POWER CONSUMPTION IN MECHANICALLY AGITATED CONTACTORS USING PITCHED BLADED TURBINE IMPELLERS
- 1 February 1990
- journal article
- research article
- Published by Taylor & Francis in Chemical Engineering Communications
- Vol. 88 (1), 69-90
- https://doi.org/10.1080/00986449008940548
Abstract
Power consumption was measured in mechanically agitated contactors of internal diameter 0.3 m, 0.57 m, 1.0 m and 1.5 m. Tap water was used as a liquid in all the experiments. The impeller speed was varied in the range of 0.3-13.33 r/s. Three types of impellers, namely disc turbine (DT), pitched-blade downflow turbine (PTD) and pitched blade upflow turbine (PTU) were employed. The ratio of the impeller diameter to vessel diameter (D/T) and the ratio of impeller blade width to impeller diameter (W/D) were varied over a wide range. The effects of impeller clearance from the tank bottom (C), blade angle (φ), total liquid height (H/T), number of impeller blades (nb) and blade thickness (tb) were studied in detail. Power consumption was measured using a torque table Power number was found to have a strong dependence on the flow pattern generated by the impeller. Unlike, DT and PTU, the power number of PTD was found to increase with a decrease in clearance. The PTD (T/3) was found to have the lowest power number in all the vessels and the power number increased with either a decrease or an increase in the impeller diameter from T/3. The dependence of power number on impeller diameter was found to be more prominent when the D/T ratio was more than 0.3. In general, the power number was found to increase with an increase in blade angle and blade width. The effect of blade width was found to be more prominent in larger diameter vessels. A correlation has been developed for power number in the case of PTD impellers.Keywords
This publication has 9 references indexed in Scilit:
- LIQUID PHASE MIXING IN MECHANICALLY AGITATED VESSELSChemical Engineering Communications, 1988
- Liquid-phase mixing and power consumption in mechanically agitated solid—liquid contactorsThe Chemical Engineering Journal, 1988
- Critical impeller speed for solid suspension in mechanically agitated contactorsAIChE Journal, 1988
- Form and skin drag contributions to power consumption for the pitched‐blade turbineAIChE Journal, 1985
- Mixing in mechanically agitated gas-liquid contactors, bubble columns and modified bubble columnsChemical Engineering Science, 1983
- Mechanically agitated gas-liquid reactorsChemical Engineering Science, 1982
- LIQUID DISPERSION MECHANISMS IN AGITATED TANKS: PART I. PITCHED BLADE TURBINEChemical Engineering Communications, 1981
- Stereoscopic visualization of the flows for pitched blade turbinesChemical Engineering Science, 1980
- Examination of Some Geometric Parameters of Impeller PowerIndustrial & Engineering Chemistry Process Design and Development, 1963