعية: flux transfer event, moving auroral forms, polar cap patches, reconnection, FTE, PMAF
وصف الملف: print
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3Academic Journal
المؤلفون: Kullen, A., Fear, R. C., Milan, Stephen E., Carter, J. A., Karlsson, T.
مصطلحات موضوعية: Science & Technology, Physical Sciences, Astronomy & Astrophysics, INTERPLANETARY MAGNETIC-FIELD, IMF B-Y, MAGNETOTAIL CURRENT SHEET, NON-SUBSTORM INTERVALS, MOVING AURORAL FORMS, THETA-AURORA, TRANSPOLAR ARCS, PLASMA SHEET, CAP ARCS, IONOSPHERIC FLOW
Relation: Journal of Geophysical Research: Space Physics, 2015, 120 (12), pp. 10443-10465; http://hdl.handle.net/2381/38045
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4Academic Journal
المؤلفون: A. Kullen, R. C. Fear, Stephen E. Milan, J. A. Carter, T. Karlsson
مصطلحات موضوعية: Uncategorized, Science & Technology, Physical Sciences, Astronomy & Astrophysics, INTERPLANETARY MAGNETIC-FIELD, IMF B-Y, MAGNETOTAIL CURRENT SHEET, NON-SUBSTORM INTERVALS, MOVING AURORAL FORMS, THETA-AURORA, TRANSPOLAR ARCS, PLASMA SHEET, CAP ARCS, IONOSPHERIC FLOW
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5Academic Journal
المؤلفون: Robison, Audrey, Fasel, Gerard, Mann, John C
المصدر: Seaver College Research And Scholarly Achievement Symposium
مصطلحات موضوعية: Magnetic Reconnection, Poleward-moving Auroral Forms, The Sun and the Solar System
وصف الملف: video/mp4
Relation: https://digitalcommons.pepperdine.edu/scursas/2021/session_d/4; https://digitalcommons.pepperdine.edu/context/scursas/article/1657/type/native/viewcontent
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6Academic Journal
المؤلفون: Burleigh, M., Zettergren, M., Lynch, K., Lessard, M., Moen, J., Clausen, L., Kenward, D., Hysell, D., Liemohn, M.
مصطلحات موضوعية: ion response time varies with ion mass, poleward moving auroral forms, ionospheric downflow, latitudinal variation in ion response, RENU2 sounding rocket campaign, ionospheric upflow, Geological Sciences, Science
وصف الملف: application/pdf
Relation: Burleigh, M.; Zettergren, M.; Lynch, K.; Lessard, M.; Moen, J.; Clausen, L.; Kenward, D.; Hysell, D.; Liemohn, M. (2019). "Transient Ionospheric Upflow Driven by Poleward Moving Auroral forms Observed During the Rocket Experiment for Neutral Upwelling 2 (RENU2) Campaign." Geophysical Research Letters 46(12): 6297-6305.; http://hdl.handle.net/2027.42/150562; Geophysical Research Letters; Sanchez, E. R., & Strømme, A. ( 2014 ). Incoherent scatter radar‐FAST satellite common volume observations of upflow‐to‐outflow conversion. Journal of Geophysical Research: Space Physics, 119, 2649 – 2674. https://doi.org/10.1002/2013JA019096; Huba, J. D., Joyce, G., & Fedder, J. A. ( 2000 ). Sami2 is Another Model of the Ionosphere (SAMI2): A new low‐latitude ionosphere model. Journal of Geophysical Research, 105 ( A10 ), 23,035 – 23,054. https://doi.org/10.1029/2000JA000035; Hultqvist, B., Øieroset, M., Paschmann, G., & Treumann, R. ( 1999 ). Magnetospheric plasma sources and losses. Space Science Reviews, 88, 1 – 2.; Kintner, P. M., Bonnell, J., Arnoldy, R., Lynch, K., Pollock, C., & Moore, T. ( 1996 ). SCIFER‐Transverse ion acceleration and plasma waves. Geophysical Research Letters, 23, 1873 – 