Heat transfer enhancement in grooved channels due to flow bifurcations

guzman AM; del Valle, M

Abstract

The flow bifurcation scenario and heat transfer characteristics in grooved channels, are investigated by direct numerical simulations of the mass, momentum and energy equations, using the spectral element methods for increasing Reynolds numbers in the laminar and transitional regimes. The Eulerian flow characteristics show a transition scenario of two Hopf bifurcations when the flow evolves from a laminar to a time-dependent periodic and then to a quasi-periodic flow. The first Hopf bifurcation occurs to a critical Reynolds number Rec1 that is significantly lower than the critical Reynolds number for a plane-channel flow. The periodic and quasi-periodic flows are characterized by fundamental frequencies ω1 and m• ω1+n•ω2, respectively, with m and n integers. Friction factor and pumping power evaluations demonstrate that these parameters are much higher than the plane channel values. The time-average mean Nusselt number remains mostly constant in the laminar regime and continuously increases in the transitional regime. The rate of increase of this Nusselt number is higher for a quasi-periodic than for a periodic flow regime. This higher rate originates because better flow mixing develops in quasi-periodic flow regimes. The flow bifurcation scenario occurring in grooved channels is similar to the Ruelle-Takens-Newhouse transition scenario of Eulerian chaos, observed in symmetric and asymmetric wavy channels.

Más información

Título según WOS: Heat transfer enhancement in grooved channels due to flow bifurcations
Título según SCOPUS: Heat transfer enhancement in grooved channels due to flow bifurcations
Título de la Revista: HEAT AND MASS TRANSFER
Volumen: 42
Número: 11
Editorial: Springer
Fecha de publicación: 2006
Página de inicio: 967
Página final: 975
Idioma: English
URL: http://link.springer.com/10.1007/s00231-005-0065-7
DOI:

10.1007/s00231-005-0065-7

Notas: ISI, SCOPUS