Feasibility and performance of the staged Z-pinch: A one-dimensional study with FLASH and MACH2

Author:

Hansen E. C.1ORCID,Garcia-Rubio F.1ORCID,Adams M. B. P.1ORCID,Fatenejad M.1,Moczulski K.1ORCID,Ney P.2ORCID,Rahman H. U.2ORCID,Reyes A. C.1ORCID,Ruskov E.2ORCID,Tranchant V.1ORCID,Tzeferacos P.1ORCID

Affiliation:

1. University of Rochester 1 , Rochester, New York 14627, USA

2. Magneto-Inertial Fusion Technology Inc. 2 , Tustin, California 92780, USA

Abstract

Z-pinch platforms constitute a promising pathway to fusion energy research. Here, we present a one-dimensional numerical study of the staged Z-pinch (SZP) concept using the FLASH and MACH2 codes. We discuss the verification of the codes using two analytical benchmarks that include Z-pinch-relevant physics, building confidence on the codes' ability to model such experiments. Then, FLASH is used to simulate two different SZP configurations: a xenon gas-puff liner (SZP1*) and a silver solid liner (SZP2). The SZP2 results are compared against previously published MACH2 results, and a new code-to-code comparison on SZP1* is presented. Using an ideal equation of state and analytical transport coefficients, FLASH yields a fuel convergence ratio (CR) of approximately 39 and a mass-averaged fuel ion temperature slightly below 1 keV for the SZP2 scheme, significantly lower than the full-physics MACH2 prediction. For the new SZP1* configuration, full-physics FLASH simulations furnish large and inherently unstable CRs (>300) but achieve fuel ion temperatures of many kilo-electron volts. While MACH2 also predicts high temperatures, the fuel stagnates at a smaller CR. The integrated code-to-code comparison reveals how magnetic insulation, heat conduction, and radiation transport affect platform performance and the feasibility of the SZP concept.

Funder

Advanced Research Projects Agency - Energy

National Nuclear Security Administration

Office of Science

Publisher

AIP Publishing

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