Barrier coating composition and barrier composite film
A barrier coating composition with a specific resin and solvent ratio improves lamination strength and gas barrier properties in packaging bags, addressing the limitations of existing technologies.
Patent Information
- Application Number
- JP2020111927
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-06-29
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2040-06-29
AI Technical Summary
Existing packaging bags for food and medical products lack sufficient gas barrier properties and lamination strength, especially under water-soaking conditions, and are often expensive, limiting their use in transparent applications.
A barrier coating composition containing a highly polar resin with an ethylene chain, a hydrolysate of tetraalkoxysilane, and a solvent, with a specific mass ratio, providing excellent cohesive strength and gas barrier properties.
The composition achieves superior lamination strength and gas barrier properties under normal and water-soaking conditions, enhancing the performance of packaging bags.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a barrier coating composition and a barrier composite film. [Background technology]
[0002] Packaging bags used for food packaging applications are required to have the ability to display contents and to be decorated by printing, and furthermore, for the purpose of achieving high food hygiene, composite laminate films are used in which a heat seal layer is laminated to cover the printed layer so that the printed layer does not come into direct contact with food, human fingers, etc. Furthermore, it is becoming increasingly common to manufacture packaging bags in which such composite laminate films are endowed with the ability to be treated with hot water, allowing the contents of the bag to be easily cooked.
[0003] Hot water treatment is an effective method for long-term storage because it has a high sterilization effect and the packaging bag is completely sealed, making it less likely for the contents to spoil. However, if the gas barrier properties are insufficient, oxygen will enter the packaging bag during storage, causing the contents to change and deteriorate. Therefore, the ability to prevent oxygen and other gases from passing through a packaging bag for hot water treatment is a major factor in determining the value of the packaging bag.
[0004] Conventionally, methods of providing various gas barrier layers to packaging bags used for packaging food, medical products, etc., to block gases such as oxygen and water vapor have been considered. In particular, metals (see, for example, Patent Document 1) and metal oxides (see, for example, Patent Document 2) laminated by vapor deposition onto printed substrate films, etc., have been used as materials with high gas barrier properties. Furthermore, among the above-mentioned packaging bags for hot water treatment, those laminated with aluminum vapor-deposited film or aluminum foil have become mainstream for long-term storage. However, composite laminate films using these materials are generally expensive. Another problem is that they cannot be used in fields where transparency is required.
[0005] Therefore, the use of a recently developed gas barrier film (see, for example, Patent Documents 3 and 4) has been investigated, which comprises a base film made of a plastic material and a gas barrier layer provided on one or both sides of the base film, the gas barrier layer containing an aqueous polyurethane resin, a water-soluble polymer, and an inorganic layered mineral as main components and containing an isocyanate compound as a curing agent.
[0006] A gas barrier film having a laminated structure is required to have not only excellent gas barrier properties but also excellent lamination strength. In particular, in the field of packaging bags used for packaging food, medical products, etc., in addition to excellent gas barrier properties, it is now required to have excellent lamination strength not only under normal conditions but also under water-exposed conditions. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] Japanese Patent Application Publication No. 08-318591 [Patent Document 2] Japanese Patent Application Publication No. 179935 / 1983 [Patent Document 3] Japanese Patent Application Laid-Open No. 2015-44943 [Patent Document 4] Japanese Patent Application Laid-Open No. 2015-44944 Summary of the Invention [Problem to be solved by the invention]
[0008] Therefore, an object of the present invention is to provide a barrier coating composition that can give a barrier composite film that has excellent lamination strength under normal conditions and water-soaking conditions, and also has excellent seal strength and gas barrier properties. [Means for solving the problem]
[0009] As a result of extensive research, the present inventors have found that a barrier coating composition containing a highly polar resin having an ethylene chain, a hydrolysate of a tetraalkoxysilane and / or a hydrolysate of a tetraalkoxysilane oligomer, and a solvent, wherein the mass ratio of the highly polar resin having an ethylene chain to the hydrolysate of a tetraalkoxysilane and / or a hydrolysate of a tetraalkoxysilane oligomer is within a predetermined range, has extremely excellent cohesive strength of the coating film, and is therefore able to impart laminate strength under normal conditions and water-receiving conditions, and can also give a barrier composite film that is excellent in seal strength and gas barrier properties, thereby completing the present invention.
