Polyester composition containing a copolyester
Abstract
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16 claims: 4 independent, 12 dependent
- 1A polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis-(2-hydroxyethoxy)benzene units.
- 5A film composed of a polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units.
- 9A preform composed of a polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units.
- 13A container composed of a polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units.
Independent claims4
139 paragraphs in 4 sections, as filed
BACKGROUND OF THE INVENTION
1. Field of the Invention
0001This invention relates to a polyester composition comprising a copolyester having excellent gas-barrier property and surface properties and a high glass transition temperature and a gas-barrier property imparting agent composed of the copolyester.
0002The invention also relates to a film, a preform and a container composed of the polyester composition, and more specifically, to a polyester composition having excellent gas-barrier property, surface properties and transparency and comprising (A) polyethylene terephthalate and (B) the aforesaid copolyester, and to a film, a preform and a container composed of the polyester composition.
0003The polyester composition is suitable for the preparation of a polyester laminated structure having excellent moldability, mechanical properties and composed of (C) a polyalkylene terephthalate layer and (D) a copolyester layer composed of the aforesaid copolyester or a polyester composition, and to its use.
2. Description of the Prior Art
0004Glass has widely been used as a material for containers for holding various articles, for example seasonings, oils, wines and liquors, beer, soft drinks including carbonated drinks, cosmetics, and detergents. Glass containers have excellent gas-barrier property, but their cost of production is high. It is the usual practice therefore to recover the used empty containers and recycle them for use. The glass containers, however, are heavy and involve high transportation expenses. Moreover, they are susceptible to breakage and inconvenient to handle.
0005To solve this problem, the glass containers have been superseded by various plastic containers, and various plastic materials are used according to the kind of articles to be held and the purpose of use. Polyethylene terephthalate (PET) has excellent thermal resistance, impact strength, gas-barrier property and transparency, and is used as a material for containers used to hold seasonings, refreshing drinks, detergents and cosmetics. In the case of containers for beer and carbonated drinks which most rigorously require gas-barrier property, polyethylene terephthalate is still not entirely satisfactory. To use polyethylene terephthalate for such containers, it is necessary to improve gas-barrier property by increasing the thickness of the containers.
0006Polyester containers have shown an increasing demand, but to expand their use further, it is strongly desired to develop polyesters having excellent gas-barrier property and melt-moldability.
0007Japanese Laid-Open Patent Publication No. 84866/1981 discloses a multilayer container having a thin wall portion in which the outermost layer and the innermost layer are composed of a polyester having ethylene terephthalate as main recurring units, an interlayer is composed of a polyamide obtained by reacting a dibasic acid component and a diamine component, the diamine component being m-xylylenediamine or a mixture of it with p-xylylenediamine, and the resin constituting the thin wall portion is oriented in at least one direction. This patent document describes that the above container has excellent oxygen gas-barrier property while retaining the excellent dynamical properties, transparency and chemical resistance of the polyester.
0008Japanese Laid-Open Patent Publication No. 183248/1983 discloses a biaxially stretched blow molded bottle in which both inside and outside surface layers are composed of polyethylene terephthalate and a layer intermediate between them is composed of a mixture of polyethylene terephthalate and a xylylene group-containing polyamide.
0009Japanese Laid-Open Patent Publication No. 64624/1984 discloses a polyalkylene isophthalate such as polyethylene isophthalate and its copolymer, and a packaging material having good gas-barrier property with respect to oxygen and carbon dioxide gas which is molded from them.
0010Japanese Laid-Open Patent Publication No. 87049/1984 discloses a multilayer packaging material composed of a layer of a polyalkylene isophthalate or its copolymer and a layer of a polyalkylene terephthalate such as polyethylene terephthalate or its copolymer, and a molded article such as a bottle formed from it.
0011Japanese Laid-Open Patent Publication No. 64658/1984 proposes a method of blending polyethylene isophthalate and polyethylene terephthalate.
0012However, the polyethylene isophthalates described in the above-cited patent documents contains high-melting oligomers, and these oligomers adversely affect the physical properties of the resulting molded articles.
0013To improve the gas-barrier property of PET, a copolyester was proposed which is prepared by copolymerizing isophthalic acid as a dicarboxylic acid component and ethylene glycol and 1,3-bis(2-hydroxyethoxy)benzene as a dihydroxy compound component (see Japanese Laid-Open Patent Publication No. 167617/1983).
0014If an article such as a container is molded from a polyester resin containing moisture, hydrolysis takes place and the mechanical properties of the molded article are degraded. It is necessary therefore to dry the polyester resin before molding. However, since an isophthalate-type copolyester containing a large amount of isophthalic acid as the dicarboxylic acid component has-a lower crystallinity and glass transition temperature (Tg) than a terephthalate-type copolyester, it can be dried only at low temperatures. Accordingly, to obtain an isophthalate-type polyester having a low water content, long periods of time are required for its drying. If the isophthalate copolyester is dried at temperatures higher than the glass transition temperature, the copolyester will melt-adhere to itself.
0015Usually, polyethylene terephthalate is dried at a temperature of 110 to 160 °C. If the polyethylene terephthalate dried at the above temperatures and the isophthalate-type copolyester dried at lower temperatures are dry-blended immediately after drying, the isophthalate-type copolyester will be heated to a temperature higher than the glass transition temperature by the polyethylene terephthalate which is still at a considerably high resin temperature. Consequently, the pelletized isophthalate-type copolyester will get out of shape or the copolyester pellets melt-adhere to one another. Consequently, it is difficult to mix them uniformly.
0016For this reason, it has been desired to develop an isophthalate-type copolyester having a high glass transition temperature (Tg) and excellent thermal resistance.
0017An isophthalate-type copolyester having copolymerized therein bis(4-beta-hydroxyethoxyphenyl)sulfone was proposed as a copolyester having a high glass transition temperature (Tg) (see Japanese Laid-Open Patent Publication No. 167617/1983).
0018The use of bis(4-beta-hydroxyethoxyphenyl)-sulfone makes the isophthalate-type copolyester slightly higher in glass transition temperature (Tg), but its Tg elevating effect is not sufficient. In addition, if its gas-barrier property is degraded, or the copolyester is colored or the monomeric components bleed out, the polyester is undesirable in view of food sanitation.
SUMMARY OF THE INVENTION
0019It is an object of this invention to provide a polyester composition comprising an isophthalate-type copolyester being free from high-melting oligomers and having a high glass transition temperature and excellent gas-barrier property and surface properties, which can be dried at a high speed and has excellent thermal resistance, impact strength, surface properties, transparency and gas-barrier properties.
0020Another object of this invention is to provide a film, a preform and a container composed of the above polyester composition.
0021This polyester composition is suitable for the preparation of a polyester laminated structure which is free from high-melting oligomers, and has excellent moldability, stretchability, gas-barrier property, especially with respect to oxygen and carbon dioxide gas, thermal resistance, impact strength, surface properties, transparency, electrical properties and chemical resistance.
