polymer composition
A polymer composition of polyglycolic acid with amorphous polyester additives addresses delamination in PET/PGA/PET structures, ensuring structural integrity and compatibility for recycling, with improved gas barrier properties in multilayer packaging.
Patent Information
- Application Number
- JP2021524463
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-03-20
- Filing Date
- 2019-11-07
- Publication Date
- 2026-01-26
- Estimated Expiration
- 2039-11-07
AI Technical Summary
Existing PET/PGA/PET structures in food and beverage packaging exhibit delamination issues, compromising structural integrity and mechanical properties, and require chemical adhesion between layers to maintain compatibility during recycling.
A polymer composition comprising polyglycolic acid (PGA) with specific additives like amorphous polyester (APES) and optional bio-sourced hydroxy acids, which enhances adhesion and maintains compatibility without reactive tie layers, allowing for multilayer products like bottles, films, and sheets with improved gas barrier properties.
The composition addresses delamination and maintains mechanical integrity while ensuring compatibility for recycling, providing enhanced gas barrier properties and improved adhesion in multilayer packaging.
Smart Images

Figure 0007805782000001 
Figure 0007805782000002 
Figure 0007805782000003
Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Patent Application No. 62 / 759960, filed November 12, 2018, and European Patent Application No. 19163927.7, filed March 20, 2019, the entire contents of which are incorporated herein by reference for all purposes.
[0002] The present invention relates to novel polymer compositions, methods for their preparation, and methods for making multi-layer articles using same.
[0003] It is well known in the art to provide thermoplastic packaging products, such as bottles, films, and sheets, that are useful for packaging food and beverages. Many such products are made from multiple layers of different plastics to achieve the desired barrier properties.
[0004] In the field of food and beverage packaging, it is widely known to provide packaging articles made primarily from polyesters such as polyethylene terephthalate (PET). However, PET resins have poor gas barrier properties, while high gas barrier properties are required to ensure the shelf life of packaged goods. To overcome this shortcoming, multilayer products have been considered that combine PET as the resin for forming the innermost and outermost layers, respectively, with a polyglycolic acid (PGA) barrier layer.
[0005] However, it is observed that such PET / PGA / PET structures can exhibit delamination, which is highly undesirable not only for aesthetic reasons but also for preserving the integrity of the structure and its mechanical properties (such as impact resistance and flex resistance).
[0006] Furthermore, the polymer compositions used must maintain compatibility after recycling of the multilayer product, therefore chemical adhesion between the layers must be avoided and reactive tie layers cannot be used.
[0007] Applicant has now discovered glycolic acid polymer compositions that can meet the above-mentioned requirements and, as a result, can be successfully used in combination with standard polyester resins, such as PET resins, to obtain multi-layer products, such as bottles, films, and sheets, with a thin PGA barrier layer.
[0008] Therefore, the present invention provides: i) at least one polyglycolic acid polymer [polymer (PGA)]; ii) at least one amorphous polyester [polymer (APES)] present in the composition (M) in an amount of at least 0.10% by weight and at most 45% by weight relative to the total weight of polymer (PGA) and polymer (APES); The present invention relates to a polymer composition [composition (M)] containing:
[0009] The polyglycolic acid polymer [polymer (PGA)] can be a branched polyglycolic acid polymer [polymer (b-PGA)], a linear polyglycolic acid polymer [polymer (l-PGA)], or a mixture of polymer (b-PGA) and polymer (l-PGA) [mixture (M)]. The polymer (PGA) is preferably polymer (b-PGA). Therefore, composition (M) preferably contains at least one polymer (b-PGA), more preferably one polymer (b-PGA).
[0010] The polymer (PGA) advantageously has a T of at least 210°C, preferably at least 220°C, more preferably at least 230°C, measured by differential scanning calorimetry (DSC), preferably according to ISO 11357-3 (European standard) or ASTM D3418 (American standard), on a 10 mg sample during a first heating from 20°C to 270°C at 10°C / min under nitrogen. mThe polymer (PGA) advantageously exhibits a T of up to 250°C, preferably up to 240°C, measured by DSC, preferably according to ISO 11357-3 (European standard) or ASTM D3418 (American standard), on a 10 mg sample during the first heating from 20°C to 270°C at 10°C / min under nitrogen. m The polymer (PGA) most preferably exhibits a T of 236°C, measured by DSC according to ISO 11357-3 (European standard) or ASTM D3418 (American standard) on a 10 mg sample during the first heating from 20°C to 270°C at 10°C / min under nitrogen. m Shows.
[0011] The polymer (PGA) advantageously has a glass transition temperature (T ) of at least 30° C., preferably at least 35° C., more preferably at least 40° C., measured by DSC, preferably according to ISO 11357-3 (European standard) or ASTM D3418 (American standard), on a 10 mg sample during a first heating from 20° C. to 270° C. at 10° C. / min under nitrogen. g The polymer (PGA) advantageously exhibits a glass transition temperature (T ) of at most 60°C, preferably at most 55°C, more preferably at most 50°C, measured by DSC, preferably according to ISO 11357-3 (European standard) or ASTM D3418 (American standard), on a 10 mg sample during the first heating from 20°C to 270°C at 10°C / min under nitrogen. g The polymer (PGA) most preferably has a glass transition temperature T of 45°C, measured by DSC according to ISO 11357-3 (European standard) or ASTM D3418 (American standard) on a 10 mg sample during the first heating from 20°C to 270°C at 10°C / min under nitrogen. g Shows.
[0012] The polymer (b-PGA) is preferably (i) glycolic acid (GA); (ii) optionally at least one hydroxyl acid different from GA, having only one hydroxyl group and only one carboxylic acid group [hydroxy acid (A)], advantageously at most 5 mol % relative to the total number of moles of GA and hydroxy acid (A); (iii) at least one polyol [polyol (H)] containing at least three hydroxyl groups and no carboxylic acid groups, the number of which is advantageously at least 0.050% and advantageously at most 0.750% relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present; (iv) optionally at least one polyacid [polyacid (O)] containing at least two carboxylic acid groups and no hydroxyl groups, in an amount such that the number of its carboxyl groups is advantageously at least 0.050%, advantageously at most 0.750%, relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present; It contains units derived from the polycondensation of
[0013] Complementary to the above units (i) to (iv), the polymer (b-PGA) may also optionally contain (v) units resulting from the polycondensation of at least one carboxylic acid having one carboxylic acid group and no hydroxyl groups [monoacid (C)], in an amount such that the number of its carboxylic acid groups is advantageously less than 0.010% relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present.