[0010] That is, the barrier coating composition of the present invention is characterized by comprising a highly polar resin having an ethylene chain, a hydrolyzate of a tetraalkoxysilane and / or a hydrolyzate of a tetraalkoxysilane oligomer, and a solvent, and a mass ratio of the highly polar resin having an ethylene chain to the hydrolyzate of a tetraalkoxysilane and / or a hydrolyzate of a tetraalkoxysilane oligomer (mass of the highly polar resin having an ethylene chain / mass of the hydrolyzate of a tetraalkoxysilane and a hydrolyzate of a tetraalkoxysilane oligomer) of 55 / 45 to 25 / 75.
[0011] In the barrier coating composition of the present invention, the tetraalkoxysilane hydrolysate and / or the tetraalkoxysilane oligomer hydrolysate is preferably an acid-catalyzed hydrolysate. The catalyst is preferably hydrochloric acid. In the barrier coating composition of the present invention, the ethylene chain-containing highly polar resin has an ethylene ratio of 0.5 to 30 mol %. In the barrier coating composition of the present invention, the solvent is preferably a mixed solvent of water and a lower alcohol having 1 to 3 carbon atoms. The barrier composite film of the present invention is characterized by having at least a base film layer, a barrier layer, and a heat seal material layer in this order, and the barrier layer being obtained from the barrier coating composition. The barrier composite film of the present invention preferably further comprises a printed layer between the base film layer and the heat-sealable material layer. The barrier coating composition and the barrier composite film will be described in detail below.
[0012] <Barrier coating composition> The barrier coating composition of the present invention comprises a highly polar resin having an ethylene chain, a hydrolyzate of a tetraalkoxysilane and / or a hydrolyzate of a tetraalkoxysilane oligomer, and a solvent, and is characterized in that the mass ratio of the highly polar resin having an ethylene chain to the tetraalkoxysilane hydrolyzate (mass of the highly polar resin having an ethylene chain / mass of the tetraalkoxysilane hydrolyzate and the tetraalkoxysilane oligomer hydrolyzate) is 55 / 45 to 25 / 75. By containing the above-mentioned highly polar resin having an ethylene chain and the above-mentioned tetraalkoxysilane hydrolysate and / or tetraalkoxysilane oligomer hydrolysate in a specific mass ratio, it is possible to solve both problems: the water resistance of the polyethylene block is exhibited, and the tetraalkoxysilane hydrolysate and / or tetraalkoxysilane oligomer hydrolysate do not become insoluble when condensed. Therefore, it is possible to provide a barrier composite film that has sufficient lamination strength under normal conditions and under water-soaked conditions, and that is excellent in sealing strength and gas barrier properties.
[0013] (Highly polar resin with ethylene chains) The barrier coating composition of the present invention contains a highly polar resin having an ethylene chain. The highly polar resin having an ethylene chain means a resin having an ethylene chain and a highly polar functional group.
[0014] Examples of the highly polar functional group include an amino group, an ester group, a carboxyl group, a sulfone group, a cyano group, a thiol group, and a hydroxyl group. Of these, from the viewpoint of suitably exhibiting gas barrier properties, a hydroxyl group or a carboxyl group is preferred, and a hydroxyl group is more preferred.
