WO2016121600A1 - 複合半透膜、スパイラル型分離膜エレメント、及びその製造方法 - Google Patents
複合半透膜、スパイラル型分離膜エレメント、及びその製造方法 Download PDFInfo
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- WO2016121600A1 WO2016121600A1 PCT/JP2016/051584 JP2016051584W WO2016121600A1 WO 2016121600 A1 WO2016121600 A1 WO 2016121600A1 JP 2016051584 W JP2016051584 W JP 2016051584W WO 2016121600 A1 WO2016121600 A1 WO 2016121600A1
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D69/00—Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
- B01D69/12—Composite membranes; Ultra-thin membranes
- B01D69/1213—Laminated layers
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D63/00—Apparatus in general for separation processes using semi-permeable membranes
- B01D63/10—Spiral-wound membrane modules
- B01D63/107—Specific properties of the central tube or the permeate channel
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D65/00—Accessories or auxiliary operations, in general, for separation processes or apparatus using semi-permeable membranes
- B01D65/10—Testing of membranes or membrane apparatus; Detecting or repairing leaks
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D67/00—Processes specially adapted for manufacturing semi-permeable membranes for separation processes or apparatus
- B01D67/0002—Organic membrane manufacture
- B01D67/0006—Organic membrane manufacture by chemical reactions
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D67/00—Processes specially adapted for manufacturing semi-permeable membranes for separation processes or apparatus
- B01D67/0081—After-treatment of organic or inorganic membranes
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D69/00—Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
- B01D69/02—Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor characterised by their properties
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D69/00—Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
- B01D69/10—Supported membranes; Membrane supports
- B01D69/107—Organic support material
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D69/00—Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
- B01D69/12—Composite membranes; Ultra-thin membranes
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D69/00—Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
- B01D69/12—Composite membranes; Ultra-thin membranes
- B01D69/125—In situ manufacturing by polymerisation, polycondensation, cross-linking or chemical reaction
- B01D69/1251—In situ manufacturing by polymerisation, polycondensation, cross-linking or chemical reaction by interfacial polymerisation
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D71/00—Semi-permeable membranes for separation processes or apparatus characterised by the material; Manufacturing processes specially adapted therefor
- B01D71/06—Organic material
- B01D71/56—Polyamides, e.g. polyester-amides
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G69/00—Macromolecular compounds obtained by reactions forming a carboxylic amide link in the main chain of the macromolecule
- C08G69/02—Polyamides derived from amino-carboxylic acids or from polyamines and polycarboxylic acids
- C08G69/26—Polyamides derived from amino-carboxylic acids or from polyamines and polycarboxylic acids derived from polyamines and polycarboxylic acids
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G73/00—Macromolecular compounds obtained by reactions forming a linkage containing nitrogen with or without oxygen or carbon in the main chain of the macromolecule, not provided for in groups C08G12/00 - C08G71/00
- C08G73/06—Polycondensates having nitrogen-containing heterocyclic rings in the main chain of the macromolecule
- C08G73/0622—Polycondensates containing six-membered rings, not condensed with other rings, with nitrogen atoms as the only ring hetero atoms
- C08G73/0633—Polycondensates containing six-membered rings, not condensed with other rings, with nitrogen atoms as the only ring hetero atoms with only two nitrogen atoms in the ring
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D2323/00—Details relating to membrane preparation
- B01D2323/08—Specific temperatures applied
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D2323/00—Details relating to membrane preparation
- B01D2323/219—Specific solvent system
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D2323/00—Details relating to membrane preparation
- B01D2323/40—Details relating to membrane preparation in-situ membrane formation
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D2325/00—Details relating to properties of membranes
- B01D2325/24—Mechanical properties, e.g. strength
Definitions
- the present invention relates to a composite semipermeable membrane in which a skin layer containing a polyamide-based resin is formed on the surface of a porous support, a spiral separation membrane element using the composite semipermeable membrane, and a method for producing the same.
- a composite semipermeable membrane and spiral separation membrane element is suitable for the production of ultrapure water, desalination of brine or seawater, etc., and from stains that cause pollution such as dyed wastewater and electrodeposition paint wastewater, It can contribute to the closure of wastewater by removing and collecting the pollution sources or effective substances contained in it. Moreover, it can be used for advanced treatments such as concentration of active ingredients in food applications and removal of harmful components in water purification and sewage applications. It can also be used for wastewater treatment in oil fields, shale gas fields, and the like.
- Composite semipermeable membranes are called RO (reverse osmosis) membranes, NF (nanofiltration) membranes, and FO (forward osmosis) membranes depending on their filtration performance and treatment methods.
- RO reverse osmosis
- NF nanofiltration
- FO forward osmosis
- Patent Literature a composite semipermeable membrane in which a skin layer containing a polyamide resin obtained by interfacial polymerization of a polyfunctional amine and a polyfunctional acid halide is formed on a porous support.
- the composite semipermeable membrane is usually processed into a spiral separation membrane element and used for water treatment or the like.
- a supply-side flow channel material that guides the supply-side fluid to the separation membrane surface
- a separation membrane that separates the supply-side fluid
- a permeate-side flow that passes through the separation membrane and guides the permeation-side fluid separated from the supply-side fluid to the central tube
- Patent Documents 2 and 3 A spiral type separation membrane element in which a unit made of road material is wound around a perforated central tube is known.
- the spiral separation membrane element is often used in areas with high temperatures. Further, since the manufactured spiral separation membrane element is usually transported by ship, it is exposed to a high temperature environment near the equator. In addition, when the spiral separation membrane element is exposed to a high temperature environment for a long time, there is a problem that water permeability is lowered. Therefore, it is necessary to store the spiral separation membrane element in a region where the temperature is high, or to transport the spiral separation membrane element while refrigerated when transporting by ship. However, if the spiral separation membrane element is stored in a refrigerated state, the cost increases. Therefore, it has been desired to develop a spiral separation membrane element that does not need to be stored in a refrigerated state.
