Polyamide laminated film
A polyamide-based laminated film with a biaxially oriented sealant layer addresses heat sealability and resistance issues, ensuring strong seals and pinhole resistance, suitable for packaging and recyclability.
Patent Information
- Application Number
- JP2021158572
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-30
- Filing Date
- 2021-09-29
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2041-09-29
AI Technical Summary
Existing laminated films used in packaging face challenges with heat sealability, heat resistance, and pinhole resistance, particularly during high-temperature sterilization processes, and mono-materialization has not been effectively achieved due to differing thermal properties of layers.
A laminated film composed of polyamide-based resins, where the substrate layer is polyamide 6 and the sealant layer is a biaxially oriented polyamide with a melting point between 150°C and 210°C, containing dimer acid as a copolymerization component, and produced through moisture-adjusted biaxial stretching to ensure strong heat-sealing properties and resistance to pinholes.
The film maintains excellent heat-sealing strength and pinhole resistance after sterilization treatments, facilitating easy recyclability and suitability for packaging applications.
Smart Images

Figure 0007723966000001
Abstract
Description
[Technical Field]
[0001] The present invention relates to a heat-sealable polyamide laminate film. [Background technology]
[0002] In recent years, awareness of environmental issues has increased, and there is a demand for laminated films used in packaging to be made from a single material to make them easier to recycle (mono-materialization).However, because the thermal properties and functions required for each layer of laminated films used in packaging are different, it is difficult to make them from a single material, and mono-materialization has not progressed at present.
[0003] One method for making packaging materials mono-material is to use olefin resins such as polyethylene and polypropylene, which are commonly used as sealant layers, as the resin that constitutes the base material layer. Meanwhile, Patent Document 1 discloses a laminated film in which the resin constituting the substrate layer is polyamide 6 or polyamide 66, and the resin constituting the sealant layer is a copolymer polyamide mainly composed of polyamide 6 or polyamide 66 units. Patent Document 2 discloses a laminated film in which the resin constituting the substrate layer is a polyamide having a melting point of 200°C or higher, and the resin constituting the sealant layer is a copolymer polyamide having a melting point of 150°C or lower. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Special Publication No. 56-009407 [Patent Document 2] Japanese Unexamined Patent Publication No. 58-175657 Summary of the Invention [Problem to be solved by the invention]
[0005] However, the laminated film of Patent Document 1 does not have sufficient heat sealability for use as a packaging bag. Furthermore, the laminated film of Patent Document 2 has low heat resistance in the sealant layer, which can cause problems such as wrinkling and delamination during high-temperature sterilization processes such as retort and boiling, which are required for food packaging, etc., limiting its use as a packaging material. Furthermore, if the sealant layer is made of a resin with a high melting point in order to increase the heat resistance of the sealant layer, the temperature required for heat sealing becomes close to the melting point of the resin that makes up the base layer, which can cause wrinkling and deformation in the base layer during heat sealing.
[0006] The object of the present invention is to solve the problems of the prior art as described above and to provide a laminated film in which all layers are composed of polyamide-based resins, which has good heat-sealing properties, maintains excellent heat-sealing properties even after heat treatment such as boiling, is free from wrinkles or deformation in the heat-sealed parts, and also has excellent pinhole resistance. [Means for solving the problem]
[0007] As a result of investigations to solve the above problems, the inventors discovered that the above object can be achieved by a laminated film in which a specific polyamide resin film is laminated onto a polyamide 6 film as a sealant layer, and thus arrived at the present invention.
[0008] That is, the gist of the present invention is as follows. (1) A laminated film in which a sealant layer is laminated on a substrate layer, the substrate layer is a film (A) containing polyamide 6, The sealant layer is a biaxially oriented film (B) containing a polyamide resin having a melting point of more than 150°C and not more than 210°C, A polyamide-based laminated film characterized in that the seal strength of the sealed portion when the sealant layers are heat-sealed together at an upper surface temperature of 200°C, a lower surface temperature of 150°C, a sealing pressure of 0.3 MPa, and a sealing time of 3.0 seconds is 1.0 kg / 15 mm or more. (2) A polyamide-based laminate film according to (1), characterized in that the seal strength of the sealed portion when the sealant layers are heat-sealed together at an upper surface temperature of 200°C, a lower surface temperature of 150°C, a sealing pressure of 0.3 MPa, and a sealing time of 3.0 seconds after hot water treatment at 90°C for 30 minutes is 0.8 kg / 15 mm or more. (3) The polyamide laminate film according to (1) or (2), wherein the polyamide resin contains a dimer acid as a copolymerization component. (4) The polyamide laminate film according to any one of (1) to (3), wherein the polyamide resin contains a plant-derived component as a polymerization component. (5) A method for producing the polyamide-based laminate film according to any one of (1) to (4) above, a step of adjusting the moisture content of an unstretched laminate film in which an unstretched base layer and an unstretched sealant layer are laminated; a step of biaxially stretching the unstretched laminated film whose moisture content has been adjusted; A method for producing a polyamide-based laminate film, comprising: [Effects of the Invention]
[0009] According to the present invention, it is possible to provide a laminate film in which all layers are monomaterial polyamide resins, which is easily recyclable, has excellent heat seal strength, and is excellent in heat resistance, and therefore maintains excellent heat seal strength even after sterilization treatment with hot water such as retort treatment or boiling treatment, and also has excellent pinhole resistance. The laminate film of the present invention is suitable for use as a packaging material because of its excellent heat seal strength and pinhole resistance after hot water treatment. DETAILED DESCRIPTION OF THE INVENTION
[0010] The present invention will be described in detail below. The polyamide-based laminate film of the present invention is a laminate film in which a substrate layer and a sealant layer are laminated together.