[0015] The ethylene chain-containing highly polar resin preferably has an ethylene ratio of 0.5 to 30 mol %. By setting the ethylene ratio in the above range, it is possible to improve the solubility in the solvent described below. The ethylene ratio of the highly polar resin having an ethylene chain is more preferably 1.0 to 15 mol %. The "ethylene ratio" means the content of ethylene units when the total of the content of ethylene units contained in the highly polar resin having an ethylene chain and the content of other structural units is taken as 100 mol%, and for example, 13 It can be determined by measuring the C nuclear magnetic resonance spectrum.
[0016] The highly polar resin having an ethylene chain preferably has an ethylene chain in the main chain. By having an ethylene chain in the main chain, water resistance can be improved. In the present invention, the term "main chain" refers to the longest chain forming a polymer.
[0017] The ethylene chain-containing highly polar resin preferably has a degree of saponification of 90 to 100%, more preferably 95 to 100%, and even more preferably 97 to 100%.
[0018] The highly polar resin having an ethylene chain preferably has an average degree of polymerization of 200 to 3,000, more preferably 400 to 2,000. By setting the average degree of polymerization within the above range, the viscosity of the barrier coating composition does not increase too much, and it is easy to mix uniformly with other components, and it is possible to impart suitable gas barrier properties to the barrier layer and peel strength from other layers.
[0019] The highly polar resin having an ethylene chain may be a commercially available product, or may be produced by a known production method to satisfy the above ethylene ratio, degree of saponification, average degree of polymerization, etc. Commercially available products of the highly polar resin having an ethylene chain include, for example, Exeval RS-2117 (manufactured by Kuraray Co., Ltd.) and Soarnol SG525 (manufactured by Nippon Synthetic Chemical Industry Co., Ltd.).
[0020] The highly polar resin having an ethylene chain is preferably a copolymer of ethylene and a compound having a vinyl group. Examples of the copolymer of ethylene and a compound having a vinyl group include an ethylene-vinyl alcohol copolymer, an ethylene-acrylic acid copolymer, an ethylene-vinyl acetate copolymer, an ethylene-methyl methacrylate copolymer, an ethylene-ethyl acrylate copolymer, an ethylene-methyl acrylate copolymer, and an ethylene-ethyl acrylate-maleic anhydride copolymer. Among these, from the viewpoint of suitably exhibiting gas barrier properties, ethylene-vinyl alcohol copolymer and ethylene-acrylic acid copolymer are preferred, and ethylene-vinyl alcohol copolymer is more preferred.
[0021] (Hydrolyzate of tetraalkoxysilane and hydrolyzate of tetraalkoxysilane oligomer) The barrier coating composition of the present invention contains a hydrolyzate of a tetraalkoxysilane and / or a hydrolyzate of a tetraalkoxysilane oligomer.
[0022] Examples of the tetraalkoxysilane include tetramethoxysilane, tetraethoxysilane, tetra-n-propoxysilane, tetraisopropoxysilane, tetra-n-butoxysilane, tetraisobutoxysilane, ethoxytrimethoxysilane, dimethoxydiethoxysilane, and methoxytriethoxysilane. Examples of the tetraalkoxysilane oligomer include the above-mentioned tetraalkoxysilane oligomers having an average degree of polymerization of 1 to 10, such as tetramethoxysilane oligomers and tetraethoxysilane oligomers. Among these, tetraethoxysilane is preferred from the viewpoints of its high hydrolysis rate and the excellent drying properties of the alcohol generated by hydrolysis.
[0023] The hydrolysis of the tetraalkoxysilane or tetraalkoxysilane oligomer can be carried out using an acid catalyst or alkali catalyst, alcohol, water, or the like, and heating, but it is preferable to use an acid catalyst because the hydrolysis can be easily controlled.
[0024] The acid catalyst is not particularly limited, but is preferably a volatile acid with a relatively high acidity, specifically sulfonic acid and hydrochloric acid, and more preferably hydrochloric acid. During the hydrolysis, a commonly known catalyst such as tin chloride or acetylacetonate may be further added.
