Title :
A renewed argon gas puff capability on Sandia´s Z machine
Author :
Jones, B. ; Jennings, C.A. ; Harvey-Thompson, A.J. ; Ampleford, D.J. ; Hansen, S.B. ; Lamppa, D.C. ; Cuneo, M.E. ; Strizic, T. ; Johnson, D. ; Jones, M.C. ; Moore, N.W. ; Flanagan, T. ; McKenney, J.L. ; Waisman, E.M. ; Coverdale, C.A. ; Krishnan, Mohan ;
Author_Institution :
Sandia Nat. Labs., Albuquerque, NM, USA
Abstract :
Summary form only given. We have reestablished gas puff z-pinch capability on Sandia´s 20 MA Z machine, including a Sandia-operated driver system and an imaging interferometer to characterize nozzle mass flow [1]. Initial experiments have focused on developing a 3 keV Ar K-shell x-ray source. We have pursued a design-driven approach to planning these experiments, utilizing numerical simulation to predict Ar K-shell yield for various nozzle mass profile configurations. In particular, we study coupling to the generator and how the distribution of mass between the two shells impacts magnetic Rayleigh-Taylor instability evolution. Two-dimensional radiation-magneto-hydrodynamic (MHD) simulations at NRL for a number of density profiles produced by the nozzle have predicted yields in excess of 300 kJ, and indicated that a 1:1.6 outer-to innershell mass ratio would produce the most stable implosion with high enough temperature to optimize Ar K-shell output [2]. This result was also consistent with 3D MHD modeling using the Gorgon code [3] at Sandia. Both models used tabulated non-LTE atomic models for Ar K-shell photon emission. We will present Z experimental data from the first gas puff shots on the accelerator since 2006, and compare these to the numerical models. Spectral output is measured from 1-20 keV. Electrical current measurements at different positions along the power flow section provide information on current coupling to the load. Time-gated pinhole imaging and radially-resolved spectroscopy indicate ~60 cm/μs implosion velocities and >1 keV electron temperatures.
Keywords :
Rayleigh-Taylor instability; Z pinch; argon; explosions; light interferometry; mass transfer; nozzles; numerical analysis; plasma X-ray sources; plasma diagnostics; plasma magnetohydrodynamics; 3D MHD modeling; Ar; Gorgon code; K-shell X-ray source; K-shell photon emission; NRL; Sandia Z machine; Sandia-operated driver system; accelerator; current 20 MA; density profile; design-driven approach; electrical current measurement; electron temperature; electron volt energy 1 keV to 20 keV; electron volt energy 3 keV; energy 300 kJ; gas puff Z-pinch capability; generator; imaging interferometer; implosion velocity; magnetic Rayleigh-Taylor instability evolution; mass distribution; nonLTE atomic model; nozzle mass flow characterization; nozzle mass profile configuration; numerical model; numerical simulation; outer-to innershell mass ratio; radially-resolved spectroscopy; time-gated pinhole imaging; two-dimensional radiation-magnetohydrodynamic simulation; Argon; Couplings; Imaging; Laboratories; Magnetohydrodynamics; Numerical models; Plasma temperature;
Conference_Titel :
Plasma Science (ICOPS), 2013 Abstracts IEEE International Conference on
Conference_Location :
San Francisco, CA
DOI :
10.1109/PLASMA.2013.6633169