DocumentCode :
3508373
Title :
Fundamental physical considerations for ultrafast spark gap switching
Author :
Lehr, Jane M. ; Baum, Carl E. ; Prather, William D. ; Torres, Robert J.
Author_Institution :
Res. Lab., Kirtland AFB, NM, USA
fYear :
1998
fDate :
1998
Firstpage :
11
Lastpage :
20
Abstract :
For future applications, the limit of spark gap technology for ultrafast switching is explored. Specifically, an estimate of the fastest risetime achievable with a single channel spark gap has been investigated using three approaches. The first examines the growth of the electron avalanche in gases to estimate its growth rate. The avalanche growth rate determines the fastest possible risetime of the resultant pulse. The second approach uses the components of the velocity of electromagnetic propagation to estimate the achievable risetime. The third uses an equivalent circuit of a single channel spark gap to calculate the maximum achievable rate of voltage rise. The first two estimates indicate that risetimes on the order of 1-10 ps are achievable. The last treatment, however, illustrates the dependence of the pulse risetime on the peak voltage and calculates the maximum rate of voltage rise to be on the order of 1016 V/s. To reduce the effect of the intrinsic inductance of the channel, a simple geometrical alteration to the spark gap geometry has been devised which effectively reduces the inductance per unit length of the spark gap to that of its transmission line feed. This simple change alleviates the constraint imposed by the maximum rate of voltage rise and is anticipated to permit the realization of picosecond risetime high power electromagnetic sources
Keywords :
electron avalanches; inductance; pulsed power supplies; pulsed power switches; spark gaps; 1 to 10 ps; electromagnetic propagation velocity; electron avalanche; equivalent circuit; growth rate estimation; intrinsic inductance effect reduction; picosecond risetime high power electromagnetic sources; pulse risetime; single channel spark gap; transmission line feed; ultrafast spark gap switching; voltage rise; Electromagnetic propagation; Electrons; Equivalent circuits; Feeds; Gases; Geometry; Inductance; Power transmission lines; Sparks; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultra-Wideband Short-Pulse Electromagnetics 4, 1998
Conference_Location :
Tel-Aviv
Print_ISBN :
0-306-46206-0
Type :
conf
DOI :
10.1109/UWBSP.1998.818934
Filename :
818934
Link To Document :
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