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Estimation of global lightning activity and observations of atmospheric electric field

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Variations in the global atmospheric electric circuit are investigated using a wide range of globally spaced instruments observing VLF (~10 kHz) waves, ELF (~300 Hz) waves, Schumann resonances (4-60 Hz), and the atmospheric fair weather electric field. For the ELF/VLF observations, propagation effects are accounted for in a novel approach using established monthly averages of lightning location provided by the Lightning Image Sensor (LIS) and applying known frequency specific attenuation parameters for daytime/nighttime ELF/VLF propagation. Schumann resonances are analyzed using decomposition into propagating and standing waves in the Earth-ionosphere waveguide. Derived lightning activity is compared to existing global lightning detection networks and fair weather field observations. The results suggest that characteristics of lightning discharges vary by region and may have diverse effects upon the ionospheric potential.
Czasopismo
Rocznik
Strony
183--204
Opis fizyczny
Bibliogr. 32 poz.
Twórcy
autor
autor
autor
autor
Bibliografia
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  • Christian, H.J., R.J. Blakeslee, D.J. Boccippio, W.L. Boeck, D.E. Buechler, K.T. Driscoll, S.J. Goodman, J.M. Hall, W.J. Koshak, D.M. Mach, and M.F. Stewart (2003), Global frequency and distribution of lightning as observed from space by the Optical Transient Detector, J. Geophys. Res. 108, D1, 4005.
  • Cohen, M.B., U.S. Inan, and E. Paschal (2009), Sensitive broadband ELF/VLF radio reception with the AWESOME instrument, IEEE Trans. Geosci. Remote Sens. 48, 1, 3-17.
  • Dowden, R.L, J.B. Brundell, and C.J. Rodger (2002), VLF lightning location by time of group arrival (TOGA) at multiple sites, J. Atmos. Sol.-Terr. Phys. 64, 7, 817-830.
  • Fukunishi, H., Y. Takahashi, M. Kubota, K. Sakanoi, U.S. Inan, and W.A. Lyons (1996), Elves: Lightning-induced transient luminous events in the Lower ionosphere, Geophys. Res. Lett. 23, 16, 2157-2160.
  • Füllekrug, M., and A.C. Fraser-Smith (1996), Further evidence for a global correlation of the Earth-ionosphere cavity resonances, Geophys. Res. Lett. 23, 20, 2773-2776.
  • Füllekrug, M., A.C. Fraser-Smith, E.A. Bering, and A.A. Few (1999), On the hourly contribution of global cloud-to-ground lightning activity to the atmospheric electric field in the Antarctic during December 1992, J. Atmos. Sol.-Terr. Phys. 61, 10, 745-750.
  • Füllekrug, M., C. Price, Y. Yair, and E.R. Williams (2002), Intense oceanic lightning, Ann. Geophys. 20, 1, 133-137.
  • Kartalev, M.D., M.J. Rycroft, M. Füllekrug, V.O. Papitashvili, and V.I. Keremidarska (2006), A possible explanation for the dominant effect of South American thunderstorms on the Carnegie curve, J. Atmos. Sol.-Terr. Phys. 68, 3-5, 457-468.
  • Kubicki, M. (2008), Atmospheric electricity research at the Institute of Geophysics in the years 2006-2007, Publs. Inst. Geophys. Pol. Acad. Sc. D-72, 403, 105-110.
  • Kubicki, M., S. Michnowski, and B. Mysłek-Laurikainen (2007), Seasonal and daily variations of atmospheric electricity parameters registered at the Geophysical Observatory at Świder (Poland) during 1965-2000, Proc. 13th Int. Confer. on Atmospheric Electricity, ICAE 2007, Beijing, 50-54.
  • Kułak, A., J. Młynarczyk, S. Zięba, S. Micek, and Z. Nieckarz (2006), Studies of ELF propagation in the spherical shell cavity using a field decomposition method based on asymmetry of Schumann resonance curves, J. Geophys. Res. 111, A10304.
