An adjoint-based method for identifying invariant solutions and dynamical connections in weakly turbulent flows.

ORAL

Abstract

In the past decade, numerical and experimental investigations in a variety of fluid flows have demonstrated that chaos/turbulence is guided by unstable, non-chaotic solutions. However, numerically computing these solutions using the traditional Newton-based methods is expensive and, for sufficiently large problems, may become intractable even with matrix-free methods. In this talk, we present an adjoint-based approach that overcomes some of these difficulties. We demonstrate the method by applying it to find equilibria, periodic orbits, and heteroclinic connections in an experimentally accessible Kolmogorov-like 2D flow with physical no-slip boundary conditions.

*This work is supported in part by the National Science Foundation under the grant No. CMMI 1234436

Authors

  • Ravi Kumar Pallantla

    • Center for Nonlinear Science and School of Physics, Georgia Institute of Technology
  • BalaChandra Suri

    • Center for Nonlinear Science and School of Physics, Georgia Institute of Technology
  • Logan Kageorge

    • Center for Nonlinear Science and School of Physics, Georgia Institute of Technology
  • Michael F. Schatz

    • Center for Nonlinear Science and School of Physics, Georgia Institute of Technology
    • Georgia Institute of Technology
  • Roman Grigoriev

    • Center for Nonlinear Science and School of Physics, Georgia Institute of Technology
    • Georgia Institute of Technology