- Patent Document 4 describes that a polyamide thin film is brought into contact with an aqueous solution at a temperature of 40 to 100 ° C. in order to obtain a composite reverse osmosis membrane having excellent water permeability, organic matter blocking performance and salt blocking performance. .
- Patent Document 5 describes that the membrane is heated in water at 40 to 100 ° C. for 30 seconds to 24 hours in order to reduce salt passage.
- the crosslinked polyamide thin film layer is subjected to a heat treatment within a range of 60 to 100 ° C. for 15 minutes or more. Is described.
- the present invention provides a composite semipermeable membrane in which water permeability is not easily lowered even when exposed to a high temperature environment for a long period of time, a spiral separation membrane element using the composite semipermeable membrane, and a method for producing the same The purpose is to do.
- Another object of the present invention is to provide a method for evaluating the water permeation performance of a composite semipermeable membrane, which evaluates whether the water permeability of the composite semipermeable membrane is likely to be reduced by heat by a simple evaluation method.
- the skin layer has an elastic modulus calculated by a force curve measurement with an underwater AFM of 100 MPa or more.
- the present invention relates to a composite semipermeable membrane characterized by that.
- the composite semipermeable membrane is used in the presence of water, but the physical properties of the skin layer in water, which is the actual usage environment, has not been studied so far.
- the present inventor has examined the physical properties of the skin layer in water by adopting a new analysis method.
- the elastic modulus calculated by the force curve measurement with an underwater AFM is 100 MPa.
- a composite semipermeable membrane is obtained in which water permeability is unlikely to deteriorate even when exposed to a high temperature environment (40 ° C. or higher) for a long time (300 days or longer). I found out.
- the polyamide-based resin preferably contains a polymer of piperazine and trimesic acid chloride.
- the present invention also provides a skin layer containing a polyamide resin by contacting an amine solution containing a polyfunctional amine component with an organic solution containing a polyfunctional acid halide component on the porous support.
- a composite semipermeable membrane including the step of forming The contact is ethanol, propanol, butanol, butyl alcohol, 1-pentanol, 2-pentanol, t-amyl alcohol, isoamyl alcohol, isobutyl alcohol, isopropyl alcohol, undecanol, 2-ethylbutanol, 2-ethylhexanol, octanol , Cyclohexanol, tetrahydrofurfuryl alcohol, t-butanol, benzyl alcohol, 4-methyl-2-pentanol, 3-methyl-2-butanol, pentyl alcohol, allyl alcohol, anisole, ethyl isoamyl ether, ethyl
- the skin layer is subjected to a hot water flow treatment to form a skin layer having an elastic modulus calculated by a force curve measurement with an underwater AFM of 100 MPa or more.
- a hot water flow treatment to form a skin layer having an elastic modulus calculated by a force curve measurement with an underwater AFM of 100 MPa or more.
- the initial water permeability of the composite semipermeable membrane is improved by forming a skin layer in the presence of a substance having a solubility parameter of 8 to 14 (cal / cm 3 ) 1/2 , thereby This compensates for the deterioration of the water permeability of the composite semipermeable membrane caused by subjecting the skin layer to hot water flow treatment.
- the reason why the elastic modulus of the skin layer in the force curve measurement with the underwater AFM becomes 100 MPa or more by performing the warm water flow treatment on the skin layer is not clear, but the crosslinked structure of the polyamide-based resin by the warm water flow treatment This is thought to be due to shrinkage and regular arrangement.
- the warm water flow treatment is preferably performed for 1 to 5 hours using hot water of 40 to 60 ° C.
- the elastic modulus of the skin layer tends not to be 100 MPa or more.
- the temperature of the hot water exceeds 60 ° C.
- the treatment time is less than 1 hour
- the elastic modulus of the skin layer tends not to be 100 MPa or more.
- even if the treatment time exceeds 5 hours the effect is not affected. It is disadvantageous.
- the polyfunctional amine component is piperazine and the polyfunctional acid halide component is trimesic acid chloride.
- the present invention is obtained by the above production method, wherein the skin layer is a composite semipermeable membrane having an elastic modulus calculated by a force curve measurement with an underwater AFM of 100 MPa or more, and a spiral using the composite semipermeable membrane.
- the present invention relates to a mold separation membrane element.
- the present invention also provides a skin layer containing a polyamide resin by contacting an amine solution containing a polyfunctional amine component with an organic solution containing a polyfunctional acid halide component on the porous support.
- the contact is ethanol, propanol, butanol, butyl alcohol, 1-pentanol, 2-pentanol, t-amyl alcohol, isoamyl alcohol, isobutyl alcohol, isopropyl alcohol, undecanol, 2-ethylbutanol, 2-ethylhexanol, octanol , Cyclohexanol, tetrahydrofurfuryl alcohol, t-butanol, benzyl alcohol, 4-methyl-2-pentanol, 3-methyl-2-butanol, pentyl alcohol, allyl alcohol
- a spiral separation membrane element having a built-in composite semipermeable membrane having a skin layer with an elastic modulus of 100 MPa or more calculated by force curve measurement with an underwater AFM is provided. It can be obtained with high production efficiency.
- the purpose of subjecting the skin layer to hot water flow treatment and the purpose of forming the skin layer in the presence of a substance having a solubility parameter of 8 to 14 (cal / cm 3 ) 1/2 are as described above.
- the warm water flow treatment is preferably performed for 1 to 5 hours using hot water of 40 to 60 ° C.
- the elastic modulus of the skin layer tends not to be 100 MPa or more.
- the temperature of the hot water exceeds 60 ° C.
- the water permeability of the spiral separation membrane element There is a tendency for the properties to be greatly reduced.
- the treatment time is less than 1 hour
- the elastic modulus of the skin layer tends not to be 100 MPa or more.
- even if the treatment time exceeds 5 hours the effect is not affected. It is disadvantageous.
- the polyfunctional amine component is piperazine and the polyfunctional acid halide component is trimesic acid chloride.
