resin composition

A resin composition combining biopolyethylene resin with ethylene-vinyl alcohol copolymer and specific additives addresses discharge and discoloration issues, ensuring high-quality molded products with improved moldability and barrier properties.

JP7841883B2Active Publication Date: 2026-04-07MITSUBISHI CHEM CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-08-07
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

When using ethylene-vinyl alcohol copolymers blended with polyethylene resins derived from biomass resources, the increased presence of low molecular weight components leads to discharge and discoloration during molding, degrading the appearance of molded products.

Method used

A resin composition comprising biopolyethylene resin, ethylene-vinyl alcohol copolymer with 20-60% ethylene content, and specific components like ethylene-vinyl acetate copolymer, acid-modified ethylene-α-olefin copolymer, ethylene-unsaturated monocarboxylic acid copolymer, ionomer of ethylene-unsaturated monocarboxylic acid copolymer, or ethylene-vinyl alcohol copolymer with 70-90% ethylene content, and hydrotalcite, which suppresses discharge and discoloration.

Benefits of technology

The resin composition effectively reduces discharge and discoloration during molding, maintaining the appearance quality of molded products while enhancing moldability and barrier properties.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

As a resin composition that enables the achievement of a molded article which suppresses the occurrence of eye mucus, while having excellent appearance even if a biopolyethylene resin is used therein, the present invention provides a resin composition which contains (A) a biopolyethylene resin, (B) an ethylene-vinyl alcohol copolymer having an ethylene content of from 20% by mole to 60% by mole, and (C) at least one component selected from the group consisting of an ethylene-vinyl acetate copolymer, an acid-modified ethylene-α-olefin copolymer, an ethylene-unsaturated monocarboxylic acid copolymer, an ionomer of an ethylene-unsaturated monocarboxylic acid copolymer, an ethylene-vinyl alcohol copolymer having an ethylene content of from 70% by mole to 90% by mole, and hydrotalcites.
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Description

[Technical Field]

[0001] The present invention relates to a resin composition, and more particularly to a resin composition that suppresses the generation of eye discharge and yields molded products with excellent appearance, even when using a biopolyethylene resin. [Background technology]

[0002] Conventionally, ethylene-vinyl alcohol copolymers have been mainly used as food packaging materials due to their excellent gas barrier properties and transparency. Sheets, films, etc., used as food packaging materials can be made from the ethylene-vinyl alcohol copolymer alone, but they are usually used as multilayer structures in which polyolefin resins, etc., are laminated via an adhesive layer to impart water resistance, strength, and other functions.

[0003] Furthermore, scrap materials such as waste, ends, and other unwanted parts of molded products, as well as waste after the molded products have been used for various purposes, which are generated after the production of molded products such as containers from the above-mentioned multilayer structure, may be collected, melted and molded, and reused as a recycled layer (hereinafter sometimes referred to as the "regrind layer") in at least one layer of the multilayer structure. When such collected materials are used, there is a need for molded products that prevent discoloration of the molded product, suppress the generation of eye discharge derived from the decomposition products of the ethylene-vinyl alcohol copolymer, and have an excellent appearance.

[0004] On the other hand, in recent years, in order to reduce the environmental burden, there has been consideration to replace some of the resins used in the above-mentioned multilayer structures from petroleum-derived resins to resins derived from biomass resources such as plants (see, for example, Patent Documents 1 to 3). [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] Japanese Patent Publication No. 2014-200968 [Patent Document 2] Japanese Patent Publication No. 2014-104729 [Patent Document 3] Japanese Patent Publication No. 2014-213903 [Disclosure of the Invention] [Problems that the invention aims to solve]

[0006] However, when melt-molding a resin composition containing an ethylene-vinyl alcohol copolymer and a polyethylene resin derived from biomass resources, the polyethylene resin derived from biomass resources contains more low molecular weight components compared to polyethylene resin derived from petroleum. As a result, discharge originating from the polyethylene resin is generated in the resin composition, and as the content of polyethylene resin derived from biomass resources increases, discoloration and discharge originating from polyethylene resin increase, degrading the appearance. Therefore, further improvements are needed.

[0007] Therefore, the present invention provides a resin composition that can suppress the generation of polyethylene resin-derived discharge during molding, even when using polyethylene resin derived from biomass resources, and can also suppress deterioration of the appearance of the molded product, such as discoloration. [Means for solving the problem]

[0008] In view of the above circumstances, the inventors conducted thorough research and found that the above problems can be solved by blending a specific component (C) with a base polymer containing a biopolyethylene resin (A) and an ethylene-vinyl alcohol copolymer (B) with an ethylene content of 20 to 60 mol%.

[0009] In other words, the gist of the present invention is a resin composition containing a biopolyethylene resin (A), an ethylene-vinyl alcohol copolymer (B) having an ethylene content of 20 to 60 mol%, and at least one component (C) selected from the group consisting of ethylene-vinyl acetate copolymer, acid-modified ethylene-α-olefin copolymer, ethylene-unsaturated monocarboxylic acid copolymer, ionomer of ethylene-unsaturated monocarboxylic acid copolymer, ethylene-vinyl alcohol copolymer having an ethylene content of 70 to 90 mol%, and hydrotalcites. [Effects of the Invention]

[0010] The resin composition of the present invention is a resin composition containing a biopolyethylene resin (A), an ethylene-vinyl alcohol copolymer (B) with an ethylene content of 20 to 60 mol%, and at least one component (C) selected from the group consisting of ethylene-vinyl acetate copolymer, acid-modified ethylene-α-olefin copolymer, ethylene-unsaturated monocarboxylic acid copolymer, ionomer of ethylene-unsaturated monocarboxylic acid copolymer, ethylene-vinyl alcohol copolymer with an ethylene content of 70 to 90 mol%, and hydrotalcite. Therefore, the resin composition of the present invention can suppress the generation of discharge originating from the biopolyethylene resin during molding, and can also suppress deterioration of the appearance of the molded product, such as discoloration.

[0011] Furthermore, if the content of component (C) is 0.1 to 30 parts by weight per 100 parts by weight of the total of the biopolyethylene resin (A) and the ethylene-vinyl alcohol copolymer (B) with an ethylene content of 20 to 60 mol%, the generation of discharge originating from the biopolyethylene resin during molding can be further suppressed, and the deterioration of the appearance of the molded product, such as discoloration, can be further suppressed.

[0012] Furthermore, when the weight ratio [(A) / (B)] of the above-mentioned biopolyethylene resin (A) and the above-mentioned ethylene-vinyl alcohol copolymer (B) with an ethylene content of 20-60 mol% is 0.1 / 99.9 to 99.9 / 0.1, excellent moldability during molding and barrier properties of the molded product can be obtained. [Modes for carrying out the invention]

[0013] The following describes specific embodiments for carrying out the present invention, but the present invention is not limited to these. Furthermore, in this invention, "ethylene-vinyl alcohol copolymer with an ethylene content of 20 to 60 mol%" may be referred to as "EVOH".

[0014] The resin composition of the present invention is a base polymer consisting of a biopolyethylene resin (A) and EVOH (B), to which a specific component (C) is blended. Each component will be described below.

[0015] [Biopolyethylene resin (A)] The term "biopolyethylene resin" above refers to polyethylene resin obtained by chemically or biologically synthesizing renewable biomass resources as raw materials. A key characteristic of this biopolyethylene resin is that, even when incinerated, it does not increase the concentration of carbon dioxide in the atmosphere due to the carbon neutrality of the biomass.

[0016] The above biopolyethylene resin (A) preferably uses plant-derived ethylene derived from bioethanol obtained from plant raw materials. In other words, the above biopolyethylene resin (A) is preferably a plant-derived polyethylene resin.

[0017] Polyethylene resins derived from plants (biomass resources) and polyethylene resins derived from petroleum do not differ in physical properties such as molecular weight, mechanical properties, or thermal properties. Therefore, biomass content is generally used to distinguish between them. The above biomass content refers to the amount of carbon in petroleum-derived polyethylene resins.14 Since it does not contain C (radiocarbon 14, half-life 5730 years), this 14 The concentration of C is measured by accelerator mass spectrometry and used as an index for the content ratio of plant-derived biopolyethylene resin. Therefore, for a film using a plant-derived polyethylene resin, when the biomass degree of the film is measured, it becomes the biomass degree corresponding to the content of the plant-derived polyethylene resin. That is, the biopolyethylene resin (A) is characterized by containing radiocarbon ( 14 C).

