Space Physics and Aeronomy, Ionosphere Dynamics and Applications. Группа авторов
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СКАЧАТЬ H., Hallinan, T., & Peticolas, L. (1999). Why do auroras look the way they do? Transactions of the American Geophysical Union (EOS), 80, 193–199.

      143 Taguchi, S., Sugiura, M., Iyemori, T., Winningham, J. D., & Slavin, J. A. (1995). Highly structured ionospheric convection for northward interplanetary magnetic field: A case study with DE 2 observations. Journal of Geophysical Research, 100(A8), 14743–14753. doi: 10.1029/94JA03373

      144 Tanaka, H., Saito, Y., Asamura, K., Ishii, S., & Mukai, T. (2005). High time resolution measurement of multiple electron precipitations with energy‐time dispersion in high‐latitude part of the cusp region. Journal of Geophysical Research, 110, A07204. doi: 10.1029/2004JA010664

      145 Thomas, E. G., Baker, J. B. H., Ruohoniemi, J. M., Clausen, L. B. N., Coster, A. J., Foster, J. C., & Erickson, P. J. (2013). Direct observations of the role of convection electric field in the formation of a polar tongue of ionization from storm enhanced density. Journal of Geophysical Research: Space Physics, 118, 1180–1189. doi: 10.1002/jgra.50116

      146 Valladares, C. E., Carlson, H. C., Jr., & Fukui, K. (1994). Interplanetary magnetic field dependency of stable sun‐aligned polar cap arcs. Journal of Geophysical Research, 99(A4), 6247–6272. doi: 10.1029/93JA03255

      147 Van der Meeren, C., Oksavik, K., Lorentzen, D., Moen, J. I., & Romano, V. (2014). GPS scintillation and irregularities at the front of an ionization tongue in the nightside polar ionosphere. Journal of Geophysical Research: Space Physics, 119, 8624–8636. doi: 10.1002/2014JA020114

      148 Van der Meeren, C., Oksavik, K., Lorentzen, D. A., Rietveld, M. T., & Clausen, L. B. N. (2015). Severe and localized GNSS scintillation at the poleward edge of the nightside auroral oval during intense substorm aurora. Journal of Geophysical Research: Space Physics, 120, 10,607–10,621. doi: 10.1002/2015JA021819

      149 Voronkov, I. O., Donovan, E. F., & Samson, J. C. (2003). Observations of the phases of the substorm. Journal of Geophysical Research, 108, 1073. doi: 10.1029/2002JA009314, A2

      150 Walker, I. K., Moen, J., Kersley, L., & Lorentzen, D. A. (1999). On the possible role of cusp/cleft precipitation in the formation of polar‐cap patches. Annals of Geophysics, 17(10), 1298–1305. doi:10.1007/s00585‐999‐1298‐4

      151 Wang, B., Nishimura, Y., Lyons, L. R., Zou, Y., Carlson, H. C., Frey, H. U., & Mende, S. B. (2016b). Analysis of close conjunctions between dayside polar cap airglow patches and flow channels by all‐sky imager and DMSP: 3. Space science. Earth, Planets and Space 68(1), 150. doi:10.1186/s40623‐016‐0524‐z

      152 Wang, B., Nishimura, Y., Zou, Y., Lyons, L. R., Angelopoulos, V., Frey, H., & Mende, S. (2016a). Investigation of triggering of poleward moving auroral forms using satellite‐imager coordinated observations. Journal of Geophysical Research: Space Physics, 121, 10,929–10,941. doi: 10.1002/2016JA023128

      153 Weygand, J. M., Amm, O., Viljanen, A., Angelopoulos, V., Murr, D., Engebretson, M. J., Gleisner, H., et al. (2011). Application and validation of the spherical elementary currents systems technique for deriving ionospheric equivalentcurrents with the North American and Greenland ground magnetometer arrays. Journal of Geophysical Research, 116, A03305. doi:10.1029/2010JA016177

      154 Wiltberger, M., et al. (2017). Effects of electrojet turbulence on a magnetosphere‐ionosphere simulation of a geomagnetic storm. Journal of Geophysical Research: Space Physics, 122, 5008–5027. doi: 10.1002/2016JA023700

      155 Wu, J., Knudsen, D. J., Gillies, D. M., Donovan, E. F., & Burchill, J. K. (2017). Swarm observation of field‐aligned currents associated with multiple auroral arc systems. Journal of Geophysical Research: Space Physics, 122, 10,145–10,156. doi:10.1002/2017JA024439

