Influence of Polymer Extensibility on the Temporal Stability Analysis of Planar Jet Flow in FENE-P Fluids

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Abstract

This study extends the linear temporal stability analysis of incompressible, laminar, planar two-dimensional jet flows to viscoelastic fluids described by the FENE-P constitutive equation, extending beyond prior work restricted to the Oldroyd-B limit. The base flow is assumed steady and parallel, and the effects of the Reynolds number (Re), the Weissenberg number (Wi), the solvent viscosity ratio βn, and the maximum polymer extensibility are assessed in terms of the growth rates of infinitesimal perturbations and the extent of unstable wavenumber regions, for both sinuous and varicose modes. Components of the conformation tensor A are obtained analytically for the Oldroyd-B limit and numerically for the full FENE-P model. Results show that inertia is destabilizing: increasing Re broadens the unstable region and raises peak temporal growth rates. Viscoelastic effects are generally stabilizing: higher Wi and larger reduce both the unstable wavenumber range and maximum growth rates; however, this stabilizing influence of Wi is considerably weakened at low extensibility (L = 10), revealing a non-trivial interaction between polymer stretching and relaxation dynamics that is absent in the Oldroyd-B model.

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Institutions
  • 1 Universidade Estadual de Londrina
  • 2 Universidade Estadual Paulista (UNESP) - Presidente Prudente
  • 3 Instituto Nacional de Pesquisas Espaciais
  • 4 ICMC/USP, São Carlos, SP
Track
  • ST05 - Mathematical Physics, Fluid Mechanics and Dynamical Systems
Keywords
Jet Flow
Linear Stability Analysis
FENE-P model
Kelvin-Helmholtz instability