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By combining polyolefin polymers with compatible aqueous adhesives, laminated films can be recycled efficiently, maintaining performance in recycled articles and reducing environmental waste.

JP7812859B2Active Publication Date: 2026-02-10DOW GLOBAL TECHNOLOGIES LLC +1
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Patent Information

Application Number
JP2023533958
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-08
Filing Date
2021-11-09
Publication Date
2026-02-10
Estimated Expiration
2041-11-09

AI Technical Summary

Technical Problem

Existing laminated film structures containing recyclable and non-recyclable materials face inefficiencies in recycling due to incompatible adhesives, leading to poor performance in recycled materials and complex separation processes.

Method used

A combination of polyolefin polymers and aqueous laminating adhesive compositions that are compatible and recyclable, allowing for direct reprocessing of laminated films without separating layers, maintaining performance characteristics in recycled articles.

Benefits of technology

The solution enables recyclable laminated films to be reprocessed with minimal performance degradation, producing new films with properties similar to the original, thus reducing waste and simplifying recycling processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

An article having recyclable properties comprising a combination of (a) at least one polyolefin polymer and (b) an aqueous adhesive composition having recyclable properties, the recyclable properties of the aqueous adhesive composition being such that when an article having the aqueous adhesive composition is reprocessed, the article having the aqueous adhesive composition exhibits a reduced change in performance of less than 40% compared to a control article not having the aqueous adhesive composition, which is reprocessed in the same manner as the article having the aqueous adhesive composition; a recyclable laminate structure comprising (a) at least one first polymeric film layer and (β) at least one layer of said aqueous laminating adhesive composition; and a process for producing said recyclable laminate structure.
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Description

[Technical Field]

[0001] The present invention relates to an article, and more particularly, the present invention relates to an article comprising a combination of a polyolefin polymer and an aqueous laminating adhesive composition having recyclable properties. [Background technology]

[0002] The use of plastic products, such as packaging materials for the packaging industry, has increased significantly worldwide. Unfortunately, the increased demand for plastic products has led to a significant increase in plastic waste, as the plastic products are discarded by consumers after use, and plastic waste has a negative impact on the environment in many countries around the world. In order to alleviate or reduce the plastic waste problem, manufacturers have attempted to create plastic products that can be recycled and reprocessed into other subsequent plastic products after the original plastic product has been used for its intended purpose. However, the development of plastic products made entirely from recyclable materials has met with limited success.

[0003] Typically, plastic products, such as laminated film structures, are composite structures made from a combination of various different materials, some of which are recyclable and some of which are not. For example, International Publication No. 201927527 discloses a recyclable laminated film structure made entirely of recyclable materials, such as polyethylene. However, the laminated film structure of International Publication No. 201927527 also utilizes a barrier adhesive, and the barrier adhesive of International Publication No. 201927527 is not disclosed as being recyclable or having recycling properties. Thus, although International Publication No. 201927527 discloses that the laminated film structure itself is considered recyclable, it does not disclose that the barrier adhesive has recycling properties or that the barrier adhesive meets the criteria for recyclability. It is well known that conventional adhesives used to bond two polymer film substrates together are usually incompatible with the polymer film substrates. Therefore, known film structures containing two incompatible component layers or incompatible adhesives cannot be recycled "as is" because the resulting recycled material will perform poorly in the process of manufacturing the next article from the recycled material. Furthermore, because the film substrate layer components are not compatible with each other, if such two-layer (or more) multi-component film structures containing different substrates and different adhesives are desired to be recycled by a converter, the converter must separate the layers from each other before recycling the layers / adhesives, which makes the recycling process complicated, inefficient, and expensive.

[0004] It is therefore desirable to provide a first plastic article comprising a combination of (1) at least one polyolefin polymer and (2) an aqueous laminating adhesive composition that has recyclable properties and is compatible with the polyolefin polymer, so that the first article can be reprocessed (recycled) after its original use to form a subsequent second plastic product that has sufficient performance characteristics to be useful as a second plastic article for a variety of applications, thereby avoiding environmentally friendly disposal of the first plastic article and contributing to global plastic waste. Summary of the Invention

[0005] The present invention is directed to an article comprising a combination of (a) at least one polyolefin polymer, such as a polymer in the form of a film, and (b) an aqueous adhesive composition having recyclable properties. In some embodiments, the recyclable properties of the aqueous adhesive composition are determined by reprocessing (recycling) the article with the aqueous adhesive composition to form a reprocessed (recycled) article, and then measuring the properties of the recycled article made from the original article with the aqueous adhesive composition against a control article without the aqueous adhesive composition that is reprocessed in the same manner as the recycled article. The original article of the present invention has recyclable properties if the recycled article made from the original article with the aqueous adhesive composition shows a decrease in property change of less than 40 percent (<) compared to the control article.

[0006] In some embodiments, the invention includes a first article, such as a pellet, a monolayer or multilayer film, a monolayer or multilayer laminate, a packaging material, a molded product, or the like.

[0007] In some embodiments, the present invention includes a subsequent second article made from any one of the first articles described above. In some embodiments, the second article can include, for example, plastic composites, molded articles, laminated structures, industrial films such as shrink films, stretch wrap films, and agricultural films.

[0008] In some embodiments, the present invention comprises a process for producing a first article having recyclable properties, comprising contacting together (a) at least one polyolefin polymer and (b) an aqueous adhesive composition having recyclable properties.

