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Optimizing dissolved air flotation design system
Author(s) -
Liliana Amaral Féris,
Serafina Gallina,
Rafael Teixeira Rodrigues,
Jorge Rubio
Publication year - 2000
Publication title -
brazilian journal of chemical engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.313
H-Index - 52
eISSN - 1678-4383
pISSN - 0104-6632
DOI - 10.1590/s0104-66322000000400019
Subject(s) - diffuser (optics) , inlet , nozzle , bubble , nucleation , surface tension , dissolved air flotation , saturation (graph theory) , mechanics , chemistry , volumetric flow rate , pulmonary surfactant , turbulence , materials science , chemical engineering , environmental science , chromatography , environmental engineering , thermodynamics , mechanical engineering , engineering , physics , organic chemistry , combinatorics , mathematics , biochemistry , light source , wastewater , optics
Dissolved Air (Pressure) Flotation-DAF, is a well-established separation process that employs micro-bubbles as a carrier phase. This work shows results concerning bubble generation at low working pressures in modified DAF-units to improve the collection of fragile coagula by bubbles. DAF of Fe (OH)3 (as model) was studied as a function of saturation pressure in the absence and presence of surfactants in the saturator. DAF was possible at 2 atm by lowering the air/water surface tension. This fact, which leads to substantial energy savings, was explained in terms of decreasing the "minimum" energy required for bubble nucleation and cavity in the nozzle. More, bubbles-fragile coagula attachment was improved by dividing the recycling water into two: 1) the inclined inlet to the cell (traditional) and 2) inside the separation tank through a water flow inlet situated below the floating bed using a "mushroom" type diffuser. Because of the reduction observed in the degree of turbulence in the conventional collection zone, DAF performance improved yielding high precipitate recoveries

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