Reverse osmosis membrane, manufacturing process for it and water treatment module

DE602019083432T2Active Publication Date: 2026-04-08NANOH2O CO LTD
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Patent Information

Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2019-05-09
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Existing reverse osmosis membranes face issues with mechanical strength and stability during assembly, leading to high defect rates and instability in water-treatment modules.

Method used

A reverse osmosis membrane with a support layer comprising a non-woven fabric and a polysulfone layer, where 1 g/m² to 5 g/m² of polysulfone is impregnated, and a polyamide active layer, with a compression modulus of 20 MPa to 40 MPa, enhancing mechanical strength and reducing defect occurrences.

Benefits of technology

The membrane exhibits improved mechanical properties, reducing defect rates and ensuring stable operation of water-treatment modules by maintaining high compression modulus and elasticity.

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Description

[Technical Field]

[0001] The present specification provides a reverse osmosis membrane, a method for manufacturing the same, and a water-treatment module.[Background Art]

[0002] A phenomenon that a solvent moves from, between two solutions separated by a semi-permeable membrane, a solution with a low solute concentration to a solution with a high solute concentration through the membrane is referred to as an osmosis phenomenon, and herein, a pressure working on the side of the solution with a high solute concentration due to the solvent migration is referred to as an osmotic pressure. However, when applying an external pressure higher than an osmotic pressure, the solvent moves toward the solution with a low solute concentration, and this phenomenon is referred to as reverse osmosis. Using a reverse osmosis principle, various salts or organic substances may be separated through a semi-permeable membrane with a pressure gradient as a driving force. A reverse osmosis membrane using such a reverse osmosis phenomenon has been used to supply water for household, construction and industry after separating substances at a molecular level and removing salts from salt water or sea water.

[0003] Typical examples of such a reverse osmosis membrane may include a polyamide-based reverse osmosis membrane, and the polyamide-based reverse osmosis membrane is manufactured using a method of forming a polyamide active layer on a microporous layer support. More specifically, the polyamide-based reverse osmosis membrane is manufactured using a method of forming a polysulfone layer on a non-woven fabric to form a microporous support, dipping this microporous support into an aqueous m-phenylenediamine (hereinafter, mPD) solution to form an mPD layer, and dipping this again into an organic trimesoyl chloride (TMC) solvent, bringing the mPD layer into contact with the TMC, and interfacial polymerizing the result to form a polyamide layer.

[0004] WO 2017 / 052 256 A1 relates to a water treatment membrane and a method for manufacturing the same. The water treatment membrane comprises: a porous support; and a polyamide active layer which is provided on the porous support, wherein the polyamide active layer comprises a polymer represented by a chemical formula 1 inside or on a surface thereof, wherein the polymer has a weight average molecular weight of 100 g / mol to 1200 g / mol.

[0005] WO 2018 / 074 767 A2 provides a composition for forming a reverse osmosis membrane protection layer, a method for preparing a reverse osmosis membrane using same, a reverse osmosis membrane, and a water treatment module.

[0006] US 2016 / 129 401 A1 provides a composite semipermeable membrane including: a supporting membrane including a substrate and a porous support; and a separation functional layer disposed on the porous support, in which the substrate has a weight A per unit area, a portion of the porous support which is located within the substrate has a weight B per unit area, and a sum of the weight A and the weight B, (A+B), is 30 to 100 g / m 2< , and a ratio between the weight A and the weight B, B / A, is 0.10 to 0.60.

[0007] EP 2 902 095 A1 relates to a composite semipermeable membrane comprising a substrate, a porous support layer formed on the substrate, and a separation functional layer formed on the porous support layer, the hydrophilic macromolecule concentration on the substrate-side surface of the porous support layer being higher than that on the separation functional layer-side surface.

[0008] JP H06 182 166 A describes a microporous supporting membrane obtained by making a membrane in a wet state using a solution containing a polymer expressed by the formula(Ph-S)-m-(Ph-SO 2 )n-, wherein in the formula, Ph is a phenylene group; m,n are natural numbers; lithium salt and aprotic polar organic solvent. On this microporous supporting membrane, a cross-linking polyamide active layer obtained by surface polycondensation using polyfunctional amine and polyfunctional acylhalide dissolved in 2,2-dichloro-1,1,1-trifluoroethane is applied to obtain a composite reverse osmosis membrane.

[0009] EP 2 425 889 A1 relates to a composite membrane support composed of a dry process thermoplastic resin filaments nonwoven fabric. The composite membrane support of the present invention is a laminate dry process thermoplastic resin filaments nonwoven fabric comprising three or more layers containing at least a meltblown fiber layer as an interlayer and spunbond fiber layers on both sides of the interlayer, wherein the average value of air flow resistance is from 2.0 to 30.0 kPa·s / m and the ratio between the average value and the standard deviation of air flow resistance is 0.6 or less.