[0009] Advantageously, first articles made incorporating the aqueous adhesive composition can be recycled in accordance with current recyclability guidelines for the packaging industry. For example, utilizing the aqueous laminating adhesive composition of the present invention, which is an acrylic system, in combination with a polymer film structure, such as a 2.25 grams per square meter (gsm) all-polyethylene (PE) high-density polyethylene (HDPE) film, provides a film structure that can be reprocessed to produce new monolayer films with properties that exhibit a reduced change in performance of less than 30% relative to a control film reprocessed in the same way without the addition of any adhesive. For example, a laminate structure made using an aqueous adhesive allows a converter to (1) directly mechanically reprocess the laminate structure as a whole, without having to separate the materials that make up the laminate structure, and (2) produce new films from the reprocessed laminate structure, the new films having a full desirable performance range. DETAILED DESCRIPTION OF THE INVENTION

[0010] Unless stated to the contrary, implied from the context, or customary in the art, all parts and percentages are by weight, all temperatures are in degrees Celsius (°C), and all test methods are current as of the filing date of this disclosure.

[0011] The term "recyclable" or "recyclability" herein, with respect to a first article having an adhesive, refers to mechanical recyclability or recyclability, meaning that the first article having an adhesive can be mechanically reprocessed to produce a second article having a desired performance range, where the second article has a reduced change in performance of at least <40% relative to the performance of a control article that does not have the adhesive and is reprocessed in the same manner as the second article. Examples of test methods and guidelines for determining the recyclability of plastic articles can be found, but are not limited to, in the publication "Benchmark Polyethylene Film and Flexible Packaging Innovation Test Protocol, Film-B-01" (2018) and the publication "PE Film Standard Laboratory Processing Practices," Document No. FPE-P-00 (2020) of the Association of Plastic Recyclers (APR).

[0012] As used herein, the term "composition" refers to the mixture of materials that make up the composition, as well as reaction products and decomposition products formed from the materials of the composition.

[0013] "Polymer" refers to a polymeric compound prepared by polymerizing monomers, whether of the same or different types. Thus, the generic term polymer encompasses the term homopolymer (used to refer to a polymer prepared from only one type of monomer, with the understanding that trace amounts of impurities may be incorporated into the polymer structure) and the term interpolymer, as defined herein below. Trace amounts of impurities (e.g., catalyst residues) may be incorporated into and / or within the polymer. The polymer may be a single polymer, a polymer blend, or a polymer mixture, including a mixture of polymers formed in situ during polymerization.

[0014] As used herein, the term "interpolymer" refers to a polymer prepared by the polymerization of at least two different types of monomers. Thus, the generic term interpolymer includes copolymers (used to refer to polymers prepared from two different types of monomers) and polymers prepared from more than two different types of monomers.

[0015] As used herein, the terms "olefin-based polymer" or "polyolefin" refer to a polymer that comprises, in polymerized form, a majority amount (based on the weight of the polymer) of an olefin monomer, e.g., ethylene or propylene, and may optionally include one or more comonomers.

[0016] As used herein, the term "ethylene / α-olefin interpolymer" refers to an interpolymer that, in polymerized form, contains a majority amount (greater than 50 mole percent [mol %]) of units derived from ethylene monomer, with the balance being units derived from one or more α-olefins. Typical α-olefins used to form ethylene / α-olefin interpolymers are C3 to C6 10 It is an alkene.

[0017] As used herein, the term "ethylene / α-olefin copolymer" refers to a copolymer that contains, in polymerized form, a majority amount (greater than 50 mol %) of ethylene monomer and an α-olefin as the only two types of monomers.

[0018] As used herein, the term "α-olefin" refers to an alkene with a double bond in the 1 or alpha (α) position.

[0019] "Polyethylene (PE)" or "ethylene-based polymer" means a polymer containing a majority amount (greater than 50 mol%) of units derived from ethylene monomers. This includes polyethylene homopolymer, ethylene / α-olefin interpolymer, and ethylene / α-olefin copolymer. Common forms of polyethylene known in the art include low-density polyethylene (LDPE), linear low-density polyethylene (LLDPE), very low-density polyethylene (ULDPE), very low-density polyethylene (VLDPE), medium-density polyethylene (MDPE), high-density polyethylene (HDPE), reinforced polyethylene, polyethylene elastomer, and polyethylene plastomer. These PE materials are generally known in the art. However, the following description may be helpful in understanding the differences between some of these different PE resins.

[0020] The term "LDPE," sometimes also referred to as "high pressure ethylene polymer" or "highly branched polyethylene," is defined to mean that the polymer is partially or fully homopolymerized or copolymerized in an autoclave or tubular reactor at pressures greater than 14,500 pounds per square inch (psi) (100 megapascals [MPa]) using a free radical initiator such as peroxide (see, e.g., U.S. Pat. Nos. 8,916,667, 8,871,887, 8,822,601, 9,228,036, and 9,765,160). LDPE resins typically have a viscosity of 0.916 grams per cubic centimeter (g / cm). 3 )~0.935g / cm 3 It has a density in the range of

[0021] The term "LLDPE" includes both resins made using traditional Ziegler-Natta and chromium-based catalyst systems, as well as single-site catalysts, including, but not limited to, bis-metallocene catalysts (sometimes referred to as "m-LLDPE"), constrained geometry catalysts (CGC), and molecular catalysts. Resins include linear, substantially linear, or heterogeneous polyethylene copolymers or homopolymers. LLDPE contains less long chain branching than LDPE and includes substantially linear ethylene polymers as further defined in U.S. Patent Nos. 5,272,236, 5,278,272, 5,582,923, and 5,733,155, homogeneously branched linear ethylene polymer compositions such as those described in U.S. Patent No. 3,645,992, heterogeneously branched ethylene polymers such as those prepared according to the process disclosed in U.S. Patent No. 4,076,698, and blends thereof (such as those disclosed in U.S. Patent No. 3,914,342 or U.S. Patent No. 5,854,045). LLDPE can be made via gas phase, liquid phase, or slurry polymerization, or any combination thereof, using any type of reactor or reactor configuration known in the art.

[0022] The term "MDPE" means 0.926 g / cm 3 ~0.940g / cm 3 "MDPE" refers to polyethylene having a density of 1000 MPa (1200 MPa). "MDPE" is typically made using chromium or Ziegler-Natta catalysts, or single-site catalysts, including but not limited to bis-metallocene catalysts, constrained geometry catalysts, and molecular weight catalysts, and typically has a molecular weight distribution ("MWD") of >2.5.