[0014] The choice of hydroxy acid (A) is not limited, and any hydroxy acid capable of polycondensation, i.e., any hydroxy acid capable of forming a macromolecule by condensation (chain addition of monomers with the elimination of water), can be used. Examples include lactic acid, 3-hydroxybutyric acid, 4-hydroxybutyric acid, 4-hydroxyvaleric acid, 5-hydroxyvaleric acid, and 6-hydroxycaproic acid. In general, hydroxy acids (A) containing primary alcohols are preferred because they are more reactive. In this regard, particularly good results can be obtained when the hydroxy acid (A) is lactic acid (LA) (L- or D-isomer, either in a racemic mixture or as a single isomer).
[0015] In one variant of the invention, both the GA and the hydroxy acid (A), if present, are bio-sourced, i.e. derived from natural renewable raw materials, as opposed to fossil raw materials. The use of bio-sourced PGA and, where applicable, the use of hydroxy acid (A), allows the synthesis of "environmentally friendly" polymers, i.e. polymers synthesized from renewable raw materials.
[0016] When present, the amount of hydroxy acid (A) is advantageously at most 5 mol%, preferably at most 4 mol%, more preferably at most 3 mol%, based on the total number of moles of GA and hydroxy acid (A), and / or said amount can be as low as 0.1 mol%. It is generally understood that the amount of hydroxy acid (A) will be adjusted to provide certain advantages, if any, without significantly adversely affecting the barrier properties appropriate for PGA.
[0017] Embodiments in which no additional hydroxy acid (A) is used in combination with GA are within the scope of the present invention and may be preferred from the standpoint of maximizing barrier properties.
[0018] The selection of polyol (H) is not particularly limited. Specifically, glycerol, trimethylolpropane, trimethylolbutane, 2,3-di(2'-hydroxyethyl)-cyclohexane-1-ol, hexane-1,2,6-triol, 1,1,1-tris(hydroxymethyl)ethane, 3-(2'-hydroxyethoxy)propane-1,2-diol, 3-(2'-hydroxypropoxy)-propane-1,2-diol, 2-(2'-hydroxyethoxy)-hexane-1,2-diol, 6-(2'hydroxypropoxy)-hexane-1,2-diol, a triol selected from the group consisting of 1,1,1-tris-[(2'-hydroxyethoxy)-methylethane, 1,1,1-tris-[(2'-hydroxypropoxy)-methyl-propane, 1,1,1-tris-(4'-hydroxyphenyl)ethane, 1,1,1-tris-(hydroxyphenyl)-propane, 1,1,5-tris-(hydroxyphenyl)-3-methylpentane, trimethylolpropane ethoxylate, trimethylolpropane propoxylate, and tris(hydroxymethyl)aminomethane; tetraols, in particular selected from the group consisting of diglycerol, di(trimethylolpropane), pentaerythritol, 1,1,4-tris-(dihydroxyphenyl)-butane, - polyols containing five hydroxyl groups, in particular triglycerol, - polyols containing six hydroxyl groups, in particular dipentaerythritol, and - Polyols containing eight hydroxyl groups, especially tripentaerythritol may be selected from the group consisting of:
[0019] Preferred polyols (H) are the triols (e.g. trimethylolpropane) and tetraols (e.g. pentaerythritol) detailed above, more particularly the triols. A polyol (H) which has proven to provide particularly good results within the framework of the present invention is trimethylolpropane.
[0020] The polyol (H) is used in an amount such that the number of its hydroxyl groups is advantageously at least 0.050%, preferably at least 0.100%, more preferably at least 0.200% and / or at most 0.750%, preferably at most 0.650%, more preferably at most 0.600%, relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present.
[0021] Amounts of polyol (H) whose number of hydroxyl groups is between 0.300 and 0.550% relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present, have been found to be particularly useful according to preferred embodiments of the present invention.
[0022] The polyacid (O) may contain two carboxylic acid groups, three carboxylic acid groups, or more than three carboxylic acid groups, for example four carboxylic acid groups. The polyacid (O) may be selected from aliphatic polycarboxylic acids, alicyclic polycarboxylic acids, and aromatic polycarboxylic acids.
[0023] As the polyacid (O) having two carboxylic acid groups, an aliphatic dicarboxylic acid, an alicyclic dicarboxylic acid, and an aromatic dicarboxylic acid can be used.
[0024] Specific aliphatic dicarboxylic acids include, for example, succinic acid, oxalic acid, malonic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanoic acid, and dodecanoic acid, and 3,3-dimethylpentanedioic acid.
[0025] Specific alicyclic dicarboxylic acids include, for example, cyclohexane dicarboxylic acids such as hexahydroorthophthalic acid, hexahydrometaphthalic acid, and hexahydroparaphthalic acid, and diacids having a —COOH group covalently bonded to a norbornylmethane backbone, a cyclohexylmethane backbone, a dicyclohexylmethane backbone, a dicyclohexylpropane backbone, a di(methylcyclohexyl) or a di(methylcyclohexyl)propane backbone.