[0018] The above biomass degree can be measured, for example, by the following method. The measurement target sample is burned to generate carbon dioxide, and the carbon dioxide purified by a vacuum line is reduced with hydrogen using iron as a catalyst to generate graphite. Then, this graphite is mounted on a 14 C-AMS dedicated device (manufactured by NEC Corporation) based on a tandem accelerator, and 14 the counting of C, 13 the concentration of C ( 13 C / 12 C), 14 the concentration of C ( 14 C / 12 C) are measured, and from this measurement value, the ratio of the C concentration of the sample carbon to the standard modern carbon is calculated. 14

[0019] Examples of the above biopolyethylene resin (A) include a polyethylene homopolymer and a polyethylene copolymer obtained by polymerizing ethylene derived from bioethanol. The above polyethylene copolymer is a copolymer of ethylene and a small amount of comonomer, and for example, it is composed of ethylene and another α-olefin monomer with a weight fraction of less than 50%, or a non-olefin monomer having a functional group with a weight fraction of 3% or less.

[0020] Other α-olefins mentioned above include α-olefins with 3 to 20 carbon atoms, such as propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-nonadecene, 1-eicosene, and 3-methyl Examples include -1-butene, 4-methyl-1-butene, 3-methyl-1-pentene, 3-ethyl-1-pentene, 4-methyl-1-pentene, 4-methyl-1-hexene, 4,4-dimethyl-1-hexene, 4,4-dimethyl-1-pentene, 4-ethyl-1-hexene, 3-ethyl-1-hexene, 9-methyl-1-decene, 11-methyl-1-dodecene, 12-ethyl-1-tetradecene, etc. These may be used individually or in combination of two or more.

[0021] Examples of the non-olefin monomers mentioned above include styrene monomers, diene monomers, cyclic monomers, and oxygen atom-containing monomers. These may be used individually or in combination of two or more.

[0022] Examples of the styrene monomers mentioned above include styrene, 4-methylstyrene, and 4-dimethylaminostyrene.

[0023] Examples of the above-mentioned diene monomers include 1,3-butadiene, 1,4-pentadiene, 1,4-hexadiene, 1,5-hexadiene, 1,4-octadiene, 1,5-octadiene, 1,6-octadiene, 1,7-octadiene, 2-methyl-1,5-hexadiene, 6-methyl-1,5-heptadiene, 7-methyl-1,6-octadiene, 4-ethylidene-8-methyl-1,7-nonadiene, 4,8-dimethyl-1,4,8-decatriene (DMDT), dicyclopentadiene, cyclohexadiene, and dicyclooctadiene.

[0024] Examples of the above-mentioned cyclic monomers include methylenenorbornene, 5-vinylnorbornene, 5-ethylidene-2-norbornene, 5-methylene-2-norbornene, 5-isopropylidene-2-norbornene, 6-chloromethyl-5-isopropenyl-2-norbornene, 2,3-diisopropylidene-5-norbornene, 2-ethylidene-3-isopropylidene-5-norbornene, and 2-propenyl-2,2-norbornadiene, cyclopentene, and the like.

[0025] Examples of the oxygen atom-containing monomers mentioned above include hexenol, hexenoic acid, and methyl octenoate.

[0026] The other α-olefins and non-olefin monomers mentioned above may be derived from renewable biomass resources or from petroleum. When using materials derived from renewable biomass resources, the biomass content of the final product can be further increased. When using materials derived from petroleum, a wide variety of materials are available, allowing for easy adjustment of the physical properties of the polyethylene resin by using these materials during production.

[0027] The above biopolyethylene resin (A) is obtained by the homopolymerization of ethylene or copolymerization of ethylene and a comonomer. The polymerization or copolymerization can be carried out according to conventional methods using a metallocene catalyst or a Ziegler-Nutter catalyst. In particular, the use of a metallocene catalyst is preferred.

[0028] Specifically, the above-mentioned bio-polyethylene resin (A) may include, for example, high-density polyethylene (HDPE, density 0.940 g / cm³). 3 (The above) Medium-density polyethylene (MDPE, density 0.925 to 0.940 g / cm³) 3 (less than), low-density polyethylene (LDPE, density 0.925 g / cm³) 3 (less than), linear low-density polyethylene (LLDPE, density 0.910~0.925 g / cm³) 3Examples include the following. These may be used individually or in combination of two or more. Among these, high-density polyethylene and linear low-density polyethylene are preferred.

[0029] The melt flow rate (MFR) (190°C, load 2160g) of the above biopolyethylene resin (A) is typically 0.1 to 50 g / 10 min, preferably 0.5 to 30 g / 10 min, and particularly preferably 2 to 10 g / 10 min. If the MFR is too large, the film-forming properties tend to become unstable, and if it is too small, the viscosity tends to become too high, making melt extrusion difficult.

[0030] Examples of commercially available bio-polyethylene resins (A) that are preferably used in the present invention include Green PE manufactured by Braskem SA. Furthermore, the above-mentioned bioethylene resin (A) may be used alone or in combination of two or more types.

[0031] [EVOH(B)] The above EVOH(B) is a resin obtained by saponifying an ethylene-vinyl ester copolymer, which is typically a copolymer of ethylene and a vinyl ester monomer, and is a water-insoluble thermoplastic resin. For economic reasons, vinyl acetate is generally used as the vinyl ester monomer.

[0032] The polymerization of ethylene and vinyl ester monomers can be carried out using any known polymerization method, such as solution polymerization, suspension polymerization, or emulsion polymerization, and generally, solution polymerization using methanol as the solvent is used. The saponification of the resulting ethylene-vinyl ester copolymer can also be carried out by known methods.

[0033] The EVOH(B) produced in this manner mainly consists of ethylene-derived structural units and vinyl alcohol structural units, and usually contains a small amount of vinyl ester structural units that remain unsaponified.

[0034] As the vinyl ester monomers mentioned above, vinyl acetate is typically used due to its market availability and efficient impurity removal during manufacturing. Other vinyl ester monomers include, for example, aliphatic vinyl esters such as vinyl formate, vinyl propionate, vinyl valerate, vinyl butyrate, vinyl isobutyrate, vinyl pivalate, vinyl caprate, vinyl laurate, vinyl stearate, and vinyl versatate, and aromatic vinyl esters such as vinyl benzoate. Typically, aliphatic vinyl esters with 3 to 20 carbon atoms, preferably 4 to 10 carbon atoms, and particularly preferably 4 to 7 carbon atoms can be used. These can be used individually or in combination of two or more.

[0035] The ethylene content in the above EVOH(B) can be controlled by the pressure of the ethylene during copolymerization of the vinyl ester monomer and ethylene, and is between 20 and 60 mol%. Preferably, it is between 25 and 50 mol%, and particularly preferably between 25 and 35 mol%. If the content is too low, the gas barrier properties and melt moldability under high humidity tend to decrease, and conversely, if it is too high, the gas barrier properties tend to decrease. The ethylene content can be measured in accordance with ISO 14663.

[0036] Furthermore, the degree of saponification of the vinyl ester component in EVOH(B) can be controlled by the amount of saponification catalyst (usually an alkaline catalyst such as sodium hydroxide is used) used to saponify the ethylene-vinyl ester copolymer, as well as the temperature and time. It is typically 90-100 mol%, preferably 95-100 mol%, and particularly preferably 99-100 mol%. If the degree of saponification is too low, gas barrier properties, thermal stability, moisture resistance, etc., tend to decrease. The degree of saponification of such EVOH can be measured according to JIS K6726 (provided that EVOH is used as a solution homogeneously dissolved in water / methanol solvent).

[0037] Furthermore, the melt flow rate (MFR) of the above-mentioned EVOH (at 210°C and a load of 2160g) is typically 0.5 to 100g / 10min, preferably 1 to 50g / 10min, and particularly preferably 3 to 35g / 10min. If the MFR is too high, the film-forming properties tend to become unstable, and if it is too low, the viscosity tends to become too high, making melt extrusion difficult. Such MFR serves as an indicator of the degree of polymerization of EVOH and can be adjusted by the amount of polymerization initiator and solvent used when copolymerizing ethylene and vinyl ester monomers.