[0025] (mass ratio of highly polar resin having ethylene chain to tetraalkoxysilane hydrolysate and / or tetraalkoxysilane oligomer hydrolysate) In the barrier coating composition of the present invention, the mass ratio of the highly polar resin having an ethylene chain to the tetraalkoxysilane hydrolysate and / or the hydrolysate of a tetraalkoxysilane oligomer (mass of the highly polar resin having an ethylene chain / mass of the hydrolysate of a tetraalkoxysilane and the hydrolysate of a tetraalkoxysilane oligomer) is 55 / 45 to 25 / 75. The mass ratio of the highly polar resin having an ethylene chain to the tetraalkoxysilane hydrolysate and / or the hydrolysate of a tetraalkoxysilane oligomer (mass of the highly polar resin having an ethylene chain / mass of the hydrolysate of a tetraalkoxysilane and the hydrolysate of a tetraalkoxysilane oligomer) is preferably 50 / 50 to 30 / 70, and more preferably 45 / 55 to 35 / 65.
[0026] (solvent) The barrier coating composition of the present invention contains a solvent. As the solvent, either an aqueous or non-aqueous solvent can be used as long as it can dissolve the highly polar resin having an ethylene chain, the hydrolyzate of tetraalkoxysilane, and the hydrolyzate of tetraalkoxysilane oligomer.
[0027] As the solvent, it is preferable to use a mixed solvent of water and a lower alcohol having 1 to 3 carbon atoms. Specifically, examples include mixed solvents containing water and 15 to 70% by mass of at least one lower alcohol having 1 to 3 carbon atoms, such as methyl alcohol, ethyl alcohol, n-propyl alcohol, and isopropyl alcohol. The mixed solvent is preferable because it can suitably dissolve the highly polar resin having an ethylene chain and the hydrolyzate of the tetraalkoxysilane and the hydrolyzate of the tetraalkoxysilane oligomer are chemically stable. The mixed solvent can also be used as a solvent for hydrolysis of the tetraalkoxysilane or the tetraalkoxysilane oligomer.
[0028] (others) If necessary, one or more of ultraviolet absorbers, antistatic agents, leveling agents, antifoaming agents, etc. may be added to the barrier coating composition.
[0029] (Method of producing a barrier coating composition) The barrier coating composition of the present invention can be produced by a conventionally known method. For example, a solution containing a hydrolyzate of tetraalkoxysilane (and / or a tetraalkoxysilane oligomer) is prepared by adding a solvent for hydrolysis and an acid catalyst to tetraalkoxysilane (and / or a tetraalkoxysilane oligomer) and heating and stirring. Alternatively, a solution of the hydrolyzate of tetraalkoxysilane (and / or a tetraalkoxysilane oligomer) is added to a solution in which a highly polar resin having an ethylene chain is dissolved in a solvent, and the components are mixed using a stirrer or disperser.
[0030] The stirring device or dispersing device is not particularly limited as long as it is a normal stirring device or dispersing device that can be used to uniformly mix the components in the dispersion liquid, and examples thereof include Three One Motor (manufactured by Shinto Scientific Co., Ltd.).
[0031] <Barrier composite film> The barrier composite film of the present invention is characterized by having at least a base film layer, a barrier layer, and a heat seal material layer in this order, and the barrier layer is obtained from the barrier coating composition of the present invention.
[0032] (base film layer) The barrier composite film of the present invention has a base film layer. Examples of the base film layer include various plastic films conventionally used in flexible packaging, such as polyolefin, modified polyolefin, polyester, nylon, and polystyrene, and composite films made of two or more of these. The base film layer is preferably subjected to a metal vapor deposition treatment, a corona discharge treatment, or a surface coating treatment.
[0033] The thickness of the base film layer is not particularly limited, but is preferably 0.5 to 1000 μm, more preferably 1 to 500 μm, even more preferably 1 to 100 μm, and particularly preferably 1 to 50 μm.