      156 Xing, Z. Y., Yang, H. G., Han, D. S., Wu, Z. S., Hu, Z. J., Zhang, Q. H., et al. (2012). Poleward moving auroral forms (PMAFs) observed at the Yellow River Station: A statistical study of its dependence on the solar wind conditions. Journal of Atmospheric and Solar‐Terrestrial Physics, 86, 25–33. doi:10.1016/j.jastp.2012.06.004

      157 Yiğit, E., & Ridley, A. J. (2011). Effects of high‐latitude thermosphere heating at various scale sizes simulated by a nonhydrostatic global thermosphere‐ionosphere model. Journal of Atmospheric and Terrestrial Physics, 73, 592–600. doi:10.1016/j.jastp.2010.12.003

      158 Yin, P., Mitchell, C.‐N., Spencer, P., McCrea, I., & Pedersen, T. (2008). A multi‐diagnostic approach to understanding high‐latitude plasma transport during the Halloween 2003 storm. Annals of Geophysics, 26, 2739–2747. doi:10.5194/angeo‐26‐2739‐2008

      159 Zettergren, M., Lynch, K., Hampton, D., Nicollsv M., Wright, B., Conde, M., Moen, J., et al. (2014). Auroral ionospheric F region density cavity formation and evolution: MICA campaign results. Journal of Geophysical Research: Space Physics, 119, 3162–3178. doi: 10.1002/2013JA019583

      160 Zhang, B., Brambles, O., Lotko, W., Dunlap‐Shohl, W., Smith, R., Wiltberger, M., & Lyon, J. (2013a). Predicting the location of polar cusp in the Lyon‐Fedder‐Mobarry global magnetosphere simulation. Journal of Geophysical Research: Space Physics, 118, 6327–6337. doi:10.1002/jgra.50

      161 Zhang, Q. ‐H., et al. (2013b). Direct observations of the evolution of polar cap ionization patches. Science, 339, 1597–1600. doi:10.1126/science.1231487.565

      162 Zhang, Q.‐H., et al. (2017). Polar cap hot patches: Enhanced density structures different from the classical patches in the ionosphere. Geophysical Research Letters, 44, 8159–8167. doi: 10.1002/2017GL073439

      163 Zhu, Q., et al. (2018). Small‐ and mesoscale variabilities in the electric field and the particle precipitation and their impacts on Joule heating. Submitteed to Journal of Geophysical Research.

      164 Zou, Y., et al. (2016). Localized field‐aligned currents in the polar cap associated with airglow patches. Journal of Geophysical Research: Space Physics, 121, 10,172–10,189. doi: 10.1002/2016JA022665

      165 Zou, Y., Nishimura, Y., Lyons, L. R., & Shiokawa, K. (2017). Localized polar cap precipitation in association with nonstorm time airglow patches. Geophysical Research Letters, 44, 609–617. doi: 10.1002/2016GL071168

      166 Zou, Y., Nishimura, Y., Lyons, L. R., Donovan, E. F., Ruohoniemi, J. M., Nishitani, N., & McWilliams, K. A. (2014). Statistical relationships between enhanced polar cap flows and PBIs. Journal of Geophysical Research: Space Physics, 119, 151–162. doi: 10.1002/2013JA019269

      167 Zou, Y., Nishimura, Y., Lyons, L. R., Donovan, E. F., Shiokawa, K., Ruohoniemi, J. M., McWilliams, K. A., et al. (2015b). Polar cap precursor of nightside auroral oval intensifications using polar cap arcs. Journal of Geophysical Research: Space Physics, 120, 10,698–10,711. doi: 10.1002/2015JA021816

      168 Zou, Y., Nishimura, Y., Lyons, L. R., Shiokawa, K., Donovan, E. F., Ruohoniemi, J. M., McWilliams, K. A., et al. (2015a). Localized polar cap flow enhancement tracing using airglow patches: Statistical properties, IMF dependence, and contribution to polar cap convection. Journal of Geophysical Research: Space Physics, 120, 4064–4078. doi: 10.1002/2014JA020946

       Shasha Zou1, Gareth W. Perry2,3, and John C. Foster4

       1 Department of Climate and Space Sciences and Engineering, University of Michigan, Ann Arbor, MI, USA

       2 Department of Physics and Astronomy, University of Calgary, Calgary, Canada

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