0022This polyester composition is suitable for the preparation of a stretched laminated structure, a preform for blow molding and a laminated blow-molded article each composed of the above polyester laminated structure and having excellent gas-barrier property, especially with respect to oxygen and carbon dioxide gas, thermal resistance, impact strength, surface properties, transparency, electrical properties and chemical resistance.
0023The above objects are achieved in accordance with this invention by a polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from a dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxy-ethoxy)benzene units.
0024The above objects are further achieved in accordance with this invention by a film composed of a polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from a dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units.
0025The above objects are further achieved in accordance with this invention by a preform composed of a polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from a dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units.
0026The above objects are further achieved in accordance with this invention by a container composed of a polyester composition comprising (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester having an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g and being derived from a dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units.
0027The composition is suitable for the preparation of a polyester laminated structure composed of (C) a polyalkylene terephthalate layer and (D) a copolyester layer, the copolyester layer (D) derived from dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxy-ethoxy)benzene units, or a copolyester composition comprising said copolyester and polyethylene terephthalate.
0028The composition is suitable for the preparation of a stretched polyester laminated structure composed of (C) a polyalkylene terephthalate layer and (D) a copolyester layer composed of a copolyester derived from a dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units or a copolyester composition comprising said copolyester and polyethylene terephthalate, said polyalkylene terephthalate layer (C) and the copolyester layer (D) being stretched.
0029The composition is suitable for the preparation of a preform for a laminated blow-molded article, said preform composed of (C) a polyalkylene terephthalate layer and (D) a copolyester layer, the copolyester layer (D) being composed of a copolyester derived from a dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis-(2-hydroxyethoxy)benzene units, or a copolyester composition comprising said copolyester and polyethylene terephthalate.
0030The composition is suitable for the preparation of a polyester laminated blow-molded article composed of (C) a polyalkylene terephthalate layer and (D) a copolyester layer, the copolyester layer (D) being composed of a copolyester derived from a dicarboxylic acid units composed of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and dihydroxy compound units composed of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)benzene units, or a copolyester composition comprising said copolyester and polyethylene terephthalate.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
0031The copolyester of the polyester composition is characterized in that the dicarboxylic acid units (recurring units derived from a dicarboxylic acid) consist of 95 to 60 mole % of isophthalic acid units and 5 to 40 mole % of 2,6-naphthalenedicarboxylic acid units and the dihydroxy compound units (recurring units derived from a dihydroxy compound) consist of 95 to 70 mole % of ethylene glycol units and 5 to 30 mole % of 1,3-bis(2-hydroxyethoxy)-benzene units, and that it has an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g.
0032Since the copolyester of the polyester composition uses isophthalic acid units and 2,6-naphthalenedicarboxylic acid units as the dicarboxylic acid units and ethylene glycol units and 1,3-bis(2-hydroxyethoxy)benzene units as the dihydroxy compound units, it does not contain high-melting oligomers and has excellent gas-barrier property and surface properties and a high glass transition temperature.
0033The copolyester of the polyester composition will be described below specifically.
0034The copolyester of the polyester composition can be obtained by co-condensation reaction of the following dicarboxylic acids and dihydroxy compounds.
0035The dicarboxylic acids used in this invention are 95 to 60 mole %, preferably 90 to 70 mole %, of isophthalic acid, and 5 to 40 mole %, preferably 10 to 30 mole %, of 2,6-naphthalenedicarboxylic acid.
0036If the isophthalic acid is used in an amount of more than 95 mole %, the resulting copolyester does not have so high a glass transition temperature. If it is used in an amount of less than 60 mole %, the glass transition temperature of the resulting copolyester has too high a glass transition temperature, and a blend of the resulting copolyester and polyethylene terephthalate, or a multilayer laminate of the copolyester cannot be sufficiently stretched.
0037In the present invention, another dicarboxylic acid may be used in addition to the isophthalic acid and 2,6-naphthalenedicarboxylic acid in an amount which does not impair the properties of the resulting copolyester. Examples of the other dicarboxylic acid are terephthalic acid, phthalic acid, and 2-methylterephthalic acid. As the dihydroxy compounds, ethylene glycol and 1,3-bis(2-hydroxyethoxy)benzene are used in the invention. These dihydroxy compounds are used in such amounts that the hydroxy compound component consists of 95 to 70 mole %, preferably 90 to 80 mole %, of ethylene glycol, and 5 to 30 mole %, preferably 10 to 20 mole %, of 1,3-bis(2-hydroxyethoxy)benzene. By using ethylene glycol and 1,3-bis(2-hydroxyethoxy)benzene in the above amounts as the dihydroxy compounds, a copolyester being free from high-melting oligomers and having excellent surface properties and a high glass transition temperature can be obtained.
0038In addition to ethylene glycol and 1,3-bis(2-hydroxyethoxy)benzene, another dihydroxy compounds may be used in an amount which does not impair the properties of the resulting copolyester. Examples of the other dihydroxy compound include dihydroxy compounds having 3 to 15 carbon atoms such as 1,3-propanediol, 1,4-butanediol, neopentyl glycol, cyclohexanediol, cyclohexanedimethanol, 1,4-bis(2-hydroxyethoxy)benzene, 2,2-bis(4-beta-hydroxyethoxyphenyl)propane and bis(4-beta-hydroxyethoxyphenyl)-sulfone.
0039The copolyester of the polyester composition may be composed only of the above dicarboxylic acid units and the above dihydroxy compound units, or of the dicarboxylic acid units, the hydroxy compound units and a small amount of trifunctional or higher polycarboxylic acid units or polyhydroxy compound units. Polycarboxylic acids having 4 to 15 carbon atoms may be used as the trifunctional or higher polycarboxylic acid. Specific examples may be trimellitic acid, trimesic acid and hemimellitic acid. The trifunctional or higher polyhydroxy compounds may be, for example, polyhydric alcohols having 3 to 15 carbon atoms. Typical examples include 1,1,1-trihydroxymethylpropane, glycerol, 1,2,3-butanetriol, 1,2,3-pentanetriol, and pentaerythritol. Polyesters obtained by co-condensing the trifunctional or higher polycarboxylic acid or polyhydroxy compound with the above dicarboxylic acid and dihydroxy compound are preferred because they have improved uniform stretchability in blow molding.
0040The proportion of the trifunctional or higher polycarboxylic acid units in the copolyester is 0.01 to 2 moles, preferably 0.005 to 1 mole, per 100 moles of the dicarboxylic acid units, and the proportion of the trifunctional or higher polyhydroxy compound units is 0.01 to 2 moles, preferably 0.05 to 1 mole, per 100 moles of the drihydroxy compound units.
0041The resulting copolyester of the polyester composition has an intrinsic viscosity, measured in o-chlorophenol at 25 °C, of 0.3 to 1.5 dl/g, preferably 0.6 to 1.0 dl/g. If the intrinsic viscosity is less than 0.3 dl/g, the mechanical strength of the copolyester is undesirably degraded. On the other hand, if it exceeds 1.5 dl/g, the copolyester undesirably has degraded melt-moldability.