[0011] The substrate layer constituting the polyamide-based laminate film of the present invention is a film (A) containing polyamide 6. Polyamide 6, which has excellent cost performance, is preferred in terms of productivity and performance, and the base layer may use polyamide 6 as the film raw material and contain 30 mass% or less of other polyamide components such as polyamide 66, polyamide 46, polyamide 69, polyamide 610, polyamide 612, polyamide 11, polyamide 12, and polymetaxylylene adipamide (polyamide MXD6) in the form of copolymer, blend, composite layer, etc.
[0012] It is more preferable that these polyamide resins constituting the base layer contain an end-blocking agent such as an organic glycidyl ester, a dicarboxylic anhydride, a monocarboxylic acid such as benzoic acid, or a diamine in order to suppress the generation of monomers when melted.
[0013] The relative viscosity of the polyamide resin constituting the substrate layer is not particularly limited, but the relative viscosity measured using 96% sulfuric acid as a solvent at a temperature of 25°C and a concentration of 1 g / dL is preferably 1.5 to 5.0, more preferably 2.5 to 4.5, and even more preferably 3.0 to 4.0. If the substrate layer contains a polyamide resin with a relative viscosity of less than 1.5, the mechanical properties tend to deteriorate significantly. Furthermore, a polyamide resin with a relative viscosity of more than 5.0 tends to impair the film formability.
[0014] The base layer may contain one or more additives, such as pigments, antioxidants, ultraviolet absorbers, preservatives, antistatic agents, antiblocking agents, and inorganic fine particles, as needed, to the extent that the properties of the film are not adversely affected. The base layer may contain one or more inorganic or organic lubricants to improve the slip properties of the film, etc. Examples of lubricants include clay, talc, calcium carbonate, zinc carbonate, wollastonite, silica, alumina, magnesium oxide, calcium silicate, sodium aluminate, calcium aluminate, magnesium aluminosilicate, glass balloons, carbon black, zinc oxide, antimony trioxide, zeolite, hydrotalcite, layered silicates, and ethylene bisstearamide.
[0015] The sealant layer constituting the laminated film of the present invention is a biaxially oriented film (B) containing a polyamide resin having a melting point of more than 150° C. and not more than 210° C. From the viewpoint of improving heat sealability, the melting point of the polyamide resin constituting the sealant layer must be not more than 210° C., and preferably not more than 200° C. Furthermore, from the viewpoint of heat resistance, the melting point of the polyamide resin must be more than 150° C., and preferably not less than 160° C.
[0016] Examples of polyamide resins constituting the sealant layer and having a melting point of more than 150°C and not more than 210°C include polyamides such as polyamide 11, polyamide 12, and polyamide 1010, copolymer polyamides, and mixtures and composites thereof.
[0017] Examples of copolymerization components of copolymerized polyamides include ω-amino acids and their lactams, dibasic acids and diamines, etc. Specific examples of ω-amino acids and their lactams include 6-aminocaproic acid, 7-aminoheptanoic acid, 8-aminooctanoic acid, 9-aminononanoic acid, 11-aminoundecanoic acid, 12-aminododecanoic acid, and their lactams. Examples of dibasic acids include oxalic acid, malonic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecandioic acid, dodecadioic acid, hexadecadioic acid, eicosanedioic acid, eicosadienedioic acid, 2,2,4-trimethyladipic acid, and dimer acid. Further, examples of diamines include ethylenediamine, trimethylenediamine, tetramethylenediamine, hexamethylenediamine, pentamethylenediamine, undecamethylenediamine, 2,2,4 (or 2,4,4)-trimethylhexamethylenediamine, cyclohexanediamine, bis-(4,4'-aminocyclohexyl)methane, etc. Also, a small amount of aromatic dicarboxylic acid such as terephthalic acid, isophthalic acid, 2,6-naphthalenedicarboxylic acid, xylylenedicarboxylic acid, etc., or a small amount of aromatic diamine such as metaxylylenediamine, etc., may be contained.
