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NASA NTRS · 19910050352

Dynamical eigenfunction decomposition of turbulent channel flow

Abstract

The results of an analysis of low-Reynolds-number turbulent channel flow based on the Karhunen-Loeve (K-L) expansion are presented. The turbulent flow field is generated by a direct numerical simulation of the Navier-Stokes equations at a Reynolds number Re(tau) = 80 (based on the wall shear velocity and channel half-width). The K-L procedure is then applied to determine the eigenvalues and eigenfunctions for this flow. The random coefficients of the K-L expansion are subsequently found by projecting the numerical flow field onto these eigenfunctions. The resulting expansion captures 90 percent of the turbulent energy with significantly fewer modes than the original trigonometric expansion. The eigenfunctions, which appear either as rolls or shearing motions, possess viscous boundary layers at the walls and are much richer in harmonics than the original basis functions.

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BibTeXRIS

Ball, K. S., Sirovich, L., Keefe, L. R.. 1991-04-05. Dynamical eigenfunction decomposition of turbulent channel flow. https://ntrs.nasa.gov/citations/19910050352

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