0042The copolyester of the polyester composition can be produced by known polycondensation reactions heretofore employed in the production of polyethylene terephthalate. The dicarboxylic acids may be fed to the reaction system as such or their dialkyl esters. They may also be fed as esters of the dicarboxylic acid with a diol such as bis(beta-hydroxyethyl) alcohol.
0043Likewise, the dihydroxy compounds may be fed as such or in the form of dihydroxy esters of the carboxylic acids.
0044Known catalysts used in the production of polyethylene terephthalate may be used in the copolycondensation. The catalysts may be, for example, metals such as antimony, germanium and titanium, or their compounds such as the oxides, hydroxides, halides, inorganic acid salts, organic acid salts, complex salts, double salts, alcoholates and phenolates. These catalysts may be used singly or in combination with each other. The catalyst may be supplied to the reaction system at the initial stage of the esterification reaction or ester interchange reaction, or may be supplied to the reaction system before it is switched to the polycondensation reaction stage.
0045At the time of the cocondensation, there may be used catalysts for ester-interchange reaction, and additives such as inhibitors against formation of diethylene glycol, heat stabilizers, light stabilizers, lubricants, pigments and dyes, which are used in the production of polyethylene terephthalate. Amines such as triethylamine and tri-n-butylamine and quaternary ammonium compounds such as tetraethyl ammonium hydroxide and tetrabutyl ammonium hydroxide may be used as the inhibitors against the formation of diethylene glycol. Examples of the stabilizers such as heat stabilizers are phosphorus compounds such as phosphoric acid, phosphorous acid, hypophosphoric acid and esters of these.
0046The copolyester of the polyester composition may be produced by a known melt polycondensation method or at times by using a solid-phase polycondensation method after the melt polycondensation method.
0047In the above melt polycondensation, the so-called direct polycondensation or the so-called ester-interchange polycondensation may be used.
0048The melt polycondensation method will be described further more specifically. For example, isophthalic acid and 2,6-naphthalenedicarboxylic acid or dicarboxylic acids containing these as main ingredients and ethylene glycol and 1,3-bis(2-hydroxyethoxy)benzene or a condensate thereof with a dicarboxylic acid, and optionally a trifunctional or higher compound containing at least three carboxyl or hydroxyl groups are esterified or ester-interchanged simultaneously or consecutively at a temperature of preferably 100 to 280 °C, and then polycondensing the resulting pre-polycondensate at a temperature above its melting point, preferably 200 to 300 °C under vacuum or in the presence of a flowing inert gas with stirring.
0049Furthermore, the copolyester of the polyester composition may be produced by subjecting the copolyester obtained by the above melt polycondensation method to solid-phase polycondensation method to increase its molecular weights. Specifically, this solid-phase polycondensation method is carried out by pelletizing the copolyester obtained by the melt polycondensation method and maintaining the pellets at a temperature below the melting point, preferably 180 to 240 °C, under vacuum or in a stream of an inert gas.
0050The copolyester of the polyester composition has a higher glass transition temperature than a polyester obtained from isophthalic acid and ethylene glycol, and can be dried more rapidly. Furthermore, the copolyester of the polyester composition has better gas-barrier property than a polyester obtained from terephthalic acid and ethylene glycol. The copolyester of the invention hardly contains high-melting oligomers, and can give a molded article having excellent surface properties.
0051The copolyester of the polyester composition can be used as a gas-barrier imparting agent because it has excellent gas-barrier property and surface property and a high glass transition temperature.
0052The copolyester of the polyester composition may, as required, contain other components such as coloring agents, fillers, polymerization catalysts, and crosslinking agents such as trimellitic anhydride, trimesic acid or triols.
0053The copolyester of the polyester composition may be used in the unstretched state as a material for articles of various shapes such as films, sheets, fibers and containers to be obtained by ordinary molding methods. When the copolyester in the stretched state is molded into films, sheets and containers, these articles have further improved gas-barrier property.
0054Since the copolyester of the polyester composition has excellent gas-barrier property, it can be used as a packaging material such as a bottle by using it as a single layer or as a laminate with another layer such as a layer of polyethylene terephthalate, nylon 6 or nylon 66.
0055Furthermore, a packaging material having excellent gas-barrier property can be prepared by blending the copolyester of the invention with another polyester such as polyethylene terephthalate.
0056Now, a stretched product of the copolyester of the polyester composition will be described. This stretched product is monoaxially or biaxially stretched and may be in the form of a film, a sheet, a fiber, or a blow-molded container. Where the copolyester is monoaxially stretched, the stretch ratio is usually from 1.1 to 10, preferably from 1.2 to 8, especially preferably from 1.5 to 7. Where the copolyester is stretched biaxially, the stretch ratio is usually from 1.1 to 8, preferably from 1.2 to 7, especially preferably from 1.5 to 6, in the longitudinal direction, and usually from 1.1 to 8, preferably from 1.2 to 7, especially preferably from 1.5 to 6, in the transverse direction. The stretched product may be heat-set according to the purpose for which it is to be used.
0057As required, the stretched product of the copolyester of the polyester composition may contain suitable amounts of various additives incorporated in conventional polyesters, for example, nucleating agents, inorganic fillers, lubricants, slip agents, antiblocking agents, stabilizers, antistatic agents, antihaze agents, and pigments. The stretched product of the copolyester of the invention may be produced by any of known methods. Generally, a starting molded article such as a film-like material, a sheet-like material or a parison molded from the copolyester or its composition containing the above additives as required is subjected to a stretching treatment, either directly or after it is cooled to a temperature below its glass transition temperature and solidified and then re-heated, at a temperature ranging from its glass transition temperature to its melting point, preferably, from its glass transition temperature to a point 80 °C higher than it. The heat-setting of the stretched product is carried out for a short time at the above stretching temperature or a higher temperature.
0058If the starting molded article is a film-like article or a sheet-like article, it may be stretched, for example, by a monoaxial stretching method by which it is stretched in one direction, a biaxial stretching method in which it is stretched in the longitudinal direction and then in the transverse direction, a simultaneous biaxial stretching method in which it is stretched in the longitudinal and transverse directions simultaneously, a method by which it is biaxially stretched and then repeatedly stretched in either one direction, a method by which it is biaxially stretched and further in both directions, or a vaccum forming method by which a space between the film- or sheet-like article and the mold is maintained in vacuum to thereby stretch it.
0059The stretched product of the copolyester may also be produced in the form of a laminate with another resin such as polyethylene terephthalate. Such a laminate may be produced, for example, by a method in which one or more layers of the starting molded article such as a film- or sheet-like article of the copolyester are laminated to one or more layers of a starting molded article such as a film- or sheet-like article of another resin such as polyethylene terephthalate, and the laminate is then stretched, or a method in which a film-or sheet-like article of the other resin is bonded to the stretched product of the copolyester of the invention.
0060If the starting molded article is a parison, a stretch blow-molded container may be produced from it by stretching the parison at the above temperature in the longitudinal direction, and then blow-molded to stretch it further in the transverse direction (biaxial stretch blow molding). Furthermore, if a parison prepared from one or more layers of the copolyester and one or more layers of the other resin is subjected to the above stretch blow molding, laminated blow-molded article composed of the copolyester and the other resin (e.g., polyethylene terephthalate) can be produced.