[0010] US 2016 / 236 156 A1 A describes aspiral wound module in which the membrane sheet is heat and pressure treated to collapse at least some of the pores of the support layer. The treated membrane can then be folded along the heat and pressure treated area to form a crease. Once folded, the membrane sheet can be wound around a perforated inner tube along with a feed channel spacer and a permeate collection sheet. The wound module can then be enclosed into a hard shell with anti-telescoping devices at each end. By collapsing at least some of the pores in the support layer, the membrane becomes less permeable to fluid in the treated area.

[0011] EP 3 513 869 A1 provides a spiral membrane element that has a restricted outer diameter and is capable of being decreased in operation energy therefor. The element is a spiral membrane element including plural membrane leaves in each of which a permeation-side flow-channel member is interposed between opposed separation membranes; a supply-side flow-channel member interposed between any two of the membrane leaves; a perforated central pipe on which the membrane leaves and the supply-side flow-channel member are wound; and a sealing part that prevents a supply-side flow-channel member from being mixed with a permeation-side flow-channel member.[Disclosure][Technical Problem]

[0012] The present specification is directed to providing a reverse osmosis membrane, a method for manufacturing the same, and a water-treatment module.[Technical Solution]

[0013] One embodiment of the present specification provides a reverse osmosis membrane comprising a support layer comprising a support and a polysulfone layer, wherein 1 g / m 2< to 5 g / m 2< of the polysulfone is impregnated into the support; and a polyamide active layer, wherein the support comprises a non-woven fabric, wherein the support has a thickness of 93 µm to 95 µm, wherein compression modulus is from 20 MPa to 40 MPa, and wherein compression modulus is calculated by the following calculation formula using strain and stress measured under a condition of a circular probe diameter (D) of 5 mm, a compression rate of 0.1 mm / sec and a temperature of 25°C using a texture analyzer: Compression modulus MPa = Stress MPa Strain = F A L Lo in the calculation formula, F= a force (gf) applied by texture analyzer and from 29.42 N to 147.10 N (3,000 gf to 15,000 gf), A = π ∗ D 2 4 , L= a thickness of the reverse osmosis membrane after the texture analyzer applies the force (length, mm) and from 0 mm to 1 mm, and Lo= a thickness of the reverse osmosis membrane before the texture analyzer applies the force (initial length, mm) and from 0.5 mm to 5 mm.

[0014] Another embodiment of the present specification provides a water-treatment module comprising one or more of the reverse osmosis membranes described above.

[0015] Another embodiment of the present specification provides a method for manufacturing the reverse osmosis membrane, the method comprising forming a support layer comprising a support and a polysulfone layer, wherein 1 g / m 2< to 5 g / m 2< of the polysulfone is impregnated into the support; and forming a polyamide active layer on the support layer, wherein the support comprises a non-woven fabric, and wherein the support has a thickness of 93 µm to 95 µm.[Advantageous Effects]

[0016] A reverse osmosis membrane according to one embodiment of the present specification exhibits excellent mechanical properties. Specifically, by having high compression modulus, a rate of defect occurrences can be reduced by reducing wrinkles when assembling the reverse osmosis membrane.

[0017] Furthermore, when driving a water-treatment module comprising the reverse osmosis membrane according to one embodiment of the present specification, stability can be increased.[Description of Drawings]

[0018] FIG. 1 illustrates a reverse osmosis membrane according to one embodiment of the present specification. FIG. 2 illustrates a water-treatment module according to one embodiment of the present specification. FIG. 3 shows a graph obtaining compression modulus of a reverse osmosis membrane according to one embodiment of the present specification.

[0019] One embodiment of the present specification provides a reverse osmosis membrane comprising a support layer comprising a support and a polysulfone layer, wherein 1 g / m 2< to 5 g / m 2< of the polysulfone is impregnated into the support; and a polyamide active layer, wherein the support comprises a non-woven fabric, wherein the support has a thickness of 93 µm to 95 µm, wherein compression modulus is from 20 MPa to 40 MPa, and wherein compression modulus is calculated by the following calculation formula using strain and stress measured under a condition of a circular probe diameter (D) of 5 mm, a compression rate of 0.1 mm / sec and a temperature of 25°C using a texture analyzer: Compression modulus MPa = Stress MPa Strain = F A L Lo in the calculation formula, F= a force (gf) applied by texture analyzer and from 29.42 N to 147.10 N (3,000 gf to 15,000 gf), A = π ∗ D 2 4 , L= a thickness of the reverse osmosis membrane after the texture analyzer applies the force (length, mm) and from 0 mm to 1 mm, and Lo= a thickness of the reverse osmosis membrane before the texture analyzer applies the force (initial length, mm) and from 0.5 mm to 5 mm.

[0020] The reverse osmosis membrane having compression modulus of 20 MPa to 40 MPa has increased mechanical strength by having high compression modulus, which may significantly reduce a rate of defect occurrences when assembling the reverse osmosis membrane by reducing wrinkles when assembling the reverse osmosis membrane, and as a result, a water-treatment module comprising one or more of the reverse osmosis membranes may be stably driven.