- the present invention also relates to a spiral-type separation membrane element obtained by the above production method, wherein the skin layer has an elastic modulus calculated by force curve measurement with an underwater AFM of 100 MPa or more.
- the present invention calculates the elastic modulus of the skin layer of a composite semipermeable membrane having a skin layer containing a polyamide-based resin on a porous support by force curve measurement with an underwater AFM.
- the composite semipermeable membrane is evaluated as being less likely to be reduced in water permeability by heat.
- the composite semipermeable membrane is The present invention relates to a method for evaluating the water permeation performance of a composite semipermeable membrane, which evaluates that water permeability tends to be reduced by heat.
- the composite semipermeable membrane and spiral separation membrane element of the present invention are less likely to have poor water permeability even when exposed to a high temperature environment for a long period of time. Therefore, the composite semipermeable membrane and spiral separation membrane element of the present invention need not be refrigerated during storage or transportation. Thereby, the operation cost of the water treatment facility or the transport cost to the water treatment facility can be reduced. Further, according to the method for evaluating the water permeability of the composite semipermeable membrane of the present invention, it is possible to evaluate in advance whether or not the water permeability of the composite semipermeable membrane is likely to be reduced by heat by a simple evaluation method. it can.
- the composite semipermeable membrane of the present invention has a skin layer containing a polyamide-based resin on a porous support.
- the polyamide resin is obtained by reacting a polyfunctional amine component and a polyfunctional acid halide component.
- the polyfunctional amine component is a polyfunctional amine having two or more reactive amino groups, and examples thereof include aromatic, aliphatic and alicyclic polyfunctional amines.
- aromatic polyfunctional amines include m-phenylenediamine, p-phenylenediamine, o-phenylenediamine, 1,3,5-triaminobenzene, 1,2,4-triaminobenzene, and 3,5-diamino.
- aromatic polyfunctional amines include m-phenylenediamine, p-phenylenediamine, o-phenylenediamine, 1,3,5-triaminobenzene, 1,2,4-triaminobenzene, and 3,5-diamino.
- examples include benzoic acid, 2,4-diaminotoluene, 2,6-diaminotoluene, N, N′-dimethyl-m-phenylenediamine, 2,4-diaminoanisole, amidole, xylylenediamine and the like.
- Examples of the aliphatic polyfunctional amine include ethylenediamine, propylenediamine, tris (2-aminoethyl) amine, and n-phenyl-ethylenediamine.
- Examples of the alicyclic polyfunctional amine include 1,3-diaminocyclohexane, 1,2-diaminocyclohexane, 1,4-diaminocyclohexane, piperazine, 2,5-dimethylpiperazine, 4-aminomethylpiperazine, and the like.
- polyfunctional amines may be used alone or in combination of two or more.
- piperazine, 2,5-dimethylpiperazine, or 4-aminomethylpiperazine is preferably used, and piperazine is more preferably used from the viewpoint of reactivity with the polyfunctional acid halide component.
- the polyfunctional acid halide component is a polyfunctional acid halide having two or more reactive carbonyl groups.
- polyfunctional acid halides include aromatic, aliphatic and alicyclic polyfunctional acid halides.
- aromatic polyfunctional acid halides include trimesic acid trichloride, terephthalic acid dichloride, isophthalic acid dichloride, biphenyl dicarboxylic acid dichloride, naphthalene dicarboxylic acid dichloride, benzene trisulfonic acid trichloride, benzene disulfonic acid dichloride, and chlorosulfonylbenzene dicarboxylic acid.
- An acid dichloride etc. are mentioned.
- Examples of the aliphatic polyfunctional acid halide include propanedicarboxylic acid dichloride, butanedicarboxylic acid dichloride, pentanedicarboxylic acid dichloride, propanetricarboxylic acid trichloride, butanetricarboxylic acid trichloride, pentanetricarboxylic acid trichloride, glutaryl halide, adipoid Examples include luhalides.
- Examples of the alicyclic polyfunctional acid halide include cyclopropane tricarboxylic acid trichloride, cyclobutane tetracarboxylic acid tetrachloride, cyclopentane tricarboxylic acid trichloride, cyclopentane tetracarboxylic acid tetrachloride, cyclohexane tricarboxylic acid trichloride, and tetrahydrofuran.
- Examples thereof include tetracarboxylic acid tetrachloride, cyclopentane dicarboxylic acid dichloride, cyclobutane dicarboxylic acid dichloride, cyclohexane dicarboxylic acid dichloride, and tetrahydrofurandicarboxylic acid dichloride.
- polyfunctional acid halides may be used alone or in combination of two or more.
- an aromatic polyfunctional acid halide it is preferable to use an aromatic polyfunctional acid halide.
- trimesic acid trichloride is preferably used.
- a polymer such as polyvinyl alcohol, polyvinyl pyrrolidone or polyacrylic acid, a polyhydric alcohol such as sorbitol or glycerin may be copolymerized.
- the porous support for supporting the skin layer is not particularly limited as long as it can support the skin layer, and usually an ultrafiltration membrane having micropores with an average pore diameter of about 10 to 500 mm is preferably used.
- the material for forming the porous support include polysulfone, polyarylethersulfone such as polyethersulfone, polyimide, polyvinylidene fluoride, and the like. Polysulfone and polyarylethersulfone are preferably used from the viewpoint of stability.
- the thickness of such a porous support is usually about 25 to 125 ⁇ m, preferably about 40 to 75 ⁇ m, but is not necessarily limited thereto.
- the porous support is reinforced by backing with a base material such as a woven fabric or a non-woven fabric.
- the method for forming the skin layer containing the polyamide-based resin on the surface of the porous support is not particularly limited, and any known method can be used.
- an interfacial condensation method is a method in which a skin layer is formed by bringing an amine solution containing a polyfunctional amine component into contact with an organic solution containing a polyfunctional acid halide component to cause interfacial polymerization.
- a polyamide resin skin layer is directly formed on a porous support by interfacial polymerization on the porous support. Details of the conditions of the interfacial condensation method are described in JP-A-58-24303 and JP-A-1-180208, and those known techniques can be appropriately employed.
