Space Physics and Aeronomy, Ionosphere Dynamics and Applications

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A comprehensive review of global ionospheric research from the polar caps to equatorial regions It's more than a century since scientists first identified the ionosphere, the layer of the Earth's upper atmosphere that is ionized by solar and cosmic radiation. Our understanding of this dynamic part of the near-Earth space environment has greatly advanced in recent years thanks to new observational technologies, improved numerical models, and powerful computing capabilities.9;
Ionosphere Dynamics and Applications Volume highlights include:9;
Behavior of the ionosphere in different regions from the poles to the equator Distinct characteristics of the high-, mid-, and low-latitude ionosphere Observational results from ground- and space-based instruments Ionospheric impacts on radio signals and satellite operations How earthquakes and tsunamis on Earth cause disturbances in the ionosphere The American Geophysical Union promotes discovery in Earth and space science for the benefit of humanity. Its publications disseminate scientific knowledge and provide resources for researchers, students, and professionals.

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20 Clausen, L. B. N., Baker, J. B. H., Ruohoniemi, J. M., Milan, S. E., & Anderson, B. J. (2012). Dynamics of the region 1 Birkeland current oval derived from the Active Magnetosphere and Planetary Electrodynamics Response Experiment (AMPERE). Journal of Geophysical Research, 117, A06233. doi:10.1029/2012JA017666.

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23 Cowley, S. W. H. (2000). Magnetosphere‐ionosphere interactions: A tutorial review. In S. Ohtani et al. (Eds.), Magnetospheric current systems (pp. 91–106). Geophysical Monograph Series, vol. 118. Washington, DC: AGU. doi:10.1029/GM118p0091

24 Cowley, S. W. H. (2015). Dungey's Reconnection Model of the Earth's Magnetosphere: The first 40 years. In D. Southwood et al. (Eds.), Magnetospheric plasma physics: The impact of Jim Dungey's research. Astrophysics and Space Science Proceedings, 41, Springer. doi: 10.1007/978‐3‐319‐18359‐6_1

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26 Cowley, S. W. H., Morelli, J. P., & Lockwood, M. (1991). Dependence of convective flows and particle precipitation in the high‐latitude dayside ionosphere on the X and Y components of the interplanetary magnetic field. Journal of Geophysical Research, 96, 5557–5564.

27 Coxon, J. C., Milan, S. E., Korth, H., & Anderson, B. J. (2018). Ampère's Law: A review of Birkeland current research using the Iridium constellation. In A. Keiling et al. (Eds.), Electric currents in geospace and beyond. Geophysical Monograph Series, vol. 235. Washington, DC: AGU.

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32 Dungey, J. W. (1963). The structure of the exosphere or adventures in velocity space. In C. DeWitt, J. Hieblot, & L. Le Beau (Eds.), Geophysics, the Earth's environment (pp. 503–550). New York: Gordon and Breach.

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35 Evans, J. V., Holt, J. M., Oliver, W. L., & Wand, R. H. (1980). Millstone Hill incoherent scatter observations of auroral convection over 60o < Λ < 75o; 2. Initial results. Journal of Geophysical Research, 85, 41.

36 Fear, R. C., & Milan, S. E. (2012a). The IMF dependence of the local time of transpolar arcs: Implications for formation mechanism. Journal of Geophysical Research, 117, A03213. doi: 10.1029/2011JA017209

37 Fear, R. C., & Milan, S. E. (2012b). Ionospheric flows relating to transpolar arc formation. Journal of Geophysical Research, 117, A09230. doi:10.1029/2012JA017830

38 Fear, R. C., Trenchi, L., Coxon, J. C., & Milan, S. E. (2017). How much flux does a flux transfer event transfer? Journal of Geophysical Research Space Physics, 122. doi:10.1002/2017JA024730

39 Freeman, M. P. (2003). A unified model of the response of ionospheric convection to changes in the interplanetary magnetic field. Journal of Geophysical Research, 108(A1), 1024. doi:10.1029/2002JA009385

40 Freeman, M. P., & Southwood, D. J. (1988). The effect of magnetospheric erosion on mid‐ and high‐latitude ionospheric flows. Planetary and Space Science, 36, 509–522.

41 Frey, H. U., Østgaard, N., Immel, T. J., Korth, H., & Mende, S. B. (2004). Seasonal dependence of localized, high‐latitude dayside aurora (HiLDA). Journal of Geophysical Research, 109, A04303. doi:10.1029/2003JA010293

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