[0021] In addition, instead of an existing tensile strength property in a mechanical direction (MD) and a cross direction (CD) of a reverse osmosis membrane, compression modulus in a Z axis direction of the present specification may function as an important factor when rolling a leaf formed with the reverse osmosis membrane according to one embodiment of the present specification, a feed spacer and tricot filtration water. The Z axis direction means a thickness direction (t) of the reverse osmosis membrane when referring to FIG. 1.

[0022] In the water-treatment module, the number of included leaves may vary depending on sea to fresh water, industrial and household applications, however, 1 to 50 leaves may be included, and as few as 1 to 2, and as many as up to 50 leaves may be included. Laminated leaves of two or more are subject to force in a Z axis direction due to pressing between the laminated leaves when rolling as well as subject to force in a in mechanical direction (MD), a driving direction, and therefore, compression modulus in a Z axis direction may be an important factor.

[0023] The compression modulus is calculated by the following calculation formula using strain and stress measured under a condition of a circular probe diameter (D) of 5 mm, a compression rate of 0.1 mm / sec and a temperature of 25°C using a texture analyzer. Compression modulus MPa = Stress MPa Strain = F A L Lo

[0024] In the calculation formula, F=force (gf) applied in the texture analyzer, A = π ∗ D 2 4 L=thickness of the reverse osmosis membrane after the texture analyzer applies force (length, mm), and Lo= thickness of the reverse osmosis membrane before the texture analyzer applies force (initial length, mm).

[0025] In the calculation formula, F is from 29.42 N to 147.10 N (3,000 gf to 15,000 gf), and, preferably, may be from 1.96 N to 245.17 N (200 gf to 25,000 gf), and, more preferably, may be from 0.49 N to 294.20 N (50 gf to 30,000 gf). In addition, A may be 19.63 mm 2< . Lo is from 0.5 mm to 5 mm, and may be preferably 1.57 mm. L is from 0 mm to 1 mm, and may be preferably from 0.25 mm to 0.65 mm.

[0026] By deducing a value by strain and stress when F and L correspond to the above-mentioned ranges, compression modulus using the calculation formula may be obtained.

[0027] Specifically, when referring to FIG. 3, a graph is plotted using strain obtained by the calculation formula as a horizontal axis and stress as a vertical axis, and by calculating the slope of the obtained graph, compression modulus (elastic modulus) may be calculated.

[0028] In one embodiment of the present specification, the texture analyzer may be, for example, a TA.XTplus texture analyzer, but is not limited thereto, and those known in the art may be used. The texture analyzer may mean a physical property analyzer or a physical property measuring device.

[0029] The compression modulus of the reverse osmosis membrane calculated by the calculation formula is from 20 MPa to 40 MPa. Specifically, the compression modulus may be from 21 MPa to 35 MPa, and more specifically from 21.1 MPa to 27 MPa. The compression modulus of the reverse osmosis membrane satisfying the above-mentioned range may enhance mechanical strength of the reverse osmosis membrane, is advantageous when assembling the reverse osmosis membrane, and may reduce a rate of defect occurrences.

[0030] When the compression modulus is less than 20 MPa, a rate of defect occurrences increases when assembling the reverse osmosis membrane, and mechanical strength of the reverse osmosis membrane is low, which makes stable driving of a water-treatment module comprising the reverse osmosis membrane impossible.

[0031] When the compression modulus is greater than 40 MPa, hardness of the reverse osmosis membrane makes a rolling process difficult when manufacturing a spiral wound-type module.

[0032] In the present specification, physical properties of the support layer comprising a support and a polysulfone layer have an absolute effect on compression modulus of the reverse osmosis membrane, and in order to obtain target compression modulus of the reverse osmosis membrane in one embodiment of the present specification, a thickness or materials of the support comprised in the reverse osmosis membrane, presence of the polysulfone layer, a thickness of the polysulfone layer, and a content, a composition and the like of polysulfone comprised in a polymer solution comprising the polysulfone when preparing the polysulfone layer may be controlled.

[0033] Specifically, compression modulus of the reverse osmosis membrane may be controlled by a thickness of the support, a thickness of the polysulfone layer and a content of polysulfone comprised in a polymer solution comprising the polysulfone.

[0034] In one embodiment of the present specification, the support has a thickness of 93 µm to 95 µm, and the polysulfone layer has a thickness of 25 µm to 80 µm.

[0035] The support has a thickness of 93 µm to 95 µm. When the support has a thickness of less than 90 µm, durability of the reverse osmosis membrane may decline due to an insufficient role as a support, and when the thickness is greater than 120 µm, a flow rate may decrease, and compression modulus may decrease.

