Artículo de revista
Stability and receptivity of boundary layers in a swirl flow channel
Fecha
2018Registro en:
Acta Mechanica, Volumen 229, Issue 10, 2018, Pages 4005-4015.
00015970
10.1007/s00707-018-2214-3
Autor
Herrmann-Priesnitz, B.
Calderón-Muñoz, W.
Soto Bertrán, Rodrigo
Institución
Resumen
© 2018, Springer-Verlag GmbH Austria, part of Springer Nature. The analysis of the disturbances on a spiraling base flow is relevant for the design, operation, and control of technological devices such as parallel-disk turbines and swirl flow channel heat sinks. Spiraling inflow inside an annular cavity closed at the top and bottom is analyzed in the framework of modal and nonmodal stability theories. Local and parallel flow approximations are applied, and the inhomogeneous direction is discretized using the Chebyshev collocation method. The optimal growth of initial disturbances and the optimal response to external harmonic forcing are characterized by the exponential and the resolvent of the dynamics matrix. As opposed to plane Poiseuille flow, transient growth is small, and consequently, it does not play a role in the transition mechanism. The transition is attributed to a crossflow instability that occurs because of the change in the shape of the velocity profile due to rotational