[0038] Furthermore, EVOH may also contain structural units derived from the following comonomers, within a range that does not inhibit the effects of the present invention (for example, 10 mol% or less of EVOH). The above comonomers include olefins such as propylene, 1-butene, and isobutene; hydroxyl group-containing α-olefins such as 3-buten-1-ol, 3-buten-1,2-diol, 4-penten-1-ol, and 5-hexen-1,2-diol, and their esterified and acylated derivatives; hydroxyalkylvinylidenes such as 2-methylenepropane-1,3-diol and 3-methylenepentane-1,5-diol; 1,3-diacetoxy-2-methylenepropane, 1,3-dipropionyloxy-2-methylenepropane, and 1,3-dibutyryloxy Hydroxyalkylvinylidene diacetates such as -2-methylenepropane; unsaturated acids such as acrylic acid, methacrylic acid, crotonic acid, (anhydride) phthalic acid, (anhydride) maleic acid, (anhydride) itaconic acid, or their salts, or mono or dialkyl esters with 1 to 18 carbon atoms in the alkyl group; acrylamide, N-alkylacrylamide with 1 to 18 carbon atoms in the alkyl group, N,N-dimethylacrylamide, 2-acrylamidopropanesulfonic acid or its salts, acrylamidopropyldimethylamine or its salts or its quaternary salts, etc. Acrylamides; methacrylamide, N-alkylmethacrylamide with 1 to 18 carbon atoms in the alkyl group, N,N-dimethylmethacrylamide, 2-methacrylamidepropanesulfonic acid or its salts, methacrylamidopropyldimethylamine or its salts or its quaternary salts, and other methacrylamides; N-vinylamides such as N-vinylpyrrolidone, N-vinylformamide, N-vinylacetamide; vinyl cyanides such as acrylonitrile, methacrylnitrile; alkyl vinyl ethers with 1 to 18 carbon atoms in the alkyl group, hydr Examples include vinyl ethers such as roxyalkyl vinyl ethers and alkoxyalkyl vinyl ethers; vinyl halogenated compounds such as vinyl chloride, vinylidene chloride, vinyl fluoride, vinylidene fluoride, and vinyl bromide; vinyl silanes such as trimethoxyvinylsilane; allyl halogenated compounds such as allyl acetate and allyl chloride; allyl alcohols such as allyl alcohol and dimethoxyallyl alcohol; and comonomers such as trimethyl-(3-acrylamido-3-dimethylpropyl)-ammonium chloride and acrylamide-2-methylpropanesulfonic acid.These can be used individually or in combination of two or more types.

[0039] In particular, EVOH having a primary hydroxyl group in the side chain is preferred because it maintains gas barrier properties while having good secondary moldability. Among these, EVOH copolymerized with hydroxyl group-containing α-olefins is preferred, and EVOH having a 1,2-diol structure in the side chain is especially preferred. In particular, in the case of EVOH having a primary hydroxyl group in the side chain, the content of structural units derived from the monomer having the primary hydroxyl group is preferably 0.1 to 20 mol%, more preferably 0.5 to 15 mol%, and especially preferably 1 to 10 mol% of the EVOH.

[0040] Furthermore, the EVOH(B) used in the present invention may be a "post-modified" product such as urethane, acetal, cyanoethylated, or oxyalkyleneated.

[0041] Furthermore, the EVOH(B) used in the present invention may be a mixture of two or more types of EVOH(B), for example, those with different degrees of saponification, different degrees of polymerization, or different copolymer components.

[0042] In the resin composition of the present invention, the weight blending ratio [(A) / (B)] of the biopolyethylene resin (A) to the EVOH (B) is preferably 0.1 / 99.9 to 99.9 / 0.1, more preferably 20 / 80 to 99 / 1, and particularly preferably 25 / 75 to 95 / 5. If the blending ratio of biopolyethylene resin (A) is too low, moldability at low temperatures tends to decrease, while if the blending ratio of biopolyethylene resin (A) is too high, barrier properties tend to decrease.

[0043] The base polymers in the resin composition of the present invention are a biopolyethylene resin (A) and EVOH (B), and the content of the base polymers in the resin composition is usually 60% by weight or more, preferably 70% by weight or more, and particularly preferably 80% by weight or more. The upper limit of the base polymer content is usually 99.9% by weight.

[0044] By incorporating a specific component (C) into the above-mentioned base polymer, it is possible to suppress the generation of discharge originating from biopolyethylene resin during molding, and to suppress deterioration of the appearance of the molded product, such as discoloration. Furthermore, by incorporating component (C), the bulk density tends to be increased when the product is formed into pellets, and it tends to be possible to fill the product more densely when filling it into bags or other containers.

[0045] In the present invention, the content of component (C) is preferably 0.1 to 30 parts by weight per 100 parts by weight of the total amount of biopolyethylene resin (A) and EVOH (B). By keeping the content of component (C) within this range, discoloration of the molded product and deterioration of the appearance of the molded product due to the generation of discharge originating from the biopolyethylene resin during molding can be further suppressed, and the bulk density when formed into pellets can be increased. The content of component (C) is preferably 0.2 to 20 parts by weight, and particularly preferably 0.5 to 10 parts by weight, per 100 parts by weight of the total amount of biopolyethylene resin (A) and EVOH (B). Furthermore, if the resin composition contains two or more types of component (C), the total content of all of them is considered to be the content of component (C).

[0046] The specific component (C) described above is at least one selected from the group consisting of ethylene-vinyl acetate copolymer, acid-modified ethylene-α-olefin copolymer, ethylene-unsaturated monocarboxylic acid copolymer, ionomer of ethylene-unsaturated monocarboxylic acid copolymer, ethylene-vinyl alcohol copolymer with an ethylene content of 70-90 mol%, and hydrotalcites. Component (C) will be described below.

[0047] [Ethylene-vinyl acetate copolymer] The above-mentioned ethylene-vinyl acetate copolymer (hereinafter sometimes referred to as "EVA") is a polymer obtained by copolymerizing ethylene and vinyl acetate. Furthermore, EVA may be modified as needed.

[0048] The vinyl acetate content in the above-mentioned EVA is typically 1 to 60 mol%, preferably 5 to 50 mol%, and particularly preferably 10 to 40 mol%. If the vinyl acetate content is too low, the suppression of eye discharge and improvement of the appearance of the molded product tend to be insufficient. Conversely, if it is too high, EVA has a low decomposition temperature, and acetic acid is generated during decomposition, which may damage machinery. In addition, the thermal stability of the resin composition itself tends to decrease.

[0049] The melt flow rate (MFR) (190°C, 2160g load) of the above EVA is typically 0.1 to 100 g / 10 min, preferably 0.5 to 50 g / 10 min, and particularly preferably 1 to 30 g / 10 min. If the MFR is outside this range, the compatibility with the base polymer decreases, and dispersibility during mixing tends to decrease.

[0050] The above-mentioned EVA may be a modified product containing a carboxyl group, obtained by chemically bonding an unsaturated carboxylic acid or its anhydride by an addition reaction, graft reaction, or the like, to the extent that it does not impede the spirit of the present invention. The amount of such modification is preferably, for example, 10 mol% or less. Examples of the above-mentioned unsaturated carboxylic acid or its anhydride include ethylenically unsaturated monocarboxylic acids such as acrylic acid, methacrylic acid, ethacrylic acid, and crotonic acid, as well as ethylenically unsaturated dicarboxylic acids such as fumaric acid, itaconic acid, citraconic acid, maleic acid, monomethyl maleate, and monoethyl maleate, and their anhydrides and half-esters. Among these, maleic anhydride is preferred.

[0051] The EVA content is preferably 0.1 to 30 parts by weight, more preferably 0.5 to 20 parts by weight, and particularly preferably 1 to 10 parts by weight, per 100 parts by weight of the total of the biopolyethylene resin (A) and EVOH (B). When the EVA content is within the above range, the generation of discharge derived from the biopolyethylene resin during molding can be suppressed, and deterioration of the appearance of the molded product, such as discoloration, can be suppressed. Furthermore, the EVA can be used alone, or two or more types of EVA with different ethylene content, molecular weight, MFR, density, modifying groups and their modification levels can be used in combination.

[0052] [Acid-modified ethylene-α-olefin copolymer] The above-mentioned acid-modified ethylene-α-olefin copolymer is obtained by copolymerizing a portion of the monomers constituting the ethylene-α-olefin copolymer with an α,β-unsaturated carboxylic acid or its anhydride, or by introducing an α,β-unsaturated carboxylic acid or its anhydride into a portion of the side chain of the ethylene-α-olefin copolymer through graft reactions such as radical addition. However, the above-mentioned acid-modified ethylene-α-olefin copolymer excludes the ethylene-unsaturated monocarboxylic acid copolymer described later.

