Research output: Contribution to journal › Article › peer-review
Fast Ionization Waves in Extended Capillaries Initiated by High-Voltage Pulses with Varying Rise Rates : A Numerical Investigation. / Timshina, M.; Eliseev, S.; Samokhvalov, A.; Smirnov, A.; Sergushichev, K.; Kalinin, N.; Burtsev, V.
In: IEEE Transactions on Plasma Science, Vol. 48, No. 2, 8902009, 02.2020, p. 369-374.Research output: Contribution to journal › Article › peer-review
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TY - JOUR
T1 - Fast Ionization Waves in Extended Capillaries Initiated by High-Voltage Pulses with Varying Rise Rates
T2 - A Numerical Investigation
AU - Timshina, M.
AU - Eliseev, S.
AU - Samokhvalov, A.
AU - Smirnov, A.
AU - Sergushichev, K.
AU - Kalinin, N.
AU - Burtsev, V.
N1 - Publisher Copyright: © 1973-2012 IEEE.
PY - 2020/2
Y1 - 2020/2
N2 - This article presents the results of numerical investigations of initial stages of a fast capillary discharge-initiation and propagation of a fast ionization wave and consequent formation of a conducting plasma channel. Simulations were performed for the case of a 10 cm-long narrow capillary filled with argon at 270 Pa. The wave was created by voltage pulses of negative polarity with an amplitude of 10 kV and rise times varying in the 5-40 ns range, which is comparable with switching times of conventional switching devices based on gas discharges. Obtained spatio-temporal distributions of main discharge parameters were used to study the wave dynamics in general and the structure of the wavefront and the plasma channel. Simulations have revealed that the total wave propagation time is comparable to the voltage rise-time and varies linearly from 10 to 30 ns for the considered rise-time range. It is further shown that for longer voltage rise-times, it is possible for the wavefront to reach the anode well before the applied voltage reaches the maximum, which can potentially result in suboptimal initiation of a fast capillary discharge with lower current rise rates and less effective energy input.
AB - This article presents the results of numerical investigations of initial stages of a fast capillary discharge-initiation and propagation of a fast ionization wave and consequent formation of a conducting plasma channel. Simulations were performed for the case of a 10 cm-long narrow capillary filled with argon at 270 Pa. The wave was created by voltage pulses of negative polarity with an amplitude of 10 kV and rise times varying in the 5-40 ns range, which is comparable with switching times of conventional switching devices based on gas discharges. Obtained spatio-temporal distributions of main discharge parameters were used to study the wave dynamics in general and the structure of the wavefront and the plasma channel. Simulations have revealed that the total wave propagation time is comparable to the voltage rise-time and varies linearly from 10 to 30 ns for the considered rise-time range. It is further shown that for longer voltage rise-times, it is possible for the wavefront to reach the anode well before the applied voltage reaches the maximum, which can potentially result in suboptimal initiation of a fast capillary discharge with lower current rise rates and less effective energy input.
KW - Capillary discharge
KW - electric breakdown
KW - plasma simulation
UR - http://www.scopus.com/inward/record.url?scp=85080962751&partnerID=8YFLogxK
U2 - 10.1109/TPS.2019.2949718
DO - 10.1109/TPS.2019.2949718
M3 - Article
VL - 48
SP - 369
EP - 374
JO - IEEE Transactions on Plasma Science
JF - IEEE Transactions on Plasma Science
SN - 0093-3813
IS - 2
M1 - 8902009
ER -
ID: 78474700