Composite articles including non-smooth films and furnishings including the same
Lightweight reinforced thermoplastic composite articles with textured films address the need for specific surface properties, improving functionality and aesthetics by incorporating a textured film layer, achieving desired roughness and texture.
Patent Information
- Application Number
- JP2024021897
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-06-06
- Filing Date
- 2024-02-16
- Publication Date
- 2026-03-06
- Estimated Expiration
- 2039-06-06
AI Technical Summary
Existing composite materials used in industries like construction and automotive lack specific physical properties, particularly in terms of surface texture and roughness, which can affect their functionality and aesthetic appeal.
The development of lightweight reinforced thermoplastic composite articles featuring a textured film on one or more surfaces, with specific surface roughness and energy characteristics, and a multilayer film structure that includes a core layer comprising a textured film on the textured film layer, which includes a textured film layer comprising a textured film layer, which includes a textured film layer, which includes a textured film layer comprising a textured film layer, which includes a textured film layer, which comprises a textured film layer comprising a textured film layer, which includes a textured film layer comprising a textured film comprising a textured surface.
The composite articles achieve a desired surface texture and roughness, enhancing their functionality and aesthetic appeal while maintaining lightweight and durable properties.
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Abstract
Description
[Technical Field]
[0001] Priority claims This application claims priority to and the benefit of U.S. Provisional Patent Application No. 62 / 681,607, filed June 6, 2018, the entire disclosure of which is incorporated herein by reference.
[0002] Certain examples described herein relate to composite articles that include a textured film on one or more surfaces. More specifically, certain examples described herein relate to furniture, furniture assemblies, and the like, that include one or more textured films. [Background technology]
[0003] Composite materials have a wide range of applications in various industries, such as construction and building, automotive and recreational vehicles, etc. For use in these industries, composite materials often need to possess specific physical properties. Summary of the Invention
[0004] Specific aspects, embodiments, configurations, and examples of lightweight reinforced thermoplastic (LWRT) composite articles comprising a textured film on one or more surfaces. In some configurations, the composite article may comprise a multilayer film, where at least one of the film layers comprises a textured surface.
[0005] In one aspect, a piece of furniture includes a top surface, a side surface connected to the top surface, and a back surface connected to the side surface, where the top surface, the side surface, and the back surface together form an interior storage area accessible to a user, and the back surface includes a core layer including a web of reinforcing fibers held together by a thermoplastic material and a multilayer film disposed on the core layer, and a non-smooth film layer of the multilayer film is disposed on the exterior surface of the back surface of the furniture.
[0006] In some configurations, the core layer comprises 20% to 80% by weight of reinforcing fibers and 20% to 80% by weight of thermoplastic material. In other configurations, the reinforcing fibers comprise glass fibers and the thermoplastic material comprises a polyolefin. In some embodiments, the multilayer film comprises a polyolefin film layer beneath a textured film layer.
[0007] In another embodiment, the rear exterior surface has a surface roughness of less than 12 micrometers in the machine direction and less than 17 micrometers in the cross direction when tested using a stylus profilometer.
[0008] In some instances, the rear exterior surface has an RMS roughness of less than 15 micrometers in the machine direction and less than 20 micrometers in the cross direction.
[0009] In another example, the rear exterior surface has a maximum roughness of less than 90 micrometers in the machine direction and less than 125 micrometers in the cross direction.
[0010] In some embodiments, the rear exterior surface has a surface energy of less than 30 mN / m.
[0011] In another example, the thickness of the multilayer film is between 0.1 mm and 0.2 mm.
[0012] In some instances, the multilayer film includes a tie layer between the textured film layer and the adhesive layer.
[0013] In some examples, the furniture is configured to receive at least one drawer. In other examples, the furniture is configured to receive at least one door. In some examples, the furniture is configured to receive at least one sliding door.
[0014] In other embodiments, the backside has a basis weight of less than 1600 gsm and a thickness of less than 4 mm. In some examples, the core layer comprises a reinforced glass fiber and a polypropylene thermoplastic material. In other examples, the multilayer film comprises a tie layer between the textured film layer and the underlying layer. In some embodiments, the underlying layer comprises an adhesive, and the textured film layer comprises a polyolefin and a filler. In some examples, the adhesive comprises a hot melt adhesive having a melting temperature of 90 to 150°C.
[0015] In other instances, the backside is cellulose-free.
[0016] In some examples, at least one side includes a second core layer comprising a web of reinforcing fibers held together by a thermoplastic material and a second multilayer film disposed on the second core layer, wherein a non-smooth film layer of the second multilayer film is disposed on the exterior surface of the side of the furniture.
[0017] In another aspect, a furniture chassis is provided that is configured to provide support and shape to a piece of furniture comprising the furniture chassis. In some configurations, the furniture chassis includes a backing layer that includes a core layer that includes a web of reinforcing fibers held together by a thermoplastic material, where the backing layer further includes a multilayer film disposed on the core layer, and where a textured film layer of the multilayer film is disposed on an outer surface of the backing layer.
[0018] In certain embodiments, the core layer comprises 20% to 80% by weight of reinforcing fibers and 20% to 80% by weight of a thermoplastic material. In other embodiments, the reinforcing fibers comprise glass fibers and the thermoplastic material comprises a polyolefin. In certain examples, the multilayer film comprises a polyolefin film layer beneath a textured film layer. In some examples, the outer surface of the backing layer has a surface roughness of less than 12 micrometers in the machine direction and less than 17 micrometers in the cross direction when tested using a stylus profilometer. In other examples, the outer surface of the backing layer has an RMS roughness of less than 15 micrometers in the machine direction and less than 20 micrometers in the cross direction. In additional examples, the outer surface of the backing layer has a maximum roughness of less than 90 micrometers in the machine direction and less than 125 micrometers in the cross direction. In some embodiments, the outer surface of the backing layer has a surface energy of less than 30 mN / m.
[0019] In some instances, the thickness of the multilayer film is between 0.1 mm and 0.2 mm. In other instances, the multilayer film includes a tie layer between the textured film layer and the adhesive layer.
[0020] In certain examples, the chassis is configured to receive at least one drawer. In other examples, the chassis is configured to receive at least one door. In some embodiments, the chassis is configured to receive at least one sliding door. In certain examples, the backing layer has a basis weight of less than 1600 gsm and a thickness of less than 4 mm. In some embodiments, the core layer comprises reinforced glass fiber and a polypropylene thermoplastic material. In other embodiments, the multilayer film comprises a tie layer between the non-smooth film layer and the underlying layer. In some examples, the underlying layer comprises an adhesive, and the non-smooth film layer comprises a polyolefin and a filler. In some embodiments, the adhesive comprises a hot melt adhesive having a melting temperature of 90 to 150°C. In certain examples, the backing layer does not comprise cellulose. In other examples, the chassis comprises at least one side comprising a second core layer comprising a web of reinforcing fibers held together by a thermoplastic material, and a second multilayer film disposed on the second core layer, wherein the non-smooth film layer of the second multilayer film is disposed on the exterior surface of the side of the furniture.
[0021] In another aspect, a cabinet is described that includes a top surface, a side surface coupled to the top surface, and a back surface coupled to the side surface. In certain configurations, the back surface of the cabinet includes a core layer including a web of reinforcing fibers held together by a thermoplastic material and a multilayer film disposed on the core layer, where a non-smooth film layer of the multilayer film is disposed on an exterior surface of the back surface of the cabinet. In some cases, the back surface does not include cellulose.
[0022] In an additional aspect, a display case configured to receive at least one fastener is provided. In some examples, the display case includes a back surface including a core layer including a web of reinforcing fibers held together by a thermoplastic material and a multilayer film disposed on the core layer, where a non-smooth film layer of the multilayer film is disposed on an exterior surface of the back surface of the display case. In certain examples, the back surface does not include cellulose.
[0023] In another aspect, an article of furniture is disclosed that includes a chassis and at least one textured surface. In some examples, the textured surface includes a core layer and a multilayer film disposed on the core layer, the core layer including reinforcing fibers and a thermoplastic material, and the multilayer film includes a textured film layer on an outer surface of the at least one textured surface.
[0024] In another aspect, a non-automotive chassis is described that includes at least one textured surface. In some examples, the textured surface includes a core layer and a multilayer film disposed on the core layer, the core layer including reinforcing fibers and a thermoplastic material, and the multilayer film includes a textured film layer on an outer surface of the at least one textured surface.
[0025] Further aspects, configurations, embodiments, examples and features are described in more detail below.
[0026] Certain exemplary configurations of composite articles are described with reference to the following figures. [Brief explanation of the drawings]
[0027] [Figure 1A] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a non-smooth film layer on one surface according to a particular configuration. [Figure 1B] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a textured film layer on one surface and a skin layer on the other surface according to a particular configuration. [Figure 1C] FIG. 1 is a diagram of a non-smooth film layer on one surface of a composite article according to a particular configuration. [Figure 2A] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a textured two-layer film on one surface, according to certain embodiments. [Figure 2B] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a textured bilayer film on one surface and a skin layer on the other surface, according to certain examples. [Figure 2C]FIG. 1 is a diagram of a textured bilayer film on one surface of a composite article, in accordance with certain examples. [Figure 3A] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a textured three-layer film on one surface, according to certain embodiments. [Figure 3B] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a textured three-layer film on one surface and a skin layer on the other surface, according to a particular example. [Figure 3C] FIG. 1 is a diagram of a textured three-layer film on one surface of a composite article, in accordance with certain examples. [Figure 4A] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a textured four-layer film on one surface, according to certain examples. [Figure 4B] FIG. 1 is a diagram of a composite article comprising a prepreg or core layer bonded to a textured four-layer film on one surface and a skin layer on the other surface according to a particular configuration. [Figure 4C] FIG. 1 is a diagram of a textured four-layer film on one surface of a composite article according to a particular configuration. [Figure 5] FIG. 1 is a diagram of a composite article comprising two bonded prepreg or core layers and a non-smooth film layer, according to some examples. [Figure 6] FIG. 1 is a diagram of a composite article comprising two bonded prepreg or core layers and two layers of textured film, according to some examples. [Figure 7] FIG. 1 is a diagram of a composite article comprising two bonded prepreg or core layers and three layers of textured film, according to some examples. [Figure 8] FIG. 1 is a diagram of a composite article comprising two bonded prepreg or core layers and a textured four-layer film, according to some examples. [Figure 9] 1 is a diagram of a ceiling tile grid, according to some examples. [Figure 10] 1A-1C are diagrams of cubicle panels, according to some examples. [Figure 11]1A-1C are diagrams of wall panels, according to some examples. [Figure 12] 1 is a diagram of an interior panel of a recreational vehicle, according to some embodiments. [Figure 13] 1 is a diagram of an exterior panel of a recreational vehicle, according to some embodiments. [Figure 14] 1A-1C are diagrams of a furniture cabinet according to several configurations. [Figure 15] 1A-1C are diagrams of furniture cabinets with drawers in several configurations. [Figure 16A] 1A-1C are diagrams of furniture cabinets with doors in several configurations. [Figure 16B] 1A-1C are diagrams of furniture cabinets with sliding doors in several configurations. [Figure 17] 1A-1C are diagrams of a furniture chassis according to several configurations. [Figure 18A] 1 is a photograph showing the addition of dye to a textured film. [Figure 18B] 1 is a photograph showing the spreading of dye added onto a non-smooth film.
