Looking for breakthrough ideas for innovation challenges? Try Patsnap Eureka!

A kind of double-cortex forward osmosis membrane and preparation method thereof

A technology of forward osmosis membrane and double-skin layer, which is applied in the field of double-skinned forward osmosis membrane and its preparation, can solve problems such as difficulty in membrane thickness, achieve the effect of reducing internal concentration polarization and improving effective water flux

Inactive Publication Date: 2014-10-01
XIAN HHJ WATER TREATMENT TECH
View PDF7 Cites 0 Cited by
  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

The thickness of the current forward osmosis membrane is generally between 50-120 microns, but limited by the strength and preparation method, it is relatively difficult to further significantly reduce the thickness of the membrane

Method used

the structure of the environmentally friendly knitted fabric provided by the present invention; figure 2 Flow chart of the yarn wrapping machine for environmentally friendly knitted fabrics and storage devices; image 3 Is the parameter map of the yarn covering machine
View more

Examples

Experimental program
Comparison scheme
Effect test

Embodiment 1

[0029] (1) Soak the 180-mesh polyester screen with a thickness of 80 microns in about 10% sodium hydroxide solution for about 1 hour to remove the impurities adsorbed on the surface, then wash it with deionized water, and dry it for later use;

[0030] (2) Add 13.1% (V%) triacetate to 52.4% (V%) 1,4-dioxane, 19.7% (V%) acetone, 8.2% (V%) methanol and 6.6% ( V%) in a mixed solvent of lactic acid, heat and stir at 40°C to dissolve, and let it stand for more than 24 hours to completely defoam;

[0031] (3) Immerse the dried support material in the above casting solution for 10 hours, pull it out from the middle of the scrapers on both sides with a gap of 120 microns, volatilize in the air for 30 seconds at room temperature and 90% relative humidity, and then immerse it in Make it gel in deionized water to obtain a double-layered forward osmosis membrane;

[0032] (4) Post-processing:

[0033] Heat-treat the above-mentioned double-skin forward osmosis membrane in a water bath at...

Embodiment 2

[0037] (1) Soak the polyester cloth with a thickness of 60 microns in about 10% sodium hydroxide solution for about 1 hour to remove the impurities adsorbed on the surface, then wash it with deionized water and dry it for later use;

[0038] (2) Add 10.4% (V%) cellulose diacetate to 55.0% (V%) 1,4-dioxane, 19.8% (V%) acetone, 8.2% (V%) methanol and 6.6% ( V%) in a mixed solvent of lactic acid, stir and dissolve at room temperature, and let it stand for more than 24 hours to completely defoam;

[0039] (3) Immerse the dried support material in the above casting solution for 8 hours, pull it out from the middle of the scrapers on both sides with a gap of 100 microns, volatilize in the air for 15 seconds at room temperature and 85% relative humidity, and then immerse it in Make it gel in deionized water to obtain a double-layered forward osmosis membrane;

[0040] (4) Post-processing:

[0041] Heat-treat the above-mentioned double-skin forward osmosis membrane in a water bath a...

Embodiment 3

[0045] (1) Soak the 180-mesh polyester screen with a thickness of 80 microns in about 10% sodium hydroxide solution for about 1 hour to remove the impurities adsorbed on the surface, then wash it with deionized water, and dry it for later use;

[0046] (2) Add 13.9% (V%) triacetate cellulose and diacetate cellulose mixture (mass ratio 1:3) to 52.1% (V%) 1,4-dioxane, 19.2% (V%) In a mixed solvent of acetone, 8.2% (V%) methanol and 6.6% (V%) lactic acid, stir and dissolve at room temperature, and let it stand for more than 24 hours to completely defoam;

[0047] (3) Immerse the dried supporting material in the above casting solution for 12 hours, pull it out from the middle of the scrapers on both sides with a gap of 120 microns, volatilize in the air for 30 seconds at room temperature and 90% relative humidity, and then immerse it in Make it gel in deionized water to obtain a double-layered forward osmosis membrane;

[0048] (4) Post-processing:

[0049] Heat-treat the above-...

the structure of the environmentally friendly knitted fabric provided by the present invention; figure 2 Flow chart of the yarn wrapping machine for environmentally friendly knitted fabrics and storage devices; image 3 Is the parameter map of the yarn covering machine
Login to View More

PUM

No PUM Login to View More

Abstract

The invention discloses a double-skin forward osmosis membrane, which is characterized in that it includes a porous support layer in the middle and ultra-thin skin layers on both sides, and a screen or non-woven support material is embedded in the middle of the porous support layer. The material of the porous support layer and the ultra-thin skin layer is triacetate fiber, diacetate fiber or a mixture thereof; the material of the support material is cotton, polyester or nylon. Its preparation method is to immerse the treated supporting material in triacetate fiber, diacetate fiber or their mixture casting solution, pull it out from the middle of scrapers on both sides, and form a double-skinned forward osmosis membrane by a phase inversion method. The advantage of the present invention is that the forward osmosis membrane with the double skin layer can effectively prevent solutes from entering the porous support layer, reduce the inner concentration polarization of the support layer, thereby obviously improving the effective water flux of the forward osmosis membrane.

Description

technical field [0001] The invention belongs to the technical field of polymer separation membranes, and in particular relates to a double-skin forward osmosis membrane and a preparation method thereof. Background technique [0002] Forward osmosis technology, as a new membrane separation technology, has developed rapidly in recent years, and has aroused extensive interest of researchers at home and abroad for its outstanding advantages such as low energy consumption, low membrane pollution, and high rejection rate. And desalination, food and medicine, and energy have been used in a series of fields. [0003] However, the lack of high-performance forward osmosis membrane is an important obstacle restricting the development of forward osmosis technology. An ideal forward osmosis membrane should have a denser skin layer with a high rejection rate for solutes and a thinner, looser and more porous support layer to reduce internal concentration polarization. The internal concen...

Claims

the structure of the environmentally friendly knitted fabric provided by the present invention; figure 2 Flow chart of the yarn wrapping machine for environmentally friendly knitted fabrics and storage devices; image 3 Is the parameter map of the yarn covering machine
Login to View More

Application Information

Patent Timeline
no application Login to View More
Patent Type & Authority Patents(China)
IPC IPC(8): B01D69/10B01D67/00
Inventor 王铎许春玲苏燕汪锰
Owner XIAN HHJ WATER TREATMENT TECH
Who we serve
  • R&D Engineer
  • R&D Manager
  • IP Professional
Why Patsnap Eureka
  • Industry Leading Data Capabilities
  • Powerful AI technology
  • Patent DNA Extraction
Social media
Patsnap Eureka Blog
Learn More
PatSnap group products