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Mixing was achieved by rocking the vessel at 180°.
Especially, about 99% mixing was achieved at Reynolds numbers less than ten.
At a driving frequency of 100 Hz, oscillating fluid flow was induced and mixing was achieved.
In this microchannel, almost complete mixing was achieved at a distance of 10 mm from T-junction.
At the highest flow rates, complete mixing was achieved in 160 ns with only approximately 9% premixing of the reactants.
A good mixing was achieved with the liquid circulation induced by gaseous ozone, without the need of mechanical mixing.
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Thus complete mixing is achieved after a mixing length, i.e., the distance to the microchannel outlet, of only 300 800 μm.
Mixing is achieved faster with front back initial loading than with side side loading.
The optimal mixing is achieved at low Re when the mixing mechanism in the mixer is the baker's transformation.
A slightly better mixing is achieved compared to the established SHM and significantly fewer grooves are needed.
Using a power law based constitutive model, it is found that for specific design parameters, more uniform and homogeneous mixing is achieved with increasing flow behavior index.
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