In-line coated biaxially orientated polypropylene based antistatic multilayer films
Abstract
The invention relates to an acrylic/maleic based antistatic in-line coated multilayered biaxially oriented polypropylene (BOPP) based film comprising: " a skin layer comprising a polypropylene or the mixture of polypropylene with copolymer or terpolymer and in-line surface coated thin antistatic layer; " two inner layers between the skin layer and the core layers and between the core and the outer layers, comprising a polypropylene or the mixture of polypropylene with copolymer or terpolymer, " a core layer between two said inner layers, comprising polypropylene, " a treated outer layer comprising a polypropylene or copolymer or terpolymer, The disclosure also includes the process for producing inline coated BOPP films wherein in-line coating system is revised, improved and integrated into standard flat tenter biaxially oriented polypropylene processing and manufacturing line.

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13 claims: 1 independent, 12 dependent
- 1Patent claims Zastrzeżenia patentowe 1. Maleine anti-electrostatic coated in-line multilayer bi-layer oriented polypropylene (BOPP) film containing:1. Maleinowa antyelektrostatyczna powlekana w układzie in-line wielowarstwowa dwukierunkowo zorientowana folia polipropylenowa (BOPP) zawieraj ąca: a skin layer comprising polypropylene or a mixture of polypropylene with a poly (ethylene-co-propylene) copolymer or poly (ethylene-copropylene-co-butylene) terpolymer and a thin surface antistatic layer applied in-line;warstwę naskórkową zawierającą polipropylen lub mieszaninę polipropylenu z kopolimerem poli(etyleno-ko-propylenowym) lub terpolimerem poli(etyleno-kopropyleno-ko-butylenowym) i cienką powierzchniową warstwę antyelektrostatyczną nałożoną w układzie in-line;gdzie cienka powierzchniowa warstwa antyelektrostatyczna nałożona w układzie in-line zawiera mieszaninę: where the thin surface antistatic layer applied in-line contains the mixture: (1) crosslinkable copolymers of maleic anhydride and (2) ionic antistatic agent based on complex two-component systems selected from linear or branched polyethyleneimine (PEI) / oligo (acrylic acid), (1) sieciowalnych kopolimerów bezwodnika maleinowego i (2) jonowego środka antyelektrostatycznego opartego na kompleksowych systemach dwuskładnikowych wybieranych spośród liniowych lub rozgałęzionych polietylenoimino (PEI)/oligo(kwasu akrylowego), PEI / (meth) acrylic copolymers, and PEI/kopolimerów (met)akrylowych, i PEI / water soluble maleic anhydride copolymers with different comonomers;PEI/rozpuszczalnych w wodzie kopolimerów bezwodnika maleinowego z różnymi komonomerami;dwie warstwy wewnętrzne między warstwą naskórkową a warstwą rdzenia i między rdzeniem a warstwą zewnętrzną, zawierające polipropylen lub mieszaninę polipropylenu z kopolimerem poli(etyleno-ko-propylenowym) lub terpolimerem poli(etyleno-ko-propyleno-ko-butylenowym), warstwę rdzenia między dwoma wymienionymi warstwami wewnętrznymi, zawierającą polipropylen, obrobioną warstwę zewnętrzną zawierającą polipropylen lub kopolimer poli(etyleno-ko-propylenowy) lub terpolimer poli(etyleno-ko-propyleno-kobutylenowy). two inner layers between the epidermal layer and the core layer and between the core and the outer layer, containing polypropylene or a mixture of polypropylene with poly (ethylene-co-propylene) copolymer or poly (ethylene-co-propylene-co-butylene) terpolymer, a core layer between the two said inner layers, containing polypropylene, worked outer layer comprising polypropylene or poly (ethylene-co-propylene) copolymer or poly (ethylene-co-propylene-cobutylene) terpolymer.
115 paragraphs in 3 sections, as filed
[0001] The invention relates to the field of production and applications of plastics. More specifically, the invention relates to in-line coated or multilayer polyolefin films having improved surface properties, such as excellent anti-static, cold bonding, slipperiness, wetting voltage, printability and adhesion to various types of binders.
BACKGROUND OF THE INVENTION (BACKGROUND ART) It is known that many packaging materials made of thermoplastic polymers, e.g. films, sheets, coatings, foams, etc. - showing adequate flexibility and mechanical strength, have a wide range of applications in the food and non-food industry, such as food packaging , agriculture, industrial wrapping, medicine, pharmacy, electrical and electronic materials industry etc.
[0003] From these materials, especially packaging films, including bi-directionally oriented polyolefin films, is required among others, that: (1) have the required surface properties such as antistatic properties, wetting voltage, adequate adhesion and slipperiness during operation in various conditions, (2) retained their optical properties (haze, shine, opacity, etc.) and thermal properties (weldability, etc.) (3) retained their tensile properties and the mechanical properties required for specific applications.
[0004] Currently, antistatic films are produced by incorporating additives as a masterbatch into the film during extrusion or by coating the film off-line after producing various types of organic antistatic additives such as ethoxylated amines, polyimines, etc., containing positive ions in the particles, to obtain conventional film-forming thermoplastic polymers, such as polyolefins flexible poly (vinyl chloride), styrene polymers, polyesters, functional α-olefin copolymers, etc.
[0005] There are a number of patent publications available for in-line coated thermoplastic films, anti-static thin polyolefin films, white cavitated sealable or unsealable bi-oriented polypropylene films containing various types of organic and inorganic additives, such as polyethylene glycol and its stearyl ether, monoester of fatty acid and polyhydric alcohol, fatty acid monoglyceride, alcohol esters and amides or metal salts of saturated or unsaturated monocarboxylic fatty acids, low and high molecular weight amine and imine compounds, inorganic fillers and pigments, silica and organic agents to facilitate removal of the mold, etc. The conventional nonionic antistatic agents most commonly used in polyolefin film compositions are fatty acid esters, ethoxylated alkylamines, diethanolamides, and ethoxylated alcohol.
