
doi: 10.1002/fld.593
handle: 20.500.14299/7155
AbstractThere is a growing interest in developing numerical tools to investigate the onset of physical instabilities observed in experiments involving viscoelastic flows, which is a difficult and challenging task as the simulations are very sensitive to numerical instabilities. Following a recent linear stability analysis carried out in order to better understand qualitatively the origin of numerical instabilities occurring in the simulation of flows viscoelastic fluids, the present paper considers a possible extension for more complex flows. This promising method could be applied to track instabilities in complex (i.e. essentially non‐parallel) flows. In addition, results related to transient growth mechanism indicate that it might be responsible for the development of numerical instabilities in the simulation of viscoelastic fluids. Copyright © 2003 John Wiley & Sons, Ltd.
transient growth mechanism, Spectral methods applied to problems in fluid mechanics, Arnoldi method, instabilities, transient growth, stability analysis, Viscoelastic fluids, Finite difference methods applied to problems in fluid mechanics, viscoelastic fluids, Parallel shear flows in hydrodynamic stability
transient growth mechanism, Spectral methods applied to problems in fluid mechanics, Arnoldi method, instabilities, transient growth, stability analysis, Viscoelastic fluids, Finite difference methods applied to problems in fluid mechanics, viscoelastic fluids, Parallel shear flows in hydrodynamic stability
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