[0036] In addition, the polysulfone layer may specifically have a thickness of 30 µm to 75 µm, and preferably 33 µm to 70 µm. When the polysulfone layer has a thickness of less than 25 µm, durability of the reverse osmosis membrane may decline due to an insufficient role as a support layer, and when the thickness is greater than 80 µm, a flow rate may decrease, and compression modulus may decrease.

[0037] When the support and the polysulfone layer each satisfy the above-mentioned thickness ranges, excellent compression modulus of the reverse osmosis membrane aimed in the present disclosure may be obtained.

[0038] In one embodiment of the present specification, the thickness of the support and the thickness of the polysulfone layer may be measured using a digimatic thickness gauge after preparing a sample by cutting the reverse osmosis membrane to 10 cm x 10 cm. The thickness may be obtained as the average value after measuring the thickness 5 times using the digimatic thickness gauge.

[0039] The digimatic thickness gauge may be from Mitutoyo Corporation, but is not limited thereto, and those known in the art may be used.

[0040] In one embodiment of the present specification, the polysulfone layer is formed with a polymer solution comprising polysulfone, and a content of the polysulfone comprised in the polysulfone-comprising polymer solution may be from 15% by weight to 20% by weight based on the total weight of the polysulfone-comprising polymer solution. Preferably, the content may be from 16% by weight to 18% by weight.

[0041] When the polysulfone content is 15% by weight or greater, strength of the reverse osmosis membrane may be maintained, and when the content is 20% by weight or less, the reverse osmosis membrane may be readily manufactured since the polysulfone concentration is not high.

[0042] When the polysulfone content is satisfied, 1 g / m 2< to 5 g / m 2< of the polysulfone may be impregnated into the support when forming the polysulfone layer on the support. When the polysulfone is impregnated into the support in the above-mentioned content, elastic modulus increases by increasing density per unit area of the support, and elasticity of the support layer comprising the support and the polysulfone layer may become superior.

[0043] As for measuring the amount of the polysulfone impregnated into the support, a method of drying the reverse osmosis membrane for 24 hours in a vacuum desiccator, attaching a tape thereto to the same area as the support area in order to remove the polysulfone layer on the support, and then removing the tape at once may be used. Then, the impregnated polysulfone is eluted using dichloromethane, and a difference between the initial weight of the reverse osmosis membrane and the weight of the reverse osmosis membrane after polysulfone elution is measured to measure the amount of the impregnated polysulfone.

[0044] In one embodiment of the present specification, the polysulfone-comprising polymer solution may comprise a residual solvent in addition to the polysulfone. The solvent is not particularly limited as long as it is capable of dissolving polysulfone, and those known in the art may be used. For example, the solvent may be dimethylformamide (DMF).

[0045] In addition, the polysulfone-comprising polymer solution may further comprise an additive as necessary. The additive may be, for example, polyethylene glycol (PEG), but is not limited thereto.

[0046] In one embodiment of the present specification, the polysulfone-comprising polymer solution may be prepared by introducing the polysulfone solid and, as necessary, the additive to the solvent, and stirring the result for 12 hours or longer at 80°C to 85°C. Specifically, the stirring may be conducted for 12 hours at 80°C.

[0047] In one embodiment of the present specification, the support layer may be expressed as a porous support layer.

[0048] The support includes a non-woven fabric. In other words, the support is formed with a non-woven fabric.

[0049] When the support is formed with a non-woven fabric, strength or permeability of the non-woven fabric-including support layer may be controlled by adjusting an average size of pores included in the non-woven fabric, a basis weight, density, air permeability and the like.

[0050] In one embodiment of the present specification, the non-woven fabric may have an average pore size of 3 µm to 10 µm, however, the average pore size is not limited thereto. When the non-woven fabric has an average pore size in the above-mentioned range, strength of the reverse osmosis membrane as a support may be maintained.

[0051] In another embodiment, the non-woven fabric may have a basis weight of 70 g / m 2< to 80 g / m 2< , however, the basis weight is not limited thereto. When the non-woven fabric has a basis weight in the above-mentioned range, strength of the reverse osmosis membrane as a support may be maintained.

[0052] In another embodiment, the non-woven fabric may have density of 0.5 g / m 3< to 1 g / m 3< , however, the density is not limited thereto. When the non-woven fabric has density in the above-mentioned range, strength of the reverse osmosis membrane as a support may be maintained.

[0053] In another embodiment, the non-woven fabric may have air permeability of 0.5 cc / cm 2< ·sec to 2.5 cc / cm 2< ·sec, however, the air permeability is not limited thereto. When the air permeability range is the above-mentioned range, strength of the reverse osmosis membrane as a support may be maintained.

[0054] The non-woven fabric has a thickness of 93 µm to 95 µm. When the non-woven fabric has a thickness corresponding to the above-mentioned range, compression modulus of the reverse osmosis membrane including the non-woven fabric may increase.