[0028] Given the benefit of this disclosure, those skilled in the art will recognize that the exemplary representations shown in the figures are provided for convenience and to facilitate a better understanding, and that the exact shape, length, width, thickness, geometrical arrangement, and overall orientation of the components shown may vary depending on the intended use and desired properties. DETAILED DESCRIPTION OF THE INVENTION
[0029] Several example configurations of composite articles are described, which may include two or more layers bonded together. While various layers are shown in the figures and described below, the thickness, size, and shape of different layers need not be the same and may be different from those shown in the figures. Furthermore, the exact arrangement or layering of components may vary, or intermediate layers may exist between the exemplary layers shown in the figures. Where a multilayer film is described, the film may include two, three, or more layers, any of which may or may not be textured. In some cases, the outermost layer of the multilayer film may include a textured film layer, and other layers of the multilayer film may or may not include a textured film layer.
[0030] In certain embodiments, the articles described herein generally comprise a prepreg or core layer bonded to another layer. The prepreg may be an incompletely formed core layer and may comprise a material that is processed to form the final core layer. For example, the prepreg may comprise a thermoplastic material combined with reinforcing fibers, but may not be fully formed or may exist in a softened state due to the application of heat. The prepreg may be pressed, compressed, or molded into a desired shape to provide the core layer. Other layers bonded to the prepreg layer may be added before or after the core is fully formed. The other layers may be bonded to the prepreg or core layer using an adhesive, or in some cases, the prepreg or core layer may be bonded directly to the other layers without the use of an adhesive between the prepreg or core layer and the other layers.
[0031] In certain examples, the prepreg or core layer can be used in lightweight reinforced thermoplastic (LWRT) articles. LWRT can provide certain desirable properties, including, but not limited to, high stiffness-to-weight ratio, low part weight, simple and low-cost part-forming processes, low coefficient of thermal expansion, and reusability. LWRT has wide applications in the automotive industry, including various types of soft trim for both interior and exterior applications. Recreational vehicles, commercial trailer trucks, and similar applications represent another category of broad applications for LWRT articles. Finished furniture, unfinished furniture, furniture chassis, ceiling tiles, office panels, cubicle panels, and the construction and building industries can also use or include the LWRT articles described herein.
[0032] In a particular example, and with reference to FIG. 1A , a composite article 100 is shown including a prepreg or core layer 110 and a film layer 120 disposed on a surface 112 of the prepreg or core layer 110. In a particular example, the prepreg or core layer 110 may include a thermoplastic material and reinforcing fibers, which may be held in place in the general form of a web by the thermoplastic material. The fibers may generally be arranged randomly without any particular orientation or configuration. In a particular example, the thermoplastic material of the prepreg or core layer 110 may be present in fiber form, particle form, resin form, or other suitable form. In a particular embodiment, the prepreg or core layer 110 generally includes a significant amount of open-cell structure such that voids exist in the prepreg or core layer 110. For example, the prepreg or core layer 110 may have a thickness of 0-30%, 10-40%, 20-50%, 30-60%, 40-70%, 50-80%, 60-90%, 0-40%, 0-50%, 0-60%, 0-70%, 0-80%, 0-90%, 10-50%, 10-60%, 10-70%, 10-80%, 10-90%, 10-95%, 20-60%, 20-70%, 20-80%, 20-90%, 20-95%, 30-70%, 30-80%, 30-90%, 30-95%, 40-80%, 40-90%, 40-95%, 50-90%, 50-95%, 60-95% The prepreg or core layer 110 may include a porosity of 70-80%, 70-90%, 70-95%, 80-90%, 80-95%, or any exemplary value within these exemplary ranges. In some cases, the prepreg or core layer 110 includes a porosity of greater than 0% (e.g., it is not fully consolidated) up to about 95%. Unless otherwise specified, references to a prepreg or core layer with a particular porosity or void volume are based on the total volume of the prepreg or core layer, and not necessarily the total volume of the prepreg or core layer plus any other materials or layers combined with the prepreg or core layer.
[0033] In certain embodiments, the thermoplastic material of the prepreg or core layer 110 may comprise, at least in part, one or more of polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, and polyvinyl chloride, both plasticized and unplasticized, as well as blends of these materials with each other or with other polymeric materials. Other suitable thermoplastics include, but are not limited to, polyarylene ether, polycarbonate, polyester carbonate, thermoplastic polyester, polyimide, polyetherimide, polyamide, acrylonitrile-butyl acrylate-styrene polymer, amorphous nylon, polyarylene ether ketone, polyphenylene sulfide, polyarylsulfone, polyethersulfone, liquid crystal polymer, poly(1,4 phenylene) compound commercially available as PARMAX®, high-temperature polycarbonate (e.g., APEC® PC manufactured by Bayer), high-temperature nylon, and silicone, as well as alloys and blends of these materials with each other or with other polymeric materials. The raw thermoplastic material used to form the prepreg or core layer 110 can be in powder form, resin form, rosin form, fiber form, or other suitable form. Various forms of exemplary thermoplastic materials are described herein and also in, for example, U.S. Patent Publication No. 20130244528 and U.S. Patent No. 20120065283. The exact amount of thermoplastic material present in the prepreg or core layer 110 can vary, with exemplary amounts ranging from about 20% to about 80% by weight.
[0034] In particular examples, the reinforcing fibers of the prepreg or core layer 110 described herein can include glass fibers, carbon fibers, graphite fibers, synthetic organic fibers (particularly high modulus organic fibers (e.g., para- and meta-aramid fibers, nylon fibers, polyester fibers, or any high melt flow index resin suitable for use as fibers)), natural fibers (e.g., hemp, sisal, jute, flax, coir, kenaf, and cellulose fibers), mineral fibers (e.g., basalt, mineral wool (e.g., rock or slag wool), wollastonite, alumina-silica, etc., or mixtures thereof), metal fibers, metallized natural and / or synthetic fibers, ceramic fibers, yarn fibers, or mixtures thereof. In some cases, one type of reinforcing fiber can be used in conjunction with mineral fibers (e.g., fibers formed by spinning or drawing molten minerals). Exemplary mineral fibers include, but are not limited to, mineral wool fibers, glass wool fibers, stone wool fibers, and ceramic wool fibers. In some embodiments, any of the foregoing fibers can be chemically treated prior to use to provide desired functional groups or impart other physical properties to the fibers. The total fiber content of the prepreg or core layer 110 can be about 20% to about 90% by weight of the prepreg, more specifically, about 30% to about 70% by weight of the prepreg. Typically, the fiber content of a composite article comprising the prepreg or core layer 110 varies between about 20% and about 90% by weight of the composite article, more specifically, between about 30% and about 80% by weight (e.g., between about 40% and about 70% by weight). The particular size and / or orientation of the fibers used can depend, at least in part, on the polymeric material used and / or the desired properties of the resulting prepreg. Suitable additional fiber types, fiber sizes, and amounts will be readily selected by one of ordinary skill in the art given the benefit of this disclosure. In one non-limiting example, the fibers dispersed within the thermoplastic material to provide the prepreg or core layer generally have a diameter greater than about 5 micrometers, more specifically, a diameter of about 5 micrometers to about 22 micrometers, and a length of about 5 mm to about 200 mm.More specifically, the fiber diameter can be from about 5 micrometers to about 22 micrometers, and the fiber length can be from about 5 mm to about 75 mm. In some configurations, the flame-retardant material can be present in fibrous form. For example, the prepreg or core layer 110 can include a thermoplastic material, a reinforcing fiber, and a fiber comprising a flame-retardant material (e.g., a fiber comprising an EG material or an inorganic flame-retardant material). The flame-retardant fiber can include any one or more of the flame-retardant materials described herein (e.g., a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers, or an EG material mixed with a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers).
[0035] In some configurations, the prepreg or core layer 110 can be substantially halogen-free or halogen-free to meet the hazardous materials requirements of a particular application. In other examples, the prepreg can contain halogenated flame retardants (which can be present in or added to the flame retardant material) (e.g., one or more of F, Cl, Br, I, and At, or halogen-containing compounds such as tetrabromobisphenol A polycarbonate or monohalo-, dihalo-, trihalo-, or tetrahalo-polycarbonates). In some cases, the thermoplastic material used in the prepreg and core can contain one or more halogens to impart some degree of flame retardancy without the addition of a separate flame retardant. For example, the thermoplastic material can be halogenated in addition to the flame retardant material present, or the raw thermoplastic material can be halogenated and used on its own. If a halogenated flame retardant is present, the flame retardant is desirably present in a flame retardant amount, which can vary depending on the other components present. For example, a halogenated flame retardant present in addition to the flame retardant material may be present at about 0.1% to about 40% by weight (based on the weight of the prepreg), more specifically about 0.1% to about 15% by weight, e.g., about 5% to about 15% by weight. If desired, two different halogenated flame retardants can be added to the prepreg. In other examples, a non-halogenated flame retardant (e.g., a flame retardant containing one or more of N, P, As, Sb, Bi, S, Se, and Te) can be added. In some embodiments, the non-halogenated flame retardant can include a phosphorus-containing material, thus making the prepreg or core layer more environmentally friendly. When a non-halogenated or substantially halogen-free flame retardant is present, the flame retardant is desirably present in a flame retardant amount that can vary depending on the other components present. For example, the substantially halogen-free flame retardant may be present at about 0.1% to about 40% by weight (based on the weight of the prepreg), more specifically about 5% to about 40% by weight, e.g., about 5% to about 15% by weight based on the weight of the prepreg. If desired, two different substantially halogen-free flame retardants can be added to the prepreg.In certain examples, the prepregs described herein may contain one or more halogenated flame retardants in combination with one or more substantially halogen-free flame retardants. When two different flame retardants are present, the combination of the two flame retardants may be present in an amount that can vary depending on the other components present. For example, the total weight of the flame retardants present may be from about 0.1% to about 40% by weight (based on the weight of the prepreg or core), more specifically from about 5% to about 40% by weight, e.g., from about 2% to about 14% by weight based on the weight of the prepreg or core. The flame retardants used in the prepregs or cores described herein may be added to the mixture containing the thermoplastic material and fibers (before disposing of the mixture on a wire screen or other processing element) or may be added after the prepreg or core is formed.
