Layered materials comprising aluminum foil and tubes made therefrom
10160580 ยท 2018-12-25
Assignee
Inventors
Cpc classification
Y10T428/2848
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B32B2307/54
PERFORMING OPERATIONS; TRANSPORTING
B65D85/70
PERFORMING OPERATIONS; TRANSPORTING
B65D65/40
PERFORMING OPERATIONS; TRANSPORTING
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
B32B2553/00
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/265
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B32B27/308
PERFORMING OPERATIONS; TRANSPORTING
B29K2023/00
PERFORMING OPERATIONS; TRANSPORTING
B65D35/12
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/2804
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B65B3/027
PERFORMING OPERATIONS; TRANSPORTING
B32B2307/4026
PERFORMING OPERATIONS; TRANSPORTING
B65D65/14
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B65B7/14
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/266
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B65D1/00
PERFORMING OPERATIONS; TRANSPORTING
B65D65/14
PERFORMING OPERATIONS; TRANSPORTING
B65D85/00
PERFORMING OPERATIONS; TRANSPORTING
B65B3/02
PERFORMING OPERATIONS; TRANSPORTING
B65D65/40
PERFORMING OPERATIONS; TRANSPORTING
B65B7/14
PERFORMING OPERATIONS; TRANSPORTING
B65D35/12
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Multi-layer laminate materials, which include an aluminum foil layer having particular tensile strength properties, are described. The aluminum foil layer in combination with other layers provides important benefits in manufacturing operations, such as filling tubes made by forming a cylinder from the laminate materials and heat sealing the side and end edges. These benefits are obtained in many cases without the need to increase foil weight or layer thickness. The laminate materials preserve the flexibility of conventional tubes, for example toothpaste tubes, as required to dispense products from a tube opening with the application of manual squeezing forces.
Claims
1. A multi-layer laminate material comprising, in order: (a) a base film having one or more layers of a polyolefin; (b) an aluminum foil layer; and (c) a sealing layer, wherein the aluminum foil layer has a tensile strength from about 70 megapascals (MPa) to about 90 MPa.
2. The laminate material of claim 1, wherein the aluminum foil layer has a thickness from about 6 to about 20 microns (m).
3. The laminate material of claim 1, wherein the base film has a thickness from about 75 to about 200 m.
4. The laminate material of claim 1, having a total thickness from about 200 to about 275 m.
5. The laminate material of claim 1, wherein the sealing layer comprises polyethylene.
6. The laminate material of claim 1, further comprising first and second adhesive layers, disposed, respectively, between (i) the aluminum foil layer and a layer of the polyolefin base film, and (ii) the aluminum foil layer and the sealing layer.
7. The laminate of material claim 6, wherein the first and second adhesive layers comprise olefin-acrylic acid copolymers.
8. The laminate material of claim 6, further comprising a compatibility layer comprising a polyolefin and disposed between a layer of the polyolefin base film and the first adhesive layer.
9. The laminate material of claim 8, wherein the polyolefin compatibility layer comprises low density polyethylene (LDPE).
10. The laminate material of claim 1, having a peak load to failure of at least about 8.0 kg at a crosshead speed of 127 mm/min.
11. A tube comprising the laminate material of claim 1, wherein (i) overlapping portions of the sealing layer and a layer of the polyolefin base film are bonded to form a lap seal over at least a portion of the length of the tube, and wherein (ii) overlapping portions of the sealing layer are bonded to form a fin seal over at least a portion of the width of the tube, the tube optionally comprising a tube head attached to an open end of the tube.
12. A packaged product comprising the tube of claim 11 and containing, in the interior of the tube, an oral or topical product that contacts non-overlapping portions of the sealing layer, wherein the product has solid characteristics when disposed in the tube and is removable through an opening in the tube with the application of manual compressive force.
13. The packaged product of claim 12, wherein the oral or topical product is in the form of a gel, a paste, an ointment, a lotion, or a cream.
14. The tube of claim 11, having an interior volume, or containing a product having a volume, from about 150 to about 500 milliliters (ml).
15. A method of preparing a packaged product comprising filling the tube of claim 11, in an automated filling and sealing process, with an oral or topical product that is in the form of a gel, a paste, an ointment, a lotion, or a cream.
16. The method of claim 15, further comprising, prior to filling the tube, preparing the tube from the laminate material of claim 1 by bonding (i) overlapping portions of the sealing layer and a layer of the polyolefin base film to form a lap seal over at least a portion of the length of the tube, and (ii) overlapping portions of the sealing layer to form a fin seal over at least a portion of the width of the tube.