[0055] Examples of a material of the non-woven fabric may include polyethylene terephthalate, polyester, polycarbonate, microporous polypropylene, polyphenylene ether, polyvinylidene fluoride and the like, however, the material is not limited thereto. The non-woven fabric may preferably be polyethylene terephthalate.

[0056] In one embodiment of the present specification, the polysulfone layer means a coating layer of a polymer material being formed on the support, and the polymer material means polysulfone, and the polysulfone is preferably a polymer having a sulfone group (-SO 2 -). Specifically, the polymer having a sulfone group preferably includes the following repeating unit.

[0057] The "repeating unit" is a monomer forming a polymer, and the monomer may form a polymer by being comprised in the main chain in the polymer.

[0058] In the repeating unit, the part expressed by "-*" means a part linked to other substituents or linking groups.

[0059] In one embodiment of the present specification, the polysulfone layer may be formed using a method of casting using the polysulfone-comprising polymer solution. The casting means a solution casting method, and specifically, may mean a method of dissolving a polymer material in a solvent, developing the solution on a smooth surface with no adhesive property, and then evaporating the solvent. For example, methods of drop casting, spin coating, dip coating, slot die coating and the like may be included as an example, and slot die coating may be preferably used, however, the method is not limited thereto. In addition, a temperature may also be applied while evaporating the solvent, however, the method is not limited thereto as well.

[0060] In one embodiment of the present specification, a rate of defect occurrences when assembling the reverse osmosis membrane may be from 0% to 5%. Specifically, the rate of defect occurrences may be from 1% to 3%. When the rate of defect occurrences is greater than 5%, stable driving of a water-treatment module comprising the reverse osmosis membrane may be difficult.

[0061] The rate of defect occurrences when assembling the reverse osmosis membrane means, when measuring physical properties of a reverse osmosis membrane element, a finished product after assembly, a ratio of the number of reverse osmosis membrane elements failing to reach target physical properties based on the total number of the reverse osmosis membrane elements.

[0062] The reverse osmosis membrane element failing to reach target physical properties refers to, when conducting a rhodamine dyeing test on the reverse osmosis membrane element, a reverse osmosis membrane in which the rhodamine dye leaks, and this is referred to as a defective product.

[0063] Specifically, the rhodamine dyeing test is conducted by preparing a plurality of the reverse osmosis membranes according to one embodiment of the present specification, and dyeing the plurality of the reverse osmosis membranes with a rhodamine dye. Then, when performing an autopsy (disassembling the reverse osmosis membrane element, a finished product) process, a reverse osmosis membrane including a portion where rhodamine dye leak occurs, that is, a reverse osmosis membrane dyed with pink, is a defective product, and after counting the number of the defective products, the number is divided by the number of the total reverse osmosis membranes manufactured to calculate a rate of defect occurrences when assembling the reverse osmosis membrane.

[0064] One embodiment of the present specification provides a method for manufacturing the reverse osmosis membrane comprising forming a support layer comprising a support and a polysulfone layer; and forming an active layer on the support layer.

[0065] In the forming of a support layer comprising a support and a polysulfone layer in one embodiment of the present specification, the descriptions provided above apply to the support and the polysulfone layer.

[0066] The forming of a support layer comprising a support and a polysulfone layer may comprise forming a polysulfone layer on a support.

[0067] The polysulfone layer may be formed using the polysulfone-comprising polymer solution comprising the polysulfone in 10% by weight to 25% by weight based on the total weight of the polysulfone-comprising polymer solution. The descriptions provided above apply to the polysulfone- comprising polymer solution.

[0068] The active layer means a polyamide active layer, and the polyamide active layer may be formed through forming an aqueous solution layer comprising an amine compound on the support layer; and forming a polyamide active layer by bringing an organic solution comprising an acyl halide compound into contact with the amine compound-comprising aqueous solution layer thereon.

[0069] The polyamide active layer may be formed by producing polyamide by interfacial polymerization while the amine compound and the acyl halide compound react when the amine compound and the acyl halide compound are in contact with each other, and the polyamide being adsorbed on the support layer.

[0070] The contact may use methods such as dipping, spraying, coating or the like. As a condition for the interfacial polymerization, those known in the art may be used.

[0071] A method for forming the amine compound-comprising aqueous solution layer on the support layer is not particularly limited, and methods capable of forming an amine compound- comprising aqueous solution layer on the support layer may be used without limit. Specifically, a method for forming the amine compound-comprising aqueous solution layer on the support layer may include spraying, coating, dipping, dropping or the like, and those known in the art may be used.

[0072] Herein, the amine compound-comprising aqueous solution layer may further go through removing an excess amine compound-comprising aqueous solution as necessary. The amine compound-comprising aqueous solution layer formed the support layer may be non-uniformly distributed when there are too much of the amine compound-comprising aqueous solution present on the support layer, and when the amine compound-comprising aqueous solution is non-uniformly distributed, a non-uniform polyamide active layer may be formed by subsequent interfacial polymerization. Accordingly, the excess amine compound- comprising aqueous solution is preferably removed after forming the amine compound-comprising aqueous solution layer on the support layer. A method of removing the excess amine compound- comprising aqueous solution is not particularly limited, however, methods using a sponge, an air knife, nitrogen gas blowing, natural drying, a compression roll or the like may be used.