[0034] The metal vapor deposition treatment can be carried out by vacuum processes such as vacuum deposition of inorganic oxides, sputtering, and plasma vapor deposition (PVD and CVD). Examples of the inorganic oxide include oxides of metals such as silicon, aluminum, zinc, tin, iron, and manganese, and inorganic compounds containing one or more of these metals.
[0035] The thickness of the vapor-deposited layer formed by the metal vapor deposition treatment is not particularly limited, but is preferably 0.1 to 500 nm, more preferably 0.5 to 40 nm.
[0036] (barrier layer) The barrier composite film of the present invention has a barrier layer, and the barrier layer is obtained from the barrier coating composition of the present invention.
[0037] The thickness of the barrier layer is not particularly limited, but is preferably 0.01 to 5 μm, more preferably 0.1 to 2 μm. If the barrier layer is thinner than 0.01 μm, it may be difficult to obtain high gas barrier properties, and even if it exceeds 5 μm, no significant improvement in gas barrier properties may be observed.
[0038] (heat seal material layer) The barrier composite film of the present invention has a heat-sealable material layer. The heat-sealing material layer is a heat-sealable sheet material that has been conventionally used in flexible packaging, such as polyethylene film and polypropylene film. The heat-sealing material layer may be formed by laminating a hot-melt polymer such as low-density polyethylene, ethylene-vinyl acetate copolymer, or polypropylene polymer in a molten state and then cooling the laminate to form a film. In this case, since an adhesive layer cannot be provided on the heat-sealing material layer first, a method is used in which an adhesive layer is provided on the barrier layer side, and then the hot-melt polymer is laminated on the adhesive layer in a molten state.
[0039] The thickness of the heat-sealing material layer is not particularly limited, but is preferably 0.5 to 1000 μm, more preferably 1 to 500 μm.
[0040] (Printing layer) The barrier composite film of the present invention preferably further comprises a printed layer between the base film layer and the heat seal material layer. The printed layer can be formed by printing an organic solvent-based printing ink composition, an aqueous printing ink composition, or the like, which has conventionally been used in flexible packaging, usually by gravure printing or flexographic printing.
[0041] Examples of the organic solvent-based printing ink composition include an aromatic / non-aromatic mixed organic solvent-based printing ink composition containing a pigment and a polyurethane resin, as well as the organic solvent-based printing ink compositions disclosed in JP-A No. 01-261476 (aromatic / non-aromatic mixed organic solvent-based printing ink composition containing a pigment, a polyurethane resin, and chlorinated polypropylene), JP-B No. 07-113098 (non-aromatic organic solvent-based printing ink composition containing a pigment and a polyurethane resin), and JP-A No. 07-324179 (pigment, a polyurethane resin, and a non-aromatic / non-ketone organic solvent-based printing ink composition).
[0042] Examples of the aqueous printing ink composition include the aqueous printing ink compositions disclosed in JP-A-06-155694 (aqueous printing ink composition containing a pigment, an acrylic binder resin, and a hydrazine crosslinking agent) and JP-A-06-206972 (aqueous printing ink composition containing a pigment, water, and a polyurethane binder resin).
[0043] Recently, water-based printing ink compositions and organic solvent-based printing ink compositions that use as little aromatic and ketone organic solvents as possible have come into use as environmentally friendly inks, and these can also be suitably used in the present invention.
[0044] (adhesive layer) The barrier composite film of the present invention may have an adhesive layer between each layer. The adhesive layer can be formed by appropriately selecting an adhesive composition that has been conventionally used in the production of composite laminate films for packaging and by using various coating means.
[0045] The thickness of the adhesive layer (after drying) is, for example, 0.1 to 5 μm.
[0046] (others) The barrier composite film of the present invention may have other functional layers, such as an ultraviolet-shielding layer and an antibacterial layer, if necessary. These can be selected from known ones as appropriate.
