首页|Hydrodynamic and axial mixing studies in asymmetric rotating impeller column at high dispersed to continuous phase ratios

Hydrodynamic and axial mixing studies in asymmetric rotating impeller column at high dispersed to continuous phase ratios

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In the present work, hydrodynamics characteristics such as dispersed phase holdup (), Sauter mean diameter (d_(32)), drop size distribution (DSD), and continuous phase axial mixing was investigated in an asymmetric rotating impeller column (ARIC). Water - heavy normal paraffin (HNP) liquid system was used in ARIC to carry out the experiments. The effect of operating parameters such as impeller speed (N), superficial velocity of the continuous phase (Vc) was investigated. Experiments were performed at several dispersed to continuous phase (0/A) ratios. Volume displacement method and an image analysis technique were utilized to investigate the εD and d_(32), respectively. The pulse tracer technique was used to study the axial mixing in the continuous phase. The εD and d_(32) were strongly influenced by the impeller speed. More than 50% increase in εD was noticed when impeller speed increases from 100 to 350 rpm. The increase in dispersion coefficients (Dc) is observed with impeller speed. Whereas, it was noticed that O/A has a significant impact on Dc. About 80% decrease in Dc was observed when O/A increases from 5 to 25. The generalize equations have been developed for the prediction εD, d_(32), and Pec.

High O/A ratioDispersed phase holdupSauter mean diameterDrop size distributionAxial MixingARIC

Prafulli A. Mahakal、Ashwin W. Patwardhan

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Department of Chemical Engineering, Institute of Chemical Technology, Mumbai 400019, India

2022

Chemical Engineering Research & Design

Chemical Engineering Research & Design

SCI
ISSN:0263-8762
年,卷(期):2022.182
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