[0026] Aromatic dicarboxylic acids, i.e., aromatic diacids containing two carboxylic acid groups covalently bonded to aromatic carbon atoms that are part of the cyclic structure of the aromatic moiety and that do not contain a hydroxyl group, are particularly phthalic acids, such as isophthalic acid (IA) and terephthalic acid (TA), 2,5-pyridinedicarboxylic acid, 2,4-pyridinedicarboxylic acid, 3,5-pyridinedicarboxylic acid, 2,2-bis(4-carboxyphenyl)propane, bis(4-carboxyphenyl)methane, 2,2-bis(4-carboxyphenyl)hexafluoropropane, 2,2-bis(4-carboxyphenyl)propane, bis(4-carboxyphenyl)methane, 2,2-bis(4-carboxyphenyl)hexafluoropropane, 2,2-bis(4-carboxyphenyl)propane, bis(4-carboxyphenyl)methane, bis(4-carboxyphenyl)hexafluoropropane, bis(4-carboxyphenyl) ... bis(3-carboxyphenyl) ketone, 4,4'-bis(4-carboxyphenyl) sulfone, 2,2-bis(3-carboxyphenyl) propane, bis(3-carboxyphenyl) methane, 2,2-bis(3-carboxyphenyl) hexafluoropropane, 2,2-bis(3-carboxyphenyl) ketone, bis(3-carboxyphenoxy) benzene, and naphthalenedicarboxylic acids such as 2,6-naphthalenedicarboxylic acid, 2,7-naphthalenedicarboxylic acid, 1,4-naphthalenedicarboxylic acid, 2,3-naphthalenedicarboxylic acid, and 1,8-naphthalenedicarboxylic acid.
[0027] Examples of aliphatic polycarboxylic acids containing three or more carboxylic acid groups are: - Propane-1,2,3-tricarboxylic acid (also known as tricarballylic acid); - ethane-1,1,2,2 tetracarboxylic acid; - butane-1,2,3,4 tetracarboxylic acid; - Pentane-1,2,4,5-tetracarboxylic acid is.
[0028] Among these, propane-1,2,3-tricarboxylic acid and butane-1,2,3,4-tetracarboxylic acid are preferred.
[0029] Examples of alicyclic polycarboxylic acids containing three or more carboxylic acid groups are: - 1,2,3,4-cyclobutanetetracarboxylic acid; - 2,2,6,6-tetra-(carboxyethyl)cyclohexanone; - (+)-(18-crown-6)-2,3,11,12-tetracarboxylic acid; - cyclopentane-1,2,3,4 tetracarboxylic acid; - cyclohexane-1,2,4,5 tetracarboxylic acid; - cyclohexane-2,3,5,6 tetracarboxylic acid; - 3-ethylcyclohexane-1,2,4,5 tetracarboxylic acid; - 1-methyl-3-ethylcyclohexane-3-(1,2)5,6tetracarboxylic acid; - 1-ethylcyclohexane-1-(1,2),3,4tetracarboxylic acid; - 1-propylcyclohexane-1-(2,3),3,4tetracarboxylic acid; - 1,3-dipropylcyclohexane-1-(2,3),3-(2,3)tetracarboxylic acid; - Dicyclohexyl-3,4,3',4'tetracarboxylic acid is.
[0030] Examples of aromatic polycarboxylic acids containing three or more carboxylic acid groups are: - Pyromellitic acid (1,2,4,5-benzenetetracarboxylic acid); - Trimesic acid (1,3,5-benzenetricarboxylic acid); - Trimellitic acid (1,3,4-benzenetricarboxylic acid); - benzophenone-3,3',4,4'-tetracarboxylic acid; - tetrahydrofuran-2,3,4,5-tetracarboxylic acid; - 4,4'-(hexafluoroisopropylidene)diphthalic acid; - 4,4'-oxydiphthalic anhydride; - 4,4'-(4,4'-isopropylidenediphenoxy)bis(phthalic acid); - 3,3',4,4'-biphenyltetracarboxylic acid; - 2,3,3',4'-biphenyltetracarboxylic acid; - 2,2',3,3'-biphenyltetracarboxylic acid; - 1,2,5,6-naphthalenetetracarboxylic acid; - 2,3,6,7-naphthalenetetracarboxylic acid; - Perylene-3,4,9,10 tetracarboxylic acid; - propane 2,2-bis(3,4-dicarboxyphenyl) acid; - ethane 1,1-bis(2,3-dicarboxyphenyl) acid; - ethane 1,1-bis(3,4-dicarboxyphenyl) acid; - phenanthrene-1,8,9,10-tetracarboxylic acid; - tetrahydrofuran-2,3,4,5-tetracarboxylic acid; - 3,3',4,4'-benzophenonetetracarboxylic acid; - 2,2',3,3'-benzophenonetetracarboxylic acid; - 2,3,5,6-pyridinetetracarboxylic acid; - 3,3',4,4'-tetraphenylsilanetetracarboxylic acid; - 2,2'-bis(3,4-bicarboxyphenyl)hexafluoropropanetetracarboxylic acid; - 2,2-bis(3,4-dicarboxyphenyl)sulfonic acid; - 4,4'-(hexafluoroisopropylidene)diphthalic acid; - 3,3',4,4'-diphenylsulfonetetracarboxylic acid; - Ethylene glycol bistrimellitic acid; - Hydroquinone diphthalate; - pyrazine-2,3,5,6-tetracarboxylic acid; - Thiophene-2,3,4,5-tetracarboxylic acid is.
[0031] The polyacids (O) which have been found to give excellent results within the scope of the present invention are aromatic dicarboxylic acids. Phthalic acid is generally preferred. An aromatic dicarboxylic acid which has been shown to give particularly good results is isophthalic acid, which is therefore particularly preferred.
[0032] When present, the polyacid (O) is used in an amount such that the number of its carboxyl groups is advantageously at least 0.050%, preferably at least 0.075%, more preferably at least 0.100%, and / or advantageously at most 0.750%, preferably at most 0.650%, more preferably at most 0.600%, relative to the total number of hydroxyl groups of GA and hydroxy acid (A), if present.
[0033] Amounts of polyacid (O) whose number of carboxyl groups is between 0.100 and 0.550% relative to the total number of hydroxyl groups of GA and hydroxy acid (A), if present, have been found to be particularly useful according to preferred embodiments of the present invention.
[0034] The choice of monoacid (C) is not particularly limited. It is generally understood that better results are obtained with long-chain acids, i.e., monoacids (C) whose total number of carbon atoms is advantageously at least 4, preferably at least 5, more preferably at least 6. Generally, the monoacid (C) has 4 to 36 carbon atoms, preferably 6 to 24 carbon atoms.