[0006] More specifically, a laminate of thermoplastic resin with anti-electrostatic properties, such as disclosed in U.S. Patent No. 460,5591, applies to polyester film and a layer of polyester resin composition provided on at least one surface of the film, wherein the composition comprises (A) a water-insoluble polyester copolymer of a mixture of aliphatic or alicyclic dicarboxylic acids and their metal sulfonate derivatives (sulfophthalic acid and its iso-structural analogues) with C2-8 aliphatic glycols and C2-8 and alicyclic glycols ) inert inorganic particles such as fine calcium carbonate, kaolin, bentonite, zeolite etc. (mass ratio (A) / (B) = 100 / 0.5-3.0); in terms of transparency and slipperiness, the use of natural and synthetic silicas is preferred in this invention. The composition also contained one or more ingredients selected from the group consisting of a water-soluble silicone, a multifunctional reactive compound, polyethylene glycol and its derivative (0.1-15 wt.%), And an antistatic agent. This film laminate is preferably produced by an in-line coating method.
[0007] This invention recommends the possibility of producing a laminate film using other non-polar thermoplastic polymers, especially polyolefins, but this method cannot be applied to polyolefins (polyethylene, polypropylene and α-olefin copolymers) because the film surface of the said polymers is highly hydrophobic and the formation of thin coatings from the polar monomer system on their surface is not possible without preliminary surface treatment (corona discharge treatment, plasma, flame and chemical). The polyester film laminate of this invention is a hot stamped non-monolayer or multilayer, non-oriented or unidirectional oriented film, and the obtained laminate is then unidirectional or bi-directional oriented.
[0008] Patent EP 0505861 A2 discloses a laminated film comprising a 3-300 Pm polyester film and at least one 0.01-5.0 Pm coating layer on one or both surfaces of this polyester film. The thin coating film contained (a) a polymer with a cationic nitrogen atom in the main chain, (b) a polymeric binder selected from the group consisting of polyesters, polyacrylates, polyurethanes, chlorine-containing polymers and mixtures thereof, (c) a material selected from the group consisting of particles, lubricants and mixtures thereof; and (d) a crosslinker selected from the group consisting of melamine or epoxy crosslinkers and mixtures thereof. The coating film was obtained by the in-line coating method. This laminated film is oriented in one or two directions, which is great for antistatic, adhesive and slippery properties. Patent EP 0172269 A2 discloses a thermoplastic resin copolyester film laminate comprising (A) a water-insoluble polyester copolymer which contained a mixture of a dicarboxylic acid component with a methanesulfonate group and a glycol component, and (B) neutral particles; mass ratio (A) / (B) = 100 / 0.5-3.0. The film composition contained water-soluble silicone, a multi-functional reactive compound, polyethylene glycol and its derivative, and phosphoric (V) derivatives as anti-electrostatic agents. The copolyester film laminate is preferably made by in-line coating. According to patent EP 0362568A2, antistatic polyester film is useful for various applications such as magnetic information media, plastic arts, displays, packaging materials, building materials etc. Several patent publications concerned improving the adhesion between the surface of the base polymeric film and the surface of the coating by using various polymer compositions as coating solutions. Such coatings include compositions based on polyethyleneimine (US Patent 5,156,904), acrylic or methacrylic thermosetting plastics (US Patent 4,573,363), cross-linked styrene and maleic anhydride copolymer (US Patent 4,410,600), vinylidene chloride copolymer (US Patent 2,698,240), water dispersible copolymers (US Patent 5,156,904) and similar polymeric coatings. Of these coatings, polyethyleneimine is the most commonly used coating component between various ionomeric and non-ionomeric thermoplastic films, such as polyester or cellophane / polyethylene (US Patent No. 28554), polypropylene / other polymers (US Patent 4,139643) and similar polymeric systems. Oriented polymeric films, preferably polyethylene terephthalate, coated with polyethyleneimine and / or polyamide polyethyleneimine are disclosed in US Patents 5,156,904 and 5,453,326, respectively, in which polyethyleneimine is applied by an in-line method, i.e. during the film production process, the polymeric film is produced prior to thermosetting of the film. In-line coated films when used to obtain the laminate with other polymers such as polyethylene or ionomer-type polymers showed no signs of delamination of the base polymer film and extrusion coated polymer after 2 hours in water at a temperature of 121 ° C at 0.1 N / mm<sup>2</sup> (US Patent 5,156,904 and EP Patent 0458147A2). Oriented polyethylene terephthalate film is coated in-line with polyamide-polyethyleneimine to improve the anti-static properties of the film and its use for other packaging applications (US Patent 5,453326). An in-line polyethyleneimine coated film is used to produce a laminate with another nonionic or ionomeric type of polymer, such as polyethylene or polyester, preferably polyethylene terephthalate (Patent EP 0458147A2). However, the above inventions relate to the preparation of laminated films using only single-matrix matrix polymer films and a group of polymeric antistatic agents comprising cationic nitrogen-containing polymer complexes, preferably water-soluble polyethyleneimine, with HCl or HBr acids. However, it is well known that the use of inorganic acid components in polyethyleneimine complexes causes some difficulties during processing, such as corrosion of metal components of the devices and problems with environmental protection, because these components evaporate during the film making process.
[0009] It is well known that many acrylic and methacrylic polymers [Maltzer Y. L. Water-soluble polymer, Noves Data Co .: New Jersey, USA, 1981] and copolymers of maleic anhydride and its isostructural analogues (anhydrides, amides, esters and citraconic and itaconic imides) [Triverdi B. C., Culberton BM Maleic anhydride, Plenum Press: New York, 1982; Rzaev Z. M. ABOUT. Polymers and copolymers of maleic anhydride, Elm: Baku, 1984; Rzaev Z. M. ABOUT. Threshold. Polym. Sci., 2000; 25: 163; Rzaev Z. M. ABOUT. et al. Eur. Polym. J. 2002; 38: 2143] is widely used as an effective component of water-soluble or water-dispersed film-forming compositions that are also suitable for producing surface coatings on various thermoplastic polymers, preferably on polar polymeric systems using in-line coating. For example, US Patent 4410600 discloses a bi-directionally oriented aromatic polyester film, coated in-line, cross-linked poly (styrene maleic anhydride) functional copolymer prior to thermoset; said coated copolymer film still requires corona discharge treatment through the converter before extrusion coating. A number of publications regarding the use of said water-soluble functional polymeric film-forming systems for coating the surface of a polyolefin film is severely limited to the use of (meth) acrylic type polymer compositions, while almost no publication, including patent publications, for anhydride-containing copolymers and their various compositions .