[0073] In the amine compound-comprising aqueous solution, the amine compound is not limited in the type as long as it is an amine compound used in reverse osmosis membrane manufacturing, however, specific examples thereof may include m-phenylenediamine, p-phenylenediamine, 1,3,6-benzenetriamine, 4-chloro-1,3-phenylenediamine, 6-chloro-1,3-phenylenediamine, 3-chloro-1,4-phenylenediamine or mixtures thereof. Preferably, the amine compound is m-phenylenediamine.

[0074] The content of the amine compound may be from 1% by weight to 10% by weight based on the total weight of the amine compound-comprising aqueous solution. Specifically, the content may be from 3% by weight to 7% by weight.

[0075] The active layer may be formed by forming an amine compound-comprising aqueous solution layer through coating an amine compound-comprising aqueous solution on a support for the reverse osmosis membrane, and then bringing an acyl halide compound-comprising organic solution into contact with the aqueous solution layer, and interfacial polymerizing the result. A method of bringing the acyl halide compound- comprising organic solution into contact therewith is not particularly limited, and methods capable of interfacial polymerizing the acyl halide compound-comprising organic solution on the amine compound-comprising aqueous solution layer may be used without limit. For example, a coating method may be used.

[0076] The active layer is a polyamide active layer.

[0077] The acyl halide compound is not limited as long as it may be used in polyamide polymerization, however, specific examples thereof may include, as an aromatic compound having 2 to 3 carboxylic acid halides, one type selected from the compound group consisting of trimesoyl chloride, isophthaloyl chloride and terephthaloyl chloride, or a mixture of two or more types thereof. Preferably, trimesoyl chloride may be used.

[0078] The content of the acyl halide compound may be from 0.05% by weight to 1% by weight based on the total weight of the acyl halide compound-comprising organic solution. Specifically, the content may be from 0.2% by weight to 0.8% by weight.

[0079] The amine compound-comprising aqueous solution may use water, acetone, dimethyl sulfoxide (DMSO), 1-methyl-2-pyrrolidinone (NMP), hexamethylphosphoramide (HMPA) or the like as a solvent, however, the solvent is not limited thereto. Water is preferred as the solvent.

[0080] The acyl halide compound-comprising organic solution may use, as a solvent, an aliphatic hydrocarbon solvent, for example, freons, hexane, cyclohexane and heptane having 5 to 12 carbon atoms, hydrophobic liquids that is not mixed with water such as alkane, for example, alkane having 5 to 12 carbon atoms, and a mixture thereof that is IsoPar (Exxon), ISOL-C (SK Chem), ISOL-G (Exxon), Isopar G and the like, however, the solvent is not limited thereto. Isopar G is preferred as the solvent.

[0081] In one embodiment of the present specification, the active layer may have a thickness of 150 nm to 250 nm, and preferably 180 nm to 220 nm.

[0082] One embodiment of the present specification provides a water-treatment module comprising one or more of the reverse osmosis membranes.

[0083] In one embodiment of the present specification, the water-treatment module may comprise 1 to 50 and preferably 1 to 30 reverse osmosis membranes. However, the number is not limited thereto, and may be applied differently depending on whether the water-treatment module is used for sea to fresh water, industrial or household applications.

[0084] Specific types of the water-treatment module are not particularly limited, and examples thereof may include a plate & frame module, a tubular module, a hollow & fiber module, a spiral wound module or the like, however, a spiral wound module is preferred.

[0085] In addition, as long as the water-treatment module comprises the reverse osmosis membrane described above, the water-treatment module is not particularly limited in other constitutions and manufacturing methods, and general means known in the art may be employed without limit.

[0086] The water-treatment module according to one embodiment of the present specification may be used for sea to fresh water, industrial or household applications.

[0087] FIG. 1 illustrates the reverse osmosis membrane according to one embodiment of the present specification. Specifically, FIG. 1 illustrates the reverse osmosis membrane in which a support (100), a polysulfone layer (200) and an polyamide active layer (300) are consecutively provided, and as salt water (400) flows into the polyamide active layer (300), purified water (500) is discharge through the support (100), and concentrated water (600) is discharged outside failing to pass through the polyamide active layer (300). A support layer (700) comprising the support (100) and the polysulfone layer (200) has high mechanical strength with compression modulus of 20 MPa to 40 MPa, and may reduce a rate of defect occurrences when assembling the reverse osmosis membrane.