[0053] Examples of the above-mentioned ethylene-α-olefin copolymer include copolymers of ethylene and α-olefins having 3 to 20 (preferably 3 to 10) carbon atoms. Specifically, examples include ethylene-propylene copolymer, ethylene-1-butene copolymer, ethylene-1-hexene copolymer, ethylene-4-methyl-1-pentene copolymer, ethylene-1-octene copolymer, ethylene-1-butene-1-hexene copolymer, ethylene-1-butene-4-methyl-1-pentene copolymer, and ethylene-1-butene-1-octene copolymer. Preferably, ethylene-1-butene copolymer, ethylene-1-hexene copolymer, ethylene-1-octene copolymer, ethylene-1-butene-1-hexene copolymer, and ethylene-1-butene copolymer are preferred.

[0054] Examples of α,β-unsaturated carboxylic acids or their anhydrides used in the above acid modification include ethylenically unsaturated monocarboxylic acids such as acrylic acid, methacrylic acid, ethacrylic acid, and crotonic acid; ethylenically unsaturated dicarboxylic acids such as fumaric acid, itaconic acid, citraconic acid, maleic acid, monomethyl maleate, and monoethyl maleate; or their anhydrides. These α,β-unsaturated carboxylic acids or their anhydrides may be used individually or in combination of two or more. Maleic anhydride is particularly preferred.

[0055] The acid value of the acid-modified ethylene-α-olefin copolymer is usually 50 mgKOH / g or less, preferably 30 mgKOH / g or less, and particularly preferably 20 mgKOH / g or less. If the acid value is too high, the reaction sites with hydroxyl groups in EVOH(B) increase, and high-molecular-weight compounds are formed during the melt-kneading process, reducing stability during extrusion and making it difficult to obtain good molded products. The lower limit of the acid value is usually 1 mgKOH / g, preferably 2 mgKOH / g. The above acid value is measured according to JIS K0070.

[0056] The melt flow rate (MFR) (230°C, load 2160g) of the above acid-modified ethylene-α-olefin copolymer is typically 0.01 to 150 g / 10 min, preferably 0.1 to 50 g / 10 min, more preferably 1 to 25 g / 10 min, and even more preferably 1.5 to 10 g / 10 min. Furthermore, the MFR (at 230°C, under load of 2160g) of the above maleic anhydride-modified ethylene-α-olefin copolymer is typically 0.1 to 150 g / 10 min, preferably 0.5 to 100 g / 10 min, more preferably 1 to 50 g / 10 min, and even more preferably 5 to 35 g / 10 min. If the MFR is outside the above range, compatibility with the base polymer decreases, and dispersibility tends to decrease during mixing.

[0057] The density of acid-modified ethylene-α-olefin copolymers is typically 0.9 g / cm³. 3 The following, preferably 0.89 g / cm³ 3 The following, and particularly preferably 0.88 g / cm³ 3 The following applies. Note that the lower limit of the density of acid-modified ethylene-α-olefin copolymer is usually 0.85 g / cm³. 3 That is the case.

[0058] The content of the above-mentioned acid-modified ethylene-α-olefin copolymer is preferably 0.1 to 30 parts by weight, more preferably 0.5 to 20 parts by weight, and particularly preferably 1 to 10 parts by weight, per 100 parts by weight of the total of the biopolyethylene resin (A) and EVOH (B). When the content of the acid-modified ethylene-α-olefin copolymer is within the above range, the generation of discharge originating from the biopolyethylene resin during molding can be suppressed, and deterioration of the appearance of the molded product, such as discoloration, can be suppressed. Furthermore, the above-mentioned acid-modified ethylene-α-olefin copolymer may be used alone or in combination of two or more types.

[0059] [Ethylene-unsaturated monocarboxylic acid copolymers, ionomers of ethylene-unsaturated monocarboxylic acid copolymers] The above-mentioned ethylene-unsaturated monocarboxylic acid copolymer is obtained by copolymerizing ethylene with copolymer components containing unsaturated monocarboxylic acids.

[0060] Examples of the above-mentioned unsaturated monocarboxylic acids include unsaturated monocarboxylic acids such as acrylic acid and methacrylic acid, and unsaturated monocarboxylic acid esters such as methyl acrylate, ethyl acrylate, isobutyl acrylate, n-butyl acrylate, methyl methacrylate, and isobutyl methacrylate. These may be used individually or in combination of two or more. Among these, methacrylic acid and methyl methacrylate are preferred, and methyl methacrylate is particularly preferred, because they can suppress discoloration of the resin composition during molding and the generation of eye discharge derived from biopolyethylene resins.

[0061] The content of unsaturated monocarboxylic acids in ethylene-unsaturated monocarboxylic acid copolymers is typically 1 to 30% by weight, preferably 5 to 30% by weight. The content of ethylene in ethylene-unsaturated monocarboxylic acid copolymers is typically 50 to 99% by weight, preferably 60 to 95% by weight.

[0062] Furthermore, in addition to ethylene and unsaturated monocarboxylic acids, the copolymer components may also contain other polymerizable monomers in a range that does not hinder the effects of the invention (for example, 30% by weight or less of the copolymer components).

[0063] Examples of other polymerizable monomers include unsaturated dicarboxylic acids such as maleic acid, taconic acid, and phthalic acid; unsaturated dicarboxylic acid anhydrides such as maleic anhydride, itaconic anhydride, and phthalic anhydride; and vinyl esters such as vinyl acetate and vinyl propionate. These may be used individually or in combination of two or more.

[0064] The melt flow rate (MFR) (190°C, load 2160g) of the above ethylene-unsaturated monocarboxylic acid copolymer is typically 0.1 to 100 g / 10 min, preferably 0.5 to 50 g / 10 min, and particularly preferably 1 to 30 g / 10 min. If the MFR is outside this range, the compatibility with the base polymer decreases, and dispersibility during mixing tends to decrease.

[0065] The ionomer of the ethylene-unsaturated monocarboxylic acid copolymer described above is obtained in which some or all of the acidic portion, such as the carboxyl group, of the ethylene-unsaturated monocarboxylic acid copolymer is neutralized with metal ions.

[0066] Examples of metal ions that neutralize the acidic portion, such as the carboxyl group, of the above-mentioned ethylene-unsaturated monocarboxylic acid copolymer include monovalent metal ions such as lithium, sodium, potassium, rubidium, and cesium; divalent metal ions such as calcium, magnesium, iron, and zinc; and trivalent metal ions such as iron and aluminum. Among these, from the viewpoint of elasticity and flexibility, it is preferable that the metal ion neutralizing the acidic portion is a monovalent metal ion, and sodium ions are particularly preferred.

[0067] The metal cation content in the above ionomer is preferably in the range of 0.4 to 4 moles, more preferably 0.6 to 2 moles, per kilogram of ionomer. Furthermore, the degree of neutralization of the ionomer is 15 to 80%, more preferably 20 to 60%, of the acidic portion of the ethylene-unsaturated carboxylic acid copolymer with respect to the above metal ions.

[0068] Furthermore, the melting point of the above ionomer is typically 70 to 120°C, preferably 80 to 110°C, and particularly preferably 85 to 95°C. Furthermore, the melt flow rate (MFR) of the ionomer (at 190°C and a load of 2160g) is typically 0.05 to 100g / 10min, preferably 0.1 to 50g / 10min, and more preferably 0.1 to 10g / 10min.

[0069] The ionomer described above is preferably a monovalent metal ion neutralized product of ethylene-(meth)acrylate copolymer, and particularly preferably a sodium ion neutralized product of ethylene-methyl methacrylate copolymer.

[0070] The content of the ethylene-unsaturated monocarboxylic acid copolymer and the ionomer of the ethylene-unsaturated monocarboxylic acid copolymer is preferably 0.1 to 30 parts by weight, more preferably 0.5 to 20 parts by weight, and particularly preferably 1 to 10 parts by weight, per 100 parts by weight of the total of the biopolyethylene resin (A) and EVOH (B). When the content of the ethylene-unsaturated monocarboxylic acid copolymer or the ionomer of the ethylene-unsaturated monocarboxylic acid copolymer is within the above range, the generation of discharge originating from the biopolyethylene resin during molding can be suppressed, and deterioration of the appearance of the molded product, such as discoloration, can be suppressed. Furthermore, the ethylene-unsaturated monocarboxylic acid copolymer and the ionomer of the ethylene-unsaturated monocarboxylic acid copolymer may be used alone or in combination of two or more types.