- a method of forming a skin layer by bringing an amine solution containing a polyfunctional amine component and an organic solution containing a polyfunctional acid halide component into contact with each other on a porous support to cause interfacial polymerization is preferable.
- the concentration of the polyfunctional amine component in the amine solution is not particularly limited, but is preferably 0.1 to 5% by weight, and more preferably 0.5 to 4% by weight.
- concentration of the polyfunctional amine component is less than 0.1% by weight, defects such as pinholes are likely to occur in the skin layer, and the salt blocking performance tends to decrease.
- concentration of the polyfunctional amine component exceeds 5% by weight, the polyfunctional amine component is likely to penetrate into the porous support, or the film thickness becomes too thick to increase the permeation resistance and increase the permeation flow. The bundle tends to decrease.
- the concentration of the polyfunctional acid halide component in the organic solution is not particularly limited, but is preferably 0.01 to 5% by weight, more preferably 0.05 to 3% by weight. If the concentration of the polyfunctional acid halide component is less than 0.01% by weight, the unreacted polyfunctional amine component tends to remain, or defects such as pinholes are likely to occur in the skin layer, resulting in a decrease in salt blocking performance. Tend to. On the other hand, when the concentration of the polyfunctional acid halide component exceeds 5% by weight, the unreacted polyfunctional acid halide component tends to remain, or the film thickness becomes too thick to increase the permeation resistance, thereby increasing the permeation flux. It tends to decrease.
- Examples of the solvent for the amine solution include water, alcohol (for example, ethanol, isopropyl alcohol, ethylene glycol, and the like), and a mixed solvent of water and alcohol.
- the solvent of the organic solution is not particularly limited as long as it has low solubility in water, does not degrade the porous support, and dissolves the polyfunctional acid halide component.
- saturated hydrocarbons such as 1,2-halogenated hydrocarbons such as 1,1,2-trichlorotrifluoroethane.
- a saturated hydrocarbon or naphthenic solvent having a boiling point of 300 ° C. or lower, more preferably 200 ° C. or lower is preferable.
- the organic solvent may be used alone or as a mixed solvent of two or more.
- the amine solution and the organic solution are preferably contacted in the presence of a substance having a solubility parameter of 8 to 14 (cal / cm 3 ) 1/2 .
- the solubility parameter is the amount defined by ( ⁇ H / V) 1/2 (cal / cm 3 ) 1/2 when the heat of vaporization of the liquid is ⁇ Hcal / mol and the molar volume is Vcm 3 / mol.
- Examples of the substance having a solubility parameter of 8 to 14 (cal / cm 3 ) 1/2 include alcohols, ethers, ketones, esters, halogenated hydrocarbons, and sulfur-containing compounds.
- alcohols examples include ethanol, propanol, butanol, butyl alcohol, 1-pentanol, 2-pentanol, t-amyl alcohol, isoamyl alcohol, isobutyl alcohol, isopropyl alcohol, undecanol, 2-ethylbutanol, and 2-ethyl.
- ethers examples include anisole, ethyl isoamyl ether, ethyl-t-butyl ether, ethyl benzyl ether, crown ether, cresyl methyl ether, diisoamyl ether, diisopropyl ether, diethyl ether, dioxane, diglycidyl ether, cineol, diphenyl ether.
- ketones include ethyl butyyl ketone, diacetone alcohol, diisobutyl ketone, cyclohexanone, 2-heptanone, methyl isobutyl ketone, methyl ethyl ketone, and methylcyclohexane.
- esters examples include methyl formate, ethyl formate, propyl formate, butyl formate, isobutyl formate, isoamyl formate, methyl acetate, ethyl acetate, propyl acetate, butyl acetate, isobutyl acetate, and amyl acetate.
- halogenated hydrocarbons examples include allyl chloride, amyl chloride, dichloromethane, dichloroethane and the like.
- sulfur-containing compounds include dimethyl sulfoxide, sulfolane, thiolane and the like.
- alcohols and ethers are particularly preferable. These may be used alone or in combination of two or more.
- a substance having a solubility parameter of 8 to 14 (cal / cm 3 ) 1/2 may be added to an amine solution, an organic solution, or both solutions. Further, the porous support may be impregnated with the substance in advance. Moreover, you may make an amine solution and an organic solution contact on a porous support body in the gas atmosphere of the said substance.
- the addition amount is preferably 10 to 50% by weight. If it is less than 10% by weight, the effect of increasing the permeation flux is insufficient, and if it exceeds 50% by weight, the rejection rate tends to decrease.
- the addition amount is preferably 0.001 to 10% by weight. If it is less than 0.001% by weight, the effect of increasing the permeation flux is insufficient, and if it exceeds 10% by weight, the rejection rate tends to decrease.
- additives can be added to the amine solution or the organic solution for the purpose of facilitating film formation or improving the performance of the resulting composite semipermeable membrane.
- the additive include surfactants such as sodium dodecylbenzenesulfonate, sodium dodecylsulfate, and sodium laurylsulfate, sodium hydroxide that removes hydrogen halide generated by polymerization, trisodium phosphate, and triethylamine. And basic compounds, acylation catalysts, and the like.
- the time from application of the amine solution on the porous support to application of the organic solution depends on the composition of the amine solution, the viscosity, and the pore size of the surface layer of the porous support, but is 15 seconds or less. It is preferable that it is 5 seconds or less. If the application interval of the solution exceeds 15 seconds, the amine solution may penetrate and diffuse deep inside the porous support, and a large amount of unreacted polyfunctional amine component may remain in the porous support. . Further, the unreacted polyfunctional amine component that has penetrated deep inside the porous support tends to be difficult to remove even in the subsequent membrane cleaning treatment. In addition, you may remove an excess amine solution after coat
- the heating temperature is more preferably 70 to 200 ° C., particularly preferably 100 to 150 ° C.
- the heating time is preferably about 30 seconds to 10 minutes, more preferably about 40 seconds to 7 minutes.