[0010] Several Japanese patent publications also concerned coated thermoplastic polymers, preferably polyester type polymers, in which an antistatic layer is applied to at least one surface of the base film. An antistatic resin obtained by copolymerization of the polyalkylene oxide component with a component containing a quaternary ammonium group was used. The antistatic coating is stressed at least in one direction (JP 2003-136641). JP 2002-012858 discloses a method of improving the antistatic properties of a thermoplastic film by the use of an antistatic agent that inhibits the excellent antistatic behavior in low humidity conditions, capable of providing an electrostatic film excellent in terms of shade and antistatic film of the coating type, as well as a method of obtaining an antistatic film of the coating type by the coating method in-line system. The antistatic agent contained (1) a compound containing sulfonic acid or a salt thereof in the molecule, and (2) a polymer containing a cationic group. The object of another patent (JP 2001-026088) is to improve adhesion, printability and other features by providing a layer of easily wettable coating film on one surface of a polyester film and setting the wetting voltage of the other surface of the polyester film to a certain value (45 mN / m or more). As the method for producing the coating film layer, an in-line coating method is given in which the coating agent is applied to the polyester film prior to orientation / crystallization and the coating layer is stressed at least unidirectionally to produce a coated film preferably 0.001-1.0 μm thick. The patented invention (JP 2004-345298) discloses a polyester film for heat-shrinkable packaging that is excellent in terms of solvent binding properties and has sufficient solvent binding properties even after the application of an antistatic coating film by in-line coating. JP 5320391 relates to easily coated polyester with improved electrostatic properties and is characterized by placing a primer layer containing a composition containing (1) an easily adhesive polyester resin, (2) an antistatic agent containing in the molecule a sulfonic acid group and / or a group of its metal salt salt and (3) an acid compound with at least one preferred carboxyl group or phenolic hydroxyl group on at least one side of the polyester film and a method of producing this film by a coating method in-line. The object of the invention JP 6293875 is to obtain a coating agent with excellent sliding properties and resistance to mutual sticking to a copolyester film, and showing adhesion to various coating materials by mixing a water-soluble copolyester and acrylic resin. This invention provides a polyester film coated with a coating agent dispersed in water and a method for producing this film by in-line technique. JP 6099559 has disclosed a polyester film useful as a base film for example a film coated product such as a magnetic information carrier, photographic x-ray film, telephone card, diaphragm microfilm, etc., with excellent adhesive properties, resistance to mutual sticking and smoothness. This polyester-based film consists of a coating layer made of dispersible or water-soluble acrylic resin, fine inorganic particles (0.2 μm in size). The coating layer of this film is obtained by in-line coating. Tsunashima et al. (Toray Ind.) (JP 11198228) developed an in-line coating method for water-soluble coating materials or the like, characterized by good performance and quality ensuring no thickness irregularities in the film production process, and also allowing the formation of bi-directionally oriented film with an orientation speed of 10 ± 4% / min or more in both the longitudinal and transverse directions. The oriented film obtained in this way comprises a layer of 0.0050.5 μm thick coating material on the surface of the film.
[0011] However, these inventions mainly included polyester-type base polymers and adhesive polyester or acrylic resin, and the films obtained are not single-layer or multi-layer. No method, including those developed in the said patents, is suitable for hydrophobic polyolefin films, especially for single- or multi-layer and bidirectionally oriented polypropylene films. On the other hand, all patent information about polypropylene-based laminates and acrylic compositions characterized by a combination of useful properties, such as excellent anti-electrostatic properties, facilitating mold separation, physical and mechanical properties and other important parameters are limited by information on the nature of proposals without detailed experimental results and technological research of prototypes.
[0012] As can be seen from the patent publications described above, there are a relatively small number of publications describing polyolefin-based films, especially in-line coated films. All patent publications have one or more of the following disadvantages: the film compositions are not single or multilayer, are not bi-directional oriented and based on polypropylene, they are not weldable or cavitated or dyed with a combination of excellent antistatic properties and facilitating separation of the mold from the mold, slipperiness , improved wetting voltage, cold welding and glueing etc. that would be retained for a long time.
BRIEF DESCRIPTION OF THE DRAWINGS [0013]
FIG. 1 shows a scheme for the production of self-ordered hyperbranched macro-complexes with a positive charge as effective antistatic agents.
FIG. 2 shows a general diagram of the technology for the production and processing of the disclosed films with a changed and improved in-line chemical coating system.
SUMMARY OF THE INVENTION [0014] The purpose of the invention is to design and obtain a multilayer structure, preferably A / B / C / D / E structure having at least a thin epidermal antistatic coating (A), two internal layers (B) and (D), base core layer (C) and outer layer (E) for bi-directionally oriented polyolefin-based films, preferably polypropylene, showing beneficial properties, such as anti-static facilitating separation of the compact from the mold, slipperiness, kawitowanie, unsealability or weldability and improved wetting voltage, compared to known and commercially available polypropylene based films of similar composition. In order to improve the anti-static properties of the film, the epidermal coating composition (A) contains a mixture of crosslinkable copolymers of maleic anhydride and its isostructural analogues, and an ionic antistatic agent based on complex two-component systems, such as linear or branched polyethyleneimine (PEI) / copolymers of oligo (acrylic) and (meth) acrylic acid or PEI / water-soluble copolymers of maleic anhydride [poly (MA-cocomonomer) with various comonomers, preferably with ethylene, propylene, Nizopropyloakryloamidem, N-vinyl-2-pyrrolidone and the like comonomers (Fig. 1), polypropylene homopolymer, donor-acceptor bond or hydrogen bond in the combination of two-component systems used in the composition of said layer provides a significant increase in the positive charge in the primary, secondary and tertiary amine groups, and thus exhibiting excellent antistatic properties. It is a well-known fact that copolymers containing hydrolyzed anhydride with a structure of strong hydrogen bonds easily form complex macrocomplexes with PEI through non-covalent -COO • 'NH- interaction between free carboxyl groups of the acid portion and amino groups of PEI (Rzaev Z. M. ABOUT. et al. J Appl. Polym. Sci. 2007; 102: 5841) The two inner layers (B) and (D) of said single or multilayer structure contain 100% polypropylene or a mixture of polypropylene with a poly (ethylene-co-propylene) copolymer or a poly (ethylene-co-propylene-co-copolymer) terpolymer -butylene) or polypropylene, a TiO2 white masterbatch for the production of white BOPP film, a slip / antistatic masterbatch and a CaCO3 masterbatch for the production of white cavitated BOPP film. The core layer (C) of similar composition as layers (B) and (D) contains polypropylene or a slip / nonionic antistatic masterbatch and CaCO3 or TiO2 white masterbatch. The outer layer (E) contains polypropylene or poly (ethylene copropylene)
US Patent 6,979,495 discloses a multilayer bidirectional oriented film comprising a core layer comprising: a syndiotactic propylene homopolymer; and at least one additional layer adhering to the core layer comprising a polymer which is an ethylene or propylene homopolymer, an ethylene copolymer or a terpolymer containing propylene and / or butane-1 butonone co-polymer.
poly (ethylene-co-propylene-co-butylene) copolymer or terpolymer, silica masterbatch and organic agent facilitating separation of the mold from the mold, and masterbatch non-ionic anti-electrostatic. The outer layer (E) can be corona, plasma or flame treated, or it may not be processed depending on the end use of the film. The compositions of the compositions and layer components for the various types of polypropylene films coated with the invention are set forth in the examples and tables below.