[0018] In particular, polyamides containing dimer acid as a copolymerization component are preferred in terms of productivity and performance, and the copolymerization amount of dimer acid is preferably 1 to 50 mass%. Examples of copolymerization components other than dimer acid include ω-amino acids and their lactams, and diamines. Examples of ω-amino acids and lactams include 3-aminopropanoic acid, 4-aminobutanoic acid, 5-aminopentanoic acid, 6-aminohexanoic acid, 7-aminoheptanoic acid, 8-aminooctanoic acid, 9-aminononanoic acid, 10-aminodecanoic acid, 11-aminoundecanoic acid, and 12-aminododecanoic acid, as well as their lactams. Examples of diamines include tetramethylenediamine, pentamethylenediamine, hexamethylenediamine, decamethylenediamine, and dodecamethylenediamine. Examples of polyamide resins containing dimer acid as a copolymerization component include copolymers of polyamide 6 and polyamide made from dimer acid and hexamethylenediamine.
[0019] When the polyamide resin constituting the sealant layer contains polyamide 6 as a copolymerization component, the adhesion to the polyamide 6-containing substrate layer can be improved.
[0020] The copolyamide can be produced by copolymerizing the above-mentioned comonomers, or a commercially available product such as Ultramid C grade manufactured by BASF or copolyamide manufactured by Ube Industries, Ltd. can also be used.
[0021] In the present invention, the polymer components constituting the sealant layer preferably contain plant-derived components, such as pentamethylenediamine, sebacic acid, 11-aminoundecanoic acid, and dimer acid, in order to reduce the environmental impact.
[0022] These polyamide resins constituting the sealant layer preferably contain an end-blocking agent such as an organic glycidyl ester, a dicarboxylic anhydride, a monocarboxylic acid such as benzoic acid, or a diamine in order to suppress the generation of monomers when melted.
[0023] The sealant layer in the present invention must be a biaxially oriented film. By forming the sealant layer from a biaxially oriented film, the laminated film of the present invention will have excellent pinhole resistance.
[0024] The polyamide laminate film of the present invention is a biaxially oriented film (B) in which the sealant layer contains a polyamide resin having a melting point of more than 150°C and not more than 210°C, and is produced by the method described below. When the sealant layers are heat-sealed together at an upper surface temperature of 200°C, a lower surface temperature of 150°C, a sealing pressure of 0.3 MPa, and a sealing time of 3.0 seconds, the seal strength of the sealed portion is 1.0 kg / 15 mm or more. Furthermore, the polyamide laminate film of the present invention preferably has a seal strength of 0.8 kg / 15 mm or more when the sealant layers are heat-sealed together under the above conditions after hot water treatment at 90°C for 30 minutes.
[0025] The polyamide laminate film of the present invention can be produced by the following method. For example, as will be described later, there are methods in which an unstretched laminated film is stretched, and methods in which stretched films are laminated.
[0026] Examples of methods for stretching an unstretched laminate film include a method of stretching an unstretched laminate film produced by coextrusion, and a method of stretching an unstretched laminate film produced by laminating an unstretched substrate layer and a sealant layer via an adhesive by dry lamination. From the viewpoint of improving the heat seal strength after heat treatment and from the viewpoint of achieving a mono-material film without using an adhesive, a method of producing an unstretched laminate film by coextrusion and stretching it is preferred.
[0027] Methods for producing unstretched laminated films by co-extrusion include melting the resins that make up each layer using separate extruders, superimposing them using a feed block method, and extruding them through a die, superimposing two molten resins in a multi-manifold die, and extruding them through a T-die using a combination of the above methods, and then cooling and solidifying them on a rotating cooling drum using a known casting method such as air knife casting or electrostatic casting to form a film. In addition, the adhesive used in the method of laminating an unstretched substrate layer and an unstretched sealant layer by dry lamination via an adhesive may be any known adhesive, such as an isocyanate-based, polyurethane-based, polyester-based, polyethyleneimine-based, polybutadiene-based, polyolefin-based, or alkyl titanate-based adhesive. If the unstretched laminate film is oriented, the stretchability may decrease in subsequent steps, so it is preferable that the unstretched laminate film is substantially amorphous and unoriented.
[0028] In the stretching treatment of the obtained unstretched laminate film, it is preferable to adjust the moisture content of the unstretched laminate film before stretching it, from the viewpoint of improving the heat seal strength of the sealant layer. The moisture adjustment step is preferably performed after the step of removing the monomer from the unstretched laminate film.
[0029] From the viewpoint of improving the heat seal strength of the sealant layer, the moisture content of the unstretched laminate film is preferably 2 to 10% by mass, and from the viewpoint of suppressing curling of the unstretched laminate film, it is more preferably 2 to 7% by mass. When an unstretched laminate film with a moisture content of less than 2% by mass is stretched, the stretching stress increases, making it more likely to cause problems such as film breakage, and the sealant layer of the resulting laminate film may have insufficient heat seal strength. On the other hand, an unstretched laminate film with a moisture content of more than 7% by mass may curl and cause stretching problems, and even if it can be stretched, the resulting laminate film may have significant thickness unevenness.
