DocumentCode :
2209979
Title :
Numerical simulations of the TriMeV and SABRE rod-pinch electron beam diodes
Author :
Rose, David V. ; Welch, Dale R. ; Oliver, Bryan V. ; Clark, R.E. ; Maenchen, J.E. ; Olson, C.L. ; Menge, P.R. ; Rovang, D.C. ; Commisso, R.J. ; Cooperstein, G. ; Schumer, J.W. ; Swanekamp, S.B.
Author_Institution :
Mission Res. Corp., Albuquerque, NM, USA
fYear :
2000
fDate :
4-7 June 2000
Firstpage :
232
Abstract :
Summary form only given. High-power rod-pinch diodes are presently being investigated as high-brightness X-ray sources. A thin annular cathode surrounds a small-diameter rod (anode) that can extend through the plane of the cathode. Electrons impinging on the high-atomic-number, range-thin rod generate a bremsstrahlung radiation spectrum that is used as a radiographic source. Positive and negative polarity rod-pinch designs have been successfully operated on the TriMeV generator at V/spl ges/1.5 MV and I/spl ges/25 kA yielding radiographic spot sizes /spl les/1 mm. Numerical simulations of both polarity rod-pinch diodes have been carried out using LSP, a two- and three-dimensional particle-in-cell (PIC) code. LSP presently utilizes Moliere multiple scattering and an energy-loss model for treating the interaction of high energy electrons with the range-thin anode (rod). A new model utilizing the ITS series of Monte Carlo algorithms is being implemented to simulate energy loss, scattering and production of secondary electrons in the anode. High-density anode and cathode plasma evolution, which may ultimately limit the impedance lifetime, is modeled with a fluid-PIC hybrid approach. The LSP simulation results are compared with experimental diagnostic information such as voltage, current, and X-ray pin-hole-camera images for a variety of configurations including solid and hollow rods at different anode-cathode gap spacings. The comparisons provide insight into electron angular distributions striking the anode, impedance collapse mechanisms, etc. The new rod-pinch diode design for the recently reconfigured SABRE generator, a 5-cavity inductive voltage adder, will be presented and LSP simulations will be compared with experimental results.
Keywords :
bremsstrahlung; electrostatic accelerators; pinch effect; plasma diodes; plasma simulation; 1.5 MV; 25 kA; 5-cavity inductive voltage adder; LSP simulation; Moliere multiple scattering; Monte Carlo algorithms; SABRE generator; SABRE rod-pinch electron beam diodes; TriMeV electron beam diodes; TriMeV generator; X-ray pin-hole-camera images; annular cathode; anode-cathode gap spacing; bremsstrahlung radiation spectrum; cathode plasma evolution; current; electron angular distributions; electrostatic accelerator; energy loss; energy-loss model; fluid-PIC hybrid approach; high energy electrons; high-atomic-number range-thin rod; high-brightness X-ray sources; high-density anode plasma evolution; high-power rod-pinch diodes; hollow rods; impedance collapse mechanisms; impedance lifetime; negative polarity rod-pinch designs; numerical simulations; polarity; positive polarity rod-pinch designs; radiographic source; radiographic spot sizes; range-thin anode; rod-pinch diode; secondary electron production; secondary electron scattering; solid rods; three-dimensional particle-in-cell code; two-dimensional particle-in-cell code; voltage; Anodes; Cathodes; Diodes; Electrons; Impedance; Numerical simulation; Particle scattering; Radiography; Voltage; X-ray scattering;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2000. ICOPS 2000. IEEE Conference Record - Abstracts. The 27th IEEE International Conference on
Conference_Location :
New Orleans, LA, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-5982-8
Type :
conf
DOI :
10.1109/PLASMA.2000.855064
Filename :
855064
Link To Document :
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