[0015] Other polypropylene based multilayer films are known from WO 99/07553 and TR 2000 02164 A2.
[0016] The invention is a coated antistatic film that is multilayer, bi-directionally oriented and made of polyolefin, preferably polypropylene and poly (ethylene-co-propylene-co-butylene) terpolymers [poly (E-co-P-co-B) ] with different contents of E and B units. A thin coating with a thickness of about 0.05-2.0 μm is made (a) from a mixture of polyethylene glycol (PEG) cross-linked copolymers of maleic anhydride and its isostructural analogues and an ionic antistatic agent based on complex two-component systems, such as linear or branched polyethyleneimine (PEI) / copolymers of oligo (acrylic) and (meth) acrylic acid or PEI / water-soluble copolymers of maleic anhydride [poly (MA-cocomonomer) with various comonomers, preferably with ethylene, propylene, Nizopropyloakryloamidem, N-vinyl-2-pyrrolidone and the like, and (b) one of conventional acrylic adhesive compositions (Rogers Int. Inc., Greenville, SC, USA) modified with said two-component complex system as an antistatic agent. Antistatic coated multilayer films of the invention are made using improved in-line production, processing and coating technology. The invention is useful for food packaging and agricultural applications as well as for other general packaging applications and unconventional special applications.
[0017] The following are examples of the invention for the preparation of multilayer and antistatic coated polypropylene films of various compositions and properties.
EXAMPLE 1 - disclosing a product outside the scope of protection of the present invention for a better understanding of the field [0018] The first example of an in-line multi-layer film (A / B / C / D / E) coated with excellent antistatic properties includes: (A) 0.1 μm surface treated with corona discharge and applied in-line on the surface of 0.9 μm epidermal layer containing 90% by mass propylene homopolymer, 10% by mass mixtures of acrylic polymer matrix and ionic antistatic agent based on complex two-component systems, such as linear or branched polyethyleneimines PEI [LPEI or (BPEI) / oligo (acrylic acid)], (B) 2.0 μm inner layer containing 100% by mass polypropylene, (C) 22.0 μm core layer containing 100 wt. polypropylene, (D) 2.0 μm inner layer containing 100% by mass polypropylene, (E) 1.0 μm outer layer with corona discharge surface, containing 98.5% by mass polypropylene. Prior to bidirectional stress and in-line coating, the epidermal layer (A) is corona or flame treated twice to ensure better surface adhesion of the polypropylene polymer matrix with the in-line acrylic coated system. The outer layer (E) is also corona or flame treated for later printing and labeling. The film is obtained by using a twin screw extruder system with a flat expander with excellent mixing and simultaneous or sequential tensioning function, equipped with a cooled corona discharge system and an improved in-line coating system for the purpose of effective modification / hydrophilization of the film surface, three or four satellite coextruding extruders, flat jaw, cooling drum and water evaporation and recycling lines. EXAMPLE 2 - disclosing a product outside the scope of the protection of the present invention for a better understanding of the field [0019] A second example of an in-line multi-layer film (A / B / C / D / E) coated with excellent antistatic properties includes: (A) 0.1 μ m surface treated with corona discharge and applied in-line on the surface of 0.9 μm epidermal layer containing 90% by mass propylene homopolymer or poly (ethylene-co-propylene-co-butylene) terpolymer, 10% by mass mixtures of acrylic polymer matrix and ionic antistatic agent based on complex two-component systems, such as linear or branched polyethyleneimine PEI [LPEI or (BPEI) / oligo (acrylic acid)], (B) 3.0 μm internal layer containing 85% by mass polypropylene, 15% by mass TiO2 white pigment, (C) 30 μm core layer containing 85% by mass polypropylene homopolymer, 15% by mass CaCO3 cavitation masterbatch, (D) 3.0 μm inner layer containing 95% by mass polypropylene, 5% by mass pigment white TiO2 and (E) 1.0 μm outer layer with a surface treated with corona discharge, containing 100% by mass polypropylene or poly (ethylene-co-propylene-co-butylene) terpolymer. Prior to bidirectional stress and in-line coating, the epidermal layer (A) is corona or flame treated twice to ensure better surface adhesion of the polypropylene polymer matrix with the in-line acrylic coated system. The outer layer (E) is also corona or flame treated for later printing and labeling. The film is obtained by using a twin screw extruder system with a flat expander with excellent mixing and simultaneous or sequential tensioning function, equipped with a cooled corona discharge system and an improved in-line coating system for the effective modification / hydrophilization of film surfaces, three or four satellite extruders concurrent, flat jaw, cooling drum and water evaporation and recycling lines.
EXAMPLE 3 [0020] A third example of an in-line multilayer film coated structure having the same composition and thickness as in Example 1 with the following changes: an in-line epidermal layer (A) 1.0 micron thick contains mass% mixtures of crosslinkable copolymers of maleic anhydride and an ionic antistatic agent based on complex two-component systems such as linear or branched polyethyleneimine (LPEI or BPEI / oligo (acrylic acid) with an average molecular weight (Mn) equal to or greater than 480 g / mol or 2000 g, respectively /moth.
EXAMPLE 4 - disclosing a product outside the scope of the protection of the present invention for a better understanding of the field [0021] A fourth example of an in-line multilayer film coated structure having the same composition and thickness as in Example 1 with the following changes: in-line coated layer Epidermal (A) contains 10 wt. mixtures of PEI / water-soluble maleic anhydride copolymers with an equivalent amine / carboxylic acid ratio with an average molecular weight (Mn) equal to or greater than 10,000 g / mol.