0061Since the stretched product of the copolyester of the polyester composition has excellent gas-barrier property, it can be used in various applications. In particular, biaxially stretched blow-molded containers of the copolyester, because of their excellent gas-barrier property, are useful for holding various articles, for example seasonings, oils, beer, wines and liquors, soft or carbonated drinks such as cola, cider and juices, cosmetics and detergent. Particularly, for holding beer or carbonated drinks, the thickness of the containers can be decreased, and the taste of these goods can be preserved for an extended period of time.
0062The stretched film of the copolyester of the polyester composition may be used for example, as electrically insulating film, magnetic tapes, photographic films, and metal-vapor deposited films.
0063The polyester composition of this invention comprises (A) 50 to 95 % by weight of polyethylene terephthalate and (B) 50 to 5 % by weight of a copolyester.
0064The polyester film, polyester preform and polyester container in accordance with this invention are composed of the above polyester composition.
0065The polyester composition of this invention consists essentially of the polyethylene terephthalate (A) and the copolyester (B). The dicarboxylic acid units of the copolyester (B) are composed of isophthalic acid units and 2,6-naphthalenedicarboxylic acid units and the dihydroxy compound units are composed of ethylene glycol units and 1,3-bis(2-hydroxyethoxy)benzene units. Accordingly, the composition can be dried at a high speed, and had excellent thermal resistance, impact strength, transparency and gas-barrier property. Furthermore, since it does not contain high-melting oligomers, it has excellent surface properties.
0066Now, the polyester composition, the polyester film, the polyester preform and the polyester container in accordance with this invention will be described in detail.
0067The polyethylene terephthalate (A) used in the polyester composition of the invention is a crystalline thermoplastic polyester composed of usually at least 80 mole %, preferably at least 90 mole %, of terephthalic acid units based on the entire dicarboxylic acid units and usually at least 80 mole %, preferably at least 90 mole %, of ethylene glycol based on the entire dihydroxy compound units.
0068Examples of dicarboxylic acid units other than the terephthalic acid units include units derived from aromatic dicarboxylic acids such as isophthalic acid, diphenylether-4,4-dicarboxylic acid, naphthalene-1,4-dicarboxylic acid and naphthalene-2,6-dicarboxylic acid, aliphatic dicarboxylic acids such as oxalic acid, succinic acid, adipic acid, sebacic acid and undecanedicarboxylic acid, or aliphatic dicarboxylic acids such as hexahydroterephthalic acid.
0069Examples of dihydroxy compounds units other than the ethylene glycol units are units derived from aliphatic dihydroxy compounds such as propylene glycol, 1,4-butanediol and neopentyl glycol, aliphatic dihydroxy compounds such as propylene glycol, 1,4-butanediol and neopentyl glycol, alicyclic dihydroxy compounds such as cyclohexanediol and cyclohexanedimethanol, and aromatic dihydroxy compounds such as 1,3-bis(2-hydroxyethoxy)-benzene, 1,4-bis(2-hydroxyethoxy)benzene, 2,2-bis(4-beta-hydroxyethoxyphenyl)propane, bis(4-beta-hydroxy-ethoxyphenyl)sulfone and bisphenol A.
0070The polyethylene terephthalate (A) may contain the other dicarboxylic acid units and the other dihydroxy compound units if it contains terephthalic acid units and ethylene glycol units in the amounts indicated above. The polyethylene terephthalate (A) may be used as a mixture with another polyester.
0071The molecular weight of the polyethylene terephthalate (A) is not particularly limited if it is within a range which can give various molded articles such as a container from the resulting polyester composition. However, polyethylene terephthalate (A) used in this invention desirably has an intrinsic viscosity [η], measured in o-chlorophenol at 25 °C, of at least 0.6 dl/g, preferably at least 0.8 dl/g.
0072The copolyester (B) contained in the polyester composition is composed of the dicarboxylic acid units and the dihydroxy compound units to be described below, and can be obtained by the copolycondensation of the corresponding dicarboxylic acids and dihydroxy compounds.
0073If the amount of the isophthalic acid units exceeds 95 mole %, the glass transition temperature of the copolyester (B) does not so much increase. If, on the other hand, it is less than 60 mole %, the glass transition temperature of the copolyester (B) rises too much, and a blend of the copolyester (B) and polyethylene terephthalate (A) cannot sufficiently be stretched.
0074Since the copolyester (B) contains 2,6-naphthalenedicarboxylic acid units derived from a rigid comonomer, the copolyester has a high glass transition temperature and a high level of gas-barrier property. Accordingly, the polyester composition composed of the copolyester (B) and polyethylene terephthalate (A) can be dried at a high speed during production.
0075Various known methods may be used to prepare the polyester composition from the polyethylene terephthalate (A) and the copolyester (B). For example, there may be used a method by which the polyethylene terephthalate (A) and the copolyester (B) are mixed by using a Henschel mixer, a V-blender, a ribbon blender, a tumbler blender, etc. Since the copolyester has a high glass transition temperature, even when the two polyesters (A) and (B) are mixed immediately after drying, the copolyester hardly melt-adhere to itself. Accordingly, the two polyesters (A) and (B) can be rapidly mixed after drying. The mixture so prepared may be melt-kneaded by a single-screw extruder, a twin-screw extruder, a kneader or a Bambury mixer, and then granulated or pulverized.
0076In the resulting polyester composition, the amount of the polyethylene terephthalate (A) is 50 to 95 % by weight, preferably 70 to 90 % by weight, and the amount of the copolyester (B) is 50 to 5 % by weight, preferably 30 to 10 % by weight, based on the total weight of the polyester composition.
0077If the amount of the polyethylene terephthalate (A) is less than 50 % by weight, the properties of the polyethylene terephthalate cannot sufficiently be exhibited. On the other hand, if it exceeds 95 % by weight, the properties of the copolyester (B) are not fully exhibited.
0078The resulting polyester composition has a glass transition temperature of usually 75 to 85 °C, preferably 80 to 85 °C. Since the polyester composition of the invention has a higher glass transition temperature than a polyester composition comprising a conventional isophthalate-type copolyester, it can be dried at high temperatures, and therefore rapidly.
0079The polyester composition of this invention may contain ordinary various additives for polyesters, such as heat stabilizers, weather stabilizers, antistatic agents, lubricants, mold releasing agents, pigment dispersing agents, pigments and dyes in amounts which do not impair the objects of this invention.
0080The polyester composition may be used in various shapes such as a sheet, a plate, a tube, a hollow article or a container.
0081The polyester film in accordance with this invention is prepared by an ordinary method from the polyester composition described above. The polyester film may either be stretched or unstretched.
0082The unstretched polyester film desirably has a thickness of usually 50 to 900 micrometers, preferably 200 to 600 micrometers.