[0036] In certain examples, the film layer 120 can be bonded directly to the prepreg or core layer 110, or an adhesive layer can be present between the prepreg or core layer 110 and the film layer 120, or the film layer 120 itself can include an adhesive layer or a layer that can function to adhere other layers of the film layer 120 to the prepreg or core layer 110. Various specific configurations of film layers that can be used are described in detail below. Generally, the film layer includes one or more polymer layers that can provide desired physical properties to the overall article. For example, the film layer 120 can be selected to smooth the article by hiding the rough surface of the prepreg or core layer 110. In other examples, the film layer 120 can provide an article with a non-smooth surface such that a certain surface roughness is present. In yet other examples, the film layer can hide or mask underlying roughness in the prepreg or core layer 110 while simultaneously providing a desired texture or feel to the composite article including the film layer 120. In certain instances, a rough prepreg or core layer 110 may be used in combination with a film layer 120 to provide a textured or non-smooth surface.
[0037] In certain embodiments where film layer 120 comprises one layer, the one layer of film layer 120 provides some texture to the outer surface of the film layer. Each side of film layer 120 need not be textured. For example, the side of film layer 120 facing prepreg or core layer 110 and disposed on surface 112 may be smooth, rough, textured, or have other physical characteristics. The side of film layer 120 facing opposite surface 112 may provide some texture to the entire article, including film layer 120. While various materials can be present in film layer 120, film layer 120 typically comprises one or more thermoplastic materials. For example, certain layers of the film may comprise materials described in U.S. Patent No. 20170217121.
[0038] In some configurations, the composite article may include an additional layer disposed on another surface of the prepreg or core layer 110. Referring to FIG. 1B, a skin layer 160 is shown disposed on the surface 114 of the prepreg or core layer 110. If desired, the skin layer 160 may be the same as or different from the film layer 120. For example, the layer 160 may include, for example, a scrim (e.g., a fiber-based scrim), a foil, a woven fabric, a nonwoven fabric, or may be present as an inorganic coating, an organic coating, or a thermoset coating disposed on the prepreg or core layer 110. In other examples, the layer 160 may include a limiting oxygen index greater than about 22, as measured according to ISO 4589, dated 1996. When a fiber-based scrim is present as (or as part of) the layer 160, the fiber-based scrim may include at least one of glass fibers, aramid fibers, graphite fibers, carbon fibers, inorganic mineral fibers, metal fibers, metallized synthetic fibers, and metallized inorganic fibers. If a thermosetting coating is present as (or as part of) layer 160, the coating may include at least one of unsaturated polyurethane, vinyl ester, phenolic, and epoxy. If an inorganic coating is present as (or as part of) layer 160, the inorganic coating may include a mineral containing a cation selected from Ca, Mg, Ba, Si, Zn, Ti, and Al, or may include at least one of gypsum, calcium carbonate, and mortar. If a nonwoven fabric is present as (or as part of) layer 160, the nonwoven fabric may include a thermoplastic material, a thermosetting binder, inorganic fibers, metal fibers, metallized inorganic fibers, and metallized synthetic fibers. The thicknesses of layers 120 and 160 may be the same or different. Optionally, an intermediate layer (not shown) may be present between layers 110 and 120 or between layers 110 and 160.
[0039] 1C , film layer 120 may include one or more thermoplastic materials and a textured surface present on surface 122 of film layer 120. Surface 124 may be textured and smooth, or may have textured and smooth regions. The texture of surface 122 need not be the same or uniform across the entire surface. For example, protrusions or depressions in surface 122 to provide texture may have different sizes and / or depths. In some examples, film layer 120 may include one or more thermoplastic materials, including, but not limited to, both plasticized and unplasticized polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, polyvinyl chloride, and blends of these materials with each other or with other polymeric materials. Other suitable thermoplastic materials that can be present in the film layer 120 include, but are not limited to, polyarylene ether, polycarbonate, polyester carbonate, thermoplastic polyester, polyimide, polyetherimide, polyamide, acrylonitrile-butyl acrylate-styrene polymer, amorphous nylon, polyarylene ether ketone, polyphenylene sulfide, polyarylsulfone, polyethersulfone, liquid crystal polymer, poly(1,4 phenylene) compound commercially available as PARMAX®, high-temperature polycarbonate (e.g., APEC® PC manufactured by Bayer), high-temperature nylon, and silicone, as well as alloys and blends of these materials with each other or with other polymeric materials. In some examples, the film layer can include one or more polyolefin materials, which can exist as homopolymers, copolymers, polymer blends, etc. The film layer can be extruded or coextruded into layers, and patterns or other features can be embossed, pressed, or otherwise formed in the surface 122 of the film layer 120. For example, the surface 122 may be subjected to a physical treatment (eg, sandblasting, powder coating, sanding, etching, etc.) to impart texture to the surface 122.The surface may include protrusions or depressions, or both, to impart some texture to the surface. Optionally, an adhesive layer (not shown) may be used with film layer 120 to bond film layer 120 to an underlying core layer or other layer. In some embodiments, film layer 120 may include a polyurethane material, or layer 120 may be used with a polyurethane adhesive material. Film layer 120 may optionally include additives, such as colorants or fillers (e.g., fibers, particles, etc.).
[0040] In a particular example, and with reference to FIG. 2A , a composite article 200 is shown that includes a prepreg or core layer 210 and a bilayer film 220 disposed on a surface 212 of the prepreg or core layer 210. In a particular example, the prepreg or core layer 210 can include any of the materials and configurations described in connection with the prepreg or core layer 110. For example, the prepreg or core layer 210 can include a thermoplastic material and reinforcing fibers, which can be held in place in the general form of a web by the thermoplastic material. The fibers can generally be arranged randomly without any particular orientation or configuration. In a particular example, the thermoplastic material of the prepreg or core layer 210 can be present in fiber form, particle form, resin form, or other suitable form. In a particular embodiment, the prepreg or core layer 210 generally includes a significant amount of open-cell structure such that voids exist in the prepreg or core layer 210. For example, the prepreg or core layer 210 may have a thickness of 0-30%, 10-40%, 20-50%, 30-60%, 40-70%, 50-80%, 60-90%, 0-40%, 0-50%, 0-60%, 0-70%, 0-80%, 0-90%, 10-50%, 10-60%, 10-70%, 10-80%, 10-90%, 10-95%, 20-60%, 20-70%, 20-80%, 20-90%, 20-95%, 30-70%, 30-80%, 30-90%, 30-95%, 40-80%, 40-90%, 40-95%, 50-90%, 50-95%, 60-95% The prepreg or core layer 210 may include a porosity of 70-80%, 70-90%, 70-95%, 80-90%, 80-95%, or any exemplary value within these exemplary ranges. In some cases, the prepreg or core layer 210 includes a porosity of greater than 0% (e.g., it is not fully consolidated) up to about 95%. Unless otherwise specified, references to a prepreg or core layer 210 with a particular porosity or void volume are based on the total volume of the prepreg or core layer 210, and not necessarily the total volume of the prepreg or core layer 210 plus any other materials or layers combined with the prepreg or core layer 210.
[0041] In certain embodiments, the thermoplastic material of the prepreg or core layer 210 may comprise, at least in part, one or more of polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, and polyvinyl chloride, both plasticized and unplasticized, as well as blends of these materials with each other or with other polymeric materials. Other suitable thermoplastics include, but are not limited to, polyarylene ether, polycarbonate, polyester carbonate, thermoplastic polyester, polyimide, polyetherimide, polyamide, acrylonitrile-butyl acrylate-styrene polymer, amorphous nylon, polyarylene ether ketone, polyphenylene sulfide, polyarylsulfone, polyethersulfone, liquid crystal polymer, poly(1,4 phenylene) compound commercially available as PARMAX®, high-temperature polycarbonate (e.g., APEC® PC manufactured by Bayer), high-temperature nylon, and silicone, as well as alloys and blends of these materials with each other or with other polymeric materials. The raw thermoplastic material used to form the prepreg or core layer 210 can be in powder form, resin form, rosin form, fiber form, or other suitable form. Various forms of exemplary thermoplastic materials are described herein and also in, for example, U.S. Patent Publication No. 20130244528 and U.S. Patent No. 20120065283. The exact amount of thermoplastic material present in the prepreg or core layer 210 can vary, with exemplary amounts ranging from about 20% to about 80% by weight.
