Preparation method of super-hydrophilic polymer membrane with demulsification function
A polymer membrane, super-hydrophilic technology, applied in chemical instruments and methods, membrane, membrane technology, etc., can solve the problems of difficult to achieve demulsification separation and complex process of emulsion, and achieve good reuse performance and excellent separation performance. Effect
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Embodiment 1
[0030] (1) After the solid polyvinylidene fluoride powder and styrene maleic anhydride powder are vacuum-dried at 40°C to remove moisture, they are dissolved in DMAc, and lithium chloride is added as a porogen to prepare a casting solution with a concentration of 20wt%, The reaction was heated and stirred at 70 °C for 8 h, and after dissolving into a transparent homogeneous solution, the solution was allowed to stand at a constant temperature of 70 °C for defoaming. Using the immersion precipitation phase inversion method, the casting liquid was scraped evenly on the glass plate at room temperature (20°C) to form a liquid film with a thickness of 300 μm, and the film was rapidly immersed in the coagulation bath and phase-inverted to form a film. The vinyl fluoride / styrene maleic anhydride blend membrane was taken out from the coagulation bath and immersed in deionized water (at room temperature of 20°C).
[0031] (2) Prepare an aqueous solution of hyperbranched polyoxypropylen...
Embodiment 2
[0033] The superhydrophilic polyvinylidene fluoride oil-water separation membrane was prepared by the method described in Example 1, wherein the grafting reaction times were respectively 0h, 3h, 6h, and 9h, respectively denoted as M-0, M-3, M-6 and M-9. The surface contact angle of the prepared superhydrophilic polyvinylidene fluoride oil-water separation membrane was measured by an optical contact angle measuring instrument. The results are shown in image 3 . from image 3 It can be clearly seen that the contact angle of pure water on the surface of the ungrafted polyvinylidene fluoride / styrene maleic anhydride blend membrane is only 67.5°, which does not reach the superhydrophilic state. With the increase of grafting time, the more hyperbranched polyether grafted on the membrane surface, the contact angle gradually decreased. It was reduced to 18.5° when grafted for 9 h, achieving superhydrophilic performance.
Embodiment 3
[0035] Taking the superhydrophilic polyvinylidene fluoride oil-water separation membrane M-9 prepared in Example 2 as the experimental object, at room temperature, the separation performance of different oil-water emulsions was measured by using a filter device. The dichloromethane system is obtained by stirring 0.5g sodium dodecyl sulfate, 114mL dichloromethane and 1mL water at room temperature for 3h; the kerosene system is obtained by stirring 0.5g sodium dodecyl sulfate, 10mL kerosene and 1L water at room temperature for 3h. The separation results are shown in Table 1.
[0036] The oil-water separation performance of the super-hydrophilic polyvinylidene fluoride oil-water separation membrane M-9 prepared in Table 1 Example 2
[0037]
[0038] *Separation efficiency=(TOC of stock solution before membrane separation-TOC in permeate of membrane separation) / TOC of stock solution before membrane separation.
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