17. The method of claim 16, wherein the bonding of (i) and (ii) is carried out by applying a combination of heat and pressure between the overlapping portions.
18. The method of claim 16, further comprising, prior to or after filling the tube, bonding a tube head of a rigid plastic material to an open end of the tube.
19. A multi-layer material comprising, in order: (a) a base film having one or more layers of a polyolefin; (b) an aluminum foil layer; and (c) a sealing layer, wherein the aluminum foil layer has a tensile strength from about 70 megapascals (MPa) to about 90 MPa.
20. The multi-layered material of claim 19, wherein the material is made by a process selected from the group consisting of lamination, extrusion, coextrusion, blown extrusion, cast extrusion, tubular water quenched extrusion, extrusion coatings, heat sealing, and combinations thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4) The features referred to in
DETAILED DESCRIPTION
(5) The present invention is associated with the discovery of important commercial benefits of multi-layer laminate materials, having an aluminum foil layer with particular strength properties. These benefits can be obtained in many cases without the need to increase foil weight and/or overall laminate material weight. In fact, the desired performance, in terms of the reduction in the occurrence of tube denting or other defects, during processing of tubes made from the laminate materials through a filling operation, is attainable with multi-layer laminate materials having a lower overall thickness compared to conventional packaging materials. This ability to maintain or even reduce the overall packaging weight and/or thickness is significant in terms the objectives of not only lowering material costs, but also preserving sufficient flexibility of the multi-layer laminate materials such that it can be used to dispense products as described above with the application of only manual squeezing forces.
(6)
(7) Any number of additional layers (not shown) may be included in the multi-layer laminate materials described herein, comprising a base film, an aluminum foil layer, and a sealing layer, for example as in the multi-layer laminate material 10 of
(8) The phrase in order, as it pertains to layers of a multi-layer laminate material refers to the relative positioning of the specified layers from one material surface to its opposite surface, even though the presence of additional layers is not precluded. Therefore, a multi-layer laminate material comprising, in order, a base film, an aluminum foil layer, and a sealing layer requires that the aluminum foil layer be positioned between the base film and sealing layer, although other layers may be present. The order of layers may also be particularly specified in order from the exterior to the interior of the laminate material, which refers to the ordering of films and/or layers of the multi-layer laminate material, as positioned in a container from which it is formed. In this case, the first mentioned film or layer is positioned more closely to the exterior or outer surface of the multi-layer laminate material (or further from the interior or inner surface) than the other mentioned layers, and the last mentioned film or layer is positioned more closely to the interior or inner surface of the multi-layer laminate material (or further from the exterior or outer surface) than the other mentioned layers.
(9) In general, when the multi-layer laminate material is formed into a packaging container such as a tube, the sealing layer contacts the product contained in the tube, or is at least positioned closest to the product and interior of the container, relative to the aluminum foil layer and layers of the base film. The interior or inner surface of the container refers to the surface that faces the inside of the container and contacts product when the container is filled. The exterior or outer surface of the container refers to the surface that faces the outside of the container and is opposite the interior of the container. The terms inner and outer, when used to describe a layer or surface, designate a relative position of that layer or surface with respect to others, in terms of its proximity to the interior or exterior of a container formed from a given multi-layer laminate material.
(10) Thus,
(11) As illustrated in
(12) Base Film
(13) The base film is generally thicker than all layers of the multi-layer laminate material. The base film may be a single layer comprising a polyolefin or a blend of polyolefins, although in many cases the base film comprises two or more of such layers (e.g., three layers, four layers, five layers, or six layers), for example with each layer comprising polyethylene or polypropylene. Normally, these layers of the base film are coextruded, and in many cases may be co-extruded, blown film layers. According to representative embodiments, each of the one or more layers of the base film comprises at least about 70%, at least about 85%, or substantially all (e.g., at least about 95%) of a polyolefin such as polyethylene or polypropylene, including high density polyethylene (HDPE), linear low density polyethylene (LLDPE), medium density polyethylene (MDPE), very low density polyethylene (VLDPE), ultra low density polyethylene (ULDPE), and propylene-ethylene (PPE) copolymers. Other polyolefins include copolymers of ethylene or propylene with another olefin (e.g., butane, pentene, hexane, octane, methyl or pentene, and particularly an alpha-olefin). A particular example of a base film is a two-layer structure having layers of LDPE and HDPE, with a predominance by weight (e.g., at least about 50%, and often at least about 75%) of the HDPE layer.