[0071] [Ethylene-vinyl alcohol copolymer with an ethylene structural unit content of 70-90 mol%] The ethylene-vinyl alcohol copolymer having an ethylene structural unit content of 70-90 mol% (hereinafter sometimes referred to as "EVA saponified") is obtained by saponifying the vinyl acetate component of an ethylene-vinyl acetate copolymer having an ethylene content of 70-90 mol%, and is therefore different from the aforementioned EVA in that it is saponified.

[0072] The above ethylene-vinyl acetate copolymer can be produced by any known polymerization method, such as solution polymerization, suspension polymerization, or emulsion polymerization, and the saponification of the above ethylene-vinyl acetate copolymer can also be carried out by a known method. Furthermore, the above EVA saponified product may be modified as needed.

[0073] The ethylene content of the above EVA saponified is 70 to 90 mol%, preferably 75 to 90 mol%, and particularly preferably 80 to 90 mol%. If the ethylene content is too low, the effects of the present invention (such as suppression of eye discharge) tend to be insufficient.

[0074] Furthermore, the degree of saponification of the above-mentioned EVA saponified is usually 20 mol% or more, and more preferably 60-100 mol%, and particularly preferably 90-100 mol%. In other words, if the degree of saponification is too low, the effects of the present invention (such as suppression of eye discharge) may be insufficient.

[0075] The melt flow rate (MFR) (190°C, load 2160g) of the above EVA saponified is typically 0.5 to 100 g / 10 min, and more preferably 1 to 50 g / 10 min, and especially 2 to 30 g / 10 min, as this offers excellent dispersibility and enhances the effects of the present invention.

[0076] The above saponified EVA may be a modified product obtained by chemically bonding an unsaturated carboxylic acid or its anhydride through an addition reaction, a graft reaction, etc. within a range that does not inhibit the gist of the present invention. Such a modification amount is preferably, for example, 10 mol% or less specifically. Examples of the above unsaturated carboxylic acid or its anhydride include ethylenically unsaturated monocarboxylic acids such as acrylic acid, methacrylic acid, ethacrylic acid, and crotonic acid, and ethylenically unsaturated dicarboxylic acids such as fumaric acid, itaconic acid, citraconic acid, maleic acid, monomethyl maleate, monoethyl maleate, maleic anhydride, and their anhydrides, half esters, etc. Among them, maleic anhydride is preferred.

[0077] The content of the above saponified EVA is preferably 0.1 to 30 parts by weight, more preferably 0.5 to 20 parts by weight, and particularly preferably 1 to 10 parts by weight with respect to a total of 100 parts by weight of the biodegradable polyethylene-based resin (A) and EVOH (B). When the content of the saponified EVA is within the above range, the generation of fish eyes derived from the biodegradable polyethylene-based resin during molding can be more suppressed, and the appearance degradation such as discoloration of the molded product can be suppressed. Further, the above saponified EVA can be used alone or in combination of two or more saponified EVAs having different ethylene contents, saponification degrees, molecular weights, MFRs, densities, modifying groups, and their modification amounts, etc.

[0078] [Hydrotalcites] Examples of the above hydrotalcites include compounds represented by the following general formula (1).

[0079] [Chemical Formula 1] M x Al y (OH) 2x+3y-2z (E) z ·aH2O ……(1) [In the formula, M is Mg, Ca or Zn, E is CO3 or HPO4, x, y, z are numbers greater than zero, and a is zero or a positive number.]

[0080] Specific examples of the compound represented by the above general formula (1) include Mg4.5 Al2(OH) 13 CO3·3.5H2O, Mg5Al2(OH) 14 CO3·4H2O, Mg6Al2(OH) 16 CO3·4H2O, Mg8Al2(OH) 20 CO3·5H2O, Mg 10 Al2(OH) 22 (CO3)2·4H2O, Mg6Al2(OH) 16 HPO4·4H2O, Ca6Al2(OH) 16 CO3·4H2O, Zn6Al6(OH) 16 Examples include CO3·4H2O. Furthermore, the list is not limited to the above, and includes compounds that cannot be clearly represented by a chemical formula, such as those in which some of the OH groups in Mg2Al(OH)9·3H2O are replaced with CO3 or HPO4, and even compounds from which crystal water has been removed (a=0) that can be expected to have a similar effect. In particular, among these, compounds in general formula (1) where M is Mg and E is CO3 are preferred for their molding stability and their effect in suppressing eye discharge generated by phase separation.

[0081] In addition to the above, other examples of hydrotalcites include compounds represented by the following general formula (2).

[0082] [Cation 2] [(M1 2+ ) y1 (M2 2+ ) y2 ] 1-x M x 3+ (OH)2A n- x / n • mH2O ……(2) [M1 in the formula 2+ is a divalent metal, and is at least one metal selected from Mg, Ca, Sr, and Ba, M2 2+ M is at least one metal selected from Zn, Cd, Pb, and Sn. x 3+ It is a trivalent metal, A n-is an n-valent anion, and x, y1, y2, and m are positive numbers represented by 0 < x ≤ 0.5, 0.5 < y1 < 1, y1 + y2 = 1, and 0 ≤ m < 2, respectively.

[0083] In the above general formula (2), M1 2+ is preferably Mg or Ca, and M2 2+ is preferably Zn or Cd. Further, M x 3+ includes, for example, Al, Bi, In, Sb, B, Ga, Ti, etc. These can be used alone or in combination of two or more, and among them, Al is practical. Also, in the above general formula (2), A n- includes, for example, CO3 2- , OH - , HCO3 - , salicylate ion, citrate ion, tartrate ion, NO3 - , I - , (OOC-COO) 2- , ClO 4- , CH3COO - , CO3 2- , (OOCHC=CHCOO) 2- , [Fe(CN)6] 4- , etc. These can be used alone or in combination of two or more, and among them, CO3 2- and OH - are useful.

[0084] And as the compound represented by the above general formula (2), specifically, [Mg 0.75 Zn 0.25 0.67 Al 0.33 (OH)2(CO3) 0.165 ·0.45H2O, [Mg 0.79 Zn 0.21 0.7 Al 0.3 (OH)2(CO3) 0.15 、[Mg 1 / 7 Ca 3 / 7 Zn 3 / 7 0.7 Al 0.3 (OH)2(OOCHC=CHCOO) 0.15 ·0.41H2O, [Mg 6 / 7Cd 1 / 7 0.7 Al 0.3 (OH)2(CH3COO) 0.3 ·0.34H2O, [Mg 5 / 7 Pd 2 / 7 0.7 Al 0.30 (OH)2(CO3) 0.15 ·0.52H2O, [Mg 0.74 Zn 0.26 0.68 Al 0.32 (OH)2(CO3) 0.16 、[Mg 0.56 Zn 0.44 0.68 Al 0.32 (OH)2(CO3) 0.16 ·0.2H2O, [Mg 0.81 Zn 0.19 0.74 Al 0.26 (OH)2(CO3) 0.13 、[Mg 0.75 Zn 0.25 0.8 Al 0.20 (OH)2(CO3) 0.10 ·0.16H2O, [Mg 0.71 Zn 0.29 0.7 Al 0.30 (OH)2(NO3) 0.30 、[Mg 0.71 Zn 0.29 0.7 Al 0.30 (OH)2(OOCHC=CHCOO) 0.15 、[Mg 0.14 Ca 0.57 Zn 0.28 0.7 Al 0.30 (OH) 2.3 ·0.25H2O etc. can be mentioned, among which, [Mg 0.75 Zn 0.25 0.67 Al 0.33 (OH)2(CO3) 0.165 ·0.45H2O, [Mg 0.79 Zn 0.21 0.7 Al 0.3 (OH)2(CO3) 0.15 、[Mg 6 / 7 ​​​​​​​​​​​CD 1 / 7 ] 0.7 Al 0.3 (OH)2(CH3COO) 0.3 ·0.34H2O,[Mg 5 / 7 Pd 2 / 7 ] 0.7 Al 0.30 (OH))2(CO3) 0.15 0.52H2O is preferred.

[0085] Regarding the particle size of the hydrotalcite compounds mentioned above, for example, the average particle size is usually 10 μm or less, more preferably 5 μm or less, and particularly preferably 1 μm or less. In other words, if the average particle size is too large, the surface area is small, and the effects of the present invention tend not to be fully obtained. The average particle size referred to here is the value measured by the laser diffraction / scattering particle size distribution method.

