Author:
WANG HONGWEI,WING-KEUNG LAW ADRIAN
Abstract
The development of a second-order integral model for a round turbulent buoyant
jet is reported based on new experimental data on turbulent mass and momentum
transport. The mean and turbulent characteristics of a round vertical buoyant jet
covering the full range from jets to plumes were investigated using a recently developed
combined digital particle image velocimetry (DPIV) and planar laser-induced
fluorescence (PLIF) system. The system couples the two well-known techniques to
enable synchronized planar measurements of flow velocities and concentrations in
a study area. The experimental results conserved the mass and momentum fluxes
introduced at the source accurately with closure errors of less than 5%. The momentum
flux contributed by turbulence and streamwise pressure gradient was determined
to be about 10% of the local mean momentum flux in both jets and plumes. The
turbulent mass flux, on the other hand, was measured to be about 7.6% and 15%
of the mean mass flux for jets and plumes respectively. While the velocity spread
rate was shown to be independent of the flow regime, the concentration-to-velocity
width ratio λ varied from 1.23 to 1.04 during the transition from jet to plume. Based
on the experimental results, a refined second-order integral model for buoyant jets
that achieves the conservation of total mass and momentum fluxes is proposed. The
model employs the widely used entrainment assumption with the entrainment coefficient
taken to be a function of the local Richardson number. Improved prediction
is achieved by taking into account the variation of turbulent mass and momentum
fluxes. The variation of turbulent mass flux is modelled as a function of the local
Richardson number. The turbulent momentum flux, on the other hand, is treated
as a fixed percentage of the local mean momentum flux. In addition, unlike most
existing integral models that assume a constant concentration-to-velocity width ratio,
the present model adopts a more accurate approach with the ratio expressed as a
function of the local Richardson number. As a result, smooth transition of all relevant
mean and turbulent characteristics from jet to plume is predicted, which is in line
with the underlying physical processes.
Publisher
Cambridge University Press (CUP)
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics
Cited by
178 articles.
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