[0088] FIG. 2 illustrates the water-treatment module according to one embodiment of the present specification. Specifically, the water-treatment module is formed comprising a tube (40), a feed spacer (20), a reverse osmosis membrane (10), a tricot filtration channel (30) and the like. When flowing raw water to the water-treatment module, raw water is introduced through the feed spacer (20) in the water-treatment module. One or more of the reverse osmosis membranes (10) extend outwardly from the tube (40), and wound around the tube (40). The feed spacer (20) forms a passage through which raw water is introduced from the outside, and performs a role of maintaining a gap between one reverse osmosis membrane (10) and another reverse osmosis membrane (10). For this, the feed spacer (20) is wound around the tube (40) while being brought into contact with one or more of the reverse osmosis membranes (10) on the upper and the lower sides. The tricot filtration channel (30) generally has a fabric-type structure, and performs a role of a flow channel making space for purified water flowing through the reverse osmosis membrane (10). The tube (40) is located at the center of the water-treatment module, and performs a role of a passage through which filtered water is introduced and discharged. Herein, a pore having a certain size is preferably formed on the outer side of the tube (40) so as to introduce the filtered water, and it is preferred that one or more pores are formed. The reverse osmosis membrane (10) has compression modulus of 20 MPa to 40 MPa, and the water-treatment module comprising the reverse osmosis membrane (10) may be stably driven.Preparation Example(Preparation of Support Layer)Example 1.

[0089] A non-woven fabric was used as a support, the non-woven fabric was polyethylene terephthalate, and polyethylene terephthalate having a thickness of 94 µm was used.

[0090] In order to prepare a polysulfone layer on the support, a polymer solution comprising polysulfone was prepared. The polysulfone-comprising polymer solution was a homogeneous liquid obtained by introducing 16% by weight of a polysulfone solid to 84% by weight of a dimethylformamide solvent based on the total weight of the polysulfone-comprising polymer solution, and dissolving for 12 hours at 80°C to 85°C.

[0091] After that, the polysulfone-comprising polymer solution was casted to 33 µm on the support (polyethylene terephthalate) using a slot die coating method to prepare a polysulfone layer.

[0092] Through this, a support layer comprising a support and a polysulfone layer was prepared.Examples 2 to 4.

[0093] Support layers of Examples 2 to 4 were prepared in the same manner as in Example 1 except that the support thickness, the polysulfone layer thickness and the polysulfone content followed conditions described in the following Table 1.Comparative Examples 1 to 4.

[0094] In Comparative Examples 1 to 4, support thicknesses each followed conditions described in the following Table 1, and a support layer that did not form a polysulfone layer on a support (non-woven fabric) was used.Comparative Examples 5 and 6.

[0095] Support layers of Comparative Examples 5 and 6 were prepared in the same manner as in Example 1 except that the support thickness, the polysulfone layer thickness and the polysulfone content followed conditions described in the following Table 1. [Table 1]Support (Non-Woven Fabric) Thickness (µm)Polysulfone Layer Thickness (µm)Polysulfone Content (% by Weight)Example 1943316Example 2946016Example 3947016Example 4943518Comparative Example 191--Comparative Example 290--Comparative Example 392--Comparative Example 496--Comparative Example 5902414Comparative Example 6902014 (Manufacture of Reverse Osmosis Membrane)

[0096] On each of the prepared support layers, an amine compound-comprising aqueous solution was prepared comprising 5% by weight of metaphenylenediamine (m-PD) and 95% by weight of water as a solvent based on the total weight of the amine compound-comprising aqueous solution, and then the aqueous solution was coated on the support layer to form an amine compound-comprising aqueous solution layer.

[0097] After that, an organic solution was prepared comprising 0.5% by weight of trimesoyl chloride (TMC) in 99.5% by weight of an Isopar G solvent based on the total weight of the acyl halide compound-comprising organic solution, then the organic solution was coated on the amine compound-comprising aqueous solution layer, and after interfacial polymerizing the result, the result was dried for 5 minutes at 90°C to form a polyamide active layer having a thickness of 200 nm, and as a result, a reverse osmosis membrane was manufactured.(Measurement of Support and Polysulfone Layer Thicknesses)

[0098] As for the thicknesses of the supports and the polysulfone layers each manufactured, a sample was prepared by cutting the manufactured reverse osmosis membrane to 10 cm x 10 cm, and then the thicknesses were measured using a digimatic thickness gauge. The thickness was measured 5 times using the digimatic thickness gauge, and the average value was calculated. The results are described in Table 1. The digimatic thickness gauge was from Mitutoyo Corporation.Experimental Example(Measurement of Compression Modulus of Reverse Osmosis Membrane)

[0099] Using a TA.XTplus texture analyzer, a texture analyzer, compression modulus of each of the examples and the comparative examples was calculated by the following calculation formula using strain and stress measured under a condition of a circular probe diameter (D) of 5 mm, a compression rate of 0.1 mm / sec and a temperature of 25°C, and the results are described in the following Table 2. Compression modulus MPa = Stress MPa Strain = F A L Lo

[0100] In the calculation formula, F=force (N (gf)) applied in the texture analyzer, A = π ∗ D 2 4 L=thickness of the reverse osmosis membrane after the texture analyzer applies force (length, mm), and Lo= thickness of the reverse osmosis membrane before the texture analyzer applies force (initial length, mm).

