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Published June 2024 | Version Published
Journal Article Open

Feasibility of an experiment on clumping induced by the Crow instability along a shocked cylinder

Creators

  • Wadas, M. ORCID icon
  • LeFevre, H. ORCID icon
  • Elmore, Y.
  • Xie, X. ORCID icon
  • White, W. ORCID icon
  • Kuranz, C. ORCID icon
  • Johnsen, E. ORCID icon

Abstract

The growth of three-dimensional perturbations subject to the Crow instability along a vortex dipole resulting from the passage of a shock wave through a heavy gaseous cylinder is examined numerically. A linear stability analysis is performed based on geometric parameters extracted from two-dimensional simulations to determine the range of unstable wavenumbers, which is found to extend from 0.0 to 1.3 when normalized by the core separation distance. The analysis is then verified by comparison to three-dimensional simulations, which clearly show the development of the instability and the pinch-off of the vortex dipole into isolated vortex rings, which manifest as clumps of the original cylinder material. A scaling law is developed to determine the relevant spatiotemporal scales of the instability development, which is then used to assess the feasibility of a high-energy-density experiment visualizing clump formation. Specifically, a shocked cylinder with an initial diameter of 100 μm consisting of a perturbation of approximate wavelength and amplitude of 600 and 10 μm, respectively, is expected to form clumps resulting from the Crow instability approximately 40 ns after it is shocked, with dynamics which can be readily visualized on the Omega EP laser facility.

Copyright and License

© 2024 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).

Acknowledgement

The work of M. Wadas is supported by the Cecil and Sally Drinkward and the Caltech Presidential Postdoctoral Fellowships, and the work of H. LeFevre is supported by the NSF MPS-Ascend Postdoctoral Research Fellowship under Grant No. 2138109. This work is funded by the U.S. Department of Energy NNSA Center of Excellence under cooperative agreement number DE-NA0004146.

Contributions

M. Wadas: Conceptualization (lead); Formal analysis (lead); Investigation (lead); Visualization (lead); Writing – original draft (lead). Heath Lefevre: Conceptualization (supporting); Formal analysis (equal); Investigation (equal); Writing – original draft (supporting). Y. Elmore: Conceptualization (supporting); Formal analysis (supporting); Investigation (supporting). X. Xie: Conceptualization (supporting); Formal analysis (supporting); Investigation (supporting). W. White: Conceptualization (supporting); Software (lead). C. Kuranz: Supervision (equal). E. Johnsen: Conceptualization (equal); Supervision (equal).

Data Availability

The data that support the findings of this study are available within the article.

Conflict of Interest

The authors have no conflicts to disclose.

Additional Information

Special Collection: Coherent Vortical Structures in Fluids and Plasmas

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ISSN
1089-7674

Funding

California Institute of Technology
Cecil and Sally Drinkward Postdoctoral Fellowship
California Institute of Technology
Caltech Presidential Postdoctoral Fellowship
National Science Foundation
PHY-2138109
National Nuclear Security Administration
DE-NA0004146
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DOI
10.1063/5.0201492
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Resource type
Journal Article
Publisher
American Institute of Physics
Published in
Physics of Plasmas, 31(6), 062103, ISSN: 1070-664X, 2024.
Languages
English

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  • Creative Commons Attribution 4.0 International
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Created
June 14, 2024
Modified
June 14, 2024
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