Dynamics of single and double argon gas puff Z-pinches on the CESZAR fast 500-kA Linear Transformer Driver
ORAL
Abstract
Gas puff Z-pinches1 are a well-established X-ray source and hold significant potential for thermonuclear fusion. Implosions on fast drivers, like CESZAR (500kA in 160ns) are susceptible to the Magneto Rayleigh-Taylor Instability (MRTI) limiting their utility in applications. We report on a systematic investigation of the snowplow stabilization2 method for mitigating MRTI growth by studying the dynamics of double and single gas puff loads. We compared instability growth in argon liner on argon target, argon liner on deuterium target and hollow argon gas puffs on the CESZAR Linear Transformer Driver. We employed a time-gated XUV pinhole camera to describe the effect of this mitigation technique on implosion dynamics and filtered photodiodes were used to determine the effects on X-ray production. To complement experimental findings, 2-D MHD simulations were performed with the Multiphysics FLASH code to infer the effect of the load structure on pinch density and ion temperature. Results show that an addition of the target improves the stability of the pinch.
*This work is supported by the Department of Energy, National Nuclear Security Administrationunder Awards No. DE-NA0003842 and DE-NA0004031
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Publication: [1] J. L. Giuliani and R. J. Commisso, "A Review of the Gas-Puff Z-Pinch as an X-Ray and Neutron Source," IEEE Transactions on Plasma Science, vol. 43, no. 8, pp. 2385–2453, 2015, doi: 10.1109/TPS.2015.2451157.
[2] S. M. Gol'berg and A. L. Velikovich, "Suppression of Rayleigh-Taylor instability by the snowplow mechanism," Physics of Fluids B, vol. 5, no. 4, pp. 1164–1172, 1993, doi: 10.1063/1.860974.
Presenters
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Apsara Madonna Williams
- University of California, San Diego