[0030] In the moisture adjustment step, the temperature of the moisture adjustment tank through which the unstretched laminate film is passed is preferably 20 to 80°C, more preferably 40 to 80°C, from the viewpoint of suppressing curling of the unstretched laminate film after moisture adjustment. If the temperature of the moisture adjustment tank is lower than 20°C, moisture adjustment may take a long time, resulting in poor productivity. On the other hand, if the temperature of the moisture adjustment tank exceeds 80°C, the unstretched laminate film may curl, causing stretching problems.
[0031] The moisture content of the unstretched laminate film can be adjusted by adjusting the time the unstretched laminate film is passed through the moisture adjustment tank. From the viewpoint of suppressing curling after moisture adjustment, a time of 0.5 to 5 minutes is preferable. If the passing time is shorter than 0.5 minutes, the unstretched laminate film will have a low moisture content, and the stretching stress will increase, making the film more susceptible to problems such as breakage, and the sealant layer of the resulting laminate film may have insufficient heat seal strength. On the other hand, if the passing time exceeds 5 minutes, the unstretched laminate film may curl, causing stretching problems, and the resulting laminate film may have significant thickness unevenness. Pure water is usually used in the moisture adjustment tank, but if necessary, the treatment liquid may contain dyes, surfactants, plasticizers, etc. Furthermore, the moisture may be adjusted by spraying water vapor.
[0032] Next, the moisture-adjusted unstretched laminate film can be stretched using known uniaxial or biaxial stretching methods, with biaxial stretching being preferred from the viewpoint of improving mechanical properties. Examples of biaxial stretching include sequential biaxial stretching, in which stretching is performed in the longitudinal direction and then in the transverse direction, and simultaneous biaxial stretching, in which stretching is performed simultaneously in both the longitudinal and transverse directions. In either stretching method, it is preferable to stretch the film to an areal ratio of 9 or more so that the sealant layer has a planar orientation coefficient of 0.05 or more. The stretching method is not particularly limited, but simultaneous biaxial stretching is preferred because it is efficient and can perform the melt film formation, monomer removal, moisture adjustment, stretching, heat setting, and cooling steps in a single process.
[0033] The laminated film that has been subjected to sequential biaxial stretching or simultaneous biaxial stretching is heat-set at a temperature of 150 to 220°C in the tenter where the stretching treatment was performed, and is subjected to a relaxation treatment in the longitudinal direction and / or transverse direction, if necessary, in the range of 0 to 10%, preferably 2 to 6%.
[0034] The thickness of the polyamide-based laminate film produced by stretching the unstretched laminate film is not particularly limited, but when used for packaging purposes, it is preferably 10 to 150 μm, and from the viewpoint of film properties and cost, it is more preferably 20 to 100 μm.
[0035] The polyamide-based laminate film of the present invention can be produced by laminating stretched films in addition to the above-mentioned method of stretching an unstretched laminate film. The stretched substrate layer and the stretched sealant layer can be produced by adjusting the moisture content, stretching, and heat treating the film in the same manner as in stretching the unstretched laminate film. Examples of methods for laminating stretched films include a method in which a stretched substrate layer and a stretched sealant layer are laminated together by dry lamination using an adhesive. The adhesive may be the same as that used in the dry lamination method for the unstretched laminated film described above. From the viewpoint of improving the heat seal strength of the sealant layer, it is preferable to laminate an oriented film obtained by stretching an unstretched film whose moisture content has been adjusted in the same manner as above.
[0036] The thickness of the polyamide laminate film produced by laminating stretched films is not particularly limited, but when used for packaging purposes, the thickness of the base layer is preferably 10 to 50 μm and the thickness of the sealant layer is preferably 10 to 150 μm. From the viewpoint of cost, the thickness of the base layer is more preferably 10 to 30 μm and the thickness of the sealant layer is more preferably 10 to 100 μm.
[0037] The laminated film of the present invention has a base layer laminated with a vapor-deposited layer, which can provide a film with excellent gas barrier properties and few processing defects. The vapor-deposited layer is made of an inorganic or organic compound. Examples of inorganic compounds include metals such as aluminum, and inorganic oxides of aluminum, silicon, magnesium, titanium, and the like. Methods for forming such inorganic layers include vacuum deposition, sputtering, chemical vapor deposition (CVD), physical vapor deposition (PVD), etc. Vacuum deposition is particularly advantageous in practical use. When the substrate layer is subjected to vapor deposition processing, the substrate layer may be subjected to a corona treatment, a plasma treatment, or a coating treatment with an inorganic or organic compound in advance in order to improve the adhesion between the substrate layer and the vapor deposition layer. In the case of vacuum deposition, aluminum (Al), alumina (Al2O3), silicon (Si), silica (SiO2), or a combination of these are used as deposition raw materials. Methods for heating the raw materials include resistance heating, high-frequency induction heating, electron beam heating, and laser heating. In addition, gases such as oxygen can be present during heating, ozone can be added, or an ion-assisted method can be used. The thickness of the vapor-deposited layer is preferably about 1 to 1000 nm. If the thickness is less than 1 nm, gas barrier properties are not exhibited, and if it exceeds 1000 nm, the plasticity of the entire film laminated with the vapor-deposited layer is lost, reducing its practicality.