0083The stretched film may be a monoaxially or biaxially stretched film. The stretch ratio of the monoaxially stretched film is desirably from 1.1 to 10, preferably from 1.2 to 8, especially preferably from 1.5 to 7. In the biaxially stretched film, the stretch ratio is usually from 1.1 to 8, preferably from 1.2 to 7, especially from 1.5 to 7.
0084In the biaxially stretched film, the stretch ratio is desirably from 1.1 to 8, preferably from 1.2 to 7, especially preferably from 1.5 to 6, in the longitudinal direction, and from 1.1 to 8, preferably from 1.2 to 7, especially preferably from 1.5 to 6, in the transverse direction.
0085The polyester film of this invention can be produced by any known method. Generally, a film-like material molded from the above polyester composition optionally containing the additives, as such or after it is cooled and solidified at a temperature below the glass transition temperature, is re-heated, and this starting molded product is subjected to a stretching treatment at a temperature ranging from the glass transition temperature to its melting point, preferably from the glass transition temperature to a point about 80 °C higher than the glass transition temperature. Heat-setting of the stretched film may be carried out at a temperature higher than the above stretching temperature for a short period.
0086In the production of the stretched polyester film of this invention, the starting film-like product in the unstretched state may be stretched monoaxially (monoaxial stretching method); stretched in the longitudinal direction and then in the transverse direction (biaxial stretching method); stretched simultaneously in the longitudinal and the transverse directions (simultaneous biaxial stretching method); stretched biaxially and then repeatedly stretching in either direction; stretched biaxially and further in both directions; or may be processed by a so-called vacuum forming method in which a space between the film-like product and a mold is reduced in pressure, thereby to stretch-molding the film-like product.
0087The polyester composition of this invention may be processed into a sheet-like article substantially in accordance with the methods of producing the polyester film described above.
0088The polyester preform of this invention may be produced by using the polyester composition.
0089For example, it may be prepared by injection-molding the polyester composition.
0090The polyester container in accordance with this invention may be produced by press-forming a sheet of the polyester composition, or stretch blow-molding the polyester preform mentioned above.
0091Stretch blow-molding may be carried out, for example, by stretching the preform in the longitudinal direction at the stretching temperature for the polyester composition, and then blow-molding it to stretch it also in the transverse direction (biaxial stretch blow molding method).
0092To produce the polyester container from the biaxial stretch blow molding method, a bottomed preform molded by an ordinary injection-molding machine or a parison obtained by bottoming one end of a parison molded by an extrusion-molding machine is stretched to 1.5 to 3.5 times, preferably 2 to 3 times in the logitudinal direction, and 2 to 5 times, preferably 3 to 4.5 times, in the transverse direction at a stretching temperature of 80 to 120 °C, preferably 90 to 110 °C by a rod moving longitudinally within a blow molding mold and the blowing of a pressurized gas. Molding by an injection molding machine may be carried out by a two-stage method using a cold parison or a one-stage method using a hot parison.
0093To improve the rigidity of the polyester container, a layer of polyethylene terephthalate may be laminated to the inside and outside layers of the polyester composition.
0094The polyester container of this invention may be used in various applications because of its excellent transparency and gas-barrier property. In particular, biaxial stretch blow-molded containers have excellent gas-barrier property and transparency and can be used not only for holding seasonings, oils, wines and liquors, cosmetics and detergents, but also holding sparkling drinks such as cola, cider and beer. The polyester containers of the invention permit prolongation of the period within which goods held therein can be taken with their original tastes and flavors without increasing the thickness of the container wall as in conventional containers.
0095The polyester laminated structure which can be obtained from the polyester composition is composed of (C) a polyalkylene terephthalate layer and (B) a copolyester layer. The copolyester layer (D) is a layer of the copolyester of the above polyester composition of the invention comprising the copolyester and polyethylene terephthalate, in which the layers (C) and (D) are stretched.
0096The preform for the polyester laminated blow-molded product which can be obtained from the polyester composition is composed of (C) a polyalkylene terephthalate and (D) a copolyester layer which is a layer of the copolyester of the invention described hereinabove, or the above polyester composition of the invention comprising the copolyester and polyethylene terephthalate.
0097The polyester laminated blow-molded product which can be obtained from the polyester composition is composed of (A) a polyalkylene terephthalate and (D) a copolyester layer. The copolyester layer is a layer of the copolyester and the polyester composition of the invention comprising the copolyester and polyethylene terephthalate.
0098The polyester laminated structure, the preform for a laminated blow-molded article, and the laminated blow-molded article which can be obtained from the polyester composition are each composed of the above described specific layers mentioned above, and therefore, have excellent gas-barrier property particularly with respect to oxygen and carbon dioxide, thermal resistance, impact strength, surface properties, transparency, electrical properties and chemical resistance and hardly contain high-melting oligomers.
0099The polyester laminated structure, the preform for a laminated blow-molded article, and the laminated blow-molded article which can be obtained from the polyester composition will be described below specifically.
0100The polyalkylene terephthalate layer (C) of the polyester laminated structure which can be obtained from the polyester composition is formed of a polyalkylene terephthalate such as polyethylene terephthalate and polypropylene terephthalate, preferably polyethylene terephthlate.
0101The polyethylene terephthalate used in this invention is as described hereinabove.
0102The molecular weight of polyethylene terephthlate used in this invention is not particularly limited if the polyester laminated structure which can be obtained from the polyester composition can be molded into various articles such as a container. Desirably, however, the polyethylene terephthalate has an intrinsic viscosity [η], measured at 25 °C in o-chlorophenol, of usually at least 0.6 dl/g, preferably at least 0.8 dl/g.
0103When polypropylene terephthalate, for example, is used as the polyalkylene terephthalate, propylene glycol may be used in place of ethylene glycol. The polypropylene terephthalate so obtained has an intrinsic viscosity, measured at 25 °C in o-chlorophenol, of usually 0.8 to 1.2 dl/g. This polypropylene terephthalate may be used as a mixture with another polyester.
0104The copolyester layer (D) of the polyester laminated structure may be formed from the above copolyester or a polyester composition comprising the copolyester and polyethylene terephthalate described hereinabove. If the proportion of isophthalic acid units constituting the above copolyester exceeds 95 mole %, the glass transition temperature of the copolyester do not so much increase. If it is less than 60 mole %, the glass transition temperature of the copolyester increases excessively, and the polyester laminated structure composed of the copolyester layer (D) and the polyalkylene terephthalate layer (C) can be stretched only with reduced stretchability of the copolyester layer (D).
0105In the present invention 2,6-naphthalenedicarboxylic acid units derived from a rigid comonomer component are included as units constituting the copolyester. Hence, the copolyester has a high glass transition temperature and hardly contain high-melting oligomers. The gas-barrier property of the laminated structure can be maintained at a high level.
0106The polyester composition which can be used in the production of the polyester laminated structure has a higher glass transition temperature than a polyester composition comprising a conventional isophthalate-type copolyester, and therefore can be dried rapidly at a high temperature, and the polyester laminated structure of the invention can be produced efficiently.
0107The following examples illustrate the present invention specifically.
0108In these examples, the various properties were measured by the following methods.