EXAMPLE 5 - disclosing a product outside the scope of the protection of the present invention for a better understanding of the field. [0022] A fifth example of an in-line multilayer film coated structure having the same composition and thickness as in Example 1 with the following changes: in-line coated layer epidermal (A) with a thickness of 1.0 μm contains 10% by mass mixtures of PEI / methacrylic copolymer with an equivalent ratio of amine unit / carboxylic acid with an average molecular weight (Mw) equal to or greater than 1500 g / mol.
EXAMPLE 6 - disclosing a product outside the scope of protection of the present invention for a better understanding of the field [0023] A sixth example of an in-line multilayer film coated structure having the same composition and thickness as in Example 1 with the following changes: (A) 0.1 μm a surface treated with corona discharges and applied in-line to the surface of 0.9 μm of the epidermal layer containing 90% by mass propylene homopolymer, 10% by mass mixtures of acrylic polymer matrix and ionic antistatic agent based on complex two-component systems, such as linear or branched polyethyleneimine PEI [LPEI or (BPEI) / oligo (acrylic acid)], core layer (C) with a thickness of 24 μm contains 85% by mass propylene homopolymer and 15% by mass TiO2 white pigment. E) 1.0 μm outer layer treated with corona discharge contains 100% by mass polypropylene or poly (ethylene-co-propylene-co-butylene) terpolymer.
COMPARATIVE EXAMPLE [0024] A comparative example of an in-line multilayer film (A / B / C / D / E) coated with excellent antistatic properties includes: (A) 1.0 μm epidermal layer containing 98.5 wt. propylene homopolymer and 1.5% by mass polypropylene masterbatch facilitating separation of the compact from the mold (containing 5% silica inorganic additive) (B) 2.0 μm inner layer containing 100% by mass polypropylene, (C) 22.0 μm core layer containing 98 wt. polypropylene and 2% by mass polypropylene antistatic masterbatch (containing 15% additive - ethoxylated amine), (D) 2.0 μm inner layer containing 100% by weight polypropylene, (E) 1.0 μm outer layer with corona discharge surface treatment, containing 97.5% by mass polypropylene and 2.5% by mass polypropylene masterbatch to facilitate mold separation (containing 5% silica inorganic additive). Before bidirectional stress and in-line coating, the epidermal layer (A) is corona or flame treated twice to ensure better surface bonding of the polypropylene polymer matrix surface with the in-line acrylic coated system. The outer layer (E) is also corona or flame treated for later printing and labeling. The film is obtained by using a twin-screw extruder system with a flat expander with excellent mixing and simultaneous or sequential tensioning function, equipped with a cooled corona discharge system and three or four satellite co-extruders, flat jaw, cooling drum and water evaporation and recycling lines.
TABLE 1
<td colspan="8">Composition of coated films in in-line system</td>
<td rowspan="2">individual components</td><td>Ex-1</td><td>Ex-2</td><td>Ex-3</td><td>Ex-4</td><td>Ex-5</td><td>Ex-6</td><td>Comparative foil</td>
<td>Content (mass%)</td><td>Content (mass%)</td><td>Content (mass%)</td><td>Content (mass%)</td><td>Content (mass%)</td><td>Content (mass%)</td><td>Content (mass%)</td>
<td>polypropylene isotactic (Homopolymer)</td><td>99.635</td><td>85.334</td><td>99.635</td><td>99.635</td><td>99.635</td><td>84.926</td><td>99.745</td>
<td>Poly [ethylene-propylenoko (1,25,4%) - co-1-butene (2,814,6%)]</td><td>0,000</td><td>5,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>6.333</td><td>0,000</td>
<td colspan="8">Composition of coated films in in-line system</td>
<td>Calcium carbonate - cavitation agent</td><td>0,000</td><td>8.289</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td>
<td>Titanium dioxide - a white pigment</td><td>0,000</td><td>1,105</td><td>0,000</td><td>0,000</td><td>0,000</td><td>8,400</td><td>0,000</td>
<td>Tetrakismetane - an antioxidant</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td>
<td>Aryl phosphide - stabilizer</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td><td>0,004</td>
<td>Silica agent facilitating separation of the compact from the mold</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,007</td>
<td>Additive based on ethoxylated amine</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,240</td>
<td>Coating Material 1</td><td>0.357</td><td>0.263</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0.333</td><td>0,000</td>
<td>Shell material 2</td><td>0,000</td><td>0,000</td><td>0.357</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td>
<td>Shell material 3</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0.357</td><td>0,000</td><td>0,000</td><td>0,000</td>
<td>Shell material 4</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0,000</td><td>0.357</td><td>0,000</td><td>0,000</td>
<td colspan="3">Coating material 1: a mixture of acrostatic acrostatic branched polyethyleneimine PEI [Coating material 2: a mixture of networked antistatic agents such as linear or branched p average molecular weight (Mn) g / mol. Shell material 3: PEI / inene mixture with an equivalent molecular weight ratio (Mn) of or Shell material 4: PEI / amine unit / carboxylic acid mixture greater than 1500 g / mol.</td><td colspan="5">polymer matrix and ionic agent anti-drug two-component systems, such as linear or .PHI or (BPEI) / oligo (acrylic acid)] oval copolymers of maleic anhydride and iono-based complex two-component systems, polyethyleneimine (LPEI or BPEI / oligo (acrylic acid) o) of more than 480 g / mol or 2000 respectively water-soluble copolymers of the anhydride malea small unit / carboxylic acid with an average ί greater than 10,000 g / mol. methacrylic copolymer with an equivalent ratio of that with an average molecular weight (Mw) equal to or</td>
TABLE 2
<td colspan="4">The composition of the layers falling into the sklar</td><td colspan="2">different types of multilayer</td><td colspan="2">BOPP film</td>
<td>layers</td><td>EXAMPLE 1 (28 μm) Coated in in-line arrangement of non-weldable BOPP film</td><td>EXAMPLE 2 (38 μm) Coated with in-line cavitated opaque BOPP film</td><td>EXAMPLE 3 (28 μm) Coated in in-line arrangement of non-weldable BOPP film</td><td>EXAMPLE 4 (28 μm) Coated in in-line arrangement of non-weldable BOPP film</td><td>EXAMPLE 5 (28 μm) Coated with in-line arrangement of non-weldable BOPP film</td><td>EXAMPLE 6 (30 μm) White heat-sealable BOPP film</td><td>FOIL COMPARATIVE (28 μm) Non-weldable BOPP film</td>