[0038] The laminated film of the present invention may also have a configuration in which a gas barrier coating layer is laminated on at least one surface of the base layer. The gas barrier coating layer is not particularly limited, but examples thereof include an ethylene vinyl alcohol copolymer (EVOH) layer, a polyvinyl alcohol (PVA) layer, and a polyvinylidene chloride copolymer (PVDC) layer, with a PVDC layer being preferred. PVDC is a polymer containing 60% by mass or more, preferably 70 to 97% by mass, of vinylidene chloride units, and is used in the form of a latex to coat at least one surface of the substrate layer. The average particle size of the PVDC in the latex is preferably 0.05 to 0.5 μm, more preferably 0.07 to 0.3 μm. The latex may contain various additives, such as an antiblocking agent, a crosslinking agent, a water repellent agent, and an antistatic agent, within the range that does not impair the effects of the present invention. The thickness of the PVDC-containing gas barrier coating layer is preferably 0.5 to 3.5 μm, more preferably 0.7 to 3.0 μm, and even more preferably 1.0 to 2.5 μm. If the gas barrier coating layer is thinner than 0.5 μm, it is difficult to achieve sufficient gas barrier properties. On the other hand, if the gas barrier coating layer is thicker than 3.5 μm, not only will the effect saturate, but the physical properties of the film may also be impaired. The adhesive strength between the base layer and the gas barrier coating layer is preferably 0.8 N / cm or more, more preferably 1.0 N / cm or more, and even more preferably 2.0 N / cm or more. If the adhesive strength is less than 0.8 N / cm, the base layer and the gas barrier coating layer may peel off during boiling or retort treatment. When forming a gas barrier coating layer on a substrate layer, it is important to form the layer on the substrate layer at a stage where the amount of monomer is small, after the monomer removal step and before stretching, in order to improve adhesion to the substrate layer. The coating method is not particularly limited, and for example, various coating methods such as a gravure roll method, a reverse roll method, an air knife method, a reverse gravure method, a Mayer bar method, an inverse roll method, or a combination of these, and various spray methods can be used. The substrate layer may be subjected to a corona discharge treatment or the like immediately before coating. The polyamide-based laminate film thus obtained, which has a structure in which a gas barrier layer is laminated on a base layer and a heat seal layer is also laminated on it, has excellent gas barrier properties in addition to the excellent strength and mechanical properties of a polyamide film, and has excellent adhesion between the base layer and the gas barrier layer, making it suitable for use as a packaging material.
[0039] The polyamide laminate film of the present invention can be used as a package such as a bag or a lid material for tray packaging by heat-sealing the sealant layer. Examples of the bag form include three-side sealed bags, four-side sealed bags, pillow bags, standing pouches, rocket packages, etc. In order to impart functionality to the polyamide-based laminate film of the present invention, for example, an antistatic treatment may be performed to suppress the generation of static electricity, or various functional coating liquids other than the above-mentioned barrier coating liquid may be applied. The polyamide laminate film may be subjected to physicochemical treatments such as corona discharge treatment, plating treatment, cleaning treatment, and dyeing treatment, if necessary. [Example]
[0040] The features of the present invention will be described in more detail below with reference to examples and comparative examples, but the scope of the present invention is not limited to these examples.
[0041] (1) Moisture percentage An unstretched film was collected before stretching, placed in a weighing bottle, and dried at 150°C for 20 hours, and the mass was calculated from the change in mass before and after drying.
[0042] (2) Melting point of polyamide film The melting point of the biaxially oriented polyamide resin film (B) was measured using a Perkin Elmer DSC, with a sample weight of 10±1 mg, by raising the temperature from 50°C at a rate of 20°C / min. When there were multiple crystalline melting peaks, the temperature at which the absolute value of the heat flow was greatest was taken as the melting point. In the case of a coextruded laminated film, the biaxially oriented polyamide resin film (B) was scraped off and the measurement was performed.