[0035] Although the monoacid (C) may contain unsaturated double bonds in its hydrocarbon chain, the monoacid (C) is preferably an aliphatic acid, i.e., an acid of the formula: R Hm -COOH (formula C-1) (In the formula, R Hm is a monovalent aliphatic group having one or more carbon atoms, especially three or more carbon atoms.
[0036] Among the monoacids (C) of the monoacid type that can be advantageously used in the process of the invention, there are in particular caprylic acid [CH3(CH2)6COOH], capric acid [CH3(CH2)8COOH], undecanoic acid [HC-(CH2)9-COOH], dodecanoic acid or lauric acid [HC-(CH2) 10 -COOH], tridecanoic acid [H3C-(CH2) 11 -COOH], tetradecanoic acid or myristic acid [H3C-(CH2) 12-COOH], pentadecanoic acid [H3C-(CH2) 13 -COOH], hexadecanoic acid or palmitic acid [H3C-(CH2) 14 -COOH], octadecanoic acid or stearic acid [H3C-(CH2) 16 -COOH], arachidic acid [H3C-(CH2) 18 -COOH], and behenic acid [H3C-(CH2) 20 -COOH] can be mentioned.
[0037] A monoacid (C) that has been shown to provide particularly good results is stearic acid, which is therefore especially preferred.
[0038] When present, the amount of monoacid (C) is such that the number of carboxylic acid groups thereof is advantageously less than 0.010% relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present. Preferably, said amount is such that the number of carboxylic acid groups of said monoacid (C) is advantageously at least 0.0001, preferably at least 0.0005%, more preferably at least 0.001%, relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present, and / or advantageously at most 0.010%, preferably at most 0.008%, more preferably at most 0.007%, most preferably at most 0.006%, relative to the total number of hydroxyl groups of glycolic acid and hydroxy acid (A), if present.
[0039] The polymer (b-PGA) is usually produced by the process of polycondensation, which typically involves a first step of polymerization in the melt to form a prepolymer, and a second step of solid-state polymerization (SSP) to increase the molecular weight of the prepolymer to obtain the desired polymer (b-PGA).
[0040] The polymer (b-PGA) is advantageously subjected to ASTM D4440-08 at a temperature of 260°C using parallel plates for 10 seconds. -1The polymer (b-PGA) has a melt viscosity in the range of 100 to 2000 Pa×sec, measured at a shear rate of 100 psi (oscillation speed of 10 rad / sec). The polymer (b-PGA) advantageously has a melt viscosity of at most 2000 Pa×sec, preferably at most 1500 Pa×sec, more preferably at most 1200 Pa×sec, and most preferably at most 1000 Pa×sec. The polymer (b-PGA) advantageously has a melt viscosity of at least 100 Pa×sec, preferably at least 150 Pa×sec, more preferably at least 200 Pa×sec, and most preferably at least 350 Pa×sec.
[0041] A polymer (b-PGA) found to have particularly advantageous properties was tested in accordance with ASTM D4440-08 at a temperature of 260°C using parallel plates for 10 seconds. -1 When measured at a shear rate of 1000 Pa×sec (oscillation rate of 10 rad / sec), the melt viscosity is in the range of 350 to 1000 Pa×sec.
[0042] The linear polyglycolic acid polymer [polymer (l-PGA)] advantageously consists essentially of repeating units derived from the ring-opening polymerization of glycolide. Although end groups, defects, or other impurities may be present, polymer (l-PGA) is understood to be substantially free of units derived from multifunctional monomers having three or more functional groups capable of polycondensing with the hydroxyl and / or carboxyl groups of GA.
[0043] The polymer (l-PGA) can be prepared by any method involving heating glycolide (i.e., 1,4-dioxane-2,5-dione) in the presence of an effective amount of a catalyst (such as a cationic catalyst, e.g., an organic tin carboxylate, a tin halide, or an antimony halide) to a temperature high enough to cause ring-opening polymerization of the glycolide. The ring-opening polymerization is preferably carried out by a bulk or solution polymerization process.
[0044] The polymer (l-PGA) was subjected to ASTM D4440-08 at 260°C for 10 seconds using parallel plates. -1When measured at a shear rate of 10 rad / s (oscillation rate of 10 rad / s), the polymer typically has a melt viscosity in the range of 150 to 1000 Pa×s. Preferred polymers (l-PGA) have a melt viscosity of up to 950 Pa×s, and more preferably up to 900 Pa×s. Preferred polymers (l-PGA) have a melt viscosity of at least 200 Pa×s, and more preferably at least 250 Pa×s.
[0045] A polymer (1-PGA) found to have particularly advantageous properties was found to be heat-resistant using parallel plates at a temperature of 260°C for 10 seconds according to ASTM D4440-08. -1 When measured at a shear rate of 10 rad / sec (oscillation rate of 10 rad / sec), the melt viscosity is in the range of 300 to 850 Pa×sec.
[0046] A particularly preferred polymer (l-PGA) is prepared by ring-opening polycondensation of glycolide and has a melt viscosity of η measured at 260°C. 10sec-1 is 682 Pa × sec, and tanδ 10sec-1 It is a linear PGA commercially available from Kureha under the trade name KUREDUX®, having a .DELTA.M of 9.
[0047] The mixture (M) of polymer (b-PGA) and polymer (l-PGA) contains polymer (l-PGA) in an amount of advantageously at least 20% by weight and advantageously at most 40% by weight, relative to the total weight of polymer (b-PGA) and polymer (l-PGA).
[0048] The mixture (M) preferably contains the polymer (l-PGA) in an amount of at least 22 wt%, more preferably at least 23 wt%, and most preferably at least 24 wt%, based on the total weight of the polymer (b-PGA) and the polymer (l-PGA). The mixture (M) preferably contains the polymer (l-PGA) in an amount of at most 38 wt%, more preferably at most 37 wt%, based on the total weight of the polymer (b-PGA) and the polymer (l-PGA).
[0049] Composition (M) contains at least one amorphous polyester [polymer (APES)].