<td>Layer epidermal</td><td>homopolymer 90% Coating Material 1 10% (thickness: 1 μm)</td><td>90% terpolymer Coating material 1 10% (thickness: 1 μm)</td><td>homopolymer 90% Shell material 2 10% (thickness: 1 μm)</td><td>homopolymer 90% Shell material 3 10% (thickness :) 1 μm)</td><td>homopolymer 90% Shell material 4 10% (thickness: 1 μm)</td><td>90% terpolymer. Shell material 1 10% (thickness: 1 μm)</td><td>Homopolymer 98.5%. Master batch facilitating separation of the molded part from the mold 1.5% (thickness: 1 μm)</td>
<td>Layer inside</td><td>homopolymer 100% (thickness: 2 μm)</td><td>Homopolymer 85% White (T1O2) Masterbatch 15% (thickness: 3 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>100% homopolymer (thickness: 2 μm)</td>
<td>Layer core</td><td>homopolymer 100% (thickness: 22.0 pm)</td><td>Homopolymer 85% Cavitation masterbatch (CaCO3) 15% (thickness: 30 μm)</td><td>homopolymer 100% (thickness: 22.0 pm)</td><td>homopolymer 100% (thickness: 22.0 pm)</td><td>homopolymer 100% (thickness: 22.0 pm)</td><td>homopolymer 85% White masterbatch (TiOi) 15% (thickness: 24.0 μm)</td><td>Homopolymer 98% Antistatic masterbatch 2% (thickness: 22.0 μm)</td>
<td>Layer inside</td><td>homopolymer 100 % (thickness: 2 μm)</td><td>Homopolymer 95% White masterbatch (TiO2) 5% (thickness: 3 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>homopolymer 100% (thickness: 2 μm)</td><td>100% homopolymer (thickness: 2 μm)</td>
<td colspan="4">Composition of layers included in the composition</td><td colspan="2">different types of multilayer</td><td colspan="2">BOPP film</td>
<td>Layer outside</td><td>homopolymer 100% (thickness: 1 μm) Surface treatment: corona discharge or flame</td><td>100% terpolymer (thickness: 1 μm) Surface treatment: corona discharge or flame</td><td>homopolymer 100% (thickness: 1 μm) Surface treatment: corona discharge or flame</td><td>homopolymer 100% (thickness: 1 μm) Surface treatment: corona discharge or flame</td><td>homopolymer 100% (thickness: 1 μm) Surface treatment: corona discharge or flame</td><td>100% terpolymer (thickness: 1 μm) Surface treatment: corona discharge or flame</td><td>97.5% homopolymer. Master batch facilitating separation of the molded part from the mold 2.5% (thickness: 1 pm) Surface treatment: corona discharge or flame</td>
[0025] The thickness of the surface layer of the epidermis coated in the in-line antistatic maleic film system developed in the invention is equal to or greater than 0.8 μm, the thickness of the coating applied in the in-line system is equal to or less than 0.5 μm as in Examples 1 6.
[0026] One aspect of this disclosure is the possibility of producing films in the form of uni- and bidirectionally oriented polyolefins, preferably uni- and bidirectionally oriented polypropylene films with at least one surface coated with an anti-electrostatic adhesive layer by using a combination of:
a) twin screw extruder system with flat expansion with excellent mixing and simultaneous or sequential stressing function, one main extruder with three or four satellite co-extruders, flat jaw, cooling drum and water bath, machine and cross orientation units, recycling line, processing machine corona discharge or flame, winding device.
b) a coating system embedded in the line equipped with tensioning pulleys, a coating roller, dual cooled corona discharge devices and a water evaporation line for the purpose of effective surface modification / hydrophilization and to significantly improve the antistatic and wetting tension of the film.
[0027] The film extrusion line with flat expander is a line producing conventional bi-directionally oriented polypropylene films with industrially acceptable properties. However, this technology does not allow the production of films with improved and long-term slipperiness, anti-electrostatic properties, wetting voltage, optical properties, etc. When using a conventional traveling additive containing masterbatches, these properties change as a result of aging and exploitation. [0028] According to this disclosure, an improved version of the in-line coating system developed and embedded in a standard bi-directionally oriented polypropylene production and processing line on a flat expander serves to implement the following important changes in in-line coating treatment:
1) Inclusion, that the polypropylene surface is hydrophobic and has lower wetting voltage values (29-31 dyne / cm) compared to the polyester surface, characterized by a higher wetting voltage (40-42 dyn / cm) commonly used in in-line coating technology, double cooled corona discharge devices are used in the in-line coating system to provide a wetting voltage level of the polypropylene film surface sufficient to allow water-based coatings to adhere to the surface.
2) In standard BOPP production processes, the voltage between MDO and TDO is carefully controlled to avoid film breakage and poor product quality. In contrast, the in-line coating apparatus located between them causes an increase in stress and inaccurate voltage control. Therefore, the bearing system of the last MDO rollers was changed and a new control system was built into the system to obtain accurate voltage control.
3) It is well known that polypropylene elements have lower heat resistance compared to polyester elements. Therefore, in the BOPP film processing system for corona discharge, the heat generated during the discharge should be dissipated by the cooling rollers. Since the corona discharge power used in the in-line coating method is about 30-40 kW, the discharge rollers adapted to the in-line coating system are cooled with an additional cooling system to avoid film overheating.
4) It is also well known that the most important parameters in the in-line coating system include obtaining a homogeneous and even thickness distribution throughout the network, because MDO film must be tensioned TDO in a ratio of 1: 8 to 1:10, the thickness of the coating should be controlled in a very sensitive control device. Therefore, a new device is installed in the in-line coating system to control the thickness of the coating using a ®-gauge or X-rays.
5) The coating roll pattern is different for the polyester substrate and different for the polypropylene substrate. In the case of the invention film, the coating inline system uses a different production nest angle, linearity (number of seats / inch)<sup>2</sup>) and the volume of the production well, depending on the composition and concentration of the coating material.
6) The dryer, in this case the TDO heating section, must have sufficient heat output to dry and remove water from the coated film. To achieve the desired drying temperature of 180-190 ° C (in the case of linear coating) instead of 160-170 ° C (in the case of standard production without coating), the thermal efficiency of the TDO heating section is increased.