[0043] (3) Puncture resistance (pinhole resistance) The obtained polyamide-based laminate film was left for 2 hours in an environmental test room adjusted to 23°C and 50% RH, and then measured in accordance with the puncture strength test of JIS Z 1707. Measurements were performed on 10 samples, and the average strength value per 1 μm of film thickness was calculated. The pinhole resistance was evaluated according to the following criteria. 〇:Piercing force is 0.35N / μm or more ×: Puncture strength is less than 0.35N / μm
[0044] (4) Strong seal (sealing temperature 200℃) Two sheets of laminated film were placed together with the sealant side facing up and heat-sealed. The heat-sealing was performed at an upper surface temperature of 200°C, a lower surface temperature of 150°C, a sealing pressure of 0.3 MPa, and a sealing time of 3.0 seconds. Afterwards, the presence or absence of wrinkles in the sealed area was checked. The heat-sealed film was left for 2 hours in an environmental test room adjusted to 23°C and 50% RH, and then measured according to the heat seal strength test of JIS Z 1707, and the heat seal strength was evaluated according to the following criteria. 〇: Tensile strength is 1.0 kg / 15 mm or more ×: Tensile strength is less than 1.0 kg / 15 mm
[0045] (5) Strong seal after hot water treatment (90°C, 30 minutes) The film heat-sealed under the conditions of (4) above was subjected to a hot water treatment at 90°C for 30 minutes, and then left to stand for 2 hours in an environmental test room adjusted to 23°C and 50% RH. After that, the heat seal strength was measured according to the heat seal strength test of JIS Z 1707, and evaluated according to the following criteria. 〇: Tensile strength is 1.0 kg / 15 mm or more △: Tensile strength is 0.8 kg / 15 mm or more and less than 1.0 kg / 15 mm ×: Tensile strength is less than 0.8 kg / 15 mm
[0046] (6) Strong seal (sealing temperature 210°C) In (4) above, a heat-sealed film was produced under the same conditions except that the upper surface temperature was changed from 200°C to 210°C, and the occurrence of wrinkles in the sealed portion was confirmed. The heat-sealed film was left for 2 hours in an environmental test room adjusted to 23°C and 50% RH, and then measured according to the heat seal strength test of JIS Z 1707, and the heat seal strength was evaluated according to the following criteria. 〇: Tensile strength is 1.0 kg / 15 mm or more ×: Tensile strength is less than 1.0 kg / 15 mm
[0047] (7) Laminated state after hot water treatment Using two sheets of laminated film, four sides were sealed under the heat sealing conditions described in (4) above to prepare five 200 mm x 180 mm bags containing 400 ml of water at 20°C. The five bags thus produced were subjected to a hot water treatment at 90°C for 30 minutes, and the presence or absence of delamination at the heat-sealed portion was evaluated according to the following criteria. ○: No delamination occurred △: Delamination occurs in one bag ×: Delamination occurs in 2 or more bags
[0048] The raw materials used in the following examples and comparative examples are as follows. [Polyamide 6 (PA6)] 100 parts by mass of ε-caprolactam, 0.12 parts by mass of benzoic acid (10 mmol / kg relative to ε-caprolactam), and 3 parts by mass of water were charged into a sealed reaction vessel equipped with a stirrer, and the temperature was raised to carry out a polycondensation reaction at a pressure of 0.5 MPa and a temperature of 260°C. The mixture was discharged from the reaction vessel, cut into chips, refined, and dried to obtain polyamide 6. The polyamide 6 chips had a terminal carboxyl group content of 46 mmol / kg, a terminal amino group content of 36 mmol / kg, and a relative viscosity of 3.03.
[0049] [Master Chip] A master chip was prepared by melt-mixing 6 parts by mass of inorganic fine particles (Silysia 310P manufactured by Fuji Silysia Ltd.) with 100 parts by mass of PA6.
[0050] [Polyamide 12 (PA12)] Grilamid L25 manufactured by EMS-CHEMIE was used. The melting point was 178°C.
[0051] [Copolymer polyamide-1 (Polyamide 6 / Polyamide 6.36 (Copolymer PA-1))] A copolymer of polyamide 6 and polyamide 6.36 was produced. 932 kg of caprolactam, 323.2 kg of hydrogenated C36-dimer acid (Croda Pripol 1009), 77.84 kg of an 85% by weight aqueous solution of hexamethylenediamine, and 153 kg of water were mixed in a 1930-liter vessel and blanketed with nitrogen. The vessel's exterior temperature was heated to 290°C, and the mixture was stirred at this temperature for 11 hours. The mixture was stirred under pressure for the first 7 hours and under vacuum for the next 4 hours, while the water produced was distilled off. The resulting copolymerized polyamide was removed from the vessel, extruded, and pelletized. The resulting copolymerized polyamide pellets were extracted four times with hot water at 95°C for 6 hours each, followed by drying in a nitrogen stream at 90-140°C for 10 hours. The resulting copolymerized polyamide had a viscosity of 259 ml / g. The proportion of polyamide 6.36 in the copolyamide was 30.3 mass % based on the total mass of the copolyamide, the density was 1.076 g / ml, and the melting point was 202°C.
[0052] [Copolyamide-2 (copolyamide containing polyamide 6 (copolymer PA-2))] The material used was Grilon CCF6S manufactured by EMS-CHEMIE, with a melting point of 130°C.