1876.; Kistler, L. M., Mouikis, C., MöBius, E., Klecker, B., Sauvaud, J. A., Réme, H., Korth, A., Marcucci, M. F., Lundin, R., Parks, G. K., & Balogh, A. ( 2005 ). Contribution of nonadiabatic ions to the cross‐tail current in an O+ dominated thin current sheet. Journal of Geophysical Research, 110, A06213. https://doi.org/10.1029/2004JA010653; Kozlovsky, A., & Kangas, J. ( 2002 ). Motion and origin of noon high‐latitude poleward moving auroral arcs on closed magnetic field lines. Journal of Geophysical Research, 107 ( A2 ), 1017. https://doi.org/10.1029/2001JA900145; Kozyra, J. U., Shelley, E. G., Comfort, R. H., Brace, L. H., Cravens, T. E., & Nagy, A. F. ( 1987 ). The role of ring current O+ in the formation of stable auroral red arcs. Journal of Geophysical Research, 92 ( A7 ), 7487 – 7502. https://doi.org/10.1029/JA092iA07p07487; Lessard, M. R., Fritz, B., Sadler, B., Cohen, I., Kenward, D., Godbole, N., Clemmons, J. H., Hecht, J. H., Lynch, K. A., Harrington, M., Roberts, T. M., Hysell, D., Crowely, G., Sigernes, F., Syrjäsuo, M., Ellingson, P., Partamies, N., Moen, J., Clausen, L., Oksavik, K., & Yeoman, T. ( 2019 ). Overview of the Rocket Experiment for Neutral Upwelling Sounding Rocket 2 (RENU2). Geophysical Research Letters. https://doi.org/10.1029/2018GL081885; Lundberg, E. T., Kintner, P. M., Lynch, K. A., & Mella, M. R. ( 2012 ). Multi‐payload measurement of transverse velocity shears in the topside ionosphere. Geophysical Research Letters, 39, L01107. https://doi.org/10.1029/2011GL050018; Lundberg, E. T., Kintner, P. M., Powell, S. P., & Lynch, K. A. ( 2012 ). Multi‐payload interferometric wave vector determination of auroral hiss. Journal of Geophysical Research, 117, A02306. https://doi.org/10.1029/2011JA017037; Lynch, K. A., Semeter, J. L., Zettergren, M., & Kinter, P. ( 2007 ). Auroral ion outflow: Low altitude energization. Annales Geophysicae, 25, 1967 – 1977.; Moen, J., Oksavik, K., & Carlson, H. C. ( 2004 ). On the relationship between ion upflow events and cusp auroral transients. Geophysical Research Letters, 31, L11808. https://doi.org/10.1029/2004GL020129; Moore, T. E., & Delcourt, D. C. ( 1995 ). The geopause. Reviews of Geophysics, 33 ( 2 ), 175 – 209. https://doi.org/10.1029/95RG00872; Moore, T. E., Fok, M. C., Chandler, M. O., Chappell, C. R., Christon, S. P., Delcourt, D. C., Fedder, J., Huddleston, M., Liemohn, M., Peterson, W. K., & Slinker, S. ( 2005 ). Plasma sheet and (nonstorm) ring current formation from solar and polar wind sources. Journal of Geophysical Research, 110, A02210. https://doi.org/10.1029/2004JA010563; Moore, T. E., & Horwitz, J. L. ( 2007 ). Stellar ablation of planetary atmospheres. Reviews of Geophysics, 45, RG3002. https://doi.org/10.1029/2005RG000194; Nosé, M., Taguchi, S., Hosokawa, K., Christon, S., McEntire, R., Moore, T., & Collier, M. ( 2005 ). Overwhelming O+ contribution to the plasma sheet energy density during the October 2003 superstorm: Geotail/EPIC and IMAGE/LENA observations. Journal of Geophysical Research, 110, A09S24. https://doi.org/10.1029/2004JA010930; Orsini, S., Candidi, M., Stokholm, M., & Balsiger, H. ( 1990 ). Injection of ionospheric ions into the plasma sheet. Journal of Geophysical Research, 95 ( A6 ), 7915 – 7928. https://doi.org/10.1029/JA095iA06p07915; Sadler, F. B., Lessard, M., Lund, E., Otto, A., & Lühr, H. ( 