[0023] The term "HDPE" refers to polyethylene with a viscosity of 0.940 g / cm, typically prepared using a single-site catalyst, including but not limited to Ziegler-Natta, chromium, or bis-metallocene and constrained geometry catalysts. 3 Ultra-high and maximum 0.970g / cm 3 It refers to polyethylene having a density of

[0024] The term "ULDPE" refers to polymers with a viscosity of 0.880 g / cm, typically prepared using a single-site catalyst, including but not limited to Ziegler-Natta, chromium, or bis-metallocene and constrained geometry catalysts. 3 ~0.912g / cm 3 It refers to polyethylene having a density of

[0025] "Polyethylene plastomer / elastomer" refers to a polymer that contains units derived from ethylene and at least one C3-C 10 A substantially linear or linear ethylene / α-olefin copolymer containing a uniform distribution of short chain branches comprising units derived from an α-olefin comonomer, or at least one C4-C8 α-olefin comonomer, or at least one C6-C8 α-olefin comonomer. The polyethylene plastomer / elastomer has a molecular weight of 0.870 g / cm. 3 , or 0.880 g / cm 3 , or 0.890 g / cm 3 ~0.900g / cm 3 , or 0.902 g / cm 3 , or 0.904 g / cm 3 , or 0.909 g / cm 3 , or 0.910 g / cm 3 , or 0.917 g / cm 3Non-limiting examples of polyethylene plastomers / elastomers include AFFINITY™ plastomers and elastomers (available from Dow Chemical Company), EXACT plastomers (available from ExxonMobil Chemical), TAFMER™ (available from Mitsui Chemicals), NEXLENE™ (available from SK Chemicals Co.), and LUCENE™ (available from LG Chemical Ltd.), and mixtures thereof.

[0026] "Blend," "polymer blend," and like terms refer to a composition of two or more polymers. Such blends may or may not be miscible. Such blends may or may not be phase separated. Such blends may or may not contain one or more domain configurations as determined from transmission electron spectroscopy, light scattering, X-ray scattering, and any other method known in the art. A blend is not a laminate, although one or more layers of a laminate may contain the blend. Such blends may be prepared as dry blends or may be formed in situ (e.g., in a reactor), as melt blends, or using other techniques known to those skilled in the art.

[0027] "Adhesive contact" and like terms mean that one opposing surface of one layer and one opposing surface of another layer are touching and in bonding contact with each other such that one layer cannot be removed from the other without damaging the interlaminar surfaces (i.e., the contacting facial surfaces) of both layers.

[0028] The terms "comprising," "including," "having," and their derivatives are not intended to exclude the presence of any additional component, step, or procedure, whether or not it is specifically disclosed. For the avoidance of doubt, all compositions claimed through the use of the term "comprising" may include any additional additive, adjuvant, or compound, whether polymeric or otherwise, unless otherwise stated to the contrary. In contrast, the term "consisting essentially of" excludes from the scope of any subsequent description any other component, step, or procedure, except those that are not essential to operability. The term "consisting of" excludes any component, step, or procedure not specifically delineated or listed.

[0029] It is an object of the present invention to produce a first article from original components for use in a first application, and then, after the first article has been used, reprocess the used first article as a whole (i.e., the used first article can be subjected to, for example, a recycling process) to form a second article directly from the reprocessed first article, which can then be used in a separate, subsequent second application.

[0030] The first article comprises a combination of (a) at least one polyolefin polymer and (b) an aqueous adhesive composition. Surprisingly, it has been discovered that the aqueous adhesive composition used in the first article has recyclability properties imparted to the first article, such that in some embodiments, the first article is recyclable and can be used to manufacture second articles for a variety of other uses.

[0031] In some non-limiting embodiments, the first article of the present invention can include, for example, one or more of the following articles: pellets, films such as monolayer or multilayer films, multilayer laminates, packaging products, etc. In some non-limiting embodiments, the second article of the present invention can also include, for example, one or more of the following articles: pellets, films such as monolayer or multilayer films, multilayer laminates, packaging products, etc.

[0032] The polyolefin polymer, component (a), useful for making the first article of the present invention can comprise one or more polyolefins. The first article can be, for example, a polyolefin film. Generally, the polymer portion of the film is composed of at least 80% polyolefin polymer in one embodiment, at least 85% polyolefin polymer in another embodiment, and at least 90% polyolefin polymer in yet another embodiment. In one embodiment, the polyolefin polymer is at least one PE polymer. For example, the PE polymer can comprise one or more of HDPE, LDPE, LLDPE, and mixtures thereof. The polyolefin film can be a monolayer or multilayer film and can be a stretched film stretched by machine direction orientation (MDO) or biaxial stretching processes. In another preferred embodiment, the polyolefin is polypropylene (PP), oriented PP (OPP), biaxially oriented PP (BOPP), and mixtures thereof. The non-polyolefin portion of the film may be composed of a polymer such as poly(vinyl alcohol) (EVOH) or polyamide (e.g., nylon), a functionalized tie layer polymer, and a compatibilizer such as those described in US Pat. No. 10,300,686.

[0033] The aqueous adhesive composition, component (b), useful for making the first article of the present invention can comprise one or more aqueous adhesive compositions having the recyclability characteristics as defined above. The aqueous adhesive composition is such that when the first article having the aqueous adhesive composition is reprocessed (recycled), the first article having the aqueous adhesive composition exhibits a reduced change in performance of less than 40% compared to a control first article not having the aqueous adhesive composition. Both the first article and the control first article are reprocessed and tested in the same manner to determine their respective recyclability characteristics.

[0034] As noted above, the present invention can include a wide variety of first articles, such as films, laminates, or packages. Thus, merely by way of illustration of the present invention and not by way of limitation, the present invention is described herein with reference to preferred embodiments that are single-layer or multi-layer laminate structures, more particularly multi-layer laminate structures. However, it will be understood by those skilled in the art that many other articles can include first articles other than laminates, and the present invention is not limited thereto.