[0029] According to the disclosure, the developed technological aspects of producing and processing said films are as follows:
a) bi-directional oriented monolayer or multilayer polypropylene film technology;
b) twin screw extrusion system with flat expansion with excellent mixing and simultaneous or sequential stressing function, one main extruder with three or four satellite co-extruders, a flat jaw, cooling drum and water bath, machine and cross orientation units, recycling line, processing machine corona discharge or flame, winding device;
c) a built-in coating system equipped with tensioning pulleys, a coating roller, dual cooled corona discharge devices and a water evaporation line for the purpose of effective surface modification / hydrophilization and to significantly improve the antistatic and wetting tension of the film.
[0030] Alternatively, the outer layer (E) of the bi-directionally oriented films obtained may be treated by a known method such as plasma or flame or more preferably by an electric corona. A general diagram of the production technology and improved film processing is shown in Figure 2.
[0031] Another aspect of the invention is the use of new functional copolymer systems as basic polymers, i.e. water-soluble anhydride-containing copolymers and their PEI macrocomplexes in coating compositions and polymeric antistatic agents; linear and branched PEI have the following average parameters: average molecular weight Mn = 425 g / mol, viscosity η = 200 cP at 25 ° C and density d = 1.07 g / cm<sup>3</sup> (in the case of linear PEI) and Mn = 1800, Mw = 2000 g / mol and density d = 1.08 g / cm<sup>3</sup> (in the case of branched PEI). The copolymers containing anhydride and homo- and copolymers of (meth) acrylic acid are easily crosslinked with polyethylene glycol (PEG) in an aqueous medium at 85-110 ° C without any catalyst and at room temperature against a water-soluble carbamide type catalyst (as in Devrim Y., Rzaev Z. M. ABOUT. et al. Macromol. Chem. Phys. 2007; 208: 175). The physical state of the PEG used varies from liquid to crystalline powder; having different molecular weights (Mn = 200, 420, 950 and 8000 g / mol) they are used as a crosslinking agent whose intermolecular bonds also improve the anti-electrostatic properties of the film. Both of these crosslinkable copolymer systems and hyperbranched copolymer / PEI macrocomplexes (Fig. 1) show better film-forming properties and excellent anti-static properties. Conventional acrylic adhesives can also be used for the in-line coating process.
[0032] A further object of the invention is to expand the field of application of said coated films useful for conventional applications, including in the food and non-food industry, such as food packaging, agriculture, industrial wrapping, medicine, pharmacy, electrical and electronic materials industry, etc. [ [0033] Some important properties of the films obtained according to the invention are summarized in Table 3.
TABLE 3
<td colspan="4">parameters</td><td colspan="11">Isical and mechanical and surface properties of multilayer BOPP films</td>
<td>Method test</td><td>parameters</td><td colspan="2">Unit</td><td colspan="2">EXAMPLE 1 (28 μm) Inline coated non-weldable BOPP film</td><td colspan="2">EXAMPLE 2 (38 μm) In-line coated cavitated opaque BOPP film</td><td colspan="2">EXAMPLE 3 (28 μm) Inline coated non-weldable BOPP film</td><td colspan="2">EXAMPLE 4 (28 μm) Inline coated non-weldable BOPP film</td><td>EXAMPLE 5 (28 μm) Inline coated non-weldable BOPP film</td><td>EXAMPLE 6 (30 μm) White heat-sealable BOPP film</td><td>COMPARATIVE FILM (28 μm) Non-weldable BOPP film</td>
<td>ASTM D 374</td><td>Thickness</td><td colspan="2">um</td><td colspan="2">28</td><td colspan="2">38</td><td colspan="2">28</td><td colspan="2">28</td><td>28</td><td>thirty</td><td>28</td>
<td>ASTM D 4321</td><td>Efficiency</td><td colspan="2">m<sup>2</sup>/ kg</td><td colspan="2">39.2</td><td colspan="2">39.3</td><td colspan="2">39.2</td><td colspan="2">39.2</td><td>39.2</td><td>34</td><td>39.2</td>
<td>ASTM D 1505</td><td>Density</td><td colspan="2">g / cm<sup>3</sup></td><td colspan="2">0.91</td><td colspan="2">0.67</td><td colspan="2">0.91</td><td colspan="2">0.91</td><td>0.91</td><td>0.98</td><td>0.91</td>
<td colspan="7">FEATURES</td><td colspan="2">faces of</td><td colspan="5">[OWN AND OPTICAL</td><td></td>
<td>ASTM D 2578</td><td colspan="2">Wetting voltage</td><td colspan="2">dynes / cm</td><td colspan="2">42</td><td colspan="2">42</td><td colspan="2">42</td><td>42</td><td>42</td><td>42</td><td>38</td>
<td>ASTM D 257</td><td colspan="2">Static decay period</td><td colspan="2">s</td><td colspan="2">0 *</td><td colspan="2">0 *</td><td colspan="2">0 *</td><td>0 *</td><td>0 *</td><td>0 *</td><td>195 **</td>
<td>ASTM D 1003</td><td colspan="2">fog</td><td colspan="2">%</td><td colspan="2">0.4</td><td colspan="2">-</td><td colspan="2">0.4</td><td>0.4</td><td>0.4</td><td>-</td><td>1.6</td>
<td>ASTM D 2457</td><td colspan="2">Shine</td><td colspan="2">%</td><td colspan="2">100</td><td colspan="2">90</td><td colspan="2">100</td><td>100</td><td>100</td><td>55</td><td>85</td>
<td>DIN 53146</td><td colspan="2">Opacity</td><td colspan="2">%</td><td colspan="2">-</td><td colspan="2">75</td><td colspan="2">-</td><td>-</td><td>-</td><td>65</td><td>-</td>
<td>ASTM D 1746</td><td colspan="2">Passage light</td><td colspan="2">%</td><td colspan="2">-</td><td colspan="2">thirty</td><td colspan="2">-</td><td>-</td><td>-</td><td>35</td><td>-</td>
<td colspan="14">MECHANICAL AND HEAT PROPERTIES</td><td></td>
<td colspan="5">ASTM Strength | N / mm<sup>2</sup> MD</td><td colspan="2">165</td><td colspan="2">79</td><td colspan="2">173</td><td>169</td><td>172</td><td>148</td><td>166</td>
<td>D 882</td><td>for stretching</td><td></td><td>TD</td><td>298</td><td>137</td><td>287</td><td>293</td><td>305</td><td>227</td><td>306</td>
<td rowspan="2">ASTM D 882</td><td rowspan="2">Elongation at break</td><td rowspan="2">%</td><td>MD</td><td>155</td><td>98</td><td>167</td><td>162</td><td>174</td><td>166</td><td>159</td>
<td>TD</td><td>58</td><td>40</td><td>62</td><td>59</td><td>55</td><td>63</td><td>59</td>
<td rowspan="2">ASTM D 2732</td><td rowspan="2">Contractility Thermal</td><td rowspan="2">%</td><td>MD</td><td>4</td><td>3</td><td>4</td><td>4</td><td>4</td><td>3</td><td>4</td>
<td>TD</td><td>2</td><td>1</td><td>2</td><td>2</td><td>2</td><td>2</td><td>2</td>
<td>ASTM F 88</td><td>Weldability Range</td><td>C</td><td>-</td><td>-</td><td>-</td><td>-</td><td>-</td><td>-</td><td>105-145</td><td>-</td>
<td colspan="11">* 0 means that the electrostatic charge on the surface of the coated film discharges immediately and does not accumulate on the surface. The same values are measured after manufacture and after 10 days of aging. ** the comparative film contains a traveling antistatic agent and this value was measured after 10 days of aging.</td>
[0034] Examples and comparative film were tested for wetting tension and adhesion to aqueous inks and ultraviolet inks, since both ink systems are widely used in the industry and ordinary BOPP films exhibit insufficient adhesion with respect to these ink systems.
