Читать книгу Space Physics and Aeronomy, Space Weather Effects and Applications - Группа авторов - Страница 19
REFERENCES
Оглавление1 Alam, M., Abramczyk, J., Manyam, U., Farroni, J., & Guertin, D. (2006). Performance of optical fibers in space radiation environment. Proceedings, International Conference on Space Optics – ICSO 2006, vol. 10567, 105672M. doi: 10.1117/12.2308184
2 Allen, J. H. (2002). Historical and recent solar activity and geomagnetic storms affecting spacecraft operations, Proc. GOMAC, Modern Space Syst. Issues, Monterey, CA.
3 Baker, D. N. (1987). Effects of the solar terrestrial environment on satellite operations, Artificial Satellites, 22, 103.
4 Baker, D. N. (2002). How to cope with space weather. Science, 297, 1486–1487. doi:10.1126/science.1074956
5 Baker, D. N. (2004). Specifying and forecasting space weather threats to human technology. In I. A. Daglis (Ed.), Effects of space weather on technology infrastructure (pp. 1–25). Kluwer.
6 Baker, D. N. (2005). Introduction to space weather. In K. Schere (Ed.), Space weather: The physics behind a slogan (pp. 3–20). Springer‐Verlag.
7 Baker, D. N., Jaynes, A. N., Hoxie, V. C., Thorne, R. M., Foster, J. C., Li, X., et al. (2014). An impenetrable barrier to ultra‐relativistic electrons in the Van Allen Radiation Belt. Nature, 515, 531–534. doi:10.1038/nature13956
8 Baker, D. N., Jaynes, A. N., Kanekal, S. G., Foster, J. C., Erickson, P. J., Fennell, J. F., et al. (2016). Highly relativistic radiation belt electron acceleration, transport, and loss: Large solar storm events of March and June 2015. J. Geophys. Res. Space Physics, 121(7), 6647–6660. doi:10.1002/2016JA022502
9 Baker, D.N., S.G. Kanekal, V.C. Hoxie, S. Batiste, M. Bolton, X. Li, S.R. Elkington, S. Monk, R. Reukauf, S. Steg, J. Westfall, C. Belting, B. Bolton, D. Braun, and B. Cervelli (2013). The Relativistic Electron‐Proton Telescope (REPT) Instrument on Board the Radiation Belt Storm Probes (RBSP) Spacecraft: Characterization of Earth’s Radiation Belt High‐Energy Particle Populations, Space Sci. Rev., 179, doi:10.1007/s11214‐012‐9950.
10 Baker, D. N., Kanekal, S. G., Hoxie, V. C., Henderson, M. G., Li, X., Spence, H. E., et al. (2013). A long‐lived relativistic electron storage ring embedded within the Earth’s outer Van Allen Radiation Zone, Science, 340, 186–190. doi: 10.1126/science.123351
11 Baker, D. N., Kanekal, S. G., Li, X., Monk, S. P., Goldstein, J., & Burch, J. L. (2004). An extreme distortion of the Van Allen belt arising from the ‘Hallowe’en’ solar storm in 2003, Nature, 432, 878–881. doi:10.1038/nature03116
12 Baker, D. N., & Lanzerotti, L. J. (2016). Space weather. American Journal of Physics, 84. doi.org/10.1119/1.4938403.
13 Baker, D. N., Mason, G. M., Figueroa, O., Colon, G., Watzin, J. G., & Aleman, R. M. (1993). An overview of the Solar, Anomalous, and Magnetospheric Particle explorer (SAMPEX) Mission. IEEE Transactions on Geoscience and Remote Sensing, 45(3), 531–541. doi: 10.1109/36.225519
14 Cain, J. C. (1966). Models of the Earth’s magnetic field. In B. McCormac (Ed.), Radiation trapped in the Earth’s magnetic field. Newark, NJ: Gordon and Breach.
15 Claudepierre, S. G., O’Brien, T. P., Fennell, J. F., Blake, J. B., Clemmons, J. H., Looper, M. D., et al. (2017). The hidden dynamics of relativistic electrons (0.7–1.5 MeV) in the inner zone and slot region. J. Geophys Res. Space Physics, 122(3). doi: 10.1002/2016JA023719R
16 Cummings, J. R., Cummings, A.C., Mewaldt, R. A., Selesnick, R. S., Stone, E. C., Von Rosenvinge, T. T., & Blake, J. B. (1993). SAMPEX measurements of heavy ions trapped in the magnetosphere. IEEE Trans. Nucl. Sci., 40(6).