[0035] In some embodiments, the invention includes, for example, multi-layer laminate structures. In other embodiments, the invention includes adhesive lamination processes for producing multi-layer laminate structures, and in yet other embodiments, the invention is directed to packaging articles made using the multi-layer laminate structures.

[0036] In one broad embodiment, the present invention includes a multilayer laminate structure as a first article that can be used to produce a laminated packaging material, which can then be recycled at the point of sale for further processing. The multilayer laminate includes a combination of at least two polyolefin layer substrates bonded together by a layer of the above-described aqueous adhesive composition. For example, the multilayer laminate structure includes (i) at least a first polymeric film web, such as a polyethylene (PE) film; (ii) at least a second polymeric film web, which may be the same PE film as the first layer or a different material; and (iii) a layer of an aqueous acrylic laminating adhesive composition having the above-described recyclability properties for bonding the first and second polyolefin film webs together, wherein the layer of the aqueous laminating adhesive composition is compatible with the first and second film layers and is disposed on a surface of at least one of the first and second film layers to bond the first and second film layers together. If desired, one or more other optional film layer substrates can be added to the above laminate structure with adhesive added between multiple layers to produce a multi-layer laminate structure containing more than two layers.

[0037] The first polyolefin film web, component (i), used to prepare the multi-layer laminate of the present invention can comprise one or more polyolefins. For example, the first polyolefin web can comprise one or more polyolefin layers such as HDPE, LDPE, LLDPE, MDO PE, BOPE, and mixtures thereof.

[0038] In one preferred embodiment, the polyolefin film web may comprise an oriented monolayer or multilayer PE film made using either a machine direction or biaxial stretching process that is adhered to a second layer.

[0039] In another preferred embodiment, the polyolefin film web may be a multilayer film comprising one or more layers of HDPE, LLDPE, and LDPE.

[0040] In yet another preferred embodiment, the polyolefin film web can be a PP film web or a BOPP film web.

[0041] In yet another preferred embodiment, the polyolefin film web is composed of at least 80% polyolefin polymer in one embodiment, at least 85% polyolefin polymer in another embodiment, and 90% polyolefin polymer in yet another embodiment, In this embodiment, non-polyolefin polymers such as EVOH and polyamides, as well as functional tie layers and compatibilizers, as described in U.S. Patent No. 10,300,686, may be used.

[0042] The thickness of the first polyolefin film web used to form the recyclable laminate of the present invention can be, for example, 10 microns (μm) to 150 μm in one embodiment, 15 μm to 100 μm in another embodiment, and 20 μm to 50 μm in yet another embodiment.

[0043] The second polyolefin film web, component (ii), used to prepare the laminate of the present invention can comprise one or more polyolefins, which can be the same or different from the first polyolefin film web. For example, the second polyolefin film web can comprise one or more polyolefin films, such as LDPE, LLDPE, and mixtures thereof.

[0044] In one preferred embodiment, the second polyolefin film web may comprise, for example, a polyethylene film web adhered to the first web via an adhesive.

[0045] In another preferred embodiment, the second film web is a multi-layer structure including one or more layers of HDPE, LLDPE, and LDPE as described in US Pat. No. 9,421,743.

[0046] In yet another preferred embodiment, the second film web is a multi-layer structure in which one layer is an EVOH or nylon layer and a functional tie layer and compatibilizer as described in U.S. Pat. No. 10,200,686.

[0047] In yet another preferred embodiment, the second film web has a metallized layer laminated to the first film web.

[0048] In yet another preferred embodiment, the second film web outer layer has a seal initiation temperature in the range of 75°C to 120°C.

[0049] The thickness of the second polyolefin film layer used to form the recyclable laminate of the present invention can be, for example, 10 μm to 150 μm in one embodiment, 15 μm to 100 μm in another embodiment, and 20 μm to 50 μm in yet another embodiment.

[0050] The layer of laminating adhesive composition, component (iii), used to bond the first and second layers, components (i) and (ii), respectively, is a laminating adhesive that was previously used to adhere the first and second layers together and that can be advantageously recycled after forming a cured laminate structure. When an article, such as a packaging article, is manufactured from a laminate structure containing the laminating adhesive composition, the laminating adhesive composition imparts acceptable recyclability to the packaging article made from the recyclable laminate structure, allowing the packaging article to be recycled after use.

[0051] Aqueous laminating adhesive compositions useful in the present invention include acrylic materials, such as acrylic emulsions made from acrylic monomers such as ethyl acrylate, methyl methacrylate, butyl acrylate, acrylic acid, and methacrylic acid, mixed with polypropylene glycol and cured with an isocyanate. In one preferred embodiment, the adhesive can include, for example, acrylates, isocyanates, polyesters, and mixtures thereof. The adhesives of the present invention are useful in products such as fresh and frozen foods, general snack packaging, and the like.

[0052] The thickness / adhesive weight of the adhesive layer used to bond the first and second film webs and form the multi-layer laminate structure of the present invention can be, for example, in one typical embodiment, 2 μm to 5 μm. Any adhesive weight below 2 μm or above 5 μm can cause adhesion problems and result in breakage during the remainder of the conversion process.

[0053] The adhesive coating weight of the adhesive layer can range from 1.62 gsm up to 6 gsm in one typical embodiment. Any adhesive weight below 1.62 gsm or above 6 gsm can cause adhesion issues, resulting in breakage during the remainder of the converting process.

[0054] The adhesion value or bond strength of the adhesive after 60 minutes (min) of lamination can depend on the polyolefin film layers in the laminate structure. For example, a laminate with a PE layer may have a bond strength of greater than 50 grams per 15 millimeters (g / 15 mm) in one embodiment, greater than 150 g / 15 mm in another embodiment, greater than 500 g / 15 mm in yet another embodiment, and greater than 1,000 g / 15 mm in yet another embodiment, with a film tear failure mode. In one preferred embodiment, the bond strength of the adhesive of the present invention is, for example, from 50 g / 15 mm to 2,000 g / 15 mm.