[0050] For the purposes of the present invention, the term "amorphous", when used in connection with "polymer (APES)", is intended to mean a polymer that is substantially non-crystalline when taken alone, i.e., has a heat of fusion of less than 2.0 J / g, preferably less than 1.5 J / g, more preferably less than 1.0 J / g, as measured according to ASTM D3418 (US standard) or ISO 11357-3 (European standard). The heat of fusion is preferably measured by DSC according to ASTM D3418 (US standard) or ISO 11357-3 (European standard) during a first heating run from 20°C to 270°C at 10°C / min under nitrogen on a 10 mg sample.
[0051] Advantageously, the polymer (APES) has a glass transition temperature (T) of at least 25°C, preferably at least 35°C, more preferably at least 45°C, and most preferably at least 50°C, as determined by Differential Thermogravimetric Analysis (DTGA), preferably according to ISO 11358-1, more preferably by DSC according to ASTM D3418, measured on a 20 mg sample during a first heating from 25°C to 400°C at 10°C / min under nitrogen at 30 ml / min, more preferably on a 10 mg sample during a first heating from 20°C to 270°C at 10°C / min under nitrogen. g ), but the melting temperature (T m ) is not shown.
[0052] In contrast, the crystalline polyester polymer (CPES) advantageously exhibits a melting temperature (T ) during the first heat, preferably as determined by DTGA according to ISO 11358-1, more preferably as measured by DSC according to ASTM D3418 on a 20 mg sample during the first heat from 25° C. to 400° C. at 10° C. / min under nitrogen at 30 ml / min, more preferably on a 10 mg sample during the first heat from 20° C. to 270° C. at 10° C. / min under nitrogen. m ) and the glass transition temperature (T g ) to complement
[0053] The amorphous polyester [polymer (APES)] is preferably selected from amorphous terephthalate-based copolyester [polymer (ATBPE)], amorphous polyethylene isophthalate [polymer (APEI)], amorphous polyethylene naphthalate [polymer (APEN)], amorphous polyethylene furanoate [polymer (APEF)], and amorphous polytrimethylene furan dicarboxylate [polymer (APTF)], more preferably amorphous terephthalate-based copolyester [polymer (ATBPE)].
[0054] The amorphous polymer (ATBPE) is advantageously selected from amorphous polyethylene terephthalate (polymer (APET)), amorphous polycyclohexylene dimethylene terephthalate (polymer (APCT)), amorphous polybutylene terephthalate (polymer (APBT)), and amorphous polytrimethylene terephthalate (polymer (APTT)). The amorphous polymer (ATBPE) is preferably amorphous polymer (APET).
[0055] Composition (M) preferably contains at least one amorphous polymer (APES) selected from amorphous polymer (ATBPE), amorphous polymer (APEI), amorphous polymer (APEN), amorphous polyethylene furanoate [polymer (APEF)], and amorphous polytrimethylene furan dicarboxylate [polymer (APTF)]. More preferably, composition (M) contains one such amorphous polymer (APES), most preferably one amorphous polymer (ATBPE), and most preferably one amorphous polymer (APET).
[0056] The amorphous polymer (ATBPE) is advantageously obtained by copolymerization of terephthalic acid with a diol, advantageously in the presence of at least one other comonomer instead of part of the diol, or advantageously in the presence of isophthalic acid instead of part of the terephthalic acid.
[0057] The amorphous polymer (APET) is advantageously obtained by copolymerization of terephthalic acid with diethylene glycol or of terephthalic acid with ethylene glycol, optionally in the presence of at least one other comonomer, advantageously in the presence of cyclohexanedimethanol instead of a portion of the diethylene glycol; or advantageously in the presence of isophthalic acid instead of a portion of the terephthalic acid.
[0058] The amorphous polymer (APES) is advantageously characterized by an intrinsic viscosity, preferably measured according to ASTM D4603, of at most 1, preferably at most 0.85, more preferably at most 0.80, most preferably at most 0.78, and most preferably at most 0.76. The polymer (APES) is advantageously characterized by an intrinsic viscosity of at least 0.40, preferably at least 0.50, more preferably at least 0.52, and most preferably at least 0.54.
[0059] Composition (M) contains polymer (PGA) and polymer (APES), and said polymer (APES) is present in composition (M) in an amount of at least 0.10 wt % and at most 45 wt % relative to the total weight of polymer (PGA) and polymer (APES).
[0060] If the content of polymer (APES) exceeds the claimed limits, the performance of composition (M) is adversely affected, resulting in increased gas permeability and a significant loss of gas barrier, whereas if the content of polymer (APES) is below the claimed limits, its presence is not effective in reducing the crystallization tendency required to improve adhesion.
[0061] Composition (M) contains polymer (APES) in an amount of at least 0.10% by weight, preferably at least 0.25% by weight, more preferably at least 0.50% by weight, and most preferably at least 1% by weight, relative to the total weight of polymer (PGA) and polymer (APES).Composition (M) contains polymer (APES) in an amount of at most 45% by weight, preferably at most 30% by weight, more preferably at most 25% by weight, most preferably at most 20% by weight, and particularly most preferably at most 15% by weight, relative to the total weight of polymer (PGA) and polymer (APES).
[0062] Particularly preferred is a composition (M) containing polymer (PGA) and polymer (APES), in which polymer (APES) is present in composition (M) in an amount of at least 0.50% by weight and at most 25% by weight, relative to the total weight of polymer (PGA) and polymer (APES).
[0063] More particularly preferred is a composition (M) containing polymer (PGA) and polymer (APES), in which polymer (APES) is present in composition (M) in an amount of at least 1% by weight and at most 20% by weight, relative to the total weight of polymer (PGA) and polymer (APES).
[0064] Composition (M) contains at least one polymer (APES), and preferably contains (only) one polymer (APES).
[0065] Composition (M) may further contain additional ingredients which may in particular be chosen from inorganic fillers, antioxidants, heat stabilizers, additives for protection against hydrolysis, buffers, UV stabilizers, light stabilizers, pigments, plasticizers, lubricants (such as synthetic or natural waxes), processing aids, and nucleating agents.
