Title :
Particle in cell simulation of peaking switch for breakdown evaluation
Author :
Umbarkar, Sachin B. ; Bindu, S. ; Mangalvedekar, H.A. ; Saxena, Ankur ; Singh, N.M. ; Sharma, Ashok ; Saroj, P.C. ; Mittal, Kailash Chandra
Author_Institution :
Dept. of Electr. Eng., Veermata Jijabai Tech. Inst., Mumbai, India
fDate :
Sept. 28 2014-Oct. 3 2014
Abstract :
Marx generator connected to peaking capacitor and peaking switch can generate Ultra-Wideband (UWB) radiation. A new peaking switch is designed for converting the existing nanosecond Marx generator to a UWB source. The paper explains the particle in cell (PIC) simulation for this peaking switch, using MAGIC 3D software. This peaking switch electrode is made up of copper tungsten material and is fixed inside the hermitically sealed derlin material. The switch can withstand a gas pressure up to 13.5 kg/cm2. The lower electrode of the switch is connected to the last stage of the Marx generator. Initially Marx generator (without peaking stage) in air; gives the output pulse with peak amplitude of 113.75 kV and pulse rise time of 25 ns. Thus, we design a new peaking switch to improve the rise time of output pulse and to pressurize this peaking switch separately (i.e. Marx and peaking switch is at different pressure). The PIC simulation gives the particle charge density, current density, E counter plot, emitted electron current, and particle energy along the axis of gap between electrodes. The charge injection and electric field dependence on ionic dissociation phenomenon are briefly analyzed using this simulation. The model is simulated with different gases (N2, H2, and Air) under different pressure (2kg/cm2, 5kg/cm2, 10kg/cm2).
Keywords :
air; copper; current density; dissociation; hydrogen; nitrogen; plasma simulation; plasma switches; plasma transport processes; tungsten; Cu-W; E counter plot; H2; MAGIC 3D software; Marx generator; N2; PIC simulation; charge injection; current density; emitted electron current; hermitically sealed derlin material; ionic dissociation phenomenon; particle charge density; particle energy; particle in cell simulation; peaking switch; ultra-wideband radiation; Atmospheric modeling; Electric breakdown; Electrodes; Generators; Mathematical model; Numerical models; Switches;
Conference_Titel :
Discharges and Electrical Insulation in Vacuum (ISDEIV), 2014 International Symposium on
Conference_Location :
Mumbai
Print_ISBN :
978-1-4799-6750-6
DOI :
10.1109/DEIV.2014.6961678