(14) One or more layers of the base film may also comprise a blend of polyolefins. Representative blends of polyolefins include polypropylene/polyethylene blends and polypropylene/ethylene vinyl acetate (EVA) blends, with relative amounts of blending components determining the overall chemical characteristics of a given blend, including its compatibility with adjacent layers. Also included in the definition of polyolefins are copolymers of olefins, especially ethylene and propylene, and non-olefinic comonomers that are copolymerizable with the olefin. Exemplary non-olefinic comonomers are vinyl monomers and unsaturated carboxylic acids (e.g., maleic acid, fumaric acid) or their derivatives, for example their anhydride derivatives or ester metal salt derivatives. Particular examples of polyolefins therefore include ethylene vinyl acetate (EVA), ethylene normal butyl acrylate (ENBA), ethylene methyl acrylic acid (EMAA), ethylene methyl acrylate (EMA) and others.
(15) Representative layer thicknesses of the layers of the base film are generally from about 5 m to about 80 m, typically from about 10 m to about 50 m, and often from about 20 m to about 40 m. The layer thicknesses may be substantially equal or may vary. According to particular embodiments, the base film comprises two or three layers of blown polyethylene or polypropylene, each of which has a layer thickness in any of these ranges. Representative ranges of total thicknesses of the base film (i.e., the sum of the thicknesses of the individual base film layers), are as discussed above.
(16) The base film, or at least one layer of this film, may also be printable such that it may contain printed matter, for example product information including the manufacturer and brand name, instructions for use, ingredients, etc. In the representative embodiment described above, in which the base film comprises layers of LDPE and HDPE, the LDPE can serve as a print surface in the formed tube. The base film may be the natural color of the component layer(s), or such layer(s) may alternatively contain a colorant such as a pigment or a dye. Suitable colorants may be incorporated as a color concentrate, in a polymer blend. In the case of coextrusion of two or more base film layers, the color concentrate is then generally diluted during the coextrusion as a result of mixing with the polymer(s) of the layer in which the colorant is contained. Preferably the underlying polymer used for the color concentrate is the same as, or at least compatible with, a polymer used in the base film layer(s) (e.g., a polyolefin) in which into which the colorant is contained. A suitable color concentrate is a white pigment in an underlying polypropylene or polyethylene polymer, or polymer blend comprising a polypropylene or polyethylene polymer.
(17) Compatibility Layer
(18) One or more compatibility layers may be incorporated into the multi-layer laminate material, between two layers of chemically distinct compositions, to improve layer cohesion where desirable. According to representative embodiments, the compatibility layer will comprise at least one homopolymer or copolymer of a monomer that is also present in at least one, and possibly both, of its adjacent layers. To provide sufficient compatibility properties, the amount of such homopolymer(s) or copolymer(s) having this/these characteristic(s) (i.e., being a homopolymer or copolymer of a monomer that is also present in at least one of the adjacent layers) is/are present in the compatibility layer, by weight, in an amount of generally at least about 70%, typically at least about 85%, and often at least about 95%.
(19) For example, in the representative embodiment depicted in
(20) Adhesive Layers
(21) As discussed above, one or more adhesive layers may be incorporated into the multi-layer laminate material to improve adhesion between layers surrounding (i.e., immediately adjacent or sandwiching) the adhesive layer. In representative embodiments, each of the one or more adhesive layers independently comprises, by weight, at least about 70%, at least about 85%, or substantially all (e.g., at least about 95%) of an olefin-acrylic acid copolymer. Suitable copolymers of this type include ethylene acrylic acid (EAA), ethylene normal butyl acrylate (ENBA) copolymer, ethylene methyl acrylic acid (EMAA) copolymer, and ethylene methyl acrylate (EMA). In addition to, or in place of, an olefin-acrylic acid copolymer, the adhesive layer can comprise one or more thermoplastic hot melt adhesives, including polyethylene (e.g., low density polyethylene (LDPE)), polyamides, and/or EVA copolymers such as anhydride modified EVA. Other representative adhesive layers, or components thereof, include rubber-based adhesives, polyurethanes, and cyanoacrylates. A preferred adhesive layer comprises EAA. Representative adhesive layers have, independently, thicknesses generally from about 10 m to about 50 m and often from about 15 m to about 40 m, in order to promote good bonding properties.