17 Fennell, J. F., Blake, J. B., Friedel, R., & Kaneka, S. G. (2005). The energetic electron response to magnetic storms: HEO satellite observations. In T. I. Pulkkinen, N. A. Tsyganenko, & R.H.W. Friedel (Eds.), The inner magnetosphere: Physics and modeling. Geophysical Monograph 155. doi: 10.1029/155GM10
18 Fennell, J. F., Claudepierre, S. G., Blake, J. B., O’Brien, T. P., Clemmons, J. H., Baker, D. N., et al. (2015). Van Allen Probes show that the inner radiation zone contains no MeV electrons: ECT/MagEIS data. Geophys. Res. Lett., 42(5), 1283–1289. doi:10.1002/ 2014GL062874
19 Foster, J. C., Erickson, P. J., Baker, D. N., Jaynes, A. N., Mishin, E. V., Fennel, J. F., et al. (2016). Observations of the impenetrable barrier, the plasmapause, and the VLF bubble during the 17 March 2015 storm. J. Geophys. Res., 121, 5537–5548. doi:10.1002/2016JA022509
20 Gombosi, T. I., Baker, D. N., Balogh, A., Erickson, P. J., Huba, J. D., & Lanzerotti, L. J. (2017). Anthropogenic space weather. Space Science Reviews. doi:10.1007/s11214‐017‐0357‐5
21 Klecker, B., McNab, M. C., Blake, J. B., Hamilton, D. C., Hovestadt, D., & Kaestle, H. (1995). Charge state of anomalous cosmic ray nitrogen, oxygen, and neon: SAMPEX observations. Astrophys. J., 442.
22 Li, X., Baker, D. N., O’Brien, T.P., Xie, L., & Zong, Q. G. (2006). Correlation between the inner edge of outer radiation belt electrons and the innermost plasmapause location. Geophys. Res. Lett., 33(14). doi: 10.1029/2006GL026294
23 Li, X., Selesnick R. S., Baker, D. N., Jaynes, A. N., Kanekal, S. G., Schiller Q., et al. (2015). Upper limit on the inner radiation belt MeV electron intensity. J. Geophys. Res., 120(2). 1215–1228. doi: 10.1002/2014JA020777
24 Lorentzen, K. R., Mazur, J. E., Looper, M. D., Fennell, J. F., & Blake, J. B. (2002). Multisatellite observations of MeV ion injections during storms. J. Geophys. Res., 107(A9), 1231. doi:10.1029/2001JA000276
25 Marvin, D. C., & Gorney, D. J. (1991). Solar proton events of 1989: Effects on spacecraft solar arrays. J. Spacecraft and Rockets, 28, 713–719. doi:10.2514/3.26304
26 Mazur, J. E., et al. (2005). The creation of new ion radiation belts associated with solar energetic particle events and interplanetary shocks. In Gopalswamy, Mewaldt, & Torsti (Eds.), Solar eruptions and energetic particles, Geophys. Monogr. Ser., 165 (p. 345), Washington, DC: AGU.
27 Selesnick, R. S., Baker, D. N., Jaynes, A. N., Li, X., Kanekal, S. G., Hudson, M. K., & Kress, B. T. (2014). Observations of the inner radiation belt: CRAND and trapped solar protons. J. Geophysics. Res., 119. doi:10.1002/2014JA020188
28 Selesnick, R. S., Looper, M. D., & Mewaldt, R. A. (2007). A theoretical model of the inner proton radiation belt. Space Weather, 5, S04003. doi:10.1029/2006SW000275
29 Van Allen, J. A. (1966). Spatial distribution and time decay of the intensities of geomagnetically trapped electrons from the high altitude nuclear burst of July 1962. In B. M. McCormac (Ed.), Radiation trapped in the Earth's magnetic field (pp. 575–592), D. Reidel, Dordrecht‐Holland.
30 Van Allen, J. A. (1983). Origins of magnetospheric physics. Washington, DC: Smithsonian Institution Press.
31 Van Allen, J. A., Ludwig, G. H., Ray, E. C., & McIlwain, C. E. (1958). Observation of high intensity radiation by satellites 1958 alpha and gamma. Jet Propulsion, 28(9), 588–592.
32 Van Allen, J. A., McIlwain, C. E., & Ludwig G. H. (1959). Satellite observations of electrons artificially injected into the geomagnetic field. J. Geophys. Res, 64, 877.
33 Vette, J. I. (1996). Models of the trapped radiation environment. Vol. I: Inner Zone Protons and Electrons, NASA SP‐3024. Greenbelt, MD: Goddard Space Flight Center.