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Linear Stability Analysis of Compressible Channel Flow with Porous Walls

2015/09/10 by Iman Rahbari, Carlo Scalo, Rahbari, Iman +1
Physics and Astronomy · #65N22 #65N25 #65N35 #FOS: Physical sciences #Fluid Dynamics (physics.flu-dyn) #msc:65N22 #msc:65N25 #msc:65N35 #physics.flu-dyn

paper · pdf · doi:10.48550/arxiv.1509.03152

18 pages, 8 figures, Invited contribution to the Whither Turbulence and Big Data in the 21st Century Springer Volume

arxiv created 2015/12/27 · arxiv updated 2015/12/29

Abstract

We have investigated the effects of permeable walls, modeled by linear acoustic impedance with zero reactance, on compressible channel flow via linear stability analysis (LSA). Base flow profiles are taken from impermeable isothermal-wall laminar and turbulent channel flow simulations at bulk Reynolds number, Reb= 6900 and Mach numbers, Mb = 0.2, 0.5, 0.85. For a sufficiently high value of permeability, Two dominant modes are made unstable: a bulk pressure mode, causing symmetric expulsion and suction of mass from the porous walls (Mode 0); a standing-wave-like mode, with a pressure node at the centerline (Mode I). In the case of turbulent mean flow profiles, both modes generate additional Reynolds shear stresses augmenting the (base) turbulent ones, but concentrated in the viscous sublayer region; the trajectories of the two modes in the complex phase velocity space follow each other closely for values of wall permeability spanning two orders of magnitude, suggesting their coexistence. The transition from subcritical to supercritical permeability does not alter the structure of the two modes for the range of wavenumbers investigated, suggesting that wall permeability simply accentuates pre-existing otherwise stable modes. Results from the present investigation will inform the design of new compressible turbulent boundary layer control strategies via assigned wall-impedance.

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