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Using pulsed direct current (dc) electric fields, an optimum electric field and frequency is found for the enhancement of drop drop and drop interface coalescence, thus producing a maximum separation efficiency for each of the two separators.
A debarking efficiency of up to 95% and maximum separation efficiency of 75% were found from the evaluation.
We report preliminary results of simulation as to the splitter position on the spiral trough for maximum separation efficiency.
If other parameters are constant, there is an optimum cycle time yielding maximum separation efficiency in all cases.
The results show that, in qualitative agreement with theoretical models, the maximum separation efficiency increases with the pressure amplitude of the sound wave.
The feed solution flow-rates, eluent-type or compositions has been optimized to achieve maximum separation efficiency of the target analytes.
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The Response Surface Method (RSM) model predicted an optimum operating inflow rate and underflow ratio of 721 ml s−1 of inflow rate and 30%, respectively, for the low-pressure hydrocyclone at a maximum total separation efficiency.
The maximum total separation efficiencies for each inflow rate were 41%, 46%and46%6% at 400, 800 and 1000 ml s−1 inflow rates, respectively, and at underflow rates of 30% of the inflow rates.
A maximum of 61% separation efficiency was obtained for conical vortex tube when the LOX purity was controlled at ≈66%.
Separation efficiency is maximum for the vortex finder depth of 7.6 cm.
It is observed that separation efficiency is maximum corresponding to a specific radial position and height of the splitter location.
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