- the thickness of the skin layer formed on the porous support is not particularly limited, but is usually about 0.05 to 2 ⁇ m, preferably 0.1 to 1 ⁇ m.
- the skin layer is subjected to warm water flow treatment.
- the temperature of the hot water used for the hot water flow treatment is not particularly limited, but is usually about 40 to 65 ° C., preferably 40 to 60 ° C.
- the time for the hot water flow treatment is not particularly limited, but is preferably 1 to 5 hours, and more preferably 3 to 5 hours.
- the hot water flow treatment may be performed on a membrane-shaped composite semipermeable membrane, or may be performed on a spiral separation membrane element obtained by processing the composite semipermeable membrane into a spiral shape.
- Spiral separation membrane elements for example, stack a supply-side channel material with a composite semipermeable membrane folded in two and a permeate-side channel material to mix the supply-side fluid and permeate-side fluid.
- a separation membrane unit is manufactured by applying an adhesive for forming a sealing portion to be prevented to the periphery (three sides) of the composite semipermeable membrane, and one or more separation membrane units are spirally formed around the central tube. And is further manufactured by sealing the periphery of the separation membrane unit.
- the skin layer obtained by the above manufacturing method has an elastic modulus of 100 MPa or more calculated by a force curve measurement with an underwater AFM.
- the elastic modulus is preferably 110 MPa or more, more preferably 130 MPa or more, and further preferably 150 MPa or more.
- the calculation of the elastic modulus of the skin layer by the force curve measurement with the underwater AFM is performed by the method described in the examples.
- the water permeability of the composite semipermeable membrane is likely to be lowered when exposed to a high temperature environment for a long period of time based on the value of the elastic modulus of the skin layer calculated by the force curve measurement with the underwater AFM.
- the elastic modulus of the skin layer of the composite semipermeable membrane is calculated by force curve measurement with an underwater AFM, and when the obtained elastic modulus value is 100 MPa or more, the composite semipermeable membrane is heated.
- the composite semipermeable membrane can be evaluated as being easily deteriorated in water permeability by heat.
- the sample 1 is moved in the vertical direction, the spherical probe 6 is pushed into the skin layer of the sample 1 while applying a load, and the deflection or warpage (displacement) of the cantilever 7 at the time of separation is defined as the displacement of the laser beam 8.
- the force curve was measured by detecting with a photodiode, and converted to load and skin layer deformation using the program attached to the device. A region having a measurement area of 90 ⁇ m ⁇ 90 ⁇ m was divided into 20 ⁇ 20, and a force curve was measured at a total of 400 points. And the average value of the deformation amount of the skin layer when the load was 3 ⁇ N was obtained.
- the measurement apparatus and measurement conditions are as follows.
- Measurement device MFP-3D (manufactured by Asylum Technology)
- Cantilever Spring constant 40N / m -Spherical probe: manufactured by Nanosensors, radius of curvature of the tip 0.4 ⁇ m, Silicon (100), Poisson's ratio 0.17, elastic modulus 150 GPa
- Measurement environment Ultra pure water
- the elastic modulus E sample (MPa) of the skin layer is obtained by substituting each numerical value into the following Hertz elastic contact theoretical formula.
- Comparative Example 1 An amine solution was prepared by dissolving 3.6% by weight of piperazine heptahydrate, 0.15% by weight of sodium lauryl sulfate, 6% by weight of camphorsulfonic acid, and 1.48% by weight of sodium hydroxide in water. And after making an amine solution contact the surface of a porous support body, the excess amine solution was removed. Thereafter, the amine solution on the surface of the porous support was brought into contact with an organic solution in which 0.42% by weight of trimesic acid chloride and 0.5% by weight of t-butanol were dissolved in IP1016 (boiling point 106 ° C.). Then, the excess organic solution was removed, and it hold
- Example 1 The composite semipermeable membrane produced in Comparative Example 1 was passed through 40 ° C. warm water for 5 hours, and the skin layer was subjected to warm water passing treatment.
- Example 2 The composite semipermeable membrane produced in Comparative Example 1 was passed through warm water at 50 ° C. for 5 hours, and the skin layer was subjected to warm water passing treatment.
- Example 3 The composite semipermeable membrane produced in Comparative Example 1 was allowed to pass hot water at 60 ° C. for 5 hours, and the skin layer was subjected to hot water flow treatment.
- Example 4 A spiral separation membrane element was produced using the composite semipermeable membrane produced in Comparative Example 1. Hot water at 60 ° C. was passed through the produced spiral separation membrane element for 3 hours, and the skin layer was subjected to hot water passage treatment. In the measurement of the elastic modulus and permeation flux, the composite semipermeable membrane was taken out from the element and measured.
- the composite semipermeable membrane and spiral separation membrane element of the present invention are suitable for production of ultrapure water, desalination of brackish water or seawater, etc., and stains that cause pollution such as dyed wastewater and electrodeposition paint wastewater. Therefore, it is possible to remove / recover the pollution source or the effective substance contained therein and contribute to the closure of the waste water. Moreover, it can be used for advanced treatments such as concentration of active ingredients in food applications and removal of harmful components in water purification and sewage applications. It can also be used for wastewater treatment in oil fields, shale gas fields, and the like.
