The effect of coronae on leader initiation and development under thunderstorm conditions and in long air gaps
暂无分享,去创建一个
M. M. Drabkin | Yu. P. Raizer | E. M. Bazelyan | Nickolay Aleksandrov | N. Aleksandrov | E. Bazelyan | Y. P. Raizer | R. B. Carpenter | M. Drabkin
[1] On the variational calculus and corona fields: charge drift, duality and degeneracy , 1999 .
[2] On analytic solutions of the drift equations for many ionic species , 1994 .
[3] M. Uman,et al. The Lightning Discharge , 1987 .
[4] J. Jones. On the drift of gaseous ions , 1992 .
[5] T. Udo. Sparkover Characteristics of Large Gap Spaces and Long Insulation Springs , 1964 .
[6] I. Gallimberti,et al. Theoretical modelling of the development of the positive spark in long gaps , 1994 .
[7] R. S. Sigmond. Simple approximate treatment of unipolar space‐charge‐dominated coronas: The Warburg law and the saturation current , 1982 .
[8] J. Jones. A theoretical explanation of the laws of Warburg and Sigmond , 1997, Proceedings of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[9] S. Chauzy,et al. Computed response of the space charge layer created by corona at ground level to external electric field variations beneath a thundercloud , 1985 .
[10] J. Meek,et al. Electrical breakdown of gases , 1953 .
[11] J. Duquesne,et al. Ultrasound propagation in amorphous polystyrene at low temperature , 1979 .
[12] J. Jones. On the global variational principles for corona discharges with particular reference to the active glow region , 2000 .
[13] A simple analytic alternative to Warburg's law , 1990 .
[14] R. S. Sigmond. The unipolar corona space charge flow problem , 1986 .