Table 4
Ink adhesion test results (ink adhesion: 1-5, with "5" being the best)
<td rowspan="2">Foil type</td><td colspan="2">WB FLEXO INK</td><td>UV FLEXO</td><td>[NK</td>
<td>Immediately</td><td>After 24 hours</td><td>Immediately</td><td>After 24 hours</td>
<td>Examples 1, 2 and 6</td><td>5</td><td>5</td><td>1</td><td>1</td>
<td>Example 3</td><td>4</td><td>5</td><td>1</td><td>2</td>
<td>Example 4</td><td>4</td><td>5</td><td>1</td><td>1</td>
<td>Example 5</td><td>4</td><td>5</td><td>1</td><td>1</td>
<td>Comparative foil</td><td>2</td><td>3</td><td>0</td><td>0</td>
<td rowspan="2">Foil type</td><td colspan="2">UV OFFSET INK</td><td colspan="2">UV LETTERPRESS INK</td>
<td>Immediately</td><td>After 24 hours</td><td>Immediately</td><td>After 24 hours</td>
<td>Examples 1, 2 and 6</td><td>4</td><td>4.5</td><td>3</td><td>3.5</td>
<td>Example 3</td><td>3</td><td>4</td><td>2</td><td>2.5</td>
<td>Example 4</td><td>4</td><td>4</td><td>3</td><td>3</td>
<td>Example 5</td><td>3</td><td>3.5</td><td>2</td><td>3</td>
<td>Comparative foil</td><td>1</td><td>3</td><td>1</td><td>1,5</td>
[0035] Another aspect of the invention is the use of various combinations of organic and inorganic additives to allow the production of different types of bi-directional oriented and coated single- or multilayer polypropylene films, such as transparent non-sealable, transparent non-sealable for labels, white cavitated non-sealable, white weldable cavitated etc. . using the above-described improved version of the technology for the production and processing of single or multilayer thin film coated and antistatic films, including chemical modification of the film surface by in-line coating.
[0036] The advantages of the maleic antistatic films disclosed in this invention and the technology of their manufacture and processing are:
(1) the complex structure of macrocomplexes with a higher positive charge content in macromolecules provides excellent anti-electrostatic properties during long operation in combination with other important film properties, such as slippery, facilitating mold and mold separation, improved wetting voltage, cold bonding adhesion and adhesion to different types of glues etc .;
(2) all disclosed components of functional polymers in coated compositions refer to a class of water-soluble bioengineered polymeric systems, whereby the technology of film production and processing is an ecological chemical technology;
(3) improved coating processing technology allows the use of this method to produce a wide range of monolayer or multilayer bi-oriented polyolefin films and their laminates with various polar thermoplastic and thermosetting polymers, (4) the possibility of expanding the range of conventional applications. The disclosed films are also suitable for special applications as a new generation of anti-bacterial and anti-fog films due to the high positive charge of the film surface.
[0037] The maleic anti-electrostatic film coated in-line system developed in the invention may be antimicrobial or antifog or biocidal or degradable or biodegradable or low SIT or a combination of these features.
[0038] The developed maleic anti-electrostatic coated in-line film may be a single-layer bi-oriented polypropylene (BOPP) film comprising: one layer of polypropylene or a mixture of polypropylene with a poly (ethylene-co-propylene) copolymer or poly (ethylene-co-copolymer) propylene-co-butylene) and one thin surface antistatic layer applied in-line.
Contents3
2 sheets
Sheet 1 Sheet 2
8 members in 4 offices
Priority claims5
| Document | Office | Kind | Date |
|---|---|---|---|
| 07835595 | European Patent Office (EPO) | A | |
| 2007000083 | Türkiye | W | |
| 078355955 | – | – | – |
| EP20070835595 | – | – | – |
| WO2007TR00083 | – | – | – |
Members8
| Document | Office | Kind | |
|---|---|---|---|
| WO2009029058A1 | World Intellectual Property Organization (WIPO) | A1 | |
| EP2237952A1 | European Patent Office (EPO) | A1 | |
| EP2237952B1 | European Patent Office (EPO) | B1 | |
| ES2396867T3 | Spain | T3 | |
| PL2237952T3 | Poland | T3 | |
| EP2237952B2 | European Patent Office (EPO) | B2 | |
| ES2396867T5 | Spain | T5 | |
| PL2237952T5This record | Poland | T5 |
Numbers
- Publication
- 2237952
- Publication, DOCDB
- 2237952
- Publication, EPODOC
- PL2237952T
- Application
- 7835595
- Application, DOCDB
- 07835595
- Application, EPODOC
- PL20070835595T
Titles2
- English
- IN-LINE COATED BIAXIALLY ORIENTATED POLYPROPYLENE BASED ANTISTATIC MULTILAYER FILMS
- Polish
- Powlekane w ukladzie in-line dwukierunkowo zorientowane polipropylenowe antyelektrostatyczne folie wielowarstwowe
Classification
- CPC, 13
- B32B27/32
- B29C59/10
- B32B27/08
- B32B2255/10
- B32B2255/26
- B32B2307/518
- B32B2307/7145
- B32B2307/7163
- B32B2439/70
- C08J7/0427
- C08J2323/08
- C08J2323/16
- C08J2433/06