(22) Sealing Layer
(23) In forming containers from multi-layer laminate materials as described herein, the sealing layer is often involved in the bonding with itself or other layers to provide adequate seals such that the formed container can be subsequently filled without product leakage, particularly over extended periods of storage by the retailer and/or the end user. In representative embodiments, the sealing layer is therefore a polymeric composition that can be sealed to itself or other layers by the application of pressure, and preferably by the application of a combination of heat and pressure. Such heat sealable polymeric compositions include polyolefins, and therefore the sealing layer may comprise, by weight, at least about 70%, at least about 85%, or substantially all (e.g., at least about 95%) of a polyolefin such as polyethylene (PE), polypropylene (PP), propylene ethylene (PPE) copolymers or otherwise copolymers of ethylene or propylene with another olefin (e.g., butane, pentene, hexane, octane, methyl or pentene, and particularly an alpha-olefin), or a blend of polyolefins. Representative blends of polyolefins suitable for one or more layers of the sealing layer include polyethylene/polypropylene blends and polyethylene/ethylene vinyl acetate (EVA) blends, with relative amounts of blending components determining the overall chemical characteristics of a given blend, including its compatibility with adjacent layers. Also included in the definition of polyolefins are copolymers of olefins with non-olefinic comonomers as discussed above with respect to the base film.
(24) According to representative embodiments, the sealing layer comprises polyethylene in the percentages given above. The polyethylene may be high density polyethylene (HDPE), medium density polyethylene (MDPE), low density polyethylene (LDPE), very low density polyethylene (VLDPE), and/or ultra low density polyethylene (ULDPE). A preferred polyolefin for use in the sealing layer is linear low density polyethylene (LLDPE), optionally in the form of a blend with EVA. According to particular embodiments, the sealing layer has a thickness generally from about 10 m to about 100 m, and often from about 25 m to about 60 m, in order to promote good heat sealing characteristics and other properties, including overall material strength.
(25) Additional Layers
(26) The multi-layer laminate material may comprise layers in addition to those discussed above, in order to impart a desired functionality for a given application. A barrier layer may be added, for example, to reduce oxygen diffusion from ambient air through the laminate material and into the product. Representative barrier layers include vinylidene chloride copolymers (e.g., vinylidene chloride methyl acrylate copolymer and vinylidene chloride vinyl chloride copolymer), polyamides (e.g., nylon-MXD6, nylon 6, nylon 6,6), ethylene vinyl alcohol copolymer, and foil and glass coated films (e.g., Toppan GL-AEH). Abuse or tear resistant layers may also be added, and these include, for example, biaxially oriented nylon, oriented polypropylene, and polyethylene terephthalate (PET), as well as elastomers and blends of elastomers (e.g., a blend of an elastomer and HDPE). Representative elastomers include polyisobutylene, rubber modified styrene, and butadiene-styrene copolymers.
(27) Dispensing Tube with Tube Head
(28) In forming a dispensing tube as described herein, an end piece or tube head may be attached to an open end of a tube comprising a multi-layer laminate as described above. A representative dispensing tube is depicted in
(29) The end piece or tube head may also include a removable lid or cap (not shown in
(30) Tube head 50 may be formed by injection molding and may include, in a lower portion of shoulder section B, an extended overlap region 65 for bonding with multi-layer laminate material 10. Overlap region 65 may be in the form of a downward-extending flange that provides a surface upon which multi-layer laminate material 10 can be heat sealed or otherwise chemically or mechanically attached. According to one embodiment, the thickness of tube head 50 is the same or substantially the same as the thickness of multi-layer laminate material 10. Alternatively, as depicted in
(31) According to a representative embodiment for forming tube head 50, molten polymeric material of tube head 50 is injected into a suitable mold, and tube head 50, once formed, is attached by heat sealing to an upper portion of multi-layer laminate material 10, namely where it overlaps tube head 50 in overlap region 65. In this case, the formation of tube head 50 and its attachment to multi-layer laminate material 10 are distinct steps, in which, for example, the tube head 50 may be preformed prior to being bonded to multi-layer laminate material 10. When the polymeric material is injected into the mold used to form tube head 50, this mold does not contain multi-layer laminate material 10. The attachment between multi-layer laminate material 10, which forms skirt section C, at overlap region 65 of tube head 50, is carried out in a different step, following the complete formation of tube head 50. The preformed tube head 50 is therefore formed with overlap region 65 suitable for engagement with multi-layer laminate 10 to form dispensing tube 100. This separate formation of tube head 50 and its subsequent joining to multi-layer laminate material 10 allows for mass production of tube head 50 and construction/filling of dispensing tubes in locations that do not have access to complex, direct injection machinery. This allows for a simplified construction and the implementation of effective manufacturing techniques.