[0066] Examples of inorganic fillers include powders, whiskers, and fibers of alumina, silica, silica-alumina, zirconia, titanium oxide, iron oxide, boron oxide, calcium carbonate, calcium sulfate, magnesium carbonate, magnesium silicate, magnesium phosphate, magnesium sulfate, clay, kaolin, talc, mica, ferrite, carbon, silicon, silicon nitride, molybdenum disulfide, glass, potassium titanate, and the like.
[0067] Examples of plasticizers include phthalate esters such as di(methoxyethyl) phthalate, dioctyl phthalate, diethyl phthalate, and benzyl butyl phthalate; benzoate esters such as diethylene glycol dibenzoate and ethylene glycol dibenzoate; aliphatic dibasic esters such as dioctyl adipate and dioctyl sebacate; aliphatic tribasic esters such as acetyl tributyl citrate; phosphate esters such as dioctyl phosphate and tricresyl phosphate; epoxy plasticizers such as epoxidized soybean oil; and fatty acid esters of polyalkylene glycols such as polyethylene glycol disebacate and polypropylene glycol dilaurate.
[0068] It is also possible to add to composition (M) copolymers based on styrene, acrylate and / or methacrylate and containing epoxy groups.
[0069] The present invention further relates to a method for preparing the composition (M) detailed above, which comprises mixing the polymer (PGA), the polymer (APES), and optionally additional ingredients.
[0070] According to a preferred embodiment, the method for producing the composition (M) comprises mixing the polymer (PGA), the polymer (APES) and optionally additional ingredients in the molten state.
[0071] The mixing in the molten state can be carried out using standard melt-mixing techniques, including using a kneader or extruder, preferably a single-screw or twin-screw extruder, more preferably a twin-screw extruder. In such embodiments, the polymer (PGA), polymer (APES), and optional additional components may all be premixed together and then fed into the extruder through a single hopper, or may be fed into the extruder through separate feeders.
[0072] A masterbatch of polymer (PGA), polymer (APES), and optional additional components may also be prepared and then diluted into polymer (PGA) in the extruder.
[0073] According to another embodiment, when the polymer (PGA) is produced by a polycondensation method comprising a first step of polymerization in the melt to form a prepolymer and a second step of solid-state polymerization (SSP) to increase the molecular weight of the prepolymer to obtain the desired polymer (PGA), the polymer (APES) can be added by mixing in the melt after the first step is completed to form a mixture of the polymer (APES) and the branched polyglycolic acid prepolymer, and the composition (M) can be obtained by solid-state polymerization.
[0074] The present invention further relates to a method for producing a multilayer oriented product, said method comprising: (i) forming, by processing from the melt, a multi-layer resin laminate comprising at least one layer of composition (M) detailed above and at least one layer of a thermoplastic different from the polyglycolic acid polymer; (ii) stretching the multilayer resin laminate to produce a multilayer stretched product; Includes:
[0075] The choice of thermoplastic is not particularly limited, provided that it can be laminated with the layer made from composition (M).
[0076] Preferred examples of such thermoplastics include polyester resins such as PET, polyethylene furanoate, and polyethylene naphthalate, polystyrene resins, acrylic or methacrylic acid resins, nylon resins, sulfide resins such as polyphenylene sulfide, and polycarbonate resins. Among these, polyester resins, particularly aromatic polyester resins composed of a diol component and a dicarboxylic acid component, are preferred, with at least one of these components, particularly the dicarboxylic acid component, being aromatic in order to provide a multilayer product that satisfies the desired combination of transparency and gas barrier properties. PET is particularly preferred.
[0077] The thermoplastic may also be a mixture of the above-mentioned thermoplastic, preferably a polyester resin, particularly preferably PET, with the above-defined polymer (APES) or the above-defined composition (M) according to the invention. In such a case, the thermoplastic advantageously contains at least 0.1 wt. %, preferably at least 0.2 wt. %, more preferably at least 0.5 wt. % of the polymer (APES) or the composition (M) according to the invention, based on the total weight of the thermoplastic and the polymer (APES) or the composition (M). In such a case, the thermoplastic advantageously contains at most 45 wt. %, preferably at most 10 wt. %, more preferably at most 5 wt. % of the polymer (APES) or the composition (M) according to the invention, based on the total weight of the thermoplastic and the polymer (APES) or the composition (M).
[0078] The multi-layer resin laminate may be in any shape or form; it may be in the form of a tubular laminate, such as a parison, a flat laminate or a molded container, among others.
[0079] A preferred example of a multi-layer resin laminate is a bottle preform, which includes a threaded and closed-ended cylindrical object.
[0080] The step of forming the resin laminate can be carried out by any technique that involves processing composition (M) and a thermoplastic while they are in a molten state.
[0081] Suitable and preferred techniques are co-extrusion and co-injection molding.
[0082] According to the coextrusion technique, melt streams of composition (M) and thermoplastic are produced in a dedicated screw extruder and fed to multiple slot dies to provide a multi-layer resin laminate.
[0083] In the injection molding technique, molten shots of the composition (M) and thermoplastic are injected into the same mold through a multi-shot nozzle.
[0084] In step (ii), the multilayer resin laminate is stretched, generally at a temperature that allows plastic deformation of composition (M), generally above the melting point.
[0085] According to a particular embodiment, the multilayer resin laminate is cooled and solidified after step (i) and before undergoing step (ii). In this case, step (ii) advantageously comprises reheating the multilayer laminate to a temperature above the glass transition temperatures of the polymers (PGA) and (APES) of composition (M) and above the glass transition temperature of the thermoplastic, and stretching the multilayer laminate while it is heated. Stretching can be achieved by blowing in a pressurized gas, typically air, and the stretching step can be carried out in a mold to bond the multilayer stretched product into a precisely defined shape.
[0086] According to another embodiment, the multi-layer resin laminate is subjected to step (ii) without an intermediate cooling and reheating step, so that composition (M) is advantageously maintained in a molten state during step (ii).
[0087] According to a particular embodiment of this variant, the extruded multi-layer resin laminate, for example in the form of a parison, can be blown with compressed air while in the molten phase directly as it is extruded from the die.