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Abstract
Description
前記接触は、エタノール、プロパノール、ブタノール、ブチルアルコール、1-ペンタノール、2-ペンタノール、t-アミルアルコール、イソアミルアルコール、イソブチルアルコール、イソプロピルアルコール、ウンデカノール、2-エチルブタノール、2-エチルヘキサノール、オクタノール、シクロヘキサノール、テトラヒドロフルフリルアルコール、t-ブタノール、ベンジルアルコール、4-メチル-2-ペンタノール、3-メチル-2-ブタノール、ペンチルアルコール、アリルアルコール、アニソール、エチルイソアミルエーテル、エチル-t-ブチルエーテル、エチルベンジルエーテル、クラウンエーテル、クレジルメチルエーテル、ジイソアミルエーテル、ジイソプロピルエーテル、ジグリシジルエーテル、シネオール、ジフェニルエーテル、ジブチルエーテル、ジプロピルエーテル、ジベンジルエーテル、ジメチルエーテル、テトラヒドロピラン、トリオキサン、ジクロロエチルエーテル、ブチルフェニルエーテル、フラン、モノジクロロジエチルエーテル、エチレングリコールジメチルエーテル、エチレングリコールジエチルエーテル、エチレングリコールジブチルエーテル、エチレングリコールモノメチルエーテル、エチレングリコールモノエチルエーテル、エチレングリコールモノブチルエーテル、ジエチレングリコールジメチルエーテル、ジエチレングリコールジエチルエーテル、ジエチレングリコールジブチルエーテル、ジエチレングリコールモノメチルエーテル、ジエチレングリコールモノエチルエーテル、ジエチレングリコールモノブチルエーテル、ジエチレンクロロヒドリンから選ばれる少なくとも一つの溶解度パラメーターが8~14(cal/cm3)1/2の物質の存在下で行われ、かつ
スキン層を多孔性支持体の表面に形成した後、スキン層に温水通水処理を施す工程を含むことを特徴とする複合半透膜の製造方法、に関する。
前記接触は、エタノール、プロパノール、ブタノール、ブチルアルコール、1-ペンタノール、2-ペンタノール、t-アミルアルコール、イソアミルアルコール、イソブチルアルコール、イソプロピルアルコール、ウンデカノール、2-エチルブタノール、2-エチルヘキサノール、オクタノール、シクロヘキサノール、テトラヒドロフルフリルアルコール、t-ブタノール、ベンジルアルコール、4-メチル-2-ペンタノール、3-メチル-2-ブタノール、ペンチルアルコール、アリルアルコール、アニソール、エチルイソアミルエーテル、エチル-t-ブチルエーテル、エチルベンジルエーテル、クラウンエーテル、クレジルメチルエーテル、ジイソアミルエーテル、ジイソプロピルエーテル、ジグリシジルエーテル、シネオール、ジフェニルエーテル、ジブチルエーテル、ジプロピルエーテル、ジベンジルエーテル、ジメチルエーテル、テトラヒドロピラン、トリオキサン、ジクロロエチルエーテル、ブチルフェニルエーテル、フラン、モノジクロロジエチルエーテル、エチレングリコールジメチルエーテル、エチレングリコールジエチルエーテル、エチレングリコールジブチルエーテル、エチレングリコールモノメチルエーテル、エチレングリコールモノエチルエーテル、エチレングリコールモノブチルエーテル、ジエチレングリコールジメチルエーテル、ジエチレングリコールジエチルエーテル、ジエチレングリコールジブチルエーテル、ジエチレングリコールモノメチルエーテル、ジエチレングリコールモノエチルエーテル、ジエチレングリコールモノブチルエーテル、ジエチレンクロロヒドリンから選ばれる少なくとも一つの溶解度パラメーターが8~14(cal/cm3)1/2の物質の存在下で行われ、かつ
複合半透膜をスパイラル状に加工した後、スキン層に温水通水処理を施す工程を含むことを特徴とするスパイラル型分離膜エレメントの製造方法、に関する。
(水中AFMでのフォースカーブ測定によるスキン層の弾性率の算出)
作製したウェット状態の複合半透膜を2cm×2cmの大きさに切断したサンプル1を、アサイラムテクノロジー社製の液中測定用固定治具(Closed Fluid Cell)、固定ピン2、及び抑え板3を用いて、図1に示すように、固定治具のガラス板4上に固定した。その後、サンプル1上に超純水5を約100μl滴下した。
そして、サンプル1を垂直方向に移動させて、サンプル1のスキン層に、荷重をかけながら球形プローブ6を押し込み、そして引き離した際のカンチレバー7のたわみ又はそり(変位)をレーザー光8の変位としてフォトダイオードで検出してフォースカーブを測定し、装置付属のプログラムを用いて荷重とスキン層変形量に変換した。測定面積90μm×90μmの領域を20×20分割し、合計400点でフォースカーブを測定した。そして、荷重3μNの時のスキン層変形量の平均値を求めた。
測定装置及び測定条件は以下のとおりである。
・測定装置:MFP-3D(アサイラムテクノロジー社製)
・カンチレバー:ばね定数40N/m
・球形プローブ:ナノセンサーズ社製、先端曲率半径0.4μm、Silicon(100)、ポアソン比0.17、弾性率150GPa
・測定環境:超純水中
・押し込み速度、引き離し速度:4.0μm/s
・最大荷重:3μN
・測定n数:400
スキン層の弾性率Esample(MPa)は、下記ヘルツ弾性接触理論式に各数値を代入することにより求められる。
h=〔3/4[{(1-νprobe 2)/Eprobe}+{(1-νsample 2)/Esample}]〕2/3F2/3r-1/3
h:スキン層変形量(平均値)
νprobe:プローブのポアソン比0.17
νsample:サンプルのポアソン比0.35(樹脂の代表値として0.35を採用(固定値))
Eprobe:プローブの弾性率150GPa
Esample:サンプルの弾性率(MPa)
F:荷重3μN
r:プローブの先端曲率半径0.4μm
作製した複合半透膜を所定の形状、サイズに切断したサンプルを平膜評価用のセルにセットする。0.2%のMgSO4を含みかつNaOHを用いてpH6.5~7.0に調整した水溶液を25℃で膜の供給側と透過側に0.9MPaの差圧を与えて膜に接触させる。この操作によって得られた透過水の透過速度を測定し、膜面積1平方メートル当たりの1日の透水量(立方メートル)から透過流束X(m3/m2・d)を算出した。当該サンプルを40℃の環境下で7日間保管し、その後、同様の方法で透過流束Yを算出した。透過流束の低下率は下記式により算出した。
透過流束の低下率(%)=〔(X-Y)/X〕×100
ピペラジン7水和物3.6重量%、ラウリル硫酸ナトリウム0.15重量%、カンファースルホン酸6重量%、及び水酸化ナトリウム1.48重量%を水に溶解させてアミン溶液を調製した。そして、アミン溶液を多孔性支持体の表面に接触させた後、余分なアミン溶液を除去した。その後、多孔性支持体の表面のアミン溶液と、トリメシン酸クロライド0.42重量%及びt-ブタノール0.5重量%をIP1016(沸点106℃)に溶解させた有機溶液とを接触させた。その後、余分な有機溶液を除去し、120℃の熱風乾燥機中で3分間保持して、多孔性支持体上にポリアミド系樹脂を含むスキン層を形成して複合半透膜を作製した。