[0042] In particular examples, the reinforcing fibers of the prepreg or core layer 210 described herein can include glass fibers, carbon fibers, graphite fibers, synthetic organic fibers (particularly high modulus organic fibers (e.g., para- and meta-aramid fibers, nylon fibers, polyester fibers, or any high melt flow index resin suitable for use as fibers)), natural fibers (e.g., hemp, sisal, jute, flax, coir, kenaf, and cellulose fibers), mineral fibers (e.g., basalt, mineral wool (e.g., rock or slag wool), wollastonite, alumina-silica, etc., or mixtures thereof), metal fibers, metallized natural and / or synthetic fibers, ceramic fibers, yarn fibers, or mixtures thereof. In some cases, one type of reinforcing fiber can be used in conjunction with mineral fibers (e.g., fibers formed by spinning or drawing molten minerals). Exemplary mineral fibers include, but are not limited to, mineral wool fibers, glass wool fibers, stone wool fibers, and ceramic wool fibers. In some embodiments, any of the foregoing fibers can be chemically treated prior to use to provide desired functional groups or impart other physical properties to the fibers. The total fiber content of the prepreg or core layer 210 can be about 20% to about 90% by weight of the prepreg, more specifically, about 30% to about 70% by weight of the prepreg. Typically, the fiber content of a composite article comprising the prepreg or core layer 210 varies between about 20% and about 90% by weight of the composite article, more specifically, between about 30% and about 80% by weight (e.g., between about 40% and about 70% by weight). The particular size and / or orientation of the fibers used can depend, at least in part, on the polymeric material used and / or the desired properties of the resulting prepreg. Suitable additional fiber types, fiber sizes, and amounts will be readily selected by one of ordinary skill in the art given the benefit of this disclosure. In one non-limiting example, the fibers dispersed within the thermoplastic material to provide the prepreg or core layer generally have a diameter greater than about 5 micrometers, more specifically, a diameter of about 5 micrometers to about 22 micrometers, and a length of about 5 mm to about 200 mm.More specifically, the fiber diameter can be from about 5 micrometers to about 22 micrometers, and the fiber length can be from about 5 mm to about 75 mm. In some configurations, the flame-retardant material can be present in fibrous form. For example, the prepreg or core layer 210 can include a thermoplastic material, a reinforcing fiber, and a fiber comprising a flame-retardant material (e.g., a fiber comprising an EG material or an inorganic flame-retardant material). The flame-retardant fiber can include any one or more of the flame-retardant materials described herein (e.g., a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers, or an EG material mixed with a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers).
[0043] In some configurations, the prepreg or core layer 210 can be substantially halogen-free or halogen-free to meet the limits of hazardous substance requirements for a particular application. In other examples, the prepreg can contain halogenated flame retardants (which can be present in or added to the flame retardant material) (e.g., one or more of F, Cl, Br, I, and At, or halogen-containing compounds such as tetrabromobisphenol A polycarbonate, or monohalo-, dihalo-, trihalo-, or tetrahalo-polycarbonates). In some cases, the thermoplastic material used in the prepreg and core can contain one or more halogens to impart some degree of flame retardancy without the addition of a separate flame retardant. For example, the thermoplastic material can be halogenated in addition to the flame retardant material being present, or the raw thermoplastic material can be halogenated and used on its own. If a halogenated flame retardant is present, the flame retardant is desirably present in a flame retardant amount, which can vary depending on the other components present. For example, a halogenated flame retardant present in addition to the flame retardant material may be present at about 0.1% to about 15% by weight (based on the weight of the prepreg), more specifically about 1% to about 13% by weight, e.g., about 5% to about 13% by weight. If desired, two different halogenated flame retardants can be added to the prepreg. In other examples, a non-halogenated flame retardant (e.g., a flame retardant containing one or more of N, P, As, Sb, Bi, S, Se, and Te) can be added. In some embodiments, the non-halogenated flame retardant can include a phosphorus-containing material, so the prepreg or core layer can be more environmentally friendly. When a non-halogenated or substantially halogen-free flame retardant is present, the flame retardant is desirably present in a flame retardant amount that can vary depending on the other components present. For example, the substantially halogen-free flame retardant may be present at about 0.1% to about 40% by weight (based on the weight of the prepreg), more specifically about 5% to about 40% by weight, e.g., about 5% to about 15% by weight based on the weight of the prepreg. If desired, two different substantially halogen-free flame retardants can be added to the prepreg.In certain examples, the prepregs described herein may contain one or more halogenated flame retardants in combination with one or more substantially halogen-free flame retardants. When two different flame retardants are present, the combination of the two flame retardants may be present in an amount that can vary depending on the other components present. For example, the total weight of the flame retardants present may be from about 0.1% to about 40% by weight (based on the weight of the prepreg or core), more specifically from about 5% to about 40% by weight, e.g., from about 2% to about 15% by weight based on the weight of the prepreg or core. The flame retardants used in the prepregs or cores described herein may be added to the mixture containing the thermoplastic material and fibers (before disposing of the mixture on a wire screen or other processing element) or may be added after the prepreg or core is formed.
[0044] In certain examples, the bilayer film 220 can be bonded directly to the prepreg or core layer 210, or an adhesive layer can be present between the prepreg or core layer 210 and the bilayer film 220, or one of the layers of the bilayer film 220 itself can include an adhesive layer or a layer that can function to adhere the other layers of the bilayer film 220 to the prepreg or core layer 210. Generally, the bilayer film 220 includes one or more polymer layers that can provide desired physical properties to the overall article. For example, the bilayer film 220 can be selected to smooth the article by hiding the rough surface of the prepreg or core layer 210. In other examples, the bilayer film 220 can provide texture to the article, such that a specific surface roughness is present. In yet other examples, the bilayer film 220 can hide or cover underlying roughness in the prepreg or core layer 210, while simultaneously providing a desired texture or feel to a composite article that includes the bilayer film 220. In certain instances, a rough prepreg or core layer 210 may be used in combination with the bilayer film 220 to provide a textured or non-smooth surface.
[0045] In certain embodiments, the bilayer film 220 can provide some texture to the outer surface of the film 220. Each side of the film 220 need not be textured. For example, the side of the film 220 facing the prepreg or core layer 210 and disposed on the surface 212 can be smooth, rough, textured, or have other physical characteristics. The side of the film 220 facing away from the surface 212 can provide some texture to the entire article, including the film 220. While various materials can be present in the film 220, the film 220 typically includes one or more thermoplastic materials. For example, certain layers of the film can include materials described in U.S. Patent No. 20170217121. In some examples, at least one layer of the bilayer film 220 includes a thermoplastic material to provide a textured surface, and other layers of the bilayer film 220 function as adhesive layers. As described in US 20170217121, the layers of film 220 may or may not contain fillers.
[0046] In some configurations, the composite article may include an additional layer disposed on another surface of the prepreg or core layer 210. Referring to FIG. 2B , a skin layer 260 is shown disposed on the surface 214 of the prepreg or core layer 210. If desired, the skin layer 260 may be the same as or different from the film layer 120. For example, the layer 260 may include, for example, a scrim (e.g., a fiber-based scrim), a foil, a woven fabric, a nonwoven fabric, or may be present as an inorganic coating, an organic coating, or a thermosetting coating disposed on the prepreg or core layer 210. In other examples, the layer 260 may include a limiting oxygen index greater than about 22, as measured according to ISO 4589, dated 1996. When a fiber-based scrim is present as (or as part of) the layer 260, the fiber-based scrim may include at least one of glass fibers, aramid fibers, graphite fibers, carbon fibers, inorganic mineral fibers, metal fibers, metallized synthetic fibers, and metallized inorganic fibers. When a thermosetting coating is present as (or as part of) layer 260, the coating may include at least one of unsaturated polyurethane, vinyl ester, phenolic, and epoxy. When an inorganic coating is present as (or as part of) layer 260, the inorganic coating may include a mineral containing a cation selected from Ca, Mg, Ba, Si, Zn, Ti, and Al, or may include at least one of gypsum, calcium carbonate, and mortar. When a nonwoven fabric is present as (or as part of) layer 260, the nonwoven fabric may include a thermoplastic material, a thermosetting binder, inorganic fibers, metal fibers, metallized inorganic fibers, and metallized synthetic fibers. The thicknesses of film 220 and layer 260 may be the same or different. Optionally, an intermediate layer (not shown) may be present between layer 210 and film 220 or between layer 210 and layer 260.
[0047] In certain embodiments, and referring to FIG. 2C , bilayer film 220 can include one or more thermoplastic materials and a textured surface present on surface 221 of film layer 220. Bilayer film 220 can include, for example, first film layer 222 and second film layer 224, which can be bonded directly to each other without an intervening layer or material, or can be bonded to each other via adhesive, spot welding, or other means. Surface 223 can be textured and smooth, or can have textured and smooth regions. The texture of surface 221 need not be the same or uniform across the entire surface. For example, protrusions or depressions in surface 221 to provide texture can have different sizes and / or depths. In some examples, each layer 222, 224 of the bilayer film 220 may comprise one or more thermoplastic materials, including, but not limited to, both plasticized and unplasticized polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, polyvinyl chloride, and blends of these materials with each other or with other polymeric materials. Other suitable thermoplastic materials that can be present in each of the layers 222, 224 of the bilayer film 220 include, but are not limited to, polyarylene ethers, polycarbonates, polyester carbonates, thermoplastic polyesters, polyimides, polyetherimides, polyamides, acrylonitrile-butyl acrylate-styrene polymers, amorphous nylons, polyarylene ether ketones, polyphenylene sulfides, polyarylsulfones, polyethersulfones, liquid crystal polymers, poly(1,4 phenylene) compounds commercially available as PARMAX®, high-temperature polycarbonates (e.g., APEC® PC manufactured by Bayer), high-temperature nylons, and silicones, as well as alloys and blends of these materials with each other or with other polymeric materials. In some examples, the film layers 222, 224 can each include one or more polyolefin materials, which can exist as homopolymers, copolymers, polymer blends, etc.The film layers 222, 224 can be extruded or coextruded into layers, and patterns or other features can be embossed, pressed, or otherwise formed on the surface 221 of the film layer 222. For example, the surface 221 can be subjected to a physical treatment (e.g., sandblasting, powder coating, sanding, etching, etc.) to impart texture to the surface 221. If desired, an adhesive layer (not shown) can be used with the film layer 220 to bond the film layer 220 to an underlying core layer or other layer. In some examples, one of the layers 222, 224 can include a polyurethane material (e.g., a polyurethane adhesive). In some embodiments, the layer 222 can include a polyolefin material (e.g., polyethylene or polypropylene), and the layer 224 can be configured as a hot-melt adhesive layer (e.g., one having a melting temperature of approximately 90°C to 150°C). In other configurations, layer 222 can include a polyolefin material (e.g., polyethylene or polypropylene), and layer 224 can be configured as a tie layer that can bond to core layer 210 or to an adhesive layer present between core layer 210 and layer 224. Any one or more of film layers 222, 224 can optionally include additives (e.g., colorants or fillers (e.g., fibers, particles, etc.)). Alternatively, any one or more of film layers 222, 224 may be free of fillers. While layers 222, 224 are shown as having approximately the same thickness, the overall thickness of any one layer can be the same or different from the other layers. In some examples, bilayer film 220 can include an overall thickness of about 0.1 to about 0.2 mm, although thinner or thicker bilayer film layers can also be used.