[0088] According to a particular embodiment of this variant, the extruded multilayer resin laminate, for example in the form of a film, can be stretched, for example uniaxially or biaxially, using suitable stretching means operating in the machine and / or cross direction.
[0089] According to these embodiments, the multilayer stretched product can be, inter alia, a multilayer blown film (stretched from the melt phase without an intermediate cooling / solidification step), a multilayer cast film (usually uniaxially stretched), or a multilayer shrink film produced by a double bubble process or a biaxially stretching (Tender or Linear Motor Simultaneous Stretching (LISIM)) process.
[0090] To the extent that the disclosure of any patents, patent applications, and publications incorporated herein by reference conflicts with the statements of this application to the extent that it may render a term unclear, the statements of this application shall control. [Example]
[0091] The present invention will now be described in more detail with reference to the following examples, whose purpose is illustrative only and is not intended to limit the scope of the invention.
[0092] raw material b-PGA is a branched PGA produced according to the teachings of WO 2018 / 115008 (SOLVAY SA) from a mixture of GA, trimethylolpropane (0.14 mol per 100 mol of GA), and isophthalic acid (0.21 mol per 100 mol of GA) in the presence of methanesulfonic acid (1.350 g per kg of GA). b-PGA is measured by DSC according to ISO 11357-3 (European standard) or ASTM D3418 (American standard) during the first heating from 20°C to 270°C at 10°C / min under nitrogen on a 10 mg sample. m For 236°C, T g For the melting temperature (T m ) and glass transition temperature (T g b-PGA is characterized by a 10-second test using parallel plates at 260°C in accordance with ASTM D4440-08. -1 It is also characterized by a melt viscosity of 527 Pa×sec measured at a shear rate of 100 kJ / s (oscillation speed of 10 rad / s).
[0093] ATBPE is Eastman to EASTOBOND TM Copolyester 19411 is an amorphous terephthalate-based copolyester, which has a T g (measured on a 10 mg sample during the first heating from 20°C to 270°C at 10°C / min under nitrogen according to ASTM D3418) and an intrinsic viscosity of 0.74 (measured according to ASTM D4603).
[0094] CPET is Eastman to EASTAPAK TM Crystalline polyethylene terephthalate, commercially available under the trade name Polymer 9921, has a T g , T of 236 °C m , a heat of fusion of 59 kJ / kg (all three measured according to ASTM D3418 on a 10 mg sample during the first heating from 20°C to 270°C at 10°C / min under nitrogen), and an intrinsic viscosity of 0.80 (measured according to ASTM D4603).
[0095] PET is polyethylene terephthalate available commercially under the trade name Ramapet R180 from Indorama venture.
[0096] Overview of compounding procedure The compositions described in the following examples are compounded using a Clextral BC21 twin-screw extruder (diameter 21 mm, length 43D, 9 barrel zones, vacuum in zone 7, two gravimetric feeders and one hopper under nitrogen flow, a die with two round holes, a water bath and air dryer, pelletizer) operated at the temperature profile specified in Table 1, and the mixtures are recovered in the form of pellets.
[0097] TIFF0007805782000001.tif29170
[0098] Peak crystallization temperature (T C ) and heat of fusion (ΔH) determination Peak crystallization temperature (T c ) and heat of fusion (ΔH) were measured by DSC at 10°K / min according to ISO 11357-3 (European standard) or ASTM D3418 (American standard) on 10 mg samples during the first heating from 20 to 270°C at 10°C / min under nitrogen.
[0099] Determination of hydrolysis resistance Ten grams of pellets of each of the compositions described in the following examples were placed in 250 ml of demineralized water in a stoppered glass bottle. After aging in an oven at 38°C, measurements of the water conductivity were taken every 24 hours, and the amount of time required for the water conductivity to increase (due to the release of glycolic acid) was taken as the hydrolysis resistance.
[0100] Production of a film from composition (M) Films were prepared from the compositions as described in the examples below.
[0101] For this purpose, five-layer films A / B / C / B / A (A = PET, B = PET, C = b-PGA-containing composition as described in each example) were produced by coextrusion using three extruders connected to each other by a feedblock (265°C) and a 300 mm wide flat die (265°C). Using a finishing calender, the film was quenched at 50°C, the thickness was adjusted, and the film was wound up.
[0102] The first extruder was a Brabender extruder (diameter 30 mm, length 25 D, 3 heating zones) and was fed with PET that had been previously dried at 170°C for 8 hours with dry air (dew point -3°C).
[0103] The second and third extruders were Brabender extruders (19 mm diameter, 25 mm length, 3 heating zones), the second fed with PET pre-dried as described above, and the third fed with each of the compositions described in the examples pre-dried at 130°C for 16 hours (dew point -3°C).
[0104] The temperatures of each zone and the screw speeds for each of the three extruders are shown in Table 2.
[0105] TIFF0007805782000002.tif49170
[0106] The film thickness was 18+ / -3 μm for layers A / B, 10+ / -3 μm for layer C, and 18+ / -3 μm for layers B / A.
[0107] Measurement of oxygen permeability (initial eigenvalue and barrier stability) Oxygen transmission measurements were performed according to ASTM D3985.
[0108] The principle of this method is to determine the amount of oxygen that passes through a film prepared as described above for each of the compositions described in the following examples per unit time and per unit area at a specified temperature and relative humidity.
[0109] For this purpose, a film was placed in the cell in such a way that it divided the cell into two parts. The first part was supplied with oxygen, while the second part was flushed with nitrogen. The oxygen passing through the film was transported by the nitrogen to a coulometer, which then determined the amount of oxygen per unit time. Knowing the surface area of the cell, the amount of oxygen per day and per m 2 per cm 3 The amount of oxygen in units was determined and then expressed for a 10 μm b-PGA layer (initial characteristic value of oxygen permeation).
[0110] The machines used were Oxtran 2 / 21 and 2 / 22 (Mocon) machines conditioned at 38°C and 90% relative humidity.
[0111] The films were placed in aluminum bags and stored at 23°C and 50% relative humidity before being placed in the various measurement cells of the machine.