Intrinsic viscosity of the polyester
0109Measured in an o-chlorophenol solution of the polymer at 25 °C.
Composition of the polyester
0110Determined by measuring the nuclear magnetic resonance spectrum of the polyester in a trichloroacetic acid solution.
Glass transition temperature of the polyester
0111Measured by a differential scanning calorimeter at a temperature elevating rate of 10 °C/min.
Oxygen gas permeation coefficient
0112Measured at 25 °C by an OXTRAN device made by MOCON company.
Carbon dioxide gas permeability coefficient
0113Measured at 25 °C by using a PERMATRAN C-IV device made by MOCON company.
EXAMPLE A1
0114A copolyester composed of isophthalic acid (IA), 2,6-naphthalenedicarboxylic acid (NDA), 1,3-bis(2-hydroxyethoxy)benzene (DER) and ethylene glycol (EG) was produced by the following procedure.
0115A 1-liter stainless steel reactor equipped with a stirrer, a nitrogen gas inlet and a condenser was charged with 122.5 g of isophthalic acid, 17.7 g of naphthalenedicarboxylic acid, 94.8 g of ethylene glycol, 24.4 g of 1,3-bis(2-hydroxyethoxy)benzene, 0.33 g of 1,1,1-trishydroxymethylpropane, 0.058 g of titanyl acetylactonate, 0.077 g of Sb<sub>2</sub>O<sub>3</sub>, 0.010 g of tetrasodium ethylenediaminetetraacetate, and 0.027 g of manganese hypophosphate monohydrate.
0116The reaction mixture was heated in an atmosphere of nitrogen at 220 °C for 1 hour and then at 240 °C for 25 minutes. During this time, water was continuously evaporated.
0117Then, 0.164 g of tris(nonylphenyl) phosphite was added to the mixture in the reactor.
0118The reaction temperature was raised to 250 °C, and maintained for 35 minutes in a nitrogen atmosphere.
0119The flowing of the nitrogen gas was stopped, and a reduced pressure of less than 4 mmHg was applied. The reaction was continued at 275 °C for 4 hours under less than 0.4 mmHg. The resulting copolyester had an intrinsic viscosity of 0.83 dl/g. It had a glass transition temperature of as high as 70 °C. The carbon dioxide gas permeability coefficient was 3.0 cc.mm/m<sup>2</sup>.day.atm, and it had good gas-barrier property.
EXAMPLES A2 and A3 and COMPARATIVE EXAMPLES A-1 to A-6
0120Copolyesters having the compositions indicated in Table 1 were synthesized as in Example A1. Sheets were formed from the copolyesters, and their gas-barrier properties were measured.
0121The results are shown in Table 1. <tables id="tabl0001" num="0001"><table frame="all"><title>Table 1</title><tgroup cols="5" colsep="1" rowsep="1"><colspec colnum="1" colname="col1" colwidth="31.50mm" /><colspec colnum="2" colname="col2" colwidth="31.50mm" /><colspec colnum="3" colname="col3" colwidth="31.50mm" /><colspec colnum="4" colname="col4" colwidth="31.50mm" /><colspec colnum="5" colname="col5" colwidth="31.50mm" /><thead valign="top"><row><entry namest="col1" nameend="col1" align="center">Run (*)</entry><entry namest="col2" nameend="col2" align="center">Composition of the copolyester (mole%)</entry><entry namest="col3" nameend="col3" align="center">Tg (°C)</entry><entry namest="col4" nameend="col4" align="center">Pco<sub>2</sub> (cc.mm/m<sup>2</sup>.day.atm)</entry><entry namest="col5" nameend="col5" align="center">[η] (dl/g)</entry></row></thead><tbody valign="top"><row><entry namest="col1" nameend="col1" align="left">Ex. A1</entry><entry namest="col2" nameend="col2" align="left">IA/NDA/DER/EG 90/10/15/85</entry><entry namest="col3" nameend="col3" align="right">73</entry><entry namest="col4" nameend="col4" align="char" char=".">3.0</entry><entry namest="col5" nameend="col5" align="char" char=".">0.83</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. A2</entry><entry namest="col2" nameend="col2" align="left">IA/NDA/DER/EG 80/20/15/85</entry><entry namest="col3" nameend="col3" align="right">78</entry><entry namest="col4" nameend="col4" align="char" char=".">3.1</entry><entry namest="col5" nameend="col5" align="char" char=".">0.81</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. A3</entry><entry namest="col2" nameend="col2" align="left">IA/NDA/DER/EG 70/30/15/85</entry><entry namest="col3" nameend="col3" align="right">84</entry><entry namest="col4" nameend="col4" align="char" char=".">3.3</entry><entry namest="col5" nameend="col5" align="char" char=".">0.83</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. A1</entry><entry namest="col2" nameend="col2" align="left">TA/EG 100/100</entry><entry namest="col3" nameend="col3" align="right">78</entry><entry namest="col4" nameend="col4" align="char" char=".">21.8</entry><entry namest="col5" nameend="col5" align="char" char=".">0.75</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. A2</entry><entry namest="col2" nameend="col2" align="left">IA/EG 100/100</entry><entry namest="col3" nameend="col3" align="right">67</entry><entry namest="col4" nameend="col4" align="char" char=".">3.0</entry><entry namest="col5" nameend="col5" align="char" char=".">0.80</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. A3</entry><entry namest="col2" nameend="col2" align="left">NDA/EG 100/100</entry><entry namest="col3" nameend="col3" align="right">124</entry><entry namest="col4" nameend="col4" align="char" char=".">7.2</entry><entry namest="col5" nameend="col5" align="char" char=".">0.80</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. A4</entry><entry namest="col2" nameend="col2" align="left">IA/NDA/DER/EG 50/50/15/85</entry><entry namest="col3" nameend="col3" align="right">90</entry><entry namest="col4" nameend="col4" align="char" char=".">4.2</entry><entry namest="col5" nameend="col5" align="char" char=".">0.80</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. A5</entry><entry namest="col2" nameend="col2" align="left">IA/TA/EG/DER 70/30/85/15</entry><entry namest="col3" nameend="col3" align="right">69</entry><entry namest="col4" nameend="col4" align="char" char=".">3.8</entry><entry namest="col5" nameend="col5" align="char" char=".">0.78</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. A6</entry><entry namest="col2" nameend="col2" align="left">IA/TA/EG/DER/BSE 70/30/72/15/12</entry><entry namest="col3" nameend="col3" align="right">78</entry><entry namest="col4" nameend="col4" align="char" char=".">5.1</entry><entry namest="col5" nameend="col5" align="char" char=".">0.81</entry></row><row rowsep="1"><entry namest="col1" nameend="col5" align="justify">Ex. = Example; CEx. = Comparative Example</entry></row></tbody></tgroup></table></tables>
0122The total amount of the dicarboxylic acid and the dihydroxy compound was 100 mole %.