[0086] Among the hydrotalcites mentioned above, the hydrotalcites represented by the general formula (1) are preferred due to their high molding stability, effectiveness in suppressing foreign matter (eye discharge) generated by phase separation, and effectiveness in suppressing discoloration. 16 CO3·4H2O is particularly preferred.

[0087] The hydrotalcite content is preferably 0.1 to 30 parts by weight, more preferably 0.5 to 20 parts by weight, and particularly preferably 1 to 10 parts by weight, per 100 parts by weight of the total of the biopolyethylene resin (A) and EVOH (B). When the hydrotalcite ionomer content is within the above range, the generation of discharge originating from the biopolyethylene resin during molding can be suppressed, and deterioration of the appearance of the molded product, such as discoloration, can be suppressed. Furthermore, the hydrotalcite may be used alone or in combination of two or more types.

[0088] The resin composition of the present invention contains the above-mentioned component (C) in a base polymer [biopolyethylene resin (A) + EVOH (B)]. Among these, EVA, acid-modified ethylene-α-olefin copolymer, EVA saponified, and hydrotalcite are preferred as component (C) because they can suppress discoloration of molded products and deterioration of the appearance of molded products due to the generation of biopolyethylene resin-derived discharge during molding, and because they can increase the bulk density when formed into pellets. It is also preferable to use these in combination, and preferred combinations include, for example, EVA, EVA saponified, and hydrotalcite, or EVA and EVA saponified. By using these in combination, it is possible to further suppress discoloration of molded products and deterioration of the appearance of molded products due to the generation of biopolyethylene resin-derived discharge during molding, and to further increase the bulk density when formed into pellets.

[0089] [Other ingredients] The resin composition of the present invention may contain thermoplastic resins other than those described in (A) to (C) above (such as petroleum-derived polyethylene) or additives generally added to thermoplastic resins, to the extent that they do not impede the effects of the present invention. Examples of the above-mentioned additives include plasticizers (e.g., aliphatic polyhydric alcohols such as ethylene glycol, glycerin, and hexanediol), oxygen absorbers, heat stabilizers, light stabilizers, ultraviolet absorbers, colorants, antistatic agents, surfactants (excluding those used as lubricants), antibacterial agents, antiblocking agents, and fillers (e.g., inorganic fillers). These additives can be used individually or in combination of two or more.

[0090] [Manufacturing of resin compositions] The resin composition of the present invention comprises (A) to (C) above, and preferably consists only of (A) to (C) and, if necessary, the other components. The biopolyethylene resin (A) and EVOH (B) may be raw materials (unrecycled products) that have never been used in molding, but it is preferable to use recovered materials such as scrap of multilayer structures having layers containing the biopolyethylene resin (A) and EVOH (B).

[0091] Furthermore, in some cases, it is possible to utilize multilayer structures that have already been used as packaging materials. Multilayer structures commonly used as packaging materials for food and the like generally include adhesive resin layers and regrinding layers in addition to layers made of biopolyethylene resin (A) and EVOH (B). Therefore, the resin composition of the present invention may include these adhesive resin layers and regrinding layers in a range that does not hinder the effects of the present invention (for example, 30% by weight or less of the resin composition).

[0092] The following describes a method for producing the resin composition of the present invention, specifically using recovered material from a multilayer structure containing layers made of biopolyethylene resin (A) and EVOH (B).

[0093] Unwanted parts (scrap) such as scraps and ends generated during the manufacturing of multilayer structures, as well as recovered multilayer structures collected as waste, are usually crushed, and then, if necessary, the particle size is adjusted using a sieve or the like, and used as raw materials for the resin composition of the present invention.

[0094] The above-mentioned recovered material can be crushed using a known crusher. The apparent density of the crushed product is usually 0.25 to 0.85 g / mL, more preferably 0.3 to 0.7 g / mL, and particularly preferably 0.35 to 0.6 g / mL. If the apparent density is too low, the dispersion of the biopolyethylene resin (A) in the resin composition layer will be poor, and the melt moldability and mechanical properties of the resin composition layer of the resulting molded product tend to decrease. If it is too high, the melt moldability of the regrind layer of the resulting molded product tends to decrease due to supply problems in the extruder. The above-mentioned apparent density is a value measured in accordance with the test method of "5.3 Apparent Density" in JIS K6891.

[0095] The apparent density mentioned above can be controlled by arbitrarily adjusting the shape of the grinding blades, the rotation speed of the grinding blades, the processing speed of the grinding machine, and the mesh size used for the sieve. Furthermore, the shape and particle size of the ground product can be adjusted using known methods.

[0096] The resin composition of the present invention is manufactured by incorporating component (C) into a pulverized product (hereinafter referred to as "pulverized product") of a recovered multilayer structure containing biopolyethylene resin (A) and EVOH (B). From the viewpoint of productivity, unrecycled biopolyethylene resin (A) and unrecycled EVOH (B) may also be added to such pulverized product.

[0097] Examples of known methods for producing the above resin composition include the dry blending method, the melt kneading method, the solution mixing method, and the impregnation method.

[0098] Examples of the dry blending method described above include (i) a method of dry blending the pulverized product and component (C) using a tumbler or the like. When dry blending, component (C) may be dry blended as is, or a thermoplastic resin pellet containing component (C) may be prepared in advance, and this thermoplastic resin pellet and the pulverized product may be dry blended.

[0099] Examples of the above melt mixing methods include (ii) a method of melting and kneading the dry blend described in (i), and (iii) a method of adding component (C) to the molten pulverized product and then melting and kneading it.

[0100] Examples of the above solution mixing method include (iv) preparing a solution using the above-mentioned pulverized product, adding component (C) thereto, solidifying and molding, then separating the solid and liquid and drying.

[0101] In the present invention, it is possible to combine the above-mentioned different methods. Among them, the melt mixing method is preferred in terms of productivity, and method (ii) is particularly preferred.

[0102] As stated above, the resin composition of the present invention is not limited to cases where recovered multilayer structures are used as raw materials, but may also be made using unrecycled biopolyethylene resin (A) and EVOH (B). When using unrecycled materials, the resin composition may be prepared using known methods, such as dry blending, melt kneading, or solution mixing, to have the compound composition of the present invention, and resin compositions prepared in this manner are also included in the present invention.

[0103] The water content of the resin composition of the present invention is typically 0.01 to 0.5% by weight, preferably 0.02 to 0.35% by weight, and particularly preferably 0.05 to 0.3% by weight.

[0104] The water content of the resin composition in this invention is measured and calculated by the following method. The weight of the resin composition before drying (W1) is weighed using an electronic balance, dried in a hot air dryer at 150°C for 5 hours, and then weighed after cooling in a desiccator for 30 minutes (W2). The result is then calculated using the following formula. Moisture content (weight%)=[(W1-W2) / W1]×100

[0105] The resin composition of the present invention can be prepared in various forms, such as pellets or powders, and provided as a molding material for various molded products. In particular, when the present invention is provided as a material for melt molding, the effects of the present invention tend to be obtained more efficiently, which is preferable.

[0106] The above-mentioned molded products can be used in practical applications as single-layer films molded using the resin composition of the present invention, or as multilayer structures having layers molded using the resin composition of the present invention.

[0107] [Multilayer structure] The above multilayer structure comprises a layer made of the resin composition of the present invention. The layer made of the resin composition of the present invention (hereinafter referred to as the "resin composition layer") can be further strengthened or given other functions by laminating it with another substrate mainly composed of a thermoplastic resin other than the resin composition of the present invention (hereinafter referred to as the "substrate resin").

[0108] Examples of the above-mentioned base resins include polyethylene resins such as linear low-density polyethylene, low-density polyethylene, ultra-low-density polyethylene, medium-density polyethylene, high-density polyethylene, ethylene-propylene (block and random) copolymers, and ethylene-α-olefin (α-olefin with 4 to 20 carbon atoms) copolymers; polypropylene resins such as polypropylene and propylene-α-olefin (α-olefin with 4 to 20 carbon atoms) copolymers; (unmodified) polyolefin resins such as polybutene, polypentene, and polycyclic olefin resins (polymers having a cyclic olefin structure in at least one of the main chain and side chains); and these polyolefins are modified with unsaturated carboxylic acids or Examples include polyolefin resins in a broad sense, such as modified olefin resins including unsaturated carboxylic acid-modified polyolefin resins grafted with the ester, ionomers, ethylene-vinyl acetate copolymers, ethylene-acrylic acid copolymers, ethylene-acrylic acid ester copolymers, polyester resins, polyamide resins (including copolymerized polyamides), polyvinyl chloride, polyvinylidene chloride, acrylic resins, polystyrene resins, vinyl ester resins, polyester elastomers, polyurethane elastomers, polystyrene elastomers, halogenated polyolefins such as chlorinated polyethylene and chlorinated polypropylene, aromatic or aliphatic polyketones, and the like.