[0101] As shown in FIG. 3, a graph was plotted using strain obtained by the calculation formula as a horizontal axis and stress as a vertical axis, and by calculating the slope of the obtained graph, compression modulus (elastic modulus) was calculated, and the results are described in the following Table 2.(Measurement of Rate of Defect Occurrences When Assembled)

[0102] After manufacturing a total of the 20 reverse osmosis membranes according to the examples and the comparative examples, a dyeing test was conducted using a rhodamine dye. Specifically, after dyeing a total of the 20 reverse osmosis membranes with a rhodamine dye, an autopsy (disassembling the reverse osmosis membrane element, a finished product) process was performed. After that, a portion where rhodamine dye leak occurred, that is, the number of the reverse osmosis membranes dyed with pink (defective product) was counted, and the number was divided by the number of the total reverse osmosis membranes manufactured to calculate a rate of defect occurrences when assembled. The results are described in the following Table 2. [Table 2]Compression Modulus (MPa)Rate of Defect Occurrences (%) When AssembledExample 121.12Example 223.22Example 325.31Example 427.03Comparative Example 119.310Comparative Example 218.014Comparative Example 319.813Comparative Example 417.517Comparative Example 517.020Comparative Example 616.523

[0103] According to Table 2, it was identified that Examples 1 to 4 had higher compression modulus compared to Comparative Examples 1 to 6. In addition, in the rate of defect occurrences when assembled, it was identified that Examples 1 to 4 had a significantly lower rate of defect occurrences compared to Comparative Examples 1 to 6.[Reference Numeral]

[0104] 10: Reverse Osmosis Membrane 20: Feed Spacer 30: Tricot Filtration Channel 40: Tube 100: Support 200: Polysulfone Layer 300: Polyamide Active Layer 400: Salt Water 500: Purified Water 600: Concentrated Water 700: Support Layer t: Z Axis Direction (Thickness Direction) of Reverse Osmosis Membrane

Claims

1. A reverse osmosis membrane comprising: a support layer comprising a support (100) and a polysulfone layer (200); and a polyamide active layer (300), wherein the support (100) comprises a non-woven fabric, wherein the support (100) has a thickness of 93 µm to 95 µm, wherein an amount of polysulfone impregnated into the support, measured as described in the description, is 1 g / m2 to 5 g / m2, and wherein a compression modulus of the reverse osmosis membrane is from 20 MPa to 40 MPa, and wherein compression modulus is calculated by the following calculation formula using strain and stress measured under a condition of a circular probe diameter (D) of 5 mm, a compression rate of 0.1 mm / sec and a temperature of 25°C using a texture analyzer: Compression modulus MPa = Stress MPa Strain = F A L Lo in the calculation formula, F= a force (gf) applied by texture analyzer and from 29.42 N to 147.10 N (3,000 gf to 15,000 gf), A = π ∗ D 2 4 , L= a thickness of the reverse osmosis membrane after the texture analyzer applies the force (length, mm) and from 0 mm to 1 mm, and Lo= a thickness of the reverse osmosis membrane before the texture analyzer applies the force (initial length, mm) and from 0.5 mm to 5 mm.

2. The reverse osmosis membrane of Claim 1, wherein the polysulfone layer (200) has a thickness of 25 µm to 80 µm.

3. The reverse osmosis membrane of Claim 1, wherein the polysulfone layer (200) is formed by using a polymer solution comprising polysulfone, and a content of the polysulfone comprised in the polysulfone-comprising polymer solution is from 15% by weight to 20% by weight based on a total weight of the polysulfone-comprising polymer solution.

4. The reverse osmosis membrane of Claim 1, which has a rate of defect occurrences of 0% to 5% when assembling the reverse osmosis membrane, wherein the rate of defect occurrences when assembling the reverse osmosis membrane means, when measuring physical properties of the reverse osmosis membrane element, a finished product after assembly, a ratio of the number of the reverse osmosis membrane elements failing to reach target physical properties based on the total number of the reverse osmosis membrane elements, and wherein the reverse osmosis membrane element failing to reach target physical properties refers to, when conducting a rhodamine dyeing test on the reverse osmosis membrane element, a reverse osmosis membrane in which the rhodamine dye leaks, and this is referred to as a defective product.

5. A water-treatment module comprising one or more of the reverse osmosis membranes of any one of Claims 1 to 4.

6. A method for forming the reverse osmosis membrane of any one of Claims 1 to 4, the method comprising: forming a support layer comprising a support (100) and a polysulfone layer (200), and forming a polyamide active layer (300) on the support layer.