0123The following abbreviations were used. <dl id="dl0001" compact="compact"><dt>IA:</dt><dd>isophthalic acid</dd><dt>NDA:</dt><dd>2,6-naphthalenedicarboxylic acid</dd><dt>TA:</dt><dd>terephthalic acid</dd><dt>DER:</dt><dd>1,3-bis(2-hydroxyethoxy)benzene</dd><dt>EG:</dt><dd>ethylene glycol</dd><dt>BSE:</dt><dd>bis(4-beta-hydroxyethoxyphenyl)sulfone</dd></dl>
EXAMPLES B1 to B6 and COMPARATIVE EXAMPLES B1 to B8
0124One hundred parts of polyethylene terephthalate (Mitsui PET J135, a product of Mitsui PET Resin Co., Ltd.) dried at 150 °C for 10 hours was mixed with each of the amounts indicated in Table 2 of the copolyester obtained in Example A1. The mixture was melt-extruded at a molding temperature of about 250 to 290 °C by an extruder, cooled and cut by a cutter to form pellets of a polyester composition composed of polyethylene terephthalate and the copolyester. The pellets were press-formed to prepare a press sheet having a thickness of about 600 micrometers. The press sheet was stretched simultaneously by a biaxially stretching device to three times both in the longitudinal and transverse directions to obtain a biaxially stretched film.
0125The resulting biaxially stretched film has a thickness of about 50 microns, there was no thickness unevenness, and it was uniformly stretched. The transparencies and the carbon dioxide gas permeability coefficients of the press sheet and the biaxially stretched film are shown in Table 2.
0126The compositions obtained by mixing PET with the copolyesters of Comparative Examples A2 and A5 had a decreased glass transition temperature as compared with the compositions prepared by mixing PET with the copolyesters of Examples A1, A2 and A3. Furthermore, when the copolyesters of Comparative Examples A5 and A6 were mixed with PET, the effect of improving the oxygen gas permeability coefficient was small. <tables id="tabl0002" num="0002"><table frame="all"><title>Table 2</title><tgroup cols="6" colsep="1" rowsep="1"><colspec colnum="1" colname="col1" colwidth="26.25mm" /><colspec colnum="2" colname="col2" colwidth="26.25mm" /><colspec colnum="3" colname="col3" colwidth="26.25mm" /><colspec colnum="4" colname="col4" colwidth="26.25mm" /><colspec colnum="5" colname="col5" colwidth="26.25mm" /><colspec colnum="6" colname="col6" colwidth="26.25mm" /><thead valign="top"><row><entry namest="col1" nameend="col1" rowsep="0" align="center">Run</entry><entry namest="col2" nameend="col3" align="center">Copolyester</entry><entry namest="col4" nameend="col4" rowsep="0" align="center">Tg of the composition (°C)</entry><entry namest="col5" nameend="col6" align="center">Properties of the biaxially stretched film of the composition</entry></row><row><entry namest="col1" nameend="col1" /><entry namest="col2" nameend="col2" align="center">Type (example designation)</entry><entry namest="col3" nameend="col3" align="center">Amount (wt.%)</entry><entry namest="col4" nameend="col4" /><entry namest="col5" nameend="col5" align="center">Haze (%)</entry><entry namest="col6" nameend="col6" align="center">CO<sub>2</sub> gas permeability coefficient (cc.mm/m<sup>2</sup>.day.atm)</entry></row></thead><tbody valign="top"><row><entry namest="col1" nameend="col1" align="left">Ex. B1</entry><entry namest="col2" nameend="col2" align="left">Ex. A1</entry><entry namest="col3" nameend="col3" align="right">10</entry><entry namest="col4" nameend="col4" align="right">77</entry><entry namest="col5" nameend="col5" align="char" char=".">0.6</entry><entry namest="col6" nameend="col6" align="char" char=".">9.1</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. B2</entry><entry namest="col2" nameend="col2" align="left">Ex. A2</entry><entry namest="col3" nameend="col3" align="right">10</entry><entry namest="col4" nameend="col4" align="right">78</entry><entry namest="col5" nameend="col5" align="char" char=".">0.6</entry><entry namest="col6" nameend="col6" align="char" char=".">9.3</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. B3</entry><entry namest="col2" nameend="col2" align="left">Ex. A3</entry><entry namest="col3" nameend="col3" align="right">10</entry><entry namest="col4" nameend="col4" align="right">79</entry><entry namest="col5" nameend="col5" align="char" char=".">0.6</entry><entry namest="col6" nameend="col6" align="char" char=".">9.5</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B1</entry><entry namest="col2" nameend="col2" align="left">CEx. A2</entry><entry namest="col3" nameend="col3" align="right">10</entry><entry namest="col4" nameend="col4" align="right">73</entry><entry namest="col5" nameend="col5" align="char" char=".">2.0</entry><entry namest="col6" nameend="col6" align="char" char=".">9.1</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B2</entry><entry namest="col2" nameend="col2" align="left">CEx. A4</entry><entry namest="col3" nameend="col3" align="right">10</entry><entry namest="col4" nameend="col4" align="right">79</entry><entry namest="col5" nameend="col5" align="char" char=".">1.0</entry><entry namest="col6" nameend="col6" align="char" char=".">10.1</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B3</entry><entry namest="col2" nameend="col2" align="left">CEx. A5</entry><entry namest="col3" nameend="col3" align="right">10</entry><entry namest="col4" nameend="col4" align="right">73</entry><entry namest="col5" nameend="col5" align="char" char=".">0.7</entry><entry namest="col6" nameend="col6" align="char" char=".">9.9</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B4</entry><entry namest="col2" nameend="col2" align="left">CEx. A6</entry><entry namest="col3" nameend="col3" align="right">10</entry><entry namest="col4" nameend="col4" align="right">78</entry><entry namest="col5" nameend="col5" align="char" char=".">1.2</entry><entry namest="col6" nameend="col6" align="char" char=".">10.6</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. B4</entry><entry namest="col2" nameend="col2" align="left">Ex. A1</entry><entry namest="col3" nameend="col3" align="right">20</entry><entry namest="col4" nameend="col4" align="right">77</entry><entry namest="col5" nameend="col5" align="char" char=".">0.8</entry><entry namest="col6" nameend="col6" align="char" char=".">7.5</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. B5</entry><entry namest="col2" nameend="col2" align="left">Ex. A2</entry><entry namest="col3" nameend="col3" align="right">20</entry><entry namest="col4" nameend="col4" align="right">78</entry><entry namest="col5" nameend="col5" align="char" char=".">0.8</entry><entry namest="col6" nameend="col6" align="char" char=".">7.6</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. B6</entry><entry namest="col2" nameend="col2" align="left">Ex. A3</entry><entry namest="col3" nameend="col3" align="right">20</entry><entry namest="col4" nameend="col4" align="right">79</entry><entry namest="col5" nameend="col5" align="char" char=".">0.9</entry><entry namest="col6" nameend="col6" align="char" char=".">7.9</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx B5</entry><entry namest="col2" nameend="col2" align="left">CEx. A2</entry><entry namest="col3" nameend="col3" align="right">20</entry><entry namest="col4" nameend="col4" align="right">70</entry><entry namest="col5" nameend="col5" align="char" char=".">2.8</entry><entry namest="col6" nameend="col6" align="char" char=".">7.5</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B6</entry><entry namest="col2" nameend="col2" align="left">CEx. A4</entry><entry namest="col3" nameend="col3" align="right">20</entry><entry namest="col4" nameend="col4" align="right">80</entry><entry namest="col5" nameend="col5" align="char" char=".">1.2</entry><entry namest="col6" nameend="col6" align="char" char=".">8.7</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B7</entry><entry namest="col2" nameend="col2" align="left">CEx. A5</entry><entry namest="col3" nameend="col3" align="right">20</entry><entry namest="col4" nameend="col4" align="right">70</entry><entry namest="col5" nameend="col5" align="char" char=".">0.8</entry><entry namest="col6" nameend="col6" align="char" char=".">8.7</entry></row><row rowsep="1"><entry namest="col1" nameend="col1" align="left">CEx. B8</entry><entry namest="col2" nameend="col2" align="left">CEx. A6</entry><entry namest="col3" nameend="col3" align="right">20</entry><entry namest="col4" nameend="col4" align="right">78</entry><entry namest="col5" nameend="col5" align="char" char=".">1.4</entry><entry namest="col6" nameend="col6" align="char" char=".">9.4</entry></row></tbody></tgroup></table></tables>
EXAMPLES B7 to B9 and COMPARATIVE EXAMPLES B9 to B11
0127The composition of polyethylene terephthalate and the copolyesters prepared in Examples 1B, B3 and B5 were each injection-molded at a molding temperature of about 270 °C by an injection-molding machine to form preforms (cold parison). Each of the preforms was biaxially stretched and blow-molded to about 2.5 times in the longitudinal direction and about 4 times in the transverse direction to produce a stretched bottle having an inner capacity of about 1 liter.