[0109] Of these, polyamide resins, polyolefin resins, polyester resins, and polystyrene resins are preferred in terms of economy and productivity, and more preferably polyolefin resins such as polyethylene resins, polypropylene resins, polycyclic olefin resins, and unsaturated carboxylic acid-modified polyolefin resins thereof.

[0110] The layer configuration of the multilayer structure can be any combination, such as a / b, b / a / b, a / b / a, a1 / a2 / b, a / b1 / b2, b2 / b1 / a / b1 / b2, b2 / b1 / a / b1 / a / b1 / b2, etc., where a(a1, a2, ...) is the resin composition layer of the present invention and b(b1, b2, ...) is the base resin layer. Furthermore, it is possible to provide a recycled layer containing a mixture of the resin composition of the present invention and the base resin, obtained by remelting and molding the edges and defective products generated during the manufacturing process of the multilayer structure. The total number of layers in the multilayer structure is usually 2 to 15, preferably 3 to 10. In the above layer configuration, an adhesive resin layer containing an adhesive resin may be interposed between each layer as needed.

[0111] As the adhesive resin mentioned above, any known adhesive resin can be used, and it should be appropriately selected depending on the type of thermoplastic resin used in the base resin layer "b". Typical examples include modified polyolefin polymers containing carboxyl groups, obtained by chemically bonding an unsaturated carboxylic acid or its anhydride to a polyolefin resin by addition reaction, graft reaction, or the like. Examples of the above-mentioned modified polyolefin polymers containing carboxyl groups include maleic anhydride graft-modified polyethylene, maleic anhydride graft-modified polypropylene, maleic anhydride graft-modified ethylene-propylene (block and random) copolymer, maleic anhydride graft-modified ethylene-ethyl acrylate copolymer, maleic anhydride graft-modified ethylene-vinyl acetate copolymer, maleic anhydride-modified polycyclic olefin resin, maleic anhydride graft-modified polyolefin resin, and the like. One or more of these selected can be used.

[0112] In a multilayer structure, when an adhesive resin layer is used between the resin composition layer of the present invention and the base resin layer, it is preferable to use an adhesive resin with excellent hydrophobicity, since the adhesive resin layer is located on both sides of the resin composition layer.

[0113] The above-mentioned base resin and adhesive resin may contain conventionally known plasticizers, fillers, clays (such as montmorillonite), colorants, antioxidants, antistatic agents, lubricants, nucleating agents, antiblocking agents, waxes, etc., in amounts that do not impede the spirit of the present invention (for example, 30% by weight or less, preferably 10% by weight or less, relative to the total resin).

[0114] Lamination of the resin composition of the present invention and the above-mentioned base resin (including cases where an adhesive resin layer is interposed) can be carried out by known methods. For example, methods include melt-extrude lamination of the base resin onto a film, sheet, etc., of the resin composition of the present invention; melt-extrude lamination of the resin composition of the present invention onto a base resin layer; co-extrusion of the resin composition and the base resin; dry lamination of the resin composition layer and the base resin layer using known adhesives such as organic titanium compounds, isocyanate compounds, polyester compounds, and polyurethane compounds; and coating of a solution of the resin composition onto the base resin and then removing the solvent. Among these, the co-extrusion of the resin composition and the base resin is preferred from the viewpoint of cost and the environment.

[0115] The above multilayer structure is subjected to (heat) stretching as needed. The stretching may be uniaxial or biaxial, and in the case of biaxial stretching, it may be simultaneous or sequential stretching. Furthermore, as for the stretching method, methods with a high stretch ratio such as roll stretching, tenter stretching, tubular stretching, stretch blowing, and vacuum pressure forming can be used. The stretching temperature is a temperature near the melting point of the multilayer structure, usually selected from a range of 40 to 170°C, preferably 60 to 160°C. If the stretching temperature is too low, the stretchability will be poor, and if it is too high, it will be difficult to maintain a stable stretched state.

[0116] Furthermore, to impart dimensional stability after stretching, heat fixing may be performed. Heat fixing can be carried out by well-known means; for example, the stretched film is heat-treated at a temperature of 80 to 180°C, preferably 100 to 165°C, for about 2 to 600 seconds while maintaining tension. In addition, when using a multilayer stretched film obtained from the resin composition of the present invention as a shrinkable film, the above heat fixing may be omitted, and instead, a treatment such as cooling and fixing by applying cold air to the stretched film may be performed.

[0117] Furthermore, in some cases, it is possible to obtain cup or tray-shaped multilayer containers using the multilayer structure of the present invention. In such cases, deep drawing is usually employed, specifically vacuum forming, pressure forming, vacuum pressure forming, plug-assisted vacuum pressure forming, etc. In addition, when obtaining tube or bottle-shaped multilayer containers (laminated structures) from multilayer parisons (hollow tubular pre-molded products before blowing), blow molding is employed. Specifically, this includes extrusion blow molding (double-head type, mold moving type, parison shift type, rotary type, accumulator type, horizontal parison type, etc.), cold parison blow molding, injection blow molding, and biaxial stretch blow molding (extrusion cold parison biaxial stretch blow molding, injection cold parison biaxial stretch blow molding, injection molding in-line biaxial stretch blow molding, etc.). The resulting laminate can be subjected to heat treatment, cooling treatment, rolling treatment, printing treatment, dry lamination treatment, solution or molten coating treatment, bag making, deep drawing, box making, tube making, splitting, etc., as needed.

[0118] The thickness of a multilayer structure (including stretched structures), and furthermore, the thickness of the resin composition layer, base resin layer, and adhesive resin layer constituting the multilayer structure, cannot be generalized as they depend on the layer configuration, type of base resin, type of adhesive resin, application, packaging form, required physical properties, etc. However, the thickness of a multilayer structure (including stretched structures) is usually 10 to 5000 μm, preferably 30 to 3000 μm, and particularly preferably 50 to 2000 μm. The resin composition layer is usually 1 to 500 μm, preferably 3 to 300 μm, and particularly preferably 5 to 200 μm; the base resin layer is usually 5 to 3000 μm, preferably 10 to 2000 μm, and particularly preferably 20 to 1000 μm; and the adhesive resin layer is usually 0.5 to 250 μm, preferably 1 to 150 μm, and particularly preferably 3 to 100 μm.

[0119] Furthermore, in a multilayer structure, the thickness ratio of the resin composition layer to the base resin layer (resin composition layer / base resin layer) is, if there are multiple layers, the ratio of the thickest layers, and is usually 1 / 99 to 50 / 50, preferably 5 / 95 to 45 / 55, and particularly preferably 10 / 90 to 40 / 60. Also, in a multilayer structure, the thickness ratio of the resin composition layer to the adhesive resin layer (resin composition layer / adhesive resin layer) is, if there are multiple layers, the ratio of the thickest layers, and is usually 10 / 90 to 99 / 1, preferably 20 / 80 to 95 / 5, and particularly preferably 50 / 50 to 90 / 10.

[0120] The bags made from the films, sheets, and stretched films obtained as described above, and the containers made from cups, trays, tubes, bottles, etc., are useful as packaging materials for various products, including general foods, condiments such as mayonnaise and dressings, fermented foods such as miso, oily foods such as salad oil, beverages, cosmetics, and pharmaceuticals. [Examples]

[0121] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to the following examples unless it exceeds the gist of the invention. Unless otherwise specified, "parts" and "%" below refer to weight-based amounts.

[0122] Prior to the examples, the following components were prepared.

