High-water-flux forward-osmosis composite membrane and preparation method thereof
A technology of forward osmosis and composite membrane, which is applied in the field of membrane separation, can solve problems such as being unsuitable for the forward osmosis process, achieve the effect of weakening concentration polarization, increasing water permeation flux, and maintaining stability
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Embodiment 1
[0020] 1. Mix polyethersulfone, sulfonated polysulfone, N,N-dimethylacetamide and N-methylpyrrolidone according to the ratio of parts by weight 13:2:40:45, heat and stir, stand still or vacuum Prepare the membrane solution by degassing, then scrape it on a clean and flat glass plate to form a flat membrane, and then phase transform it into a porous membrane in water, the thickness of the membrane is about 100 microns.
[0021] 2. Soak the flat membrane prepared in step 1 in deionized water at room temperature for no less than 24 hours, fully wash away the solvent in the membrane pores, take it out, wash it with deionized water for 2 to 3 times, and blow it with compressed air. Sweep the surface of the film until there is no obvious water stain or dry it at room temperature in a clean environment.
[0022] 3. Fix the porous membrane dried in step 2 in the frame, and pour the aqueous solution containing polyamine monomer on the denser cortex of the porous membrane, that is, the ...
Embodiment 2
[0025] Mix polyethersulfone, sulfonated polysulfone, montmorillonite, N,N-dimethylacetamide and N-methylpyrrolidone according to the ratio of parts by weight 13:2:0.15:40:45, heat and stir, Stand still or vacuum defoaming to prepare the membrane solution, then scrape it into a flat membrane on a clean and flat glass plate with a scraper, and then phase invert into a porous membrane in water, with a membrane thickness of about 100 microns. All the other steps are the same as in Example 1. The cross-sectional pore structure of the porous layer is uniform, the pore size distribution of the cortex is uniform, and there is no macropore defect. The microscopic morphology of the porous support layer is as follows figure 1 shown.
[0026] For the forward osmosis membrane prepared in this embodiment, under the same test conditions as in Example 1, the water permeation flux is 24.2L / m 2 h, the reverse leakage flux of salt is 3.4g / m 2 h. Under the same test conditions, the standard ...
Embodiment 3
[0028] Mix polyethersulfone, sulfonated polysulfone, montmorillonite, N,N-dimethylacetamide and N-methylpyrrolidone according to the ratio of parts by weight 13:2:0.15:40:45, heat and stir, Stand still or vacuum defoaming to prepare membrane solution. Moisten the 250-mesh polyester mesh with solvent, fix it on a clean, flat glass plate, and let it dry at room temperature. Then pour the film-casting solution on the mesh cloth and scrape it into a flat film with a scraper, and then phase transform it into a porous film in water. The total thickness of the film is about 100 microns. All the other steps are the same as in Example 1.
[0029] Forward osmosis membrane prepared in this example, the microscopic morphology is as follows figure 2 shown. Under the same test conditions as in Example 1, the water permeation flux is 22L / m 2h, the reverse leakage flux of salt is 4.7g / m 2 h. The forward osmosis membrane obtained by this embodiment not only has the characteristics of hi...
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