0128The above procedure was repeated using the polyester compositions of Comparative Examples B3, B5 and B7.
0129The hazes of the side surfaces of the stretched bottles and their carbon dioxide gas permeabilities were measured, and the results are shown in Table 3. <tables id="tabl0003" num="0003"><table frame="all"><title>Table 3</title><tgroup cols="4" colsep="1" rowsep="1"><colspec colnum="1" colname="col1" colwidth="39.37mm" /><colspec colnum="2" colname="col2" colwidth="39.37mm" /><colspec colnum="3" colname="col3" colwidth="39.37mm" /><colspec colnum="4" colname="col4" colwidth="39.37mm" /><thead valign="top"><row><entry namest="col1" nameend="col1" rowsep="0" align="left">Run</entry><entry namest="col2" nameend="col2" rowsep="0" align="left">Composition (example designation)</entry><entry namest="col3" nameend="col4" align="left">Properties of the biaxially stretched bottle</entry></row><row><entry namest="col1" nameend="col1" /><entry namest="col2" nameend="col2" /><entry namest="col3" nameend="col3" align="left">Haze (%) of the side surface of the bottle</entry><entry namest="col4" nameend="col4" align="left">CO<sub>2</sub> gas permeation coefficient (cc/day.bottle.atm)</entry></row></thead><tbody valign="top"><row><entry namest="col1" nameend="col1" align="left">Ex. B7</entry><entry namest="col2" nameend="col2" align="left">Ex. B1</entry><entry namest="col3" nameend="col3" align="char" char=".">1.8</entry><entry namest="col4" nameend="col4" align="char" char=".">1.5</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. B8</entry><entry namest="col2" nameend="col2" align="left">Ex. B3</entry><entry namest="col3" nameend="col3" align="char" char=".">2.0</entry><entry namest="col4" nameend="col4" align="char" char=".">1.5</entry></row><row><entry namest="col1" nameend="col1" align="left">Ex. B9</entry><entry namest="col2" nameend="col2" align="left">Ex. B5</entry><entry namest="col3" nameend="col3" align="char" char=".">2.4</entry><entry namest="col4" nameend="col4" align="char" char=".">1.6</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B9</entry><entry namest="col2" nameend="col2" align="left">CEx. B3</entry><entry namest="col3" nameend="col3" align="char" char=".">2.8</entry><entry namest="col4" nameend="col4" align="char" char=".">2.1</entry></row><row><entry namest="col1" nameend="col1" align="left">CEx. B10</entry><entry namest="col2" nameend="col2" align="left">CEx. B5</entry><entry namest="col3" nameend="col3" align="char" char=".">2.0</entry><entry namest="col4" nameend="col4" align="char" char=".">1.9</entry></row><row rowsep="1"><entry namest="col1" nameend="col1" align="left">CEx. B11</entry><entry namest="col2" nameend="col2" align="left">CEx. B7</entry><entry namest="col3" nameend="col3" align="char" char=".">3.0</entry><entry namest="col4" nameend="col4" align="char" char=".">2.8</entry></row></tbody></tgroup></table></tables>
Contents4
Every citation, both ways
| Document | Relation | Office |
|---|---|---|
| EP0171161A | Cites | European Patent Office (EPO) |
| DATABASE WPI Week 8621 Derwent Publications Ltd., London, GB; AN 86-134847 & JP-A-61 072 051 (MITSUI PETROCHEM IND KK) , 14 April 1986 | Non-patent | – |
21 members in 8 offices
Priority claims7
| Document | Office | Kind | Date |
|---|---|---|---|
| 28180088 | Japan | – | |
| 28180088 | Japan | A | |
| 32873388 | Japan | – | |
| 32873788 | Japan | – | |
| 32873388 | Japan | A | |
| 32873788 | Japan | A | |
| 89120695 | European Patent Office (EPO) | A |
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Numbers
- Publication
- 0678554
- Application
- 951096122
Titles3
- German
- Polyesterzusammensetzung, welche einen Copolyester enthält
- English
- Polyester composition containing a copolyester
- French
- Composition de polyester contenant un copolyester
Classification
- CPC, 41
- B29C49/22
- C08G63/20
- B32B27/08
- B29K2067/00
- B29K2667/00
- B29K2995/0067
- B29L2031/7158
- B32B27/36
- C08G63/18
- C08G63/668
- C08L67/02
- Y10T428/31786
- B29C2949/3008
- B29C2949/3012
- B29C2949/3026
- B29C2949/3016
- B29C2949/302
- B29C2949/303
- B29C2949/3024
- B29C2949/3036
- B29C2949/3028
- B29C2949/3034
- B29C2949/26
- B29C2949/28
- B29C2949/24
- B29C2949/22
- B29C2949/3044
- B29C2949/3046
- B29C2949/3038
- B29C2949/3042
- B29C2949/3032
- B29C2949/0811
- B29C2949/0862
- B29C49/087
- B29C2049/7879
- B29C49/0006
- C08J5/18
- B32B2307/514
- B32B2307/718
- B32B2367/00
- B32B2439/00
- IPC, 7
- B29C49 00
- B29C49 22
- B32B27 36
- C08G63 18
- C08G63 20
- C08G63 668
- C08L67 02
Designated states1
- Contracting states, 1
- Sweden