比較例1で作製した複合半透膜に、40℃の温水を5時間通水して、スキン層に温水通水処理を施した。
比較例1で作製した複合半透膜に、50℃の温水を5時間通水して、スキン層に温水通水処理を施した。
比較例1で作製した複合半透膜に、60℃の温水を5時間通水して、スキン層に温水通水処理を施した。
比較例1で作製した複合半透膜を用いてスパイラル型分離膜エレメントを作製した。作製したスパイラル型分離膜エレメントに、60℃の温水を3時間通水して、スキン層に温水通水処理を施した。なお、前記弾性率及び透過流束の測定においては、エレメントから複合半透膜を取り出して測定した。
2:固定ピン
3:抑え板
4:固定治具のガラス板
5:超純水
6:球形プローブ
7:カンチレバー
8:レーザー光
Claims (12)
- 多孔性支持体上にポリアミド系樹脂を含むスキン層を有する複合半透膜において、前記スキン層は、水中AFMでのフォースカーブ測定により算出される弾性率が100MPa以上であることを特徴とする複合半透膜。
- ポリアミド系樹脂は、ピペラジンとトリメシン酸クロライドとの重合体を含む請求項1記載の複合半透膜。
- 多官能アミン成分を含むアミン溶液と多官能酸ハライド成分を含む有機溶液とを多孔性支持体上で接触させて、ポリアミド系樹脂を含むスキン層を多孔性支持体の表面に形成する工程を含む複合半透膜の製造方法において、
前記接触は、エタノール、プロパノール、ブタノール、ブチルアルコール、1-ペンタノール、2-ペンタノール、t-アミルアルコール、イソアミルアルコール、イソブチルアルコール、イソプロピルアルコール、ウンデカノール、2-エチルブタノール、2-エチルヘキサノール、オクタノール、シクロヘキサノール、テトラヒドロフルフリルアルコール、t-ブタノール、ベンジルアルコール、4-メチル-2-ペンタノール、3-メチル-2-ブタノール、ペンチルアルコール、アリルアルコール、アニソール、エチルイソアミルエーテル、エチル-t-ブチルエーテル、エチルベンジルエーテル、クラウンエーテル、クレジルメチルエーテル、ジイソアミルエーテル、ジイソプロピルエーテル、ジグリシジルエーテル、シネオール、ジフェニルエーテル、ジブチルエーテル、ジプロピルエーテル、ジベンジルエーテル、ジメチルエーテル、テトラヒドロピラン、トリオキサン、ジクロロエチルエーテル、ブチルフェニルエーテル、フラン、モノジクロロジエチルエーテル、エチレングリコールジメチルエーテル、エチレングリコールジエチルエーテル、エチレングリコールジブチルエーテル、エチレングリコールモノメチルエーテル、エチレングリコールモノエチルエーテル、エチレングリコールモノブチルエーテル、ジエチレングリコールジメチルエーテル、ジエチレングリコールジエチルエーテル、ジエチレングリコールジブチルエーテル、ジエチレングリコールモノメチルエーテル、ジエチレングリコールモノエチルエーテル、ジエチレングリコールモノブチルエーテル、ジエチレンクロロヒドリンから選ばれる少なくとも一つの溶解度パラメーターが8~14(cal/cm3)1/2の物質の存在下で行われ、かつ
スキン層を多孔性支持体の表面に形成した後、スキン層に温水通水処理を施す工程を含むことを特徴とする複合半透膜の製造方法。 - 温水通水処理は、40~60℃の温水を用いて1~5時間行う請求項3記載の複合半透膜の製造方法。
- 多官能アミン成分がピペラジンであり、多官能酸ハライド成分がトリメシン酸クロライドである請求項3又は4記載の複合半透膜の製造方法。
- 請求項3~5のいずれかに記載の製造方法により得られ、スキン層は、水中AFMでのフォースカーブ測定により算出される弾性率が100MPa以上である複合半透膜。
- 請求項1、2又は6記載の複合半透膜を用いたスパイラル型分離膜エレメント。
- 多官能アミン成分を含むアミン溶液と多官能酸ハライド成分を含む有機溶液とを多孔性支持体上で接触させて、ポリアミド系樹脂を含むスキン層を多孔性支持体の表面に形成して複合半透膜を作製する工程、及び複合半透膜をスパイラル状に加工する工程を含むスパイラル型分離膜エレメントの製造方法において、
前記接触は、エタノール、プロパノール、ブタノール、ブチルアルコール、1-ペンタノール、2-ペンタノール、t-アミルアルコール、イソアミルアルコール、イソブチルアルコール、イソプロピルアルコール、ウンデカノール、2-エチルブタノール、2-エチルヘキサノール、オクタノール、シクロヘキサノール、テトラヒドロフルフリルアルコール、t-ブタノール、ベンジルアルコール、4-メチル-2-ペンタノール、3-メチル-2-ブタノール、ペンチルアルコール、アリルアルコール、アニソール、エチルイソアミルエーテル、エチル-t-ブチルエーテル、エチルベンジルエーテル、クラウンエーテル、クレジルメチルエーテル、ジイソアミルエーテル、ジイソプロピルエーテル、ジグリシジルエーテル、シネオール、ジフェニルエーテル、ジブチルエーテル、ジプロピルエーテル、ジベンジルエーテル、ジメチルエーテル、テトラヒドロピラン、トリオキサン、ジクロロエチルエーテル、ブチルフェニルエーテル、フラン、モノジクロロジエチルエーテル、エチレングリコールジメチルエーテル、エチレングリコールジエチルエーテル、エチレングリコールジブチルエーテル、エチレングリコールモノメチルエーテル、エチレングリコールモノエチルエーテル、エチレングリコールモノブチルエーテル、ジエチレングリコールジメチルエーテル、ジエチレングリコールジエチルエーテル、ジエチレングリコールジブチルエーテル、ジエチレングリコールモノメチルエーテル、ジエチレングリコールモノエチルエーテル、ジエチレングリコールモノブチルエーテル、ジエチレンクロロヒドリンから選ばれる少なくとも一つの溶解度パラメーターが8~14(cal/cm3)1/2の物質の存在下で行われ、かつ
複合半透膜をスパイラル状に加工した後、スキン層に温水通水処理を施す工程を含むことを特徴とするスパイラル型分離膜エレメントの製造方法。 - 温水通水処理は、40~60℃の温水を用いて1~5時間行う請求項8記載のスパイラル型分離膜エレメントの製造方法。
- 多官能アミン成分がピペラジンであり、多官能酸ハライド成分がトリメシン酸クロライドである請求項8又は9記載のスパイラル型分離膜エレメントの製造方法。
- 請求項8~10のいずれかに記載の製造方法により得られ、スキン層は、水中AFMでのフォースカーブ測定により算出される弾性率が100MPa以上であるスパイラル型分離膜エレメント。
- 多孔性支持体上にポリアミド系樹脂を含むスキン層を有する複合半透膜の前記スキン層の弾性率を水中AFMでのフォースカーブ測定により算出し、得られた弾性率の値が100MPa以上の場合には、当該複合半透膜は、熱によって水透過性が低下しにくいと評価し、得られた弾性率の値が100MPa未満の場合には、当該複合半透膜は、熱によって水透過性が低下しやすいと評価する、複合半透膜の水透過性能の評価方法。