[0047] (Method of manufacturing a barrier composite film) Examples of methods for producing the barrier composite film of the present invention include the following methods (a) to (d). The most basic configuration is (a) A method of sequentially coating a base film layer (including a composite film) with the above-mentioned barrier coating composition and an adhesive layer, and then laminating a heat-sealing material layer to obtain a barrier composite film; (b) A method of obtaining a barrier composite film by sequentially coating an adhesive layer, a barrier coating composition, and an adhesive layer on a base film layer (the base film layer also includes a composite film), and then laminating a heat-sealing material layer thereon; (c) A method of first printing an ink composition on a base film layer (the base film layer also includes a composite film) to form a printed layer, then coating an adhesive layer, a barrier coating composition, and another adhesive layer in that order, and then laminating a heat-sealing material layer to obtain a barrier composite film; (d) A method in which an adhesive layer, a barrier coating composition and an adhesive layer are successively applied to a base film layer (the base film layer also includes a composite film), an ink composition is printed to form a printed layer, and a heat-sealing material layer is further laminated to obtain a barrier composite film.
[0048] The adhesive layer and the barrier coating composition can be applied by a roll coating method using a conventional gravure cylinder, a doctor knife method, an air knife / nozzle coating method, a bar coating method, a spray coating method, a dip coating method, or a combination of these methods. The printing layer can be formed by ordinary gravure printing or flexographic printing.
[0049] When providing other functional layers, a barrier composite film suited to the purpose can be produced by combining an appropriate means for providing each functional layer with the above methods (a) to (d).
[0050] The barrier composite film obtained by the above-described manufacturing method can be used as a sealed packaging bag by first folding it in half and heat-sealing two sides using a heat sealer or by stacking two barrier composite films and heat-sealing three sides to form a bag, then filling it with contents and heat-sealing the remaining side.The resulting packaging bag can be used as a packaging bag for food or medical products. [Effects of the Invention]
[0051] The present invention has the above-mentioned configuration, and therefore can provide a barrier coating composition having excellent gas barrier properties, lamination suitability, and boiling suitability, and a barrier composite film including a barrier layer obtained from the composition as an intermediate layer. DETAILED DESCRIPTION OF THE INVENTION
[0052] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples. Unless otherwise specified, "%" means "% by mass" and "parts" means "parts by mass."
[0053] The materials used to prepare the barrier coating composition are as follows: <Highly polar resin having an ethylene chain> RS-2117 (trade name: Excebarl RS-2117, average degree of polymerization 1700, saponification degree 97.5 - 99.0, ethylene ratio 3.0 mol%, manufactured by Kuraray Co., Ltd.) <Highly polar resin having no ethylene chain> PVA-105 (trade name: Kuraray Poval PVA-105, average degree of polymerization 500, saponification degree 98.0 - 99.0, manufactured by Kuraray Co., Ltd.) <Tetraalkoxysilane> TEOS (tetraethoxysilane, trade name: High purity ethyl silicate, manufactured by Tama Chemical Industry Co., Ltd.) <Trialkoxysilane> Methyltrimethoxysilane (KBM-13, manufactured by Shin-Etsu Chemical Co., Ltd.) <Polymer containing sulfonate> CKS-50 (trade name: Gosenex LC CKS-50, polyvinyl alcohol containing sodium sulfonate, saponification degree > 99%, manufactured by Nippon Synthetic Chemical Industry Co., Ltd.) <Solvent><000
[0057] <Preparation of Tetraethoxysilane Hydrolyzate Aqueous Solution (Catalyst: Hydrochloric Acid)> 20.6 parts by mass of ethanol was added to 43.3 parts by mass of TEOS and stirred, and 35.1 parts by mass of ion-exchanged water and 1.0 part by mass of 1N hydrochloric acid were added thereto and heated at 50°C for 1 hour to prepare an aqueous TEOS hydrolysate solution (solid content 12.5%).