2012 ). Auroral precipitation/ion upwelling as a driver of neutral density enhancement in the cusp. Journal of Atmospheric and Solar‐Terrestrial Physics, 87–88, 82 – 90. https://doi.org/10.1016/j.jastp.2012.03.003; Sandholt, P., Moen, J., Opsvik, D., Denig, W., & Burke, W. ( 1993 ). Auroral event sequence at the dayside polar cap boundary: Signature of time‐varying solar wind‐magnetosphere‐ionosphere coupling. Advances in Space Research, 13 ( 4 ), 7 – 15. https://doi.org/https://doi.org/10.1016/0273-1177(93)90305-U; Shay, M. A., Drake, J. F., Swisdak, M., & Rogers, B. N. ( 2004 ). The scaling of embedded collisionless reconnection. Physics of Plasmas, 11, 2199 – 2213. https://doi.org/10.1063/1.1705650; Skjaeveland, A., Moen, J., & Carlson, H. C. ( 2011 ). On the relationship between flux transfer events, temperature enhancements, and ion upflow events in the cusp ionosphere. Journal of Geophysical Research, 116, A10305. https://doi.org/10.1029/2011JA016480; Strangeway, R. J., Ergun, R. E., Su, Y. J., Carlson, C. W., & Elphic, R. C. ( 2005 ). Factors controlling ionospheric outflows as observed at intermediate altitudes. Journal of Geophysical Research, 110, A03221. https://doi.org/10.1029/2004JA010829; Su, Y., Caton, R., Horwitz, J., & Richards, P. ( 1999 ). Systematic modeling of soft‐electron precipitation effects on high‐latitude F region and topside ionospheric upflows. Journal of Geophysical Research, 104, 153 – 163.; Varney, R. H., Wiltberger, M., Zhang, B., Lotko, W., & Lyon, J. ( 2016 ). Influence of ion outflow in coupled geospace simulations: 1. Physics‐based ion outflow model development and sensitivity study. Journal of Geophysical Research: Space Physics, 121, 9671 – 9687. https://doi.org/10.1002/2016JA022777; Welling, D., André, M., Dandouras, I., Delcourt, D., Fazakerley, A., Fontaine, D., Foster, J., Ilie, R., Kistler, L., Lee, J. H., Liemohn, M. W., Slavin, J. A., Wang, C. P., Wiltberger, M., & Yau, A. ( 2015 ). The Earth: Plasma sources, losses, and transport processes. Space Science Reviews, 192 ( 1‐4 ), 145 – 208.; Wu, X. Y., Horwitz, J. L., Estep, G. M., Su, Y. J., Brown, D. G., Richards, P. G., & Wilson, G. R. ( 1999 ). Dynamic fluid‐kinetic (DyFK) modeling of auroral plasma outflow driven by soft electron precipitation and transverse ion heating. Journal of Geophysical Research, 104 ( A8 ), 17,263 – 17,275. https://doi.org/10.1029/1999JA900114; Young, D. T., Balsiger, H., & Geiss, J. ( 1982 ). Correlations of magnetospheric ion composition with geomagnetic and solar activity. Journal of Geophysical Research, 87 ( A11 ), 9077 – 9096. https://doi.org/10.1029/JA087iA11p09077; Zettergren, M., Lynch, K., Hampton, D., Nicolls, M., Wright, B., Conde, M., Moen, J., Lessard, M., Miceli, R., & Powell, S. ( 2014 ). Auroral ionospheric F region density cavity formation and evolution: MICA campaign results. Journal of Geophysical Research: Space Physics, 119, 3162 – 3178. https://doi.org/10.1002/2013JA019583; Zettergren, M., Semeter, J., Blelly, P. L., & Diaz, M. ( 2007 ). Optical Estimation of Auroral Ion Upflow: Theory. Journal of Geophysical Research, 112, A12310. https://doi.org/10.1029/2007JA012691; Burleigh, M. R., Heale, C. J., Zettergren, M. D., & Snively, J. B. ( 