[0123] [Biopolyethylene resin (A)] (A-1): Plant-derived linear low-density polyethylene [SLH118 (Green PE, manufactured by Braskem), MFR 1.0g / 10 min (190℃, load 2160g)] (A-2): Plant-derived high-density polyethylene [SGM9450F (Green PE, manufactured by Braskem), MFR 0.33g / 10 min (190℃, load 5000g)]

[0124] [EVOH(B)] (B-1): Ethylene vinyl alcohol copolymer [ethylene content 29 mol%, MFR 4 g / 10 min (210°C, load 2160 g)]

[0125] [Compound (C)] [EVA] (C-1): EVA-1 [UltraSen 3B53A (manufactured by Tosoh Corporation), vinyl acetate content 25 mol%, MFR 5.3 g / 10 min (190℃, load 2160 g)] (C-2): EVA-2 [Evaflex V5961 (manufactured by Mitsui Dow Polychemicals), vinyl acetate content 9 mol%, MFR 1.7 g / 10 min (190°C, load 2160 g)] (C-3): EVA-3 [Evaflex EV170 (manufactured by Mitsui Dow Polychemicals), vinyl acetate content 33 mol%, MFR 1g / 10 min (190℃, load 2160g)]

[0126] [Acid-modified ethylene-α-olefin copolymer] (C-4): Maleic anhydride-modified ethylene-α-olefin copolymer [Acid-modified Tuffmer MA8510 (manufactured by Mitsui Chemicals, Inc.), MFR: 5.0g / 10 min (230℃, load 2160g)]

[0127] [Ethylene-unsaturated monocarboxylic acid copolymers, ionomers of ethylene-unsaturated monocarboxylic acid copolymers] (C-5): Ethylene-methyl methacrylate copolymer (EMMA) [Nucrel N0903HC (manufactured by Mitsui Dow Polychemicals), methyl methacrylate content 9%, MFR 3g / 10 min (190℃, load 2160g), acid value 59mgKOH / g] (C-6): Ionomer of ethylene-methyl methacrylate copolymer [Hymiran 1707 (manufactured by Mitsui Dow Polychemicals), methyl methacrylate content 9%, MFR 3g / 10 min (190℃, load 2160g)]

[0128] [EVA Saponified Form] (C-7): Ethylene-vinyl alcohol copolymer [Mersen H0051K (manufactured by Tosoh Corporation), ethylene content 89 mol%, degree of saponification 99 mol%, MFR 6.5 g / 10 min (190℃, load 2160 g)]

[0129] [Hydrotalcite] (C-8): Hydrotalcite [ZHT4A (manufactured by Kyowa Chemical Co., Ltd.)]

[0130] [Other ingredients] (α-1): Petroleum-derived polyethylene [Novatec UF240 (manufactured by Nippon Polyethylene Co., Ltd.), MFR 2.1g / 10 min (190℃, load 2160g)] (α-2): Calcium stearate (manufactured by Nitto Chemical Industries, Ltd.) (α-3): Hindered phenol antioxidant [Irganox 1010 (BASF)] (α-4): Polyethylene terephthalate [BK-6180C (manufactured by Mitsubishi Chemical Corporation)] (α-5): Polybutylene succinate [BioPBS FZ91PM (manufactured by Mitsubishi Chemical Corporation)] (α-6): Polystyrene [G9401 (manufactured by PS Japan Co., Ltd.)]

[0131] The above components were mixed together in a dry blend according to Tables 1-4 below. Then, using a gravimetric feeder, the mixture was fed into a twin-shaft kneader at a speed of 25 kg / hr to prepare the pelletized resin compositions of Examples 1-24, Comparative Examples 1-12, and Reference Examples 1 and 2. The kneading conditions were as follows. [Mixing conditions] • Twin-screw extruder: 32mm diameter, L / D = 56 (manufactured by Japan Steel Works, Ltd.) ·Extruder setting temperature: C2 / C3 / C4 / C5 / C6 / C7 / C8 / C9 / C10 / C11 / C12 / C13 / C14 / C15 / C16 / D =90 / 90 / 110 / 150 / 220 / 220 / 220 / 220 / 220 / 220 / 220 / 220 / 220 / 220 / 220 / 220℃ • Screw rotation speed: 270 ppm ·Discharge amount: 20kg / hour • Strand cooling: Water cooling distance 30cm • Pickup speed: 25m / min • Die: 4 holes

[0132] [Table 1]

[0133] [Table 2]

[0134] [Table 3]

[0135] [Table 4]

[0136] The resin compositions prepared in Examples 1-24, Comparative Examples 1-12, and Reference Examples 1 and 2 were used to evaluate the amount of eye discharge, coloration, and bulk density under the following conditions. The results are shown in Tables 5 and 6 below.

[0137] [Amount of eye discharge] When the above resin composition was fed into a twin-screw kneader, the amount of eye discharge generated when 5 kg was dispensed was sampled and its weight was measured. In addition, the improvement rate of eye discharge for each example was calculated using the following formula, with the amount of eye discharge generated in the comparative example corresponding to the base polymer [(A) + (B)] of each example set to 100. Improvement rate (%) = [(M C -M E ) / M C ] × 100 The above M C This corresponds to the amount of eye discharge generated in the comparative example for the base polymer [(A) + (B)] of the example, M E This refers to the amount of eye discharge produced in the example.

[0138] [Color Evaluation (YI)] The YI (ASTMD1925) of the obtained pellets was measured using a Konica Minolta spectrophotometer "CM-3500d" (light source: D65, CM-A120 white calibration plate, CM-A126 petri dish set used, specular reflectance measurement SCE, measurement diameter φ30 mm). Approximately 5 g of the sample was filled into a petri dish, spread evenly, and the YI was calculated by measurement in this state. A higher YI value indicates that the resin composition is more yellow in color.

[0139] [Bulk density] The obtained pellets were placed in a 100cc container to the brim, and the contents were leveled off without applying pressure from above. The weight of the pellets in the container was then determined. The apparent bulk density was calculated by dividing the determined weight by the volume. Furthermore, the improvement rate of the bulk density of each example was calculated using the following formula, with the bulk density of the comparative example corresponding to the base polymer [(A) + (B)] of each example set to 100. A low apparent bulk density means that there are obstacles called jaws or whiskers in the pellets, making it difficult to densely pack the pellets. Improvement rate (%) = [(BD C -BD E ) / BD C ] × 100 Figure BD CThis is the bulk density of the comparative example corresponding to the base polymer [(A) + (B)] of the example, BD E This refers to the bulk density of the example.

[0140] [Table 5]

[0141] [Table 6]

[0142] The resin composition of the example, which contains a predetermined amount of component (C) in biopolyethylene (A) and EVOH (B), was able to suppress the amount of eye discharge compared to the resin composition of the corresponding comparative example. Furthermore, the reference example used general petroleum-derived polyethylene instead of biopolyethylene. Comparing Reference Example 1 with Comparative Example 1, the occurrence of eye discharge was particularly pronounced in Comparative Example 1, which used biopolyethylene. Furthermore, comparing Reference Example 2 with Example 11, Example 11, despite using biopolyethylene, was able to suppress the amount of eye discharge to the same level as Reference Example 2, which used petroleum-derived polyethylene.

[0143] While the above embodiments illustrate specific forms of the present invention, these embodiments are merely illustrative and should not be interpreted restrictively. Various modifications that are obvious to those skilled in the art are intended to fall within the scope of the present invention. [Industrial applicability]

[0144] The resin composition of the present invention can prevent discoloration of molded products and suppress the generation of eye discharge, even when biopolyethylene is used. Therefore, films, sheets, and stretched films made from the resin composition of the present invention are useful as materials for various packaging containers.

Claims

1. The material contains a biopolyethylene resin (A), an ethylene-vinyl alcohol copolymer (B) with an ethylene content of 20 to 60 mol%, and a component (C) consisting of at least one selected from the group consisting of acid-modified ethylene-α-olefin copolymer, ethylene-unsaturated monocarboxylic acid copolymer, ionomer of ethylene-unsaturated monocarboxylic acid copolymer, ethylene-vinyl alcohol copolymer with an ethylene content of 70 to 90 mol%, and hydrotalcites, as well as an ethylene-vinyl acetate copolymer. A resin composition characterized in that the content of component (C) is 0.1 to 30 parts by weight per 100 parts by weight of the total of the biopolyethylene resin (A) and the ethylene-vinyl alcohol copolymer (B) having an ethylene content of 20 to 60 mol%.

2. The resin composition according to claim 1, characterized in that the weight ratio [(A) / (B)] of the above-mentioned biopolyethylene resin (A) and the above-mentioned ethylene-vinyl alcohol copolymer (B) having an ethylene content of 20 to 60 mol% is 0.1 / 99.9 to 99.9 / 0.1.

Citation Information

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