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| WO2018052122A1 (ja) | 2016-09-16 | 2018-03-22 | 日東電工株式会社 | スパイラル型膜エレメント |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11213792B2 (en) * | 2017-09-29 | 2022-01-04 | Sumitomo Chemical Company, Limited | Spiral-wound type gas separation membrane element, gas separation membrane module, and gas separation device |
| KR102212128B1 (ko) | 2018-05-10 | 2021-02-17 | 주식회사 엘지화학 | 역삼투막, 이의 제조방법 및 수처리 모듈 |
| EP4081333A4 (en) * | 2019-12-27 | 2023-12-27 | Council of Scientific & Industrial Research | Highly selective ultrathin polymer nanofilm composite membrane and process for preparation thereof |
| KR20230121720A (ko) * | 2020-12-23 | 2023-08-21 | 미쯔비시 케미컬 주식회사 | 편광막 제조용 폴리비닐 알코올계 필름, 편광막 제조용 폴리비닐 알코올계 필름의 제조 방법, 편광막 |
| JP7072112B1 (ja) | 2021-11-05 | 2022-05-19 | 日東電工株式会社 | 複合半透膜、スパイラル型膜エレメント、水処理システム及び水処理方法 |
| CN113893713B (zh) * | 2021-12-13 | 2022-03-04 | 天津大学 | 一种高选择性锂镁分离膜的制备方法 |
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| WO2012033086A1 (ja) * | 2010-09-07 | 2012-03-15 | 東レ株式会社 | 分離膜、分離膜エレメントおよび分離膜の製造方法 |
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| JP3489922B2 (ja) * | 1994-12-22 | 2004-01-26 | 日東電工株式会社 | 高透過性複合逆浸透膜の製造方法 |
| JP3681214B2 (ja) * | 1996-03-21 | 2005-08-10 | 日東電工株式会社 | 高透過性複合逆浸透膜 |
| US5876602A (en) * | 1997-11-04 | 1999-03-02 | The Dow Chemical Company | Treatment of composite polyamide membranes to improve performance |
| JP5377452B2 (ja) * | 2009-10-16 | 2013-12-25 | 日東電工株式会社 | 複合半透膜の製造方法 |
| WO2014168584A1 (en) * | 2013-04-10 | 2014-10-16 | Nanyang Technological University | Nanofiltration membrane and method of manufacturing a nanofiltration membrane |
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2015
- 2015-01-29 JP JP2015015898A patent/JP6437835B2/ja active Active
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2016
- 2016-01-20 CN CN201680004035.XA patent/CN106999865A/zh active Pending
- 2016-01-20 KR KR1020177015145A patent/KR20170107427A/ko not_active Withdrawn
- 2016-01-20 US US15/545,111 patent/US20180001274A1/en not_active Abandoned
- 2016-01-20 WO PCT/JP2016/051584 patent/WO2016121600A1/ja not_active Ceased
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| JPH10165790A (ja) * | 1996-12-05 | 1998-06-23 | Nitto Denko Corp | 複合逆浸透膜の製造方法 |
| JP2005144211A (ja) * | 2003-11-11 | 2005-06-09 | Toray Ind Inc | 複合半透膜及びその製造方法ならびに流体分離素子の処理方法 |
| WO2012033086A1 (ja) * | 2010-09-07 | 2012-03-15 | 東レ株式会社 | 分離膜、分離膜エレメントおよび分離膜の製造方法 |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
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| WO2018052122A1 (ja) | 2016-09-16 | 2018-03-22 | 日東電工株式会社 | スパイラル型膜エレメント |
Also Published As
| Publication number | Publication date |
|---|---|
| KR20170107427A (ko) | 2017-09-25 |
| JP2016140777A (ja) | 2016-08-08 |
| CN106999865A (zh) | 2017-08-01 |
| US20180001274A1 (en) | 2018-01-04 |
| JP6437835B2 (ja) | 2018-12-12 |
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