[0058] <Preparation of Tetraethoxysilane Hydrolyzate Aqueous Solution (Catalyst: Sulfonic Acid-Modified PVA)> 18.6 parts by mass of ethanol was added to 43.3 parts by mass of TEOS and stirred, and 24.8 parts by mass of ion-exchanged water and 13.3 parts by mass of desalted CKS-50 aqueous solution were added thereto and heated at 50°C for 1 hour to obtain an aqueous TEOS hydrolysate solution (12.5% solids derived from TEOS).
[0059] <Preparation of methyltrimethoxysilane hydrolyzate aqueous solution (catalyst: hydrochloric acid)> 38.5 parts by mass of ethanol was added to 25.4 parts by mass of methyltrimethoxysilane and stirred, and 35.1 parts by mass of ion-exchanged water and 1.0 part by mass of 1 N hydrochloric acid were added thereto, followed by heating at 50°C for 1 hour to prepare an aqueous solution of methyltrimethoxysilane hydrolysate (solid content 12.5%).
[0060] Example 1 22.4 parts by mass of an RS-2117 aqueous solution (solid content 10%), 30.7 parts by mass of ion-exchanged water, 26.9 parts by mass of a TEOS hydrolyzate aqueous solution (catalyst: hydrochloric acid), and 20.0 parts by mass of ethanol were mixed with stirring and stirred at room temperature for 10 minutes to prepare the barrier coating composition of Example 1. In the barrier coating composition of Example 1, the mass ratio of the highly polar resin having an ethylene chain to the tetraethoxylan hydrolysate (resin component / TEOS hydrolysate) was 40 / 60.
[0061] <Examples 2 to 4 and Comparative Examples 1 to 5> According to the formulations in Table 1, the barrier coating compositions of Example 2 and Comparative Examples 1 to 3 were prepared in the same manner as in Example 1. Furthermore, the mass ratio (resin component / hydrolyzate) of the resin component (highly polar resin having an ethylene chain or highly polar resin having no ethylene chain) to the tetraethoxylan hydrolyzate or methyltrimethoxysilane hydrolyzate in the barrier coating compositions of Examples 2 to 4 and Comparative Examples 1 to 5 was determined and is shown in Table 1.
[0062] <Preparation of barrier composite film (for lamination strength and seal strength tests)> The barrier coating compositions of Examples 1 to 4 and Comparative Examples 1 to 5 were applied onto a nylon film (base film layer, N-1102, manufactured by Toyobo Co., Ltd.) using a No. 6 Meyer bar, dried with a dryer, and then maintained at 60°C for 12 hours. A sealant film (heat seal material layer, LS-711C, Idemitsu Unitech Co., Ltd.) was laminated on the obtained barrier layer using a polyether adhesive composition (A-969V, Mitsui Chemicals Polyurethanes Inc.) and a curing agent (A-5, Mitsui Chemicals Polyurethanes Inc.), and the resulting film was held at 40°C for 12 hours to produce barrier composite films (for lamination strength and seal strength tests) of Examples 1 to 4 and Comparative Examples 1 to 5.
[0063] <Preparation of barrier composite film (for oxygen permeability test)> The barrier coating compositions of Examples 1 to 4 and Comparative Examples 1 to 5 were applied to a polypropylene film (P-2161, manufactured by Toyobo Co., Ltd.) using a Mayer bar, dried with a dryer, and then held at 60°C for 12 hours to produce barrier composite films (for oxygen permeability tests) of Examples 1 to 4 and Comparative Examples 1 to 5.