(32) Alternatively, tube head 50 may be directly injection molded onto multi-layer laminate material 10. In this case, formation of tube head 50 and its attachment to multi-layer laminate material 10 occur simultaneously. Such a direct injection technique may, according to one embodiment, involve injecting the molten polymeric material of tube head 50 into a mold having a sprue section over the dispensing end of the tube. The sprue, which is required during formation to ensure that the polymeric material is provided along the axis of symmetry of the end piece and thereby distributes evenly, is cut away before the dispensing tube is finished. This even radial distribution of the polymeric material is important for providing accurate joining between tube head 50 and multi-layer laminate material 10, and the use of a sprue can additionally allow some simplification of the tooling required.
(33) Overall, aspects of the invention are directed to multi-layer laminate materials having improved filling properties and comprising, in order: (a) a base film having one or more layers (any of which may comprise, for example, a polyolefin), (b) an aluminum foil layer, and (c) a sealing layer. The aluminum foil layer has a tensile strength of at least about 70 megapascals (MPa), thereby providing the advantages discussed above, particularly with respect to the use of the laminate material in packaging (e.g., filling) operations. According to representative embodiments, the multi-layer laminate material may consist of only the base film and these two layers, having the representative base film and layer thicknesses as described above. Alternatively, the multi-layer laminate material may consist of the base film and the particular layer configuration as depicted in
(34) In general, any of the multi-layered materials described herein can be made by processes that include lamination, or otherwise include extrusion, coextrusion, blown extrusion, cast extrusion, tubular water quenched extrusion, extrusion coatings, and heat sealing. Combinations of processes can be employed, for example in the embodiment in which the base film is made by the blown extrusion of the multiple layers of the base film, and the base film is laminated to the compatibility layer, first adhesive layer, foil layer, second adhesive layer, and sealing layer, to provide a multi-layered material according to the embodiment illustrated in
(35) Those having skill in the art, with the knowledge gained from the present disclosure, will recognize that various changes could be made in these multi-layer materials and their respective layer configurations, without departing from the scope of the present invention.
(36) The following examples are set forth as representative of the present invention. These examples are not to be construed as limiting the scope of the invention as other equivalent embodiments will be apparent in view of the present disclosure and appended claims.
Comparative Example 1
(37) A multi-layer laminate material was made by laminating a coextruded base film to the following layers, in order: (i) a 34 m compatibility layer, comprising all LDPE, adjacent the base film, (ii) a first 20 m adhesive layer comprising all EAA, (iii) a 13 m aluminum foil layer, (iv) a 28 m second adhesive layer comprising all EAA, and (v) a 41 m sealant layer comprising all LLDPE. The base film was a 2-layer structure of blown, co-extruded 20 wt-% LDPE and 80 wt-% HDPE. The LDPE served as a print surface for the final multi-layer laminate material. The total thickness of the base film was 114 m, and therefore the total thickness of the multi-layer laminate material was 250 m.
(38) In this multi-layer laminate material, the tensile strength of the aluminum foil was less than 50 MPa.
Comparative Example 2
(39) A multi-layer laminate material was made as described in Comparative Example 1, except that the total thickness of the base film was increased from 114 m to 127 m and the thickness of the compatibility layer was increased from 34 m to 51 m. Therefore, the total thickness of the multi-layer laminate material was increased from 250 m to 279 m. Again the tensile strength of the aluminum foil was less than 50 MPa.
Example 1
(40) A multi-layered laminate material was made as described in Comparative Example 1, except that the aluminum foil had a tensile strength of greater than 70 MPa.
(41) The laminate materials described in these examples were tested for their peak load to failure, according to a standard test method using an accepted testing machine. Specifically, the peak load to failure at a machine crosshead speed of 127 mm/min was determined for each of the prepared materials, using a 34 mm102 mm sample, and the results are summarized in Table 1 below.
(42) TABLE-US-00001 TABLE 1 Comparison of Strength for Laminate Materials Comparative Comparative Sample Example 1 Example 2 Example 1 Total Caliper 250 m 279 m 250 m (m) Foil Caliper 12.7 m 12.7 m 12.7 m (m) Measurement 7.65 7.53 8.08 #1 Measurement 8.47 8.76 8.95 #2 Measurement 7.84 9.97 8.95 #3 Measurement 8.68 8.43 11.46 #4 Measurement 8.72 9.42 8.70 #5 Measurement N/A 8.93 8.51 #6 Average 8.27 kg 8.84 kg 9.11 kg Standard 0.49 0.84 1.20 Deviation
(43) These results demonstrate that, by using an aluminum foil layer having a tensile strength of at least about 70 MPa, the peak load to failure of the resulting multi-layer laminate material is considerably improved. A peak load to failure improvement was even observed relative to Comparative Example 2, despite the increase in the total material thickness due to the higher weight of the base film and compatibility layer.