[0112] Barrier stability was the time required to reach twice the initial characteristic value of oxygen permeability.
[0113] Peeling resistance The peel resistance was measured according to the T-peel test ASTM D1876 on the films prepared as described above (sample size: 25 × 200 mm). One end of the film sample was immersed in a caustic soda solution at 65 °C to separate layer B from layer C, and the two parts of the film were clamped in a pulling jaw.
[0114] Then, the average adhesive strength (N / cm) was measured according to a tensile test using a Hounsfield tensile tester (tensile sensor 5N-23°C-254 mm / min).
[0115] Example 1 (present invention) Following the compounding procedure detailed above, a composition containing 90 wt. % b-PGA and 10 wt. % ATBPE was prepared.
[0116] Comparative Example 2 Following the compounding procedure detailed above, a composition containing 90 wt % b-PGA and 10 wt % CPET was prepared.
[0117] Comparative Example 3 Compositions containing 100% by weight of b-PGA were prepared according to the formulation procedure detailed above.
[0118] The peak crystallization temperature (T C ) and heat of fusion (ΔH) are listed in Table 3 below.
[0119] The hydrolysis resistance measured for the various examples according to the method described above is set forth in Table 4 below.
[0120] The oxygen permeability (initial intrinsic and barrier stability) measured for various examples according to the methods described above is set forth in Table 5 below.
[0121] The peel resistance measured for the various examples according to the method described above is set forth in Table 6 below.
[0122] TIFF0007805782000003.tif39170
[0123] TIFF0007805782000004.tif41170
[0124] TIFF0007805782000005.tif55170
[0125] TIFF0007805782000006.tif40170
[0126] The above results show that the composition according to the present invention has a lower T C , resulting in films characterized by lower ΔH, better hydrolysis resistance, and exhibiting higher average adhesive strength.
[0127] Surprisingly, the films obtained with the compositions according to the invention are characterized by very good oxygen permeability and long-term barrier stability.
Claims
1. i) at least one polyglycolic acid polymer [polymer (PGA)]; ii) at least one amorphous polyester [polymer (APES)] present in the composition (M) in an amount of at least 0.10% by weight and at most 45% by weight relative to the total weight of polymer (PGA) and polymer (APES); wherein the polymer (PGA) is a branched polyglycolic acid polymer [polymer (b-PGA)].
2. The polymer (b-PGA) is: (i) glycolic acid (GA), (ii) optionally at least one hydroxyl acid (A) different from GA, having only one hydroxyl group and only one carboxylic acid group, advantageously in an amount of up to 5 mol % relative to the total number of moles of GA and hydroxy acid (A); (iii) at least one polyol [polyol (H)] containing at least three hydroxyl groups and no carboxylic acid groups, the number of whose hydroxyl groups is advantageously at least 0.050%, advantageously at most 0.750%, relative to the total number of hydroxyl groups of glycolic acid and said hydroxy acid (A), if present; (iv) optionally at least one polyacid [polyacid (O)] containing at least two carboxylic acid groups and no hydroxyl groups, the number of whose carboxyl groups is advantageously at least 0.050%, advantageously at most 0.750%, relative to the total number of hydroxyl groups of glycolic acid and said hydroxy acid (A), if present; The composition (M) according to claim 1, comprising units derived from the polycondensation of:
3. 3. Composition (M) according to claim 1 or 2, wherein the polymer (APES) is selected from amorphous terephthalate-based copolyester [polymer (ATBPE)], amorphous polyethylene isophthalate [polymer (APEI)], amorphous polyethylene naphthalate [polymer (APEN)], amorphous polyethylene furanoate [polymer (APEF)], and amorphous polytrimethylene furan dicarboxylate [polymer (APTF)].
4. The composition (M) according to claim 3, wherein the polymer (APES) is a polymer (ATBPE).
5. 5. The composition (M) of claim 4, wherein the polymer (ATBPE) is selected from amorphous polyethylene terephthalate [polymer (APET)], amorphous polycyclohexylene dimethylene terephthalate [polymer (APCT)], amorphous polybutylene terephthalate [polymer (APBT)], and amorphous polytrimethylene terephthalate [polymer (APTT)].
6. 6. Composition (M) according to any one of claims 1 to 5, wherein the polymer (APES) is present in the composition (M) in an amount of at least 0.50 wt. % and at most 25 wt. % relative to the total weight of the polymer (PGA) and the polymer (APES).
7. 7. Composition (M) according to any one of claims 1 to 6, wherein the polymer (APES) is present in the composition (M) in an amount of at least 1 wt. % and at most 20 wt. % relative to the total weight of the polymer (PGA) and the polymer (APES).
8. A method for producing the composition (M) according to any one of claims 1 to 7, comprising mixing the polymer (PGA), the polymer (APES) and optionally additional ingredients.
9. 9. The method of claim 8, wherein the method comprises mixing the polymer (PGA), the polymer (APES), and optional additional ingredients in a molten state.
10. (i) forming from the melt by processing a multilayer resin laminate comprising at least one layer of composition (M) according to any one of claims 1 to 7 and at least one layer of a thermoplastic different from the polyglycolic acid polymer; (ii) stretching the multilayer resin laminate to produce a multilayer oriented product; A method for producing a multilayer stretched product, comprising:
11. 11. The method of claim 10, wherein the thermoplastic is selected from the group consisting of polyester resins, polystyrene resins, acrylic or methacrylic resins, nylon resins, sulfide resins, and polycarbonate resins.
12. 12. The method of claim 10 or 11, wherein the step of forming the multi-layer resin laminate is performed by co-extrusion or co-injection molding.
13. A method according to any one of claims 10 to 12, wherein the multi-layer resin laminate is allowed to cool and solidify after step (i) and before undergoing step (ii).
14. A method according to any one of claims 10 to 12, wherein the multi-layer resin laminate is subjected to step (ii) without an intermediate cooling and reheating step.
Citation Information
Patent Citations
Laminate for stretch molding and stretched laminate using same
WO2013099692A1
Glycolic acid polymer
WO2018115008A1