[0048] In a particular example, and with reference to FIG. 3A , a composite article 300 is shown that includes a prepreg or core layer 310 and a three-layer film 320 disposed on a surface 312 of the prepreg or core layer 310. In a particular example, the prepreg or core layer 310 can include any of the materials and configurations described in connection with the prepreg or core layer 110. For example, the prepreg or core layer 310 can include a thermoplastic material and reinforcing fibers, which can be held in place in the general form of a web by the thermoplastic material. The fibers can generally be arranged randomly without any particular orientation or configuration. In a particular example, the thermoplastic material of the prepreg or core layer 310 can be present in fiber form, particle form, resin form, or other suitable form. In a particular embodiment, the prepreg or core layer 310 generally includes a significant amount of open-cell structure such that voids exist in the prepreg or core layer 310. For example, the prepreg or core layer 310 may have a thickness of 0-30%, 10-40%, 20-50%, 30-60%, 40-70%, 50-80%, 60-90%, 0-40%, 0-50%, 0-60%, 0-70%, 0-80%, 0-90%, 10-50%, 10-60%, 10-70%, 10-80%, 10-90%, 10-95%, 20-60%, 20-70%, 20-80%, 20-90%, 20-95%, 30-70%, 30-80%, 30-90%, 30-95%, 40-80%, 40-90%, 40-95%, 50-90%, 50-95%, 60-95% The prepreg or core layer 310 may include a porosity of 70-80%, 70-90%, 70-95%, 80-90%, 80-95%, or any exemplary value within these exemplary ranges. In some cases, the prepreg or core layer 310 includes a porosity of greater than 0% (e.g., it is not fully consolidated) up to about 95%. Unless otherwise specified, references to a prepreg or core layer 310 with a particular porosity or void volume are based on the total volume of the prepreg or core layer 310, and not necessarily the total volume of the prepreg or core layer 310 plus any other materials or layers combined with the prepreg or core layer 310.
[0049] In certain embodiments, the thermoplastic material of the prepreg or core layer 310 may comprise, at least in part, one or more of polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, and polyvinyl chloride, both plasticized and unplasticized, as well as blends of these materials with each other or with other polymeric materials. Other suitable thermoplastics include, but are not limited to, polyarylene ether, polycarbonate, polyester carbonate, thermoplastic polyester, polyimide, polyetherimide, polyamide, acrylonitrile-butyl acrylate-styrene polymer, amorphous nylon, polyarylene ether ketone, polyphenylene sulfide, polyarylsulfone, polyethersulfone, liquid crystal polymer, poly(1,4 phenylene) compound commercially available as PARMAX®, high-temperature polycarbonate (e.g., APEC® PC manufactured by Bayer), high-temperature nylon, and silicone, as well as alloys and blends of these materials with each other or with other polymeric materials. The raw thermoplastic material used to form the prepreg or core layer 310 can be in powder form, resin form, rosin form, fiber form, or other suitable form. Various forms of exemplary thermoplastic materials are described herein and also in, for example, U.S. Patent Publication No. 20130244528 and U.S. Patent No. 20120065283. The exact amount of thermoplastic material present in the prepreg or core layer 310 can vary, with exemplary amounts ranging from about 20% to about 80% by weight.
[0050] In particular examples, the reinforcing fibers of the prepreg or core layer 310 described herein can include glass fibers, carbon fibers, graphite fibers, synthetic organic fibers (particularly high modulus organic fibers (e.g., para- and meta-aramid fibers, nylon fibers, polyester fibers, or any high melt flow index resin suitable for use as fibers)), natural fibers (e.g., hemp, sisal, jute, flax, coir, kenaf, and cellulose fibers), mineral fibers (e.g., basalt, mineral wool (e.g., rock or slag wool), wollastonite, alumina-silica, etc., or mixtures thereof), metal fibers, metallized natural and / or synthetic fibers, ceramic fibers, yarn fibers, or mixtures thereof. In some cases, one type of reinforcing fiber can be used in conjunction with mineral fibers (e.g., fibers formed by spinning or drawing molten minerals). Exemplary mineral fibers include, but are not limited to, mineral wool fibers, glass wool fibers, stone wool fibers, and ceramic wool fibers. In some embodiments, any of the foregoing fibers can be chemically treated prior to use to provide desired functional groups or impart other physical properties to the fibers. The total fiber content of the prepreg or core layer 310 can be from about 20% to about 90% by weight of the prepreg or core layer 310, more specifically, from about 30% to about 70% by weight of the prepreg or core layer 310. Typically, the fiber content of a composite article comprising the prepreg or core layer 310 varies between about 20% and about 90% by weight of the composite article, more specifically, between about 30% and about 80% by weight (e.g., between about 40% and about 70% by weight). The particular size and / or orientation of the fibers used can depend, at least in part, on the polymeric material used and / or the desired properties of the resulting prepreg. Suitable additional fiber types, fiber sizes, and amounts will be readily selected by the person of ordinary skill in the art, given the benefit of this disclosure. In one non-limiting example, the fibers dispersed within the thermoplastic material to provide the prepreg or core layer generally have a diameter greater than about 5 micrometers, more specifically a diameter of about 5 micrometers to about 22 micrometers, and a length of about 5 mm to about 200 mm.More specifically, the fiber diameter can be from about 5 micrometers to about 22 micrometers, and the fiber length can be from about 5 mm to about 75 mm. In some configurations, the flame-retardant material can be present in fibrous form. For example, the prepreg or core layer 310 can include a thermoplastic material, a reinforcing fiber, and a fiber comprising a flame-retardant material (e.g., a fiber comprising an EG material or an inorganic flame-retardant material). The flame-retardant fiber can include any one or more of the flame-retardant materials described herein (e.g., a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers, or an EG material mixed with a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers).
[0051] In some configurations, the prepreg or core layer 310 can be substantially halogen-free or halogen-free to meet the hazardous materials requirements of a particular application. In other examples, the prepreg can contain halogenated flame retardants (which can be present in or added to the flame retardant material) (e.g., one or more of F, Cl, Br, I, and At, or halogen-containing compounds such as tetrabromobisphenol A polycarbonate, or monohalo-, dihalo-, trihalo-, or tetrahalo-polycarbonates). In some cases, the thermoplastic material used in the prepreg and core can contain one or more halogens to impart some degree of flame retardancy without the addition of a separate flame retardant. For example, the thermoplastic material can be halogenated in addition to the flame retardant material present, or the raw thermoplastic material can be halogenated and used on its own. If a halogenated flame retardant is present, the flame retardant is desirably present in a flame retardant amount, which can vary depending on the other components present. For example, a halogenated flame retardant present in addition to the flame retardant material may be present in an amount of about 0.1% to about 40% by weight (based on the weight of the prepreg), more specifically about 1% to about 13% by weight, e.g., about 5% to about 13% by weight. If desired, two different halogenated flame retardants can be added to the prepreg. In another example, a non-halogenated flame retardant (e.g., a flame retardant containing one or more of N, P, As, Sb, Bi, S, Se, and Te) can be added. In some embodiments, the non-halogenated flame retardant can include a phosphorus-containing material, so the prepreg or core layer can be more environmentally friendly. When a non-halogenated or substantially halogen-free flame retardant is present, the flame retardant is desirably present in an amount that can vary depending on the other components present. For example, the substantially halogen-free flame retardant may be present at about 0.1% to about 40% by weight (based on the weight of the prepreg), more specifically about 5% to about 40% by weight, e.g., about 5% to about 15% by weight based on the weight of the prepreg. If desired, two different substantially halogen-free flame retardants can be added to the prepreg.In certain examples, the prepregs described herein may contain one or more halogenated flame retardants in combination with one or more substantially halogen-free flame retardants. When two different flame retardants are present, the combination of the two flame retardants may be present in an amount that can vary depending on the other components present. For example, the total weight of the flame retardants present may be from about 0.1% to about 40% by weight (based on the weight of the prepreg or core), more specifically from about 5% to about 40% by weight, e.g., from about 2% to about 15% by weight based on the weight of the prepreg or core. The flame retardants used in the prepregs or cores described herein may be added to the mixture containing the thermoplastic material and fibers (before disposing of the mixture on a wire screen or other processing element) or may be added after the prepreg or core is formed.
[0052] In certain examples, the tri-layer film 320 can be bonded directly to the prepreg or core layer 310, or an adhesive layer can be present between the prepreg or core layer 310 and the tri-layer film 320, or one of the layers of the tri-layer film 320 itself can include an adhesive layer or a layer that can function to adhere the other layers of the tri-layer film 320 to the prepreg or core layer 310. Generally, the tri-layer film 320 includes one or more polymer layers that can provide desired physical properties to the overall article. For example, the tri-layer film 320 can be selected to smooth the article by hiding the rough surface of the prepreg or core layer 310. In other examples, the tri-layer film 320 can provide texture to the article, such that a specific surface roughness is present. In yet other examples, the tri-layer film 320 can hide or cover underlying roughness in the prepreg or core layer 310, while simultaneously providing a desired texture or feel to a composite article that includes the tri-layer film 320. In certain instances, a rough prepreg or core layer 310 may be used in combination with the three-layer film 320 to provide a textured or non-smooth surface.
[0053] In certain embodiments, the three-layer film 320 can provide some texture to the outer surface of the film 320. Each side of the film 320 need not be textured. For example, the side of the film 320 facing the prepreg or core layer 310 and disposed on the surface 312 can be smooth, rough, textured, or have other physical characteristics. The side of the film 320 facing away from the surface 312 can provide some texture to the entire article, including the film 320. While various materials can be present in the film 320, the film 320 typically includes one or more thermoplastic materials. For example, certain layers of the film can include materials described in U.S. Patent No. 20170217121. In some examples, at least one layer of the three-layer film 320 includes a thermoplastic material to provide a textured surface. In some examples, one layer of the three-layer film 320 can function as an adhesive layer. Optionally, a tie layer may be present between the textured surface layer and the adhesive layer of the three-layer film 320. As described in U.S. Patent No. 20170217121, the various film layers of the film 320 may or may not contain fillers.
[0054] In certain configurations, and referring to FIG. 3C , a three-layer film 320 can include one or more thermoplastic materials and a textured surface present on a surface 321 of the film layer 320. The three-layer film 320 can include a first film layer 322, a second film layer 324, and a third film layer 326. Each of the film layers 322, 324, and 326 can be bonded directly to one another, for example, without an intervening layer or material, or can be bonded to one another via adhesive, spot welding, or other means. The surface 323 can be textured and smooth, or can have textured and smooth regions. The texture of the surface 321 need not be the same or uniform across the entire surface. For example, protrusions or depressions in the surface 321 to provide the texture can have different sizes and / or depths. In some examples, each layer 322, 324, 326 of the three-layer film 320 may comprise one or more thermoplastic materials, including, but not limited to, both plasticized and unplasticized polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, polyvinyl chloride, and blends of these materials with each other or with other polymeric materials. Other suitable thermoplastic materials that can be present in each of the layers 322, 324, 326 of the three-layer film 320 include, but are not limited to, polyarylene ether, polycarbonate, polyester carbonate, thermoplastic polyester, polyimide, polyetherimide, polyamide, acrylonitrile-butyl acrylate-styrene polymer, amorphous nylon, polyarylene ether ketone, polyphenylene sulfide, polyarylsulfone, polyethersulfone, liquid crystal polymer, poly(1,4 phenylene) compound commercially available as PARMAX®, high-temperature polycarbonate (e.g., APEC® PC manufactured by Bayer), high-temperature nylon, and silicone, as well as alloys and blends of these materials with each other or with other polymeric materials. In some examples, the film layers 322, 324, 326 can each include one or more polyolefin materials, which can exist as homopolymers, copolymers, polymer blends, etc.The film layers 322, 324, 326 can be extruded or coextruded into layers, and patterns or other features can be embossed, pressed, or otherwise formed on the surface 321 of the film layer 322. For example, the surface 321 can be subjected to a physical treatment (e.g., sandblasting, powder coating, sanding, etching, etc.) to impart texture to the surface 321. If desired, an adhesive layer (not shown) can be used with the film layer 320 to bond the film layer 320 to an underlying core layer or other layer. In some examples, one of the layers 322, 326 can include a polyurethane material (e.g., a polyurethane adhesive). In some embodiments, the layer 322 can include a polyolefin material (e.g., polyethylene or polypropylene), and the layer 326 can be configured as a hot-melt adhesive layer (e.g., one having a melting temperature of approximately 90°C to 150°C). In other configurations, layer 322 can include a polyolefin material (e.g., polyethylene or polypropylene), layer 324 can be configured as a tie layer, e.g., it can also include a polyolefin (e.g., polyethylene or polypropylene), and layer 326 can be configured as a hot melt adhesive as described herein. In some embodiments, the outer layer (e.g., layer 322) can include a polyurethane material having a textured surface. Any one or more of film layers 322, 324, and 326 can optionally include additives (e.g., colorants or fillers (e.g., fibers, particles, etc.)). Alternatively, any one or more of film layers 322, 324, and 326 can be filler-free. While layers 322, 324, and 326 are shown as having approximately the same thickness, the overall thickness of any one layer can be the same or different from the other layers. In some examples, the tri-layer film 320 may include a total thickness of about 0.1 to about 0.2 mm, although thinner or thicker tri-film layers may also be used.
[0055] In a particular example, and with reference to FIG. 4A , a composite article 400 is shown that includes a prepreg or core layer 410 and a four-layer film 420 disposed on a surface 412 of the prepreg or core layer 410. In a particular example, the prepreg or core layer 410 can include any of the materials and configurations described in connection with the prepreg or core layer 110. For example, the prepreg or core layer 410 can include a thermoplastic material and reinforcing fibers, which can be held in place in the general form of a web by the thermoplastic material. The fibers can generally be arranged randomly without any particular orientation or configuration. In a particular example, the thermoplastic material of the prepreg or core layer 410 can be present in fiber form, particle form, resin form, or other suitable form. In a particular embodiment, the prepreg or core layer 410 generally includes a significant amount of open-cell structure such that voids exist in the prepreg or core layer 410. For example, the prepreg or core layer 410 may have a thickness of 0-30%, 10-40%, 20-50%, 30-60%, 40-70%, 50-80%, 60-90%, 0-40%, 0-50%, 0-60%, 0-70%, 0-80%, 0-90%, 10-50%, 10-60%, 10-70%, 10-80%, 10-90%, 10-95%, 20-60%, 20-70%, 20-80%, 20-90%, 20-95%, 30-70%, 30-80%, 30-90%, 30-95%, 40-80%, 40-90%, 40-95%, 50-90%, 50-95%, 60-95% The prepreg or core layer 410 may include a porosity of 70-80%, 70-90%, 70-95%, 80-90%, 80-95%, or any exemplary value within these exemplary ranges. In some cases, the prepreg or core layer 410 includes a porosity of greater than 0% (e.g., it is not fully consolidated) up to about 95%. Unless otherwise specified, references to a prepreg or core layer 410 with a particular porosity or void volume are based on the total volume of the prepreg or core layer 410, and not necessarily the total volume of the prepreg or core layer 410 plus any other materials or layers combined with the prepreg or core layer 410.
[0056] In certain embodiments, the thermoplastic material of the prepreg or core layer 410 may comprise, at least in part, one or more of polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, and polyvinyl chloride, both plasticized and unplasticized, as well as blends of these materials with each other or with other polymeric materials. Other suitable thermoplastics include, but are not limited to, polyarylene ether, polycarbonate, polyester carbonate, thermoplastic polyester, polyimide, polyetherimide, polyamide, acrylonitrile-butyl acrylate-styrene polymer, amorphous nylon, polyarylene ether ketone, polyphenylene sulfide, polyarylsulfone, polyethersulfone, liquid crystal polymer, poly(1,4 phenylene) compound commercially available as PARMAX®, high-temperature polycarbonate (e.g., APEC® PC manufactured by Bayer), high-temperature nylon, and silicone, as well as alloys and blends of these materials with each other or with other polymeric materials. The raw thermoplastic material used to form the prepreg or core layer 410 can be in powder form, resin form, rosin form, fiber form, or other suitable form. Various forms of exemplary thermoplastic materials are described herein and also in, for example, U.S. Patent Publication No. 20130244528 and U.S. Patent No. 20120065283. The exact amount of thermoplastic material present in the prepreg or core layer 410 can vary, with exemplary amounts ranging from about 20% to about 80% by weight.
[0057] In particular examples, the reinforcing fibers of the prepreg or core layer 410 described herein can include glass fibers, carbon fibers, graphite fibers, synthetic organic fibers (particularly high modulus organic fibers (e.g., para- and meta-aramid fibers, nylon fibers, polyester fibers, or any high melt flow index resin suitable for use as fibers)), natural fibers (e.g., hemp, sisal, jute, flax, coir, kenaf, and cellulose fibers), mineral fibers (e.g., basalt, mineral wool (e.g., rock or slag wool), wollastonite, alumina-silica, etc., or mixtures thereof), metal fibers, metallized natural and / or synthetic fibers, ceramic fibers, yarn fibers, or mixtures thereof. In some cases, one type of reinforcing fiber can be used in conjunction with mineral fibers (e.g., fibers formed by spinning or drawing molten minerals). Exemplary mineral fibers include, but are not limited to, mineral wool fibers, glass wool fibers, stone wool fibers, and ceramic wool fibers. In some embodiments, any of the foregoing fibers can be chemically treated prior to use to provide desired functional groups or impart other physical properties to the fibers. The total fiber content of the prepreg or core layer 410 can be from about 20% to about 90% by weight of the prepreg or core layer 410, more specifically, from about 30% to about 70% by weight of the prepreg or core layer 410. Typically, the fiber content of a composite article comprising the prepreg or core layer 410 varies between about 20% and about 90% by weight of the composite article, more specifically, between about 30% and about 80% by weight (e.g., between about 40% and about 70% by weight). The particular size and / or orientation of the fibers used can depend, at least in part, on the polymeric material used and / or the desired properties of the resulting prepreg. Suitable additional fiber types, fiber sizes, and amounts will be readily selected by the person of ordinary skill in the art given the benefit of this disclosure. In one non-limiting example, the fibers dispersed within the thermoplastic material to provide the prepreg or core layer generally have a diameter greater than about 5 micrometers, more specifically a diameter of about 5 micrometers to about 22 micrometers, and a length of about 5 mm to about 200 mm.More specifically, the fiber diameter can be from about 5 micrometers to about 22 micrometers, and the fiber length can be from about 5 mm to about 75 mm. In some configurations, the flame-retardant material can be present in fibrous form. For example, the prepreg or core layer 410 can include a thermoplastic material, a reinforcing fiber, and a fiber comprising a flame-retardant material (e.g., a fiber comprising an EG material or an inorganic flame-retardant material). The flame-retardant fiber can include any one or more of the flame-retardant materials described herein (e.g., a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers, or an EG material mixed with a polypropylene fiber compounded with a hydroxide, extruded using a suitable die or other device and cut into fibers).
[0058] In some configurations, the prepreg or core layer 410 can be substantially halogen-free or halogen-free to meet the hazardous materials requirements of a particular application. In other examples, the prepreg can contain halogenated flame retardants (which can be present in or added to the flame retardant material) (e.g., one or more of F, Cl, Br, I, and At, or halogen-containing compounds such as tetrabromobisphenol A polycarbonate or monohalo-, dihalo-, trihalo-, or tetrahalo-polycarbonates). In some cases, the thermoplastic material used in the prepreg and core can contain one or more halogens to impart some degree of flame retardancy without the addition of a separate flame retardant. For example, the thermoplastic material can be halogenated in addition to the flame retardant material present, or the raw thermoplastic material can be halogenated and used on its own. If a halogenated flame retardant is present, the flame retardant is desirably present in a flame retardant amount, which can vary depending on the other components present. For example, a halogenated flame retardant present in addition to the flame retardant material may be present at about 0.1% to about 15% by weight (based on the weight of the prepreg), more specifically about 1% to about 13% by weight, e.g., about 5% to about 13% by weight. If desired, two different halogenated flame retardants can be added to the prepreg. In other examples, a non-halogenated flame retardant (e.g., a flame retardant containing one or more of N, P, As, Sb, Bi, S, Se, and Te) can be added. In some embodiments, the non-halogenated flame retardant can include a phosphorus-containing material, so the prepreg or core layer can be more environmentally friendly. When a non-halogenated or substantially halogen-free flame retardant is present, the flame retardant is desirably present in a flame retardant amount that can vary depending on the other components present. For example, the substantially halogen-free flame retardant may be present at about 0.1% to about 40% by weight (based on the weight of the prepreg), more specifically about 5% to about 40% by weight, e.g., about 5% to about 15% by weight based on the weight of the prepreg. If desired, two different substantially halogen-free flame retardants can be added to the prepreg.In certain examples, the prepregs described herein may contain one or more halogenated flame retardants in combination with one or more substantially halogen-free flame retardants. When two different flame retardants are present, the combination of the two flame retardants may be present in an amount that can vary depending on the other components present. For example, the total weight of the flame retardants present may be from about 0.1% to about 40% by weight (based on the weight of the prepreg or core), more specifically from about 51% to about 40% by weight, e.g., from about 2% to about 15% by weight based on the weight of the prepreg or core. The flame retardants used in the prepregs or cores described herein may be added to the mixture containing the thermoplastic material and fibers (before disposing of the mixture on a wire screen or other processing element) or may be added after the prepreg or core is formed.
[0059] In certain examples, the four-layer film 420 can be bonded directly to the prepreg or core layer 410, or an adhesive layer can be present between the prepreg or core layer 410 and the four-layer film 420, or one of the layers of the four-layer film 420 itself can include an adhesive layer or a layer that can function to adhere the other layers of the four-layer film 420 to the prepreg or core layer 410. Generally, the four-layer film 420 includes one or more polymer layers that can provide desired physical properties to the overall article. For example, the four-layer film 420 can be selected to smooth the article by hiding the rough surface of the prepreg or core layer 410. In other examples, the four-layer film 420 can provide texture to the article such that a specific surface roughness is present. In yet other examples, the four-layer film 420 can hide or cover underlying roughness of the prepreg or core layer 410 while simultaneously providing a desired texture or feel to a composite article that includes the four-layer film 420. In certain instances, a rough prepreg or core layer 410 may be used in combination with the four layer film 420 to provide a textured or non-smooth surface.
[0060] In certain embodiments, the four-layer film 420 can provide some texture to the outer surface of the film 420. Each side of the film 420 need not be textured. For example, the side of the film 420 facing the prepreg or core layer 410 and disposed on the surface 412 can be smooth, rough, textured, or have other physical characteristics. The side of the film 420 facing away from the surface 412 can provide some texture to the entire article, including the film 420. While various materials can be present in the film 420, the film 420 typically includes one or more thermoplastic materials. For example, certain layers of the film can include materials described in U.S. Patent No. 20170217121. In some examples, at least one layer of the four-layer film 420 includes a thermoplastic material to provide a textured surface. In some examples, one layer of the four-layer film 420 can function as an adhesive layer. In some cases, a tie layer can be present between the textured layer and the adhesive layer of the three-layer film 420. As described in US 20170217121, the various film layers of film 420 may or may not contain fillers.
[0061] In a particular configuration, and referring to FIG. 4C , a four-layer film 420 can include one or more thermoplastic materials and a textured surface present on the surface 421 of the film layer 420. The four-layer film 420 can include a first film layer 422, a second film layer 424, a third film layer 426, and a fourth film layer 428. Each of the film layers 422, 424, 426, and 428 can be bonded directly to one another, for example, without an intervening layer or material, or can be bonded to one another via adhesive, spot welding, or other means. The surface 423 can be textured and smooth, or can have textured and smooth regions. The texture of the surface 421 need not be the same or uniform across the entire surface. For example, protrusions or depressions in the surface 421 to provide the texture can have different sizes and / or depths. In some examples, each layer 422, 424, 426, 428 of the four-layer film 420 may comprise one or more thermoplastic materials, including, but not limited to, both plasticized and unplasticized polyethylene, polypropylene, polystyrene, acrylonitrile styrene, butadiene, polyethylene terephthalate, polybutylene terephthalate, polybutylene tetrachlorate, polyvinyl chloride, and blends of these materials with each other or with other polymeric materials. Other suitable thermoplastic materials that may be present in each of the layers 422, 424, 426, 428 of the four-layer film 420 include, but are not limited to, polyarylene ethers, polycarbonates, polyester carbonates, thermoplastic polyesters, polyimides, polyetherimides, polyamides, acrylonitrile-butyl acrylate-styrene polymers, amorphous nylons, polyarylene ether ketones, polyphenylene sulfides, polyarylsulfones, polyethersulfones, liquid crystal polymers, poly(1,4 phenylene) compounds commercially available as PARMAX®, high-temperature polycarbonates (such as APEC® PC manufactured by Bayer), high-temperature nylons, and silicones, as well as alloys and blends of these materials with each other or with other polymeric materials.In some examples, film layers 422, 424, 426, 428 may each include one or more polyolefin materials, which may exist as homopolymers, copolymers, polymer blends, etc. Film layers 422, 424, 426, 428 may be extruded or coextruded into layers, and patterns or other features may be embossed, pressed, or otherwise formed in surface 421 of film layer 422. For example, surface 421 may be subjected to a physical treatment (e.g., sandblasting, powder coating, sanding, etching, etc.) to impart texture to surface 421. Optionally, an adhesive layer (not shown) may be used with film layer 420 to bond film layer 420 to an underlying core layer or other layer. In some examples, one of layers 424, 428 may include a polyurethane material (e.g., a polyurethane adhesive). In some embodiments, layer 422 can include a polyolefin material (e.g., polyethylene or polypropylene), and layer 428 can be configured as a hot melt adhesive layer (e.g., having a melting temperature of approximately 90°C to 150°C). In other configurations, layer 422 can include a polyolefin material (e.g., polyethylene or polypropylene), layer 424 can be configured as a tie layer, e.g., it can also include a polyolefin (e.g., polyethylene or polypropylene), layer 426 can include a polyolefin material or a polyurethane material, and layer 428 can be configured as a hot melt adhesive as described herein. In some embodiments, the outer layer (e.g., layer 422) can include a polyurethane material having a textured surface. Any one or more of film layers 422, 424, 426, and 428 can optionally include additives (e.g., colorants or fillers (e.g., fibers, particles, etc.)). Alternatively, any one or more of film layers 422, 424, 426, 428 may be free of fillers. While layers 422, 424, 426, and 428 are shown as having approximately the same thickness, the overall thickness of any one layer may be the same or different from the other layers. In some examples, four-layer film 420 may include an overall thickness of about 0.1 to about 0.2 mm, although thinner or thicker three-layer film layers may also be used.
[0062] Although single-, two-, three-, and four-layer films are shown and described herein in the various figures, one of ordinary skill in the art, given the benefit of this disclosure, will recognize that five, six, seven, eight, or more layers can also be used, if desired. When five or more layer films are used, the multilayer film desirably imparts some texture to the surface of the article comprising the multilayer film.
[0063] In certain embodiments, the prepreg or core layers described herein can be present in a stack or ply article. Referring to FIG. 5 , the article includes a first prepreg or core layer 510 stacked on a second prepreg or core layer 515. A monolayer textured film 520 is disposed on a surface of the layer 510. The monolayer textured film 520 can be configured similarly to film 120. Although not shown, a skin layer can be disposed on the surface 516 of the layer 515. For example, the layer disposed on the surface 516 can be the same as or different from the film layer 520. The layer disposed on the surface 516 can include, for example, a scrim (e.g., a fiber-based scrim), foil, woven fabric, nonwoven fabric, or can be present as an inorganic coating, organic coating, or thermoset coating disposed on the prepreg or core layer 515. In other examples, the layer disposed on the surface 516 can have a limiting oxygen index of greater than about 22, as measured according to ISO 4589, dated 1996. If a fiber-based scrim is present as (or as part of) a layer disposed on surface 516, the fiber-based scrim may include at least one of glass fibers, aramid fibers, graphite fibers, carbon fibers, inorganic mineral fibers, metal fibers, metallized synthetic fibers, and metallized inorganic fibers. If a thermosetting coating is present as (or as part of) a layer disposed on surface 516, the coating may include at least one of unsaturated polyurethane, vinyl ester, phenolic, and epoxy. If an inorganic coating is present as (or as part of) a layer disposed on surface 516, the inorganic coating may include a mineral containing a cation selected from Ca, Mg, Ba, Si, Zn, Ti, and Al, or may include at least one of gypsum, calcium carbonate, and mortar. If a nonwoven fabric is present as (or as part of) a layer disposed on surface 516, the nonwoven fabric may include a thermoplastic material, a thermosetting binder, inorganic fibers, metal fibers, metallized inorganic fibers, and metallized synthetic fibers. Optionally, an intermediate layer (not shown) can be present between layers 510 and 520 or between layers 510 and 515. Layers 510, 515 can be the same or different.Additionally, layers 510, 515 may include the same material but have different thicknesses. In some instances, layers 510, 515 may include different amounts of the same material, e.g., more fibers may be present in one of layers 510, 515.
[0064] In some examples, an article having stacked prepreg or core layers can include a bilayer film. Referring to FIG. 6 , the article includes a first prepreg or core layer 610 stacked on a second prepreg or core layer 615. A bilayer textured film 620 is disposed on a surface of the layer 610. The bilayer textured film 620 can be configured similarly to, for example, film 220. Although not shown, a skin layer can be disposed on the surface 616 of the layer 615. For example, the layer disposed on the surface 616 can be the same as or different from the film layer 620. The layer disposed on the surface 616 can include, for example, a scrim (e.g., a fiber-based scrim), foil, woven fabric, nonwoven fabric, or can be present as an inorganic coating, organic coating, or thermoset coating disposed on the prepreg or core layer 615. In other examples, the layer disposed on the surface 616 can include a limiting oxygen index of greater than about 22, as measured according to ISO 4589, dated 1996. If a fiber-based scrim is present as (or as part of) a layer disposed on surface 616, the fiber-based scrim may include at least one of glass fibers, aramid fibers, graphite fibers, carbon fibers, inorganic mineral fibers, metal fibers, metallized synthetic fibers, and metallized inorganic fibers. If a thermosetting coating is present as (or as part of) a layer disposed on surface 616, the coating may include at least one of unsaturated polyurethane, vinyl ester, phenolic, and epoxy. If an inorganic coating is present as (or as part of) a layer disposed on surface 616, the inorganic coating may include a mineral containing a cation selected from Ca, Mg, Ba, Si, Zn, Ti, and Al, or may include at least one of gypsum, calcium carbonate, and mortar. If a nonwoven fabric is present as (or as part of) a layer disposed on surface 616, the nonwoven fabric may include a thermoplastic material, a thermosetting binder, inorganic fibers, metal fibers, metallized inorganic fibers, and metallized synthetic fibers. Optionally, an intermediate layer (not shown) can be present between layers 610 and 620 or between layers 610 and 615. Layers 610, 615 can be the same or different.Additionally, layers 610, 615 may include the same material but have different thicknesses. In some instances, layers 610, 615 may include different amounts of the same material, e.g., more fibers may be present in one of layers 610, 615.
[0065] In some examples, an article having stacked prepreg or core layers can include a three-layer film. Referring to FIG. 7 , the article includes a first prepreg or core layer 710 stacked on a second prepreg or core layer 715. A three-layer textured film 720 is disposed on a surface of layer 710. The three-layer textured film 720 can be configured similarly to film 320, for example. Although not shown, a skin layer can be disposed on surface 716 of layer 715. For example, the layer disposed on surface 716 can be the same as or different from film layer 720. The layer disposed on surface 716 can include, for example, a scrim (e.g., a fiber-based scrim), foil, woven fabric, nonwoven fabric, or can be present as an inorganic coating, organic coating, or thermoset coating disposed on prepreg or core layer 715. In other examples, the layer disposed on surface 716 can include a limiting oxygen index of greater than about 22, as measured in accordance with ISO 4589, dated 1996. If a fiber-based scrim is present as (or as part of) a layer disposed on surface 716, the fiber-based scrim may include at least one of glass fibers, aramid fibers, graphite fibers, carbon fibers, inorganic mineral fibers, metal fibers, metallized synthetic fibers, and metallized inorganic fibers. If a thermosetting coating is present as (or as part of) a layer disposed on surface 716, the coating may include at least one of unsaturated polyurethane, vinyl ester, phenolic, and epoxy. If an inorganic coating is present as (or as part of) a layer disposed on surface 716, the inorganic coating may include a mineral containing a cation selected from Ca, Mg, Ba, Si, Zn, Ti, and Al, or may include at least one of gypsum, calcium carbonate, and mortar. If a nonwoven fabric is present as (or as part of) a layer disposed on surface 716, the nonwoven fabric may include a thermoplastic material, a thermosetting binder, inorganic fibers, metal fibers, metallized inorganic fibers, and metallized synthetic fibers. Optionally, an intermediate layer (not shown) can be present between layers 710 and 720 or between layers 710 and 715. Layers 710, 715 can be the same or different.Additionally, layers 710, 715 may include the same material but have different thicknesses. In some instances, layers 710, 715 may include different amounts of the same material, e.g., more fibers may be present in one of layers 710, 715.
[0066] In some examples, an article having stacked prepreg or core layers can include a four-layer film. Referring to FIG. 8 , the article includes a first prepreg or core layer 810 stacked on a second prepreg or core layer 815. A four-layer textured film 820 is disposed on a surface of layer 810. The four-layer textured film 820 can be configured similarly to film 420, for example. Although not shown, a skin layer can be disposed on surface 816 of layer 815. For example, the layer disposed on surface 816 can be the same as or different from film layer 820. The layer disposed on surface 816 can include, for example, a scrim (e.g., a fiber-based scrim), foil, woven fabric, nonwoven fabric, or can be present as an inorganic coating, organic coating, or thermoset coating disposed on prepreg or core layer 815. In other examples, the layer disposed on surface 816 can include a limiting oxygen index of greater than about 22, as measured in accordance with ISO 4589, dated 1996. If a fiber-based scrim is present as (or as part of) a layer disposed on surface 816, the fiber-based scrim may include at least one of glass fibers, aramid fibers, graphite fibers, carbon fibers, inorganic mineral fibers, metal fibers, metallized synthetic fibers, and metallized inorganic fibers. If a thermosetting coating is present as (or as part of) a layer disposed on surface 816, the coating may include at least one of unsaturated polyurethane, vinyl ester, phenolic, and epoxy. If an inorganic coating is present as (or as part of) a layer disposed on surface 816, the inorganic coating may include a mineral containing a cation selected from Ca, Mg, Ba, Si, Zn, Ti, and Al, or may include at least one of gypsum, calcium carbonate, and mortar. If a nonwoven fabric is present as (or as part of) a layer disposed on surface 816, the nonwoven fabric may include a thermoplastic material, a thermosetting binder, inorganic fibers, metal fibers, metallized inorganic fibers, and metallized synthetic fibers. Optionally, an intermediate layer (not shown) can be present between layers 810 and 820 or between layers 810 and 815. Layers 810, 815 can be the same or different.Additionally, layers 810, 815 may include the same material but have different thicknesses. In some instances, layers 810, 815 may include different amounts of the same material, e.g., more fibers may be present in one of layers 810, 815.
[0067] Although not shown, the article comprising stacked or bonded prepreg or core layers may also include a film having 5, 6, 7 or more film layers.
[0068] Additional layers (e.g., decorative layers, textured layers, colored layers, etc.) can also be present in the composite articles described herein. For example, the decorative layer can be formed from a thermoplastic film, such as polyvinyl chloride, polyolefin, thermoplastic polyester, or thermoplastic elastomer. The decorative layer can also be a multilayer structure including a foam core, formed from, for example, polypropylene, polyethylene, polyvinyl chloride, polyurethane, or the like. Fabrics (e.g., woven fabrics made from natural and synthetic fibers, nonwoven fabrics of organic fibers after needle punching or the like, brushed fabrics, knitted fabrics, flocked fabrics, or other such materials) can be bonded to the foam core. Fabrics can also be bonded to the foam core with thermoplastic adhesives, including pressure-sensitive adhesives and hot-melt adhesives (e.g., polyamides, modified polyolefins, urethanes, and polyolefins). Decorative layers can also be manufactured using spunbond, thermal bonding, spunlace, meltblowing, wet-laid, and / or dry-laid processes. Thermal insulation layers can also be bonded to one or more surfaces of the articles described herein, and the thermal insulation layer can be open or closed, as desired, e.g., open-cell or closed-cell foam.
[0069] In certain embodiments, any one or more of the articles described herein (e.g., those described in connection with FIGS. 1A-8) can be configured as ceiling tiles. For example, the ceiling tiles can include a textured surface created by a textured film. Referring to FIG. 9, a grid of ceiling tiles 900 is shown, including support structures 902, 903, 904, and 905, with multiple ceiling tiles (e.g., tiles 910) arranged within the grid formed by the support structures. As described herein, the textured film can provide a surface texture to the ceiling tile. In some cases, the ceiling tile 910 includes a core layer bonded to a single layer of textured film. In other examples, the ceiling tile 910 includes a core layer bonded to a two-layer textured film. In some examples, the ceiling tile 910 includes a core layer bonded to a three-layer textured film. In some embodiments, the ceiling tile 910 includes a core layer bonded to a four-layer textured film. Ceiling tiles with five, six, seven, or more layers of film can also be manufactured.
[0070] In certain examples, any one or more of the articles described herein (e.g., those described in connection with FIGS. 1A-8) can be configured as cubicle panels. Referring to FIG. 10, a top view of a cubicle 1000 is shown, including side panels 1010, 1030, and a center panel 1020. Any one or more of the panels 1010-1030 can include one of the LWRT articles described herein (e.g., those including a textured film). In some cases, the cubicle panel includes a core layer bonded to a single layer of textured film. In other examples, the cubicle panel includes a core layer bonded to a two layer of textured film. In some examples, the cubicle panel includes a core layer bonded to a three layer of textured film. In some embodiments, the cubicle panel includes a core layer bonded to a four layer of textured film. Cubicle panels with five, six, seven, or more layers of film can also be manufactured.
[0071] In certain cases, any one or more of the articles described herein (e.g., those described with reference to FIGS. 1A-8 ) can be configured as wallboard or wall panels. The wallboard or wall panel can be configured for use in residential and commercial building applications (e.g., to cover studs or structural members within a building, to cover ceiling joists or trusses, etc.) or can be used in automotive applications (e.g., as recreational vehicle paneling, ceilings, flooring, etc.). If desired, the wall panel can be bonded to another substrate (e.g., tile, wood paneling, gypsum, concrete backer board, foam, or other wall panel substrates commonly used in residential, commercial, and automotive settings). Referring to FIG. 11 , a side view of a wall panel 1100 is shown. The panel 1100 can include any one of the LWRT articles described herein. In some cases, the wall panel 1100 includes a porous core layer 1110 comprising an open-celled web with a random arrangement of reinforcing fibers held together by a thermoplastic material, and a textured film layer 1120 disposed on the core layer 1110. Although not shown, the core layer 1110 can be bonded to an underlying substrate or other material. In some cases, the wall panel includes a core layer bonded to a single-layer textured film. In other examples, the wall panel includes a core layer bonded to a two-layer textured film. In some examples, the wall panel includes a core layer bonded to a three-layer textured film. In some embodiments, the wall panel includes a core layer bonded to a four-layer textured film. Wall panels with five, six, seven, or more layers of film can also be manufactured.
[0072] In certain configurations, any one or more of the articles described herein (e.g., those described in connection with FIGS. 1A-8 ) can be configured as interior panels or walls of a small trailer or recreational vehicle (RV). The panels or walls can be used, for example, to cover the interior framework of the trailer or recreational vehicle and can be bonded to foam or other insulation between the interior and exterior of the trailer or recreational vehicle. If desired, the interior panels of the trailer or RV can be bonded to another substrate, such as, for example, fabric, plastic, or tile. Referring to FIG. 12 , a side view of a recreational vehicle 1200 is shown. The interior panel 1210 can include any one of the LWRT articles described herein. In some cases, the interior panel 1210 includes a core layer bonded to a single-layer textured film. In other examples, the interior panel 1210 includes a core layer bonded to a two-layer textured film. In some examples, the interior panel 1210 includes a core layer bonded to a three-layer textured film. In some embodiments, the interior panel 1210 comprises a core layer bonded to a four-layer textured film. Interior panels with five, six, seven or more layers of film can also be manufactured.
[0073] In certain configurations, any one or more of the articles described herein (e.g., those described in connection with FIGS. 1A-8 ) can be configured as exterior panels or walls of a recreational vehicle (RV) to absorb sound and provide flame retardancy. The panels or walls can be used, for example, to cover the exterior framework of the recreational vehicle and can be bonded to foam or other insulation between the interior and exterior of the recreational vehicle. Optionally, the exterior panels of the RV can be bonded to another substrate, such as metal, fiberglass, etc. Referring to FIG. 13 , a side view of a recreational vehicle 1300 is shown, including an exterior panel 1310 that can be configured as any one of the LