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Transmission-line-circuit model of an 85-TW, 25-MA pulsed-power accelerator

Authors :
M. H. Hess
Dale Welch
Christopher Jennings
George Laity
Derek C. Lamppa
B. A. Whitney
D.D. Hinshelwood
Brian Hutsel
Ryan D. McBride
J. K. Moore
Stephen A. Slutz
A. Myers
Matthew R. Gomez
David V. Rose
P.A. Corcoran
William A. Stygar
Michael Edward Cuneo
Eduardo Waisman
Source :
Physical Review Accelerators and Beams, Vol 21, Iss 3, p 030401 (2018)
Publication Year :
2018
Publisher :
American Physical Society (APS), 2018.

Abstract

We have developed a physics-based transmission-line-circuit model of the Z pulsed-power accelerator. The 33-m-diameter Z machine generates a peak electrical power as high as 85 TW, and delivers as much as 25 MA to a physics load. The circuit model is used to design and analyze experiments conducted on Z. The model consists of 36 networks of transmission-line-circuit elements and resistors that represent each of Zs 36 modules. The model of each module includes a Marx generator, intermediate-energy-storage capacitor, laser-triggered gas switch, pulse-forming line, self-break water switches, and tri-plate transmission lines. The circuit model also includes elements that represent Zs water convolute, vacuum insulator stack, four parallel outer magnetically insulated vacuum transmission lines (MITLs), double-post-hole vacuum convolute, inner vacuum MITL, and physics load. Within the vacuum-transmission-line system the model conducts analytic calculations of current loss. To calculate the loss, the model simulates the following processes: (i) electron emission from MITL cathode surfaces wherever an electric-field threshold has been exceeded; (ii) electron loss in the MITLs before magnetic insulation has been established; (iii) flow of electrons emitted by the outer-MITL cathodes after insulation has been established; (iv) closure of MITL anode-cathode (AK) gaps due to expansion of cathode plasma; (v) energy loss to MITL conductors operated at high lineal current densities; (vi) heating of MITL-anode surfaces due to conduction current and deposition of electron kinetic energy; (vii) negative-space-charge-enhanced ion emission from MITL anode surfaces wherever an anode-surface-temperature threshold has been exceeded; and (viii) closure of MITL AK gaps due to expansion of anode plasma. The circuit model is expected to be most accurate when the fractional current loss is small. We have performed circuit simulations of 52 Z experiments conducted with a variety of accelerator configurations and load-impedance time histories. For these experiments, the apparent fractional current loss varies from 0% to 20%. Results of the circuit simulations agree with data acquired on 52 shots to within 2%.

Details

ISSN :
24699888
Volume :
21
Database :
OpenAIRE
Journal :
Physical Review Accelerators and Beams
Accession number :
edsair.doi.dedup.....52d75c4bdf8e57fd77bca1e0eedc2d10
Full Text :
https://doi.org/10.1103/physrevaccelbeams.21.030401