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Imaging Refractometry Technique Development

POSTER

Abstract

The imaging refractometry technique is a valuable diagnostic tool for studying high energy density plasmas. Density fluctuations in these plasmas are challenging to measure, particularly in gas-puff Z-pinch implosions where turbulence is thought to be present [1,2,3]. After its introduction [4], the technique has been further developed at Cornell’s Laboratory of Plasma Studies for diagnosing imploding gas-puff Z-pinch plasmas using a 40 mJ, 150 ps, frequency doubled Nd:YAG laser pulse at 1064/532 nm. To obtain time-resolved wavenumber spectra a visible light streak camera is being used along with a ~150 mJ, ~12 ns, frequency doubled Nd-YLF laser pulse at 532 nm.

The imaging refractometry technique measures the angular deflection of a collimated laser beam as it passes through a plasma to generate, on a detector screen, an image where the y-axis is the deflection angle and the x-axis is the spatial direction axis. The spectrum of angular deflections can be linked to the wavenumber spectrum by measuring a stationary target with an analytically known Fourier transform [5].

The Beam Propagation Method (BPM) simulation [6] was developed to provide predictive ability for the Imaging Refractometer in specific plasmas and synthetic spectra for analysis of observed spectra. The PERSEUS 3D Extended MHD code [7] is being employed to obtain a 3D density pattern of a plasma column at a given time to provide the specific plasma for the BPM code. PERSEUS and the BPM simulation are run in combination using the Bridges-2 system [8] to obtain high spatial resolution.

Recent results, challenges, and future plans will be reported.

Publication: [1] E. Kroupp et al., Turbulent Stagnation in a Z -Pinch Plasma, Phys. Rev. E 97, 013202 (2018).<br>[2] Sophia V. Rocco, Turbulence in Gas-Puff Z-Pinches: Applying Thomson Scattering to Diagnosing Turbulent Density and Velocity Fluctuations, Cornell University, 2021.<br>[3] E. S. Lavine et al., Measurements of the Imploding Plasma Sheath in Triple-Nozzle Gas-Puff z Pinches, Phys. Plasmas 29, 062702 (2022).<br>[4] J. D. Hare et al., An Imaging Refractometer for Density Fluctuation Measurements in High Energy Density Plasmas, Rev. Sci. Instrum. 92, 033521 (2021).<br>[5] A. Rososhek et al., Wavenumber Calibration For an Imaging Refractometer Device, Review of Scientific Instruments, to be published (2023).<br>[6] K. Okamoto, Fundamentals of Optical Waveguides, Second Edition (Optics and Photonics Series), 2nd ed. (Elsevier, Tokio, 2005).<br>[7] C. E. Seyler and M. R. Martin, Physics of Plasmas 18, 012703 (2011).<br>[8] Brown, S. T., Buitrago, P., Hanna, E., Sanielevici, S., Scibek, R., and Nystrom, N. A. (2021). Bridges-2: A Platform for Rapidly-Evolving and Data Intensive Research. In Practice and Experience in Advanced Research Computing (pp. 1-4).

Presenters

  • Alexander Rososhek

    Cornell University

Authors

  • Alexander Rososhek

    Cornell University

  • Bruce R Kusse

    Cornell University

  • William M Potter

    Cornell University, Cornell university

  • Eric S Lavine

    Cornell University

  • Dave A Hammer

    Cornell University