[0064] 〔evaluation〕
[0065] (Laminate strength) (1) Normal conditions Each of the barrier composite films (for lamination strength and seal strength tests) of Examples 1 to 4 and Comparative Examples 1 to 5 was cut into a width of 15 mm, and the lamination strength was measured at a peel rate of 300 mm / min using a T-peel tester (manufactured by Yasuda Seiki Co., Ltd.) The results are shown in Table 1. (2) Watering conditions Each of the barrier composite films (for lamination strength and seal strength tests) of Examples 1 to 4 and Comparative Examples 1 to 5 was cut into a width of 15 mm, and the T-peel strength of each sample piece was measured at a peel rate of 300 mm / min using a peel tester (manufactured by Yasuda Seiki Co., Ltd.) while applying water-soaked absorbent cotton to the peel surface. The results are shown in Table 1.
[0066] (Seal strength) Each of the barrier composite films (for lamination strength and seal strength tests) of Examples 1 to 4 and Comparative Examples 1 to 5 was made into bags using an impulse sealer (manufactured by Fuji Impulse Sealer Co., Ltd.), and the seal strength was measured at a peel speed of 300 mm / min using a peel tester (manufactured by Yasuda Seiki Co., Ltd.) The results are shown in Table 1. In the seal strength evaluation column of Table 1, "△" indicates that triangular peeling occurred, that is, the film was not broken, and the sealant film peeled off in a triangular shape, lifting up from the nylon film.
[0067] (oxygen permeability) Each of the barrier composite films (for oxygen permeability testing) of Examples 1 to 4 and Comparative Examples 1 to 5 was left to stand in an atmosphere of 25°C and 90% RH for 72 hours, and then the oxygen permeability (OTR value) was measured using an oxygen permeability measuring device (OX-TRAN1 / 50, manufactured by Mocon) in accordance with JIS K7126 Method B. The measurements were carried out at 25° C. in an atmosphere of 90% RH. The results are shown in Table 1.
[0068] [Table 1]
[0069] It was confirmed that the barrier composite film produced using the barrier coating composition of the example, which contains a highly polar resin having an ethylene chain, a hydrolyzed product of tetraalkoxysilane, and a solvent, and in which the mass ratio of the highly polar resin having an ethylene chain to the hydrolyzed product of tetraalkoxysilane is within a predetermined range, has excellent lamination strength under normal conditions and under water-soaking conditions, and also has excellent seal strength and gas barrier properties. [Industrial Applicability]
[0070] The barrier coating composition and barrier composite film of the present invention can be suitably used for packaging bags used for packaging food products, packaging bags for medical products, etc.
Claims
1. The composition contains a highly polar resin having an ethylene chain, a hydrolyzate of a tetraalkoxysilane and / or a hydrolyzate of a tetraalkoxysilane oligomer, and a solvent, a mass ratio of the highly polar resin having an ethylene chain to the hydrolysate of tetraalkoxysilane and / or hydrolysate of tetraalkoxysilane oligomer (mass of the highly polar resin having an ethylene chain / mass of the hydrolysate of tetraalkoxysilane and hydrolysate of tetraalkoxysilane oligomer) is 45 / 55 to 35 / 65, the highly polar resin having an ethylene chain is a resin having an ethylene chain and at least one substituent selected from the group consisting of an amino group, an ester group, a carboxyl group, a sulfone group, a cyano group, a thiol group, and a hydroxyl group; The tetraalkoxysilane hydrolysate and / or the tetraalkoxysilane oligomer hydrolysate is an acid-catalyzed hydrolysate, The highly polar resin having an ethylene chain has an ethylene ratio of 1.0 to 15 mol %. A barrier coating composition comprising:
2. 2. The barrier coating composition according to claim 1, wherein the catalyst is hydrochloric acid.
3. 3. The barrier coating composition according to claim 1, wherein the solvent is a mixed solvent of water and a lower alcohol having 1 to 3 carbon atoms.
4. At least a base film layer, a barrier layer, and a heat seal material layer are included in this order; The barrier layer is obtained from the barrier coating composition according to any one of claims 1 to 3. A barrier composite film characterized by:
5. 5. The barrier composite film according to claim 4, further comprising a printed layer between the base film layer and the heat seal material layer.
Citation Information
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