• Open Access

MA-class linear transformer driver for Z-pinch research

F. Conti, J. C. Valenzuela, V. Fadeev, N. Aybar, D. B. Reisman, A. Williams, G. Collins, IV, J. Narkis, M. P. Ross, F. N. Beg, and R. B. Spielman
Phys. Rev. Accel. Beams 23, 090401 – Published 28 September 2020

Abstract

A linear transformer driver (LTD) generator capable of delivering up to 0.9 MA current pulses with 160 ns rise time has been assembled and commissioned at University of California San Diego. The machine is an upgrade of the LTD-III pulser from Sandia National Laboratories, consisting of 40 capacitors and 20 spark gap switches, arranged in a 20-brick configuration. The driver was modified with the addition of a new trigger system, active premagnetization of the inductive cores, a vacuum chamber with multiple diagnostic ports, and a vacuum power feed to couple the driver to plasma loads. The new machine is called compact experimental system for Z-pinch and ablation research (CESZAR). The driver has a maximum bipolar charge voltage of ±100kV, but for reliability and testing, and to reduce the risk of damage to components, the machine was operated at ±60kV, producing 550 kA peak currents with a rise time of 170 ns on a 3.5 nH short circuit. While the peak current is scaled down due to the reduced charge voltage, the pulse shape and circuit parameters are close to the results of the cavity and power feed models but suggest a slightly higher inductance than predicted. The machine was then used to drive wire array Z-pinch and gas puff Z-pinch experiments as initial dynamic plasma loads. The evolution of the wire array Z pinch is consistent with the general knowledge of this kind of experiment, featuring wire ablation and stagnation of the precursor plasma on axis. The gas puff Z pinches were configured as a single, hollow argon gas shell, in preparation for more structured gas puff targets such as multispecies, multishell implosions. The implosion dynamics agree generally with 1D magnetohydrodynamics simulation results, but large zippering and magneto-Rayleigh-Taylor instabilities are observed. The CESZAR load region was designed to accommodate many load types to be driven by the machine, which makes it a versatile platform for studying Z-pinch plasmas. The completion of the CESZAR driver allows plasma experiments on energy coupling from LTD machines to plasma loads, instability mitigation techniques and magnetic field distributions in Z pinches, and interface dynamics in multispecies implosions.

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  • Received 17 April 2020
  • Accepted 17 August 2020

DOI:https://doi.org/10.1103/PhysRevAccelBeams.23.090401

Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI.

Published by the American Physical Society

Physics Subject Headings (PhySH)

Accelerators & BeamsPlasma Physics

Authors & Affiliations

F. Conti*, J. C. Valenzuela, V. Fadeev, N. Aybar, D. B. Reisman, A. Williams, G. Collins, IV, J. Narkis, M. P. Ross, and F. N. Beg

  • Center for Energy Research, University of California San Diego, La Jolla, California 92093, USA

R. B. Spielman

  • Laboratory for Laser Energetics, University of Rochester, Rochester, New York 14623, USA and Idaho Accelerator Center, Idaho State University, Pocatello, Idaho 83201, USA

  • *fconti@ucsd.edu
  • Present address: Instituto de Fisica, Pontificia Universidad Catolica de Chile, Santiago, Chile.
  • Present address: Naval Information Warfare Center Pacific, San Diego, California 92152, USA.

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Vol. 23, Iss. 9 — September 2020

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