[0053] Example 1 PA6 and master chips were blended to a blending ratio of inorganic fine particles of 0.05% by mass, and the mixture was placed in an extruder with a cylinder temperature of 270°C, and copolymerized PA-1 was placed in an extruder with a cylinder temperature of 250°C, respectively, and melted. The mixture was then extruded from a T-die orifice to a thickness ratio (PA6-containing layer / copolymerized PA-1-containing layer) of 15 / 6, and rapidly cooled by being brought into close contact with a rotating drum cooled to 10°C, to obtain an unstretched laminate film with a thickness of 210 μm. Next, as a moisture adjustment step, the unstretched laminate film was introduced into a moisture adjustment tank at 60°C and immersed for 1 minute to absorb moisture. Next, the water-absorbed unstretched laminated film was introduced into a simultaneous biaxial stretching machine and simultaneously biaxially stretched at a ratio of 3.3 times longitudinally and 3.0 times transversely at 170°C. Subsequently, it was heat-treated at 210°C for 4 seconds and relaxed by 5% in the transverse direction to obtain a laminated film in which the base layer (A) was a PA6 film with a thickness of 15 μm and the sealant layer (B) was a biaxially oriented film with a thickness of 6 μm.
[0054] Example 2 A laminated film was produced in the same manner as in Example 1, except that the thickness of the sealant layer (B) was changed.
[0055] Example 3 A laminated film was produced in the same manner as in Example 2, except that copolymer PA-1 was changed to PA12 and the cylinder temperature was changed from 250°C to 260°C.
[0056] Example 4 (Production of base film) The PA6 and master chip were blended so that the inorganic microparticle content was 0.05% by mass. The blend was then fed into an extruder, melted in a cylinder heated to 270°C, extruded into a sheet from a T-die orifice, and rapidly cooled by being placed in close contact with a rotating drum cooled to 10°C, to obtain an unstretched substrate film with a thickness of 150 μm. Next, as a moisture adjustment step, the unstretched substrate film was introduced into a moisture adjustment tank at 60°C and immersed for 1 minute to absorb moisture. Next, the water-absorbed unstretched substrate film was introduced into a simultaneous biaxial stretching machine and simultaneously biaxially stretched at a stretching ratio of 3.3 times in the longitudinal direction and 3.0 times in the transverse direction at 170°C. Subsequently, the film was heat-treated at 210°C for 4 seconds and relaxed by 5% in the transverse direction to obtain a substrate film with a thickness of 15 μm. (Sealant film manufacturing) The copolymerized PA-1 was placed in an extruder, melted in a cylinder heated to 250°C, extruded into a sheet from a T-die orifice, and rapidly cooled by being brought into close contact with a rotating drum cooled to 10°C to obtain an unstretched sealant film with a thickness of 200 μm. Next, as a moisture adjustment step, the unstretched sealant film was introduced into a moisture adjustment tank at 60°C and immersed for 1 minute to absorb moisture. Next, the water-absorbed unstretched sealant film was introduced into a simultaneous biaxial stretching machine and simultaneously biaxially stretched at a stretching ratio of 3.3 times in the longitudinal direction and 3.0 times in the transverse direction at 170°C. Subsequently, the film was heat-treated at 210°C for 4 seconds and relaxed by 5% in the transverse direction to obtain a sealant film with a thickness of 20 μm. (dry lamination) Next, one side of each of the base film and the sealant film was subjected to a corona discharge treatment. A urethane adhesive (Takelac A-525 / Takenate A-52, two-component type, manufactured by Mitsui Chemicals Polyurethanes Inc.) was applied to the corona-treated surface of the base film at a coating amount of 3 g / m after drying. 2 The mixture was then dried in a hot air dryer at 80°C for 10 seconds. The adhesive-coated surface of the base film and the corona-treated surface of the sealant film were bonded together using a nip roll (nip conditions: 80°C), then wound up, and the bonded film was aged for 72 hours in an atmosphere of 40°C to obtain a laminated film in which the sealant layer was laminated onto the base layer.
[0057] Example 5 (Production of base film) A substrate film was prepared in the same manner as in Example 4. (Sealant film manufacturing) A sealant film was obtained in the same manner as in Example 4, except that copolymer PA-1 was changed to PA12 and the cylinder temperature was changed from 250°C to 260°C. (dry lamination) A film in which a sealant layer was laminated on a substrate layer was obtained in the same manner as in Example 4, except that the resin of the sealant layer was changed to PA12.
[0058] Comparative Example 1 A laminated film was produced in the same manner as in Example 2, except that the moisture adjustment step was not carried out.
[0059] Comparative Examples 2 and 3 Except for changing the water temperature in the moisture adjustment tank and the immersion time in the moisture adjustment tank, the same procedure was followed as in Example 2. After the moisture adjustment step, curling occurred, making it difficult to grip the film with the clips of the simultaneous biaxial stretching machine, and stretching was not possible, making it impossible to produce a laminated film.
[0060] Comparative Example 4 A laminated film was produced in the same manner as in Example 2, except that copolymer PA-1 was changed to copolymer PA-2 and the cylinder temperature was changed from 250°C to 180°C.