[0055] The adhesives useful in the present invention have several other beneficial properties compared to other known lamination adhesives, for example, the adhesives have superior performance in terms of clarity and runnability on lamination equipment.

[0056] In addition to the component layers (i) to (iii), the laminate structure of the present invention can include another optional layered substrate, component (iv). For example, if desired, a substrate such as EVOH, PVDC, OPA, and mixtures thereof can be laminated (adhered) to the first and second layers.

[0057] In one general embodiment, the multilayer laminate of the present invention comprises, for example, (I) providing (i) a first film substrate, (ii) a second textile fabric substrate, and (iii) an adhesive composition as described above; (II) applying the adhesive composition to at least a portion of a surface of a first or second substrate (also known as a "carrier web") to form an adhesive layer on the surface of the first or second film substrate; (III) combining the first and second film substrates together with the adhesive layer by contacting the adhesive-coated film substrate with each of the first and second film substrates together with the adhesive sufficiently to form a laminate layer disposed between the first and second substrates; (IV) In the structure of step (III), the adhesive composition is cured, for example at room temperature (about [to] 25°C) or at an elevated temperature, to bond the two film substrates together to form a multilayer laminate.

[0058] Application of the adhesive composition can be carried out by conventional means known in the art for applying adhesive compositions or formulations to film substrates. For example, the adhesive composition can be applied using conventional lamination equipment and processes, including applying the adhesive using a rotogravure lamination equipment with oven drying capabilities.

[0059] In addition to the recyclability imparted to the multilayer laminates produced according to the above processes, other advantageous properties exhibited by the resulting multilayer laminates can include, for example, laminates having substantially no haze. For example, MDO PE and BOPE films can have turbidity values ​​of less than 8%, while standard blown films are typically greater than 8%. In one embodiment, the multilayer laminates of the present invention generally have turbidity values ​​of 6% to 50%. In another embodiment, the multilayer laminates generally have turbidity values ​​of 10% to 40%.

[0060] In general, the laminates of the present invention can be used in a wide range of applications, including packaging, before recycling, for producing various packaging materials and products. For example, the laminates can be used in bulk packaging of food grains / legumes, seed packaging, lentil and cereal packaging, fertilizer packaging, oilseed packaging, sugar packaging, salt packaging, pharmaceutical packaging, other food packaging, and personal care products such as bath salts and detergent pods. The films can also be used as packaging for wipes, feminine hygiene products, cereal bars, protein bars, cheese, and confectionery products. When used for heavy-duty packaging of food grains / legumes, the packaged articles show no signs of tunneling / delamination / deformation in the laminate after the adhesive has cured for 24 hours (hr). Other advantageous features and applications of recyclable laminates when used to package articles include, for example, resistance to harsh weather conditions, high tensile strength, robust drop test resistance, excellent optical appearance, and resistance to leakage. The recycled materials of the present invention can also be used to regenerate non-packaging materials.

[0061] One of the advantages of the present invention is that post-consumer virgin articles (first articles) made from laminates of the present invention can be reprocessed, i.e., processed through a recycling process. After recycling, recycled materials from the previous virgin article can be used to create subsequent recycled laminates and thus recycled articles (i.e., second articles) that have properties and performance very similar to those of the previous virgin article. One objective of the present invention is to produce a second article that performs similarly to or better than the first article, i.e., the properties of the second article perform 100% as well as or better than those of the first article. At a minimum, the properties of the second article are maintained at a performance level sufficient to provide the second article useful for another application.

[0062] For example, a new monolayer film structure (second article) made using recycled materials from a recycled article (first article) can have properties that show a reduced change in performance of <40% relative to a control film without any added adhesive that is reprocessed in the same manner as the virgin article. In some embodiments, the new monolayer film structure (second article) can show a reduced change in performance of <40% in one embodiment, <30% in one embodiment, In other embodiments, the novel monolayer film structures may be characterized by a degradation change in performance of <25%, and in yet other embodiments, <15%. In some embodiments, the novel monolayer film structures may be characterized by a degradation change in performance ranging from 0% to <40% in one embodiment, from 0.01% to <40% in another embodiment, and from 0.1% to <40% in yet other embodiments. In some embodiments, the novel monolayer film structures may be characterized by a degradation change in performance ranging from 0% to <25% in one embodiment, from 0.01% to <25% in another embodiment, and from 0.1% to <25% in yet other embodiments. In some embodiments, the novel monolayer film structures may be characterized by a degradation change in performance ranging from 0% to <10% in one embodiment, from 0.01% to <10% in another embodiment, and from 0.1% to <10% in yet other embodiments.

[0063] In a typical embodiment, for example, a process for producing a reprocessed second article from a first packaging article (i.e., a virgin item) includes the steps of: (A) providing a first packaging article made from a laminate of the present invention; (B) fragmenting the packaging article from step (A) to produce a plurality of pieces of a predetermined size; (C) pelletizing the plurality of pieces from step (B) to form a plurality of pellets of a predetermined size; and (D) treating the pellets from step (C) to form the reprocessed second article.