  • Lay, E.H., R.H. Holzworth, C.J. Rodger, J.N. Thomas, O. Pinto Jr., and R.L. Dowden (2004), WWLL global lightning detection system: Regional validation study in Brazil, Geophys. Res. Lett. 31, L03102.
  • Michnowski, S. (1998), Solar wind influences on atmospheric electricity variables in polar regions, J. Geophys. Res. 103, D12, 13939-13948.
  • Nieckarz, Z., A. Kułak, S. Zięba, M. Kubicki, S. Michnowski, and P. Barański (2009), Comparison of global storm activity rate calculated from Schumann resonance background components to electric field intensity E0Z , Atmos. Res. 91, 2-4, 184-187.
  • Pasko, V.P., U.S. Inan, and T.F. Bell (1997), Sprites as evidence of vertical gravity wave structures above mesoscale thunderstorms, Geophys. Res. Lett. 24, 14, 1735-1738.
  • Rodger, C.J., J.B. Brundell, and R.L. Dowden (2005), Location accuracy of VLF World-Wide Lightning Location (WWLL) network: Post-algorithm upgrade, Ann. Geophys. 23, 2, 277-290.
  • Rodger, C.J., S. Werner, J.B. Brundell, E.H. Lay, N.R. Thomson, R.H. Holzworth, and R.L. Dowden (2006), Detection efficiency of the VLF World-Wide Lightning Location Network (WWLLN): Initial case study, Ann. Geophys. 24, 12, 3197-3214.
  • Rycroft, M.J., S. Israelsson, and C. Price (2000), The global atmospheric electric circuit, solar activity and climate change, J. Atmos. Sol.-Terr. Phys. 62, 17-18, 1563-1576.
  • Rycroft, M.J., A. Odzimek, N.F. Arnold, M. Füllekrug, A. Kułak, and T. Neubert (2007), New model simulations of the global atmospheric electric circuit driven by thunderstorms and electrified shower clouds: The roles of lighting and sprites, J. Atmos. Sol.-Terr. Phys. 69, 17-18, 2485-2509.
  • Scherrer, D., M.B. Cohen, T. Hoeksema, U.S. Inan, R. Mitchell, and P. Scherrer (2008), Distributing space weather monitoring instruments and educationalmaterials worldwide for IHY 2007: The AWESOME and SID project, Adv. Space Res. 42, 11, 1777-1785.
  • Tinsley, B.A., and L. Zhou (2006), Initial results of a global circuit model with variable stratospheric and tropospheric aerosols, J. Geophys. Res. 11, D16205.
  • Troshichev, O.A., A. Frank-Kamenetsky, G. Burns, M. Füllekrug, A. Rodger, and V. Morozov (2004), The relationship between variations of the atmospheric electric field in the southern polar region and thunderstorm activity, Adv. Space Res. 34, 8, 1801-1805.
  • Wait, J.R. (1981), Lectures on Wave Propagation Theory, Pergamon Press, New York.
  • Watt, A.D. (1967), VLF Radio Engineering, Pergamon Press, New York.
  • Whipple, F.J.W., and F.J. Scrase (1936), Point discharge in the electric field of the earth, Geophysical Memoirs of London VII 68, 1-20.
  • Williams, E.R. (2009), The global electric circuit: A review, Atmos. Res. 91, 2-4, 140-152, DOI: 10.1016/j.atmosres.2008.05.018.
  • Williams, E.R., and G. Sátori (2004), Lightning, thermodynamic and hydrological comparison of the two tropical continental chimneys, J. Atmos. Sol.-Terr. Phys. 66, 13-14, 1213-1231.
  • Wilson, C.T.R. (1921), Investigations on lightning discharges and on the electric field of thunderstorms, Philos. Trans. Roy. Soc. Lond. A 221, 73-115.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BSL1-0012-0024
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