[0061] Comparative Example 5 (Production of base film) A substrate film was prepared in the same manner as in Example 4. (Production of sealant layer) An unstretched sealant film that had absorbed water was obtained in the same manner as in Example 4, except that copolymer PA-1 was changed to copolymer PA-2 and the cylinder temperature was changed from 250°C to 180°C. Next, the water-absorbed unstretched sealant film was introduced into a simultaneous biaxial stretching machine and simultaneously biaxially stretched at a stretching ratio of 3.3 times longitudinally and 3.0 times transversely at 90°C. Subsequently, the film was heat-treated at 140°C for 4 seconds and relaxed by 5% in the transverse direction to obtain a sealant film with a thickness of 20 μm. (dry lamination) A film in which a sealant layer was laminated on a base layer was obtained in the same manner as in Example 4, except that the resin of the sealant layer was changed to copolymer PA-2.
[0062] Comparative Example 6 (Production of base film) A substrate film was prepared in the same manner as in Example 4. (Sealant film manufacturing) The copolymerized PA-1 was placed in an extruder, melted in a cylinder heated to 250°C, extruded into a sheet from a T-die orifice, and rapidly cooled by being brought into close contact with a rotating drum cooled to 10°C to obtain an unstretched sealant film with a thickness of 20 μm. (dry lamination) A film in which an unstretched sealant layer was laminated on a substrate layer was obtained in the same manner as in Example 4, except that the sealant film was changed to an unstretched sealant film.
[0063] The evaluation results of the laminated films obtained in Examples 1 to 5 and Comparative Examples 1 and 4 to 6 are shown in Table 1.
[0064] [Table 1]
[0065] The laminate films of Examples 1 to 5, all of whose layers were composed of polyamide resin films, had good heat sealing properties, excellent heat sealing properties even after heat treatment, and excellent pinhole resistance. In particular, the laminate films of Examples 1 to 3, which were made by stretching unstretched films laminated by coextrusion after adjusting the moisture content, had excellent heat sealing strength after hot water treatment. On the other hand, the laminated film of Comparative Example 1 was not subjected to the moisture adjustment step and had poor heat sealability. The unstretched laminate films of Comparative Examples 2 and 3 curled after the moisture adjustment step, and could not be stretched to obtain a laminate film. In the laminated films of Comparative Examples 4 and 5, the melting points of the resins constituting the sealant layer (B) did not satisfy the range specified in the present invention, and the heat sealability after heat treatment was poor. The laminated film of Comparative Example 6 had a sealant layer (B) that was not biaxially oriented and was poor in pinhole resistance.
Claims
1. A laminated film in which a sealant layer is laminated on a base layer, the substrate layer is a film (A) containing polyamide 6, The sealant layer is a biaxially oriented film (B) containing a polyamide resin having a melting point of more than 150°C and not more than 210°C, A polyamide-based laminate film characterized by having the following property 1. Property 1: Two sheets of the polyamide laminate film are stacked together with the sealant layers facing each other, and heat-sealed at an upper surface temperature of 200°C, a lower surface temperature of 150°C, a sealing pressure of 0.3 MPa, and a sealing time of 3.0 seconds. After leaving the laminate film for 2 hours under conditions of 23°C and 50% RH, the seal strength of the laminate film is 1.0 kg / 15 mm or more.
2. A polyamide-based laminate film as described in claim 1, further characterized in that it has the following property 2. Property 2: Two sheets of the polyamide-based laminate film are stacked together with the sealant layers facing each other, and heat-sealed at an upper surface temperature of 200°C, a lower surface temperature of 150°C, a sealing pressure of 0.3 MPa, and a sealing time of 3.0 seconds. The resulting laminate film is then subjected to a hot water treatment at 90°C for 30 minutes, and then left to stand for 2 hours under conditions of 23°C and 50% RH. After this, the seal strength of the laminate film is 0.8 kg / 15 mm or more.
3. 3. The polyamide laminate film according to claim 1, wherein the polyamide resin contains a dimer acid as a copolymerization component.
4. 4. The polyamide laminate film according to claim 1, wherein the polyamide resin contains a plant-derived component as a polymerization component.
5. A polyamide-based laminate film as described in claim 1 or 2, wherein the polyamide-based resin is at least one selected from a copolymer polyamide of polyamide consisting of dimer acid and hexamethylenediamine and polyamide 6, polyamide 11, polyamide 12, and polyamide 1010.
6. A polyamide-based laminate film as described in claim 1 or 2, wherein the polyamide-based resin is a copolymer polyamide containing 1 to 50 mass% of a polyamide consisting of dimer acid and hexamethylenediamine.
7. A polyamide-based laminate film as described in claim 1 or 2, wherein the polyamide-based resin is a copolymer polyamide of polyamide consisting of dimer acid and diamine and polyamide 6.
8. A polyamide-based laminate film described in any one of claims 1 to 7, wherein the film (A) contains a polyamide component and inorganic particles, and 70 mass% or more of the total polyamide component is polyamide 6.
9. A method for producing the polyamide-based laminate film according to any one of claims 1 to 8, comprising: a step of adjusting the moisture content of an unstretched laminate film in which an unstretched base layer and an unstretched sealant layer are laminated; a step of biaxially stretching the unstretched laminated film whose moisture content has been adjusted; A method for producing a polyamide-based laminate film, comprising:
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