2018 ). Modulation of low‐altitude ionospheric upflow by linear and nonlinear atmospheric gravity waves. Journal of Geophysical Research: Space Physics, 123, 7650 – 7667. https://doi.org/10.1029/2018JA025721; Burleigh, M. R., & Zettergren, M. D. ( 2017 ). Anisotropic fluid modeling of ionospheric upflow: Effects of low‐altitude anisotropy and thermospheric winds. Journal of Geophysical Research: Space Physics, 122, 808 – 827. https://doi.org/10.1002/2016JA023329; Caton, R., Horwitz, J. L., Richards, P. G., & Liu, C. ( 1996 ). Modeling of F‐region ionospheric upflows observed by EISCAT. Geophysical Research Letters, 23, 1537 – 1540. https://doi.org/10.1029/96GL01255; Chappell, C. R. ( 1988 ). The terrestrial plasma source: A new perspective in solar‐terrestrial processes from dynamics explorer. Reviews of Geophysics, 26 ( 2 ), 229 – 248. https://doi.org/10.1029/RG026i002p00229; Fasel, G. J. ( 1995 ). Dayside poleward moving auroral forms: A statistical study. Journal of Geophysical Research, 100 ( A7 ), 11,891 – 11,905. https://doi.org/10.1029/95JA00854; Fernandes, P. A., Lynch, K. A., Zettergren, M., Hampton, D. L., Bekkeng, T. A., Cohen, I. J., Conde, M., Fisher, L. E., Horak, P., Lessard, M. R., Miceli, R. J., Michell, R. G., Moen, J., & Powell, S. P. ( 2016 ). Measuring the seeds of ion outflow: Auroral sounding rocket observations of low‐altitude ion heating and circulation. Journal of Geophysical Research: Space Physics, 121, 1587 – 1607. https://doi.org/10.1002/2015JA021536; Frederick‐Frost, K. M., Lynch, K. A., Kintner, P. M., Klatt, E., Lorentzen, D., Moen, J., Ogawa, Y., & Widholm, M. ( 2007 ). SERSIO: Svalbard EISCAT rocket study of ion outflows. Journal of Geophysical Research, 112, A08307. https://doi.org/10.1029/2006JA011942; Gloeckler, G., & Hamilton, D. C. ( 1987 ). Ampte ion composition results. Physica Scripta, 1987 ( T18 ), 73. https://doi.org/10.1088/0031-8949/1987/T18/009; Hamilton, D. C., Gloeckler, G., Ipavich, F. M., Stdemann, W., Wilken, B., & Kremser, G. ( 1988 ). Ring current development during the great geomagnetic storm of February 1986. Journal of Geophysical Research, 93 ( A12 ), 14,343 – 14,355. https://doi.org/10.1029/JA093iA12p14343
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7Academic Journal
المؤلفون: MacDougall, John
المساهمون: UNIVERSITY OF WESTERN ONTARIO LONDON DEPT OF ELECTRICAL AND COMPUTER ENGINEERING
المصدر: DTIC
مصطلحات موضوعية: Atmospheric Physics, IONOSPHERE, POLAR REGIONS, SYMPOSIA, CANADA, POWER SPECTRA, AURORAE, SOLAR WIND, HIGH LATITUDES, DIGITAL IONOSONDES, FOREIGN REPORTS, NATO FURNISHED, BRIEFING CHARTS, ANTISUNWARD CONVECTION DIRECTION, POLAR PATCHES, PMAF(POLEWARD MOVING AURORAL FORMS) IMF(INTERPLANETARY MAGNETIC FIELD)
وصف الملف: text/html
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8Electronic Resource
المؤلفون: UNIVERSITY OF WESTERN ONTARIO LONDON DEPT OF ELECTRICAL AND COMPUTER ENGINEERING, MacDougall, John
المصدر: DTIC
مصطلحات الفهرس: Atmospheric Physics, IONOSPHERE, POLAR REGIONS, SYMPOSIA, CANADA, POWER SPECTRA, AURORAE, SOLAR WIND, HIGH LATITUDES, DIGITAL IONOSONDES, FOREIGN REPORTS, NATO FURNISHED, BRIEFING CHARTS, ANTISUNWARD CONVECTION DIRECTION, POLAR PATCHES, PMAF(POLEWARD MOVING AURORAL FORMS) IMF(INTERPLANETARY MAGNETIC FIELD), Text