Modal interactions between a large-wavelength inclined interface and small-wavelength multimode perturbations in a Richtmyer-Meshkov instability

Jacob A. McFarland, David Reilly, Wolfgang Black, Jeffrey A. Greenough, and Devesh Ranjan
Phys. Rev. E 92, 013023 – Published 30 July 2015

Abstract

The interaction of a small-wavelength multimodal perturbation with a large-wavelength inclined interface perturbation is investigated for the reshocked Richtmyer-Meshkov instability using three-dimensional simulations. The ares code, developed at Lawrence Livermore National Laboratory, was used for these simulations and a detailed comparison of simulation results and experiments performed at the Georgia Tech Shock Tube facility is presented first for code validation. Simulation results are presented for four cases that vary in large-wavelength perturbation amplitude and the presence of secondary small-wavelength multimode perturbations. Previously developed measures of mixing and turbulence quantities are presented that highlight the large variation in perturbation length scales created by the inclined interface and the multimode complex perturbation. Measures are developed for entrainment, and turbulence anisotropy that help to identify the effects of and competition between each perturbations type. It is shown through multiple measures that before reshock the flow processes a distinct memory of the initial conditions that is present in both large-scale-driven entrainment measures and small-scale-driven mixing measures. After reshock the flow develops to a turbulentlike state that retains a memory of high-amplitude but not low-amplitude large-wavelength perturbations. It is also shown that the high-amplitude large-wavelength perturbation is capable of producing small-scale mixing and turbulent features similar to the small-wavelength multimode perturbations.

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  • Received 2 April 2015

DOI:https://doi.org/10.1103/PhysRevE.92.013023

©2015 American Physical Society

Authors & Affiliations

Jacob A. McFarland1,*, David Reilly2, Wolfgang Black1, Jeffrey A. Greenough3, and Devesh Ranjan2

  • 1Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, Missouri 65211, USA
  • 2George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, 801 Ferst Drive, Atlanta, Georgia 30332-0405, USA
  • 3Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, California 94550, USA

  • *mcfarlandja@missouri.edu

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Vol. 92, Iss. 1 — July 2015

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