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The impact of plasma dynamics on the self-magnetic-pinch diode impedance

Physics of Plasmas

Bennett, Nichelle; Crain, M.D.; Droemer, Darryl W.; Gignac, Raymond E.; Molina, Isidro; Obregon, Robert; Smith, Chase C.; Wilkins, Frank L.; Welch, Dale R.; Cordova, Steve; Johnston, Mark D.; Kiefer, Mark L.; Leckbee, Joshua L.; Mazarakis, Michael G.; Nielsen, D.S.; Romero, Tobias; Simpson, Sean S.; Webb, Timothy J.; Ziska, Derek Z.

In this study, the self-magnetic-pinch diode is being developed as an intense electron beam source for pulsed-power-driven x-ray radiography. The basic operation of this diode has long been understood in the context of pinched diodes, including the dynamic effect that the diode impedance decreases during the pulse due to electrode plasma formation and expansion. Experiments being conducted at Sandia National Laboratories' RITS-6 accelerator are helping to characterize these plasmas using time-resolved and time-integrated camera systems in the x-ray and visible. These diagnostics are analyzed in conjunction with particle-in-cell simulations of anode plasma formation and evolution. The results confirm the long-standing theory of critical-current operation with the addition of a time-dependent anode-cathode gap length. Finally, the results may suggest that anomalous impedance collapse is driven by increased plasma radial drift, leading to larger-than-average ion vr × Bθ acceleration into the gap.

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High-voltage atmospheric breakdown across intervening rutile dielectrics

Simpson, Sean S.; Coats, Rebecca S.; Hjalmarson, Harold P.; Jorgenson, Roy E.; Pasik, Michael F.

This report documents work conducted in FY13 on electrical discharge experiments performed to develop predictive computational models of the fundamental processes of surface breakdown in the vicinity of high-permittivity material interfaces. Further, experiments were conducted to determine if free carrier electrons could be excited into the conduction band thus lowering the effective breakdown voltage when UV photons (4.66 eV) from a high energy pulsed laser were incident on the rutile sample. This report documents the numerical approach, the experimental setup, and summarizes the data and simulations. Lastly, it describes the path forward and challenges that must be overcome in order to improve future experiments for characterizing the breakdown behavior for rutile.

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Results 26–34 of 34
Results 26–34 of 34