Bubble columns have been used in
a wide range of applications in
industry including the production of alternative clean fuels via Fischer–Tropsch
synthesis and liquid phase methanol synthesis, among others. The effects
of dense internals encountered in Fischer–Tropsch synthesis
with different diameters and covering the same cross-sectional area
and hence configuration on bubble properties are lacking in the open
literature. Therefore, the focus of this study is to investigate the
effects of dense internals with different diameters and covering the
same cross-sectional area and hence configuration on the bubble dynamics
such as local and overall gas holdup, specific interfacial area, axial
bubble velocity, bubble passage frequency, and bubble chord lengths
using a four-point fiber optical probe. The experimental work was
carried out in a 0.14 m inner diameter Plexiglas bubble column for
an air–water system. The superficial gas velocities applied
based on both total cross-sectional area and free cross-sectional
area available for the flow were in the range 0.03–0.45 m/s
covering the bubbly flow regime through the churn turbulent flow regime.
The internals used were both Plexiglas rods of 0.5 in. diameter and
1 in. diameter occupying 25% of the column cross-sectional area. The
experimental data obtained suggest that 0.5 in. internals gave consistently
higher overall and local gas holdup, specific interfacial area, and
bubble passage frequency than the 1 in. internals or empty column,
particularly at the column center. The effect of the internals diameter
was insignificant for the gas holdup, particularly in the churn turbulent
flow regime. Lower axial bubble velocity was obtained with the smaller
diameter internals. Worth noting is that the insignificant difference
in the local gas holdups at the velocity based on free cross-sectional
area indicates that it is possible to extrapolate the local gas holdup
results obtained from empty bubble columns to those with dense internals,
but the effect of dense internals on the other bubble properties still
needs to be done in columns equipped with dense internals.
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