[0064] In some embodiments, a third article can be generated from a reprocessed second article made by the general process described above. For example, the third article can be selected from the group consisting of pellets, monolayer or multilayer films, multilayer laminates, and packaging materials or products. The present specification includes the following aspects. Section 1: A first article having a recycling characteristic, (a) at least one polyolefin polymer; (b) an aqueous adhesive composition having recyclability characteristics, wherein the recyclability characteristics of the aqueous adhesive composition are such that when the article having the aqueous adhesive composition is reprocessed, the article having the aqueous adhesive composition exhibits a reduced change in performance of less than 40 percent compared to a control article without the aqueous adhesive composition that is reprocessed in the same manner as the article having the aqueous adhesive composition. Section 2: Item 1, wherein the polyolefin polymer is polyethylene. Section 3: Item 1. The article according to item 1, wherein the aqueous laminating adhesive composition is an acrylic adhesive composition. Section 4: Item 4. The article of item 3, wherein the water-based acrylic adhesive comprises a water-dispersible acrylate crosslinker, an isocyanate crosslinker, and mixtures thereof. Section 5: Item 1, wherein the first article is selected from the group consisting of a monolayer or multilayer film, a multilayer laminate, and a packaging material or product. Item 6: A second article made from any one of the first articles described in paragraph 5. Section 7: Item 7. The second article according to item 6, wherein the second article is selected from the group consisting of pellets, single-layer or multi-layer films, multi-layer laminates, and packaging materials or products. Section 8: 1. A process for producing an article having recycled properties, comprising: (a) at least one polyolefin polymer; (b) an aqueous adhesive composition having recyclability characteristics such that when the article having the aqueous adhesive composition is reprocessed, the article having the aqueous adhesive composition exhibits a reduced change in performance of less than 40 percent compared to a control article without the aqueous adhesive composition that is reprocessed in the same manner as the article having the aqueous adhesive composition. Section 9: 1. A film structure having recyclable properties, comprising: (α) at ​​least one first polymer film layer; (β) at least one layer of an aqueous adhesive composition having recyclability characteristics, the recyclability characteristics of the aqueous adhesive composition being such that when the article having the aqueous adhesive composition is reprocessed, the article having the aqueous adhesive composition exhibits a reduced change in performance of less than 40 percent compared to a control article without the aqueous adhesive composition, which is reprocessed in the same manner as the article having the aqueous adhesive composition, wherein the aqueous laminating adhesive composition is compatible with the at least first polymeric film layer, and the aqueous laminating adhesive composition is disposed on a surface of the at least one first polymeric film layer. Section 10: A multi-layer laminate structure having recyclable properties, comprising: (i) at least one first polymeric film layer; (ii) at least one second polymeric film layer; and and (iii) at least one layer of an aqueous laminating adhesive composition having recyclability characteristics, the recyclability characteristics of the aqueous adhesive composition being such that when the article having the aqueous adhesive composition is reprocessed, the article having the aqueous adhesive composition exhibits a reduced change in performance of less than 30 percent compared to a control article without the aqueous adhesive composition, reprocessed in the same manner as the article having the aqueous adhesive composition, wherein the aqueous laminating adhesive composition is compatible with the first and second film layers, and the layer of the aqueous laminating adhesive composition is disposed on a surface of at least one of the first film layer and the second film layer to bond the first film layer and the second film layer together. Section 11: 1. A process for producing a multi-layer laminate structure, comprising: (I) providing (i) at least one first polymeric substrate film layer, (ii) at least one second polymeric substrate film layer, and (iii) at least one layer of an aqueous laminating adhesive composition compatible with the first and second substrate film layers for adhering the first film layer to the second film layer, wherein the adhesive composition has recyclability characteristics such that when an article having the adhesive composition is reprocessed, the article having the adhesive composition exhibits a reduced change in performance of less than 30 percent compared to a control article without the adhesive composition, the control article being reprocessed in the same manner as the article having the adhesive composition; (II) applying the aqueous laminating adhesive composition from step (I) to at least a portion of a surface of at least one of the first and second substrate layers of step (I) to form a layer of the adhesive composition layer disposed between the first film layer and the second film layer to bond the first film layer and the second film layer together; (III) combining the first and second substrate film layers together with the adhesive layer sufficiently to form a multi-layer laminate structure; (IV) curing the multi-layer laminate structure of step (III) to form a cured laminate. Section 12: Item 12. A packaging article made from the multilayer laminate structure according to item 11. Section 13: Item 13. A process for producing a reprocessed second article from the packaging article of item 12, comprising: (A) Providing a packaged article according to paragraph 12; (B) fragmenting the packaged article from step (A) to generate a plurality of fragments of a predetermined size; (C) pelletizing the plurality of pieces from step (B) to form a plurality of pellets of a predetermined size; (D) treating the pellets from step (C) to form a reprocessed second article. Section 14: Item 14. A third article produced from the reworked second article, made by the process described in item 13. Section 15: Item 15. The third article according to item 14, wherein the third article is selected from the group consisting of pellets, single-layer or multi-layer films, multi-layer laminates, and packaging materials or products. [Example]

[0065] The following examples are presented to further illustrate the invention, but should not be construed as limiting the scope of the claims. Unless otherwise indicated, all parts and percentages are by weight.

[0066] The various materials used in the inventive examples (Inv. Ex.) and comparative examples (Comp. Ex.) are set forth below in Table I.

[0067] [Table 1]

[0068] General Procedure for Film Formation The sealant web film described in Table II, Sealant Web Film Structure, and the printed web film described in Table III, Printed Web Film Structure, were produced having seven layers, with the compositions of each of the seven layers being listed in Tables II and III, respectively. The films were produced using the following general process. Each film was made on a seven-layer blown film line (available from Hosokawa-Alpine). The line utilizes seven 50 millimeter (mm) diameter, 30 L / D extruders feeding a 250 mm diameter spiral mandrel die with a 2 mm die gap. The output rate was 148 kilograms per hour (kg / hr), and the melt temperature ranged from approximately 185°C to 245°C. A 2.5 blow-up ratio was used when blowing the films, and the films were cooled with a single-lip air ring and internal bubble cooling. The line speed was approximately 17 meters per minute (m / min), and the films were corona treated to an average surface energy of 43 dynes per centimeter.

[0069] [Table 2]

[0070] [Table 3]

[0071] After producing two separate rolls of the above two films (sealant web film and print web film), the first set of two films is laminated with the aqueous adhesive composition of the present invention and the second set of two films is laminated with a conventional polyurethane laminating adhesive using the process "General Procedure for Film Lamination" described herein below.

[0072] Each of the resulting composite film laminates is reprocessed by chopping the film, pelletizing the film, extruding / compounding the pellets, and forming a second film from the compounded pellets from each of the first composite film laminates using the procedures described herein below.

[0073] The second film was then tested using the test procedures described below, and the results of the tests are listed in Tables VI and VII.

[0074] General Procedure for Film Lamination Lamination is accomplished using a Super-Combi 3000 series commercial laminator (available from Nordmeccanica). The laminator has a maximum film width of 1,320 mm and a minimum film width of 600 mm. Additionally, the laminator includes two modular coating decks: (1) an aqueous deck for aqueous lamination and (2) a gravure deck for aqueous and solvent-based adhesives / coatings. The laminator also includes a two-zone forced air dryer and a 7.5 kilowatt (KW) corona treater (available from Enercon Industries Corporation) for both the primary and secondary films. The laminator's maximum line speed is 400 meters per minute (m / min) (or 1,312 ft / min). All unwinding uses a 76 mm or 152 mm core, while rewinding uses only a 152 mm core. The laminator can run most packaging films, including polyester, oriented polypropylene, polyethylene, nylon, paper, and foil (secondary only). For purposes of this invention, the water-based laminating adhesive of the invention used in the examples was ROBOND™ L-90M / CR9-101 (available from The Dow Chemical Company), and the film and adhesive were run on the laminator utilizing the laminator's gravure deck at a target adhesive application of 2.4 gsm. Once lamination was complete, the roll of film was allowed to fully cure at room temperature for 7 days.

[0075] General Procedure for Film Shredding / Pelletizing Chopping and pelletizing is accomplished using an INTAREMA® 605K pelletizer unit (available from EREMA). The pelletizer barrel zone runs at 171°C and the pelletizer zone runs at 176°C.

[0076] General Procedure for Formulating Blend Ratios The pellets produced using the pelletizer are compounded using known standard equipment and procedures. For the films disclosed herein, the twin-screw extruder is a LabTech 26 mm twin-screw extruder, type LTE26-44 (Part II) (available from LabTech Engineering Company, LTD). The running parameters of the extruder are listed in Table IV.

[0077] [Table 4]

[0078] production line The blends were produced using six gravimetric feeders (available from Movacolor) connected by a vibrating tray feeding a 20 mm twin-screw extruder (available from LabTech Engineering Company LTD ["LabTech"]). Two mixing zones ensure a consistent composition at the extruder exit. Downstream of the extruder was a 3.0 cubic centimeter per revolution (cm 3The blown film die has a 1 / rev gear pump, which provides high, steady pressure to extrude the material through the die. A standard 5.08 centimeter (cm) (2 in) diameter cylindrical spiral mandrel die (LabTech) with six spiral channels and a 1.0 mm die gap was used. Pressurized air inflates the film bubble to a 2.5 blow-up ratio (BUR) to 4 BUR (BUR is defined as the maximum bubble diameter divided by the die diameter). A dual-lip air ring driven by a variable-speed blower (Labtech) is used for all experiments. The frost line height (FLH) can be varied from 127 mm to 330 mm and is controlled by changing the blower speed and air ring chimney. Film thickness is typically controlled within ±10% by adjusting the nip roller speed. The layflat is trimmed to a width of 150 mm (6 in) and wound into two rolls. Standard conditions and possible ranges of conditions are summarized in Table V.

[0079] [Table 5]

[0080] Film Testing The films prepared in the examples were tested for physical properties: dart, tear, secant modulus, and tensile. Tests were performed as described in the following ASTM test methods: ASTM D1709 was used to measure drop dart; ASTM D1922 was used to measure Elmendorf tear; ASTM D882 was used to measure secant modulus; ASTM D822 was used to measure tensile; and ASTM D1003 was used to measure turbidity.

[0081] Examples 1 to 3 and Comparative Examples A to D Tables VI and VII provide the results of testing the inventive films (Inv. Ex. 1-3) compared to a control film (Comp. Ex. A). The reprocessed control film consisted of a 1:1 blend of print web and sealant web film and contained no laminating adhesive. The sample control film was the sample to which all laminated films were compared.

[0082] All lamination-containing films were laminated to a print web and a sealant web to create one resulting film, which was then chopped, pelletized, and blended in ratios with control pellets made from the control films.

[0083] Film parameters included a film thickness of each of Inv.Ex.1-3 and Comp.Ex.A-D films, which was 2 mils ± 0.5 mils or less. All other properties of Inv.Ex.1-3 films could not have a change in performance that was greater than 40% relative to the control film sample.

[0084] Another laminating adhesive used for the comparative samples was ADCOTE™ 577, and such adhesive was used on the film samples of Comparative Examples BD.

[0085] result Each of the tested adhesive compositions of the present invention (Table VI, Inv. Ex. 1-3) is an aqueous laminating adhesive with acrylic functionality. The results in Table VI show that the adhesive compositions of the present invention pass the "<40% degradation change in performance" test in all categories shown in Table VI. For example, dirt performance is well within the performance limits of 40% or more degradation change in performance relative to Comp. Ex. A performance. It was determined that the adhesive compositions of the present invention pass the recyclability test when pellets containing the adhesive compositions of the present invention are used in amounts of 10% to 50%.

[0086] Two solvent-based samples containing the laminating adhesive ADCOTE™ 577 / CR87-124 were tested as described in Table VII. The laminating adhesive used in Comp. Ex. B-D is a highly crosslinked PU system. The Comp. Ex. B-D samples failed the dirt test with a drop in performance of more than 30% (see Table VII, Comp. Ex. B-D). It is theorized that Comp. Ex. B-D is likely due to stiffness imparted by the highly crosslinked adhesive material. Dirt drop of more than 40% at 10% to 50% levels results in the adhesives of Comp. Ex. B-D not meeting the recyclability criteria.

[0087] [Table 6]

[0088] [Table 7]

Claims

1. A first article having a recyclable characteristic, (a) at least one polyolefin polymer; (b) an aqueous acrylic adhesive composition having recyclable properties; A first article, wherein the recyclability characteristics of the water-based acrylic adhesive composition are such that when the first article is reprocessed and the water-based acrylic adhesive composition is recycled in an amount of 10% to 50%, the reprocessed first article exhibits a reduced change in dirt of 40 percent or less compared to a control article without the water-based acrylic adhesive composition that is reprocessed in the same manner as the first article.

2. The first article of claim 1 , wherein the polyolefin polymer is polyethylene.

3. The first article of claim 1 , wherein the water-based acrylic adhesive composition comprises a water-dispersible acrylate crosslinker, an isocyanate crosslinker, or a mixture thereof.

4. 10. The first article of claim 1, wherein the first article is selected from the group consisting of a monolayer or multilayer film, a multilayer laminate, and a packaging material or product.

5. A second article made from any one of the first articles described in claim 4.

6. 6. The second article of claim 5, wherein the second article is selected from the group consisting of pellets, single or multi-layer films, multi-layer laminates, and packaging materials or products.

7. 1. A process for producing an article having recycled properties, comprising: (a) at least one polyolefin polymer; (b) an aqueous acrylic adhesive composition having recyclable properties, wherein the recyclability of the water-based acrylic adhesive composition is such that when the article is reprocessed and the water-based acrylic adhesive composition is recycled in an amount of 10% to 50%, the reprocessed article exhibits a reduced change in dirt of 40 percent or less compared to a control article without the water-based acrylic adhesive composition that is reprocessed in the same manner as the article.

8. 1. A film structure having recyclable properties, comprising: (α) at ​​least one first polymer film layer; (β) at least one layer of an aqueous acrylic adhesive composition having recyclable properties; the recyclability of the aqueous acrylic adhesive composition is such that when the film structure is reprocessed and the aqueous acrylic adhesive composition is recycled in an amount of 10% to 50%, the reprocessed film structure exhibits a reduced change in dirt of 40 percent or less compared to a control structure without the aqueous acrylic adhesive composition that is reprocessed in the same manner as the film structure; the aqueous acrylic adhesive composition is compatible with the first polymeric film layer; A film structure wherein a layer of the water-based acrylic adhesive composition is disposed on a surface of the first polymeric film layer.

9. A multi-layer laminate structure having recyclable properties, comprising: (i) at least one first polymeric film layer; (ii) at least one second polymeric film layer; and (iii) at least one layer of an aqueous acrylic adhesive composition having recyclable properties; the recyclability of the aqueous acrylic adhesive composition is such that when the multilayer laminate structure is reworked and the aqueous acrylic adhesive composition is recycled in an amount of 10% to 50%, the reworked multilayer laminate structure exhibits a reduced change in dirt of 30 percent or less compared to a control structure without the aqueous acrylic adhesive composition that is reworked in the same manner as the multilayer laminate structure; the aqueous acrylic adhesive composition is compatible with the first polymer film layer and the second polymer film layer; a layer of the aqueous acrylic adhesive composition disposed on a surface of at least one of the first polymeric film layer and the second polymeric film layer to bond the first polymeric film layer and the second polymeric film layer together;

10. 1. A process for producing a multi-layer laminate structure, comprising: (I) providing (i) at least one first polymer film layer, (ii) at least one second polymer film layer, and (iii) at least one layer of an aqueous acrylic adhesive composition having recyclable properties, the aqueous acrylic adhesive composition being compatible with the first and second polymer film layers, for adhering the first polymer film layer to the second polymer film layer; step (I), wherein the recyclability of the aqueous acrylic adhesive composition is such that when the multilayer laminate structure is reworked and the aqueous acrylic adhesive composition is recycled in an amount of 10% to 50%, the reworked multilayer laminate structure exhibits a reduced change in dirt of 30 percent or less compared to a control structure without the aqueous acrylic adhesive composition that is reworked in the same manner as the multilayer laminate structure; (II) applying the aqueous acrylic adhesive composition from step (I) to at least a portion of a surface of at least one of the first polymer film layer and the second polymer film layer of step (I) to form a layer of the aqueous acrylic adhesive composition disposed between the first polymer film layer and the second polymer film layer to bond the first polymer film layer and the second polymer film layer together; (III) combining the first polymeric film layer and the second polymeric film layer together with a layer of the water-based acrylic adhesive composition sufficient to form the multi-layer laminate structure; (IV) curing the multi-layer laminate structure of step (III).

11. A process for producing a packaging article, comprising the steps of providing a multi-layer laminate structure produced by the process described in claim 10, and producing a packaging article from the multi-layer laminate structure.

12. A process for producing a reprocessed second article from a packaged article made by the process of claim 11, comprising: (A) providing a packaged article made by the process of claim 11; (B) fragmenting the packaged article from step (A) to generate a plurality of fragments of predetermined size; (C) pelletizing the plurality of pieces from step (B) to form a plurality of pellets of a predetermined size; (D) treating the plurality of pellets from step (C) to form a reprocessed second article.

13. A process for producing a third article, comprising the steps of providing the reprocessed second article made by the process described in claim 12, and producing a third article from the reprocessed second article.

14. 14. The process of claim 13, wherein the third article is selected from the group consisting of pellets, monolayer or multilayer films, multilayer laminates, and packaging materials or products.

Citation Information

Patent Citations

  • Adhesive layer for optical film, optical film with adhesive layer, and image display device

    JP2014001365A

  • BARRIER FILM, MANUFACTURING METHOD THEREOF, AND ARTICLE CONTAINING THE SAME

    JP2017518205A

  • Aqueous Matte Coating Composition

    JP2019537641A

  • All-polyethylene laminate film construction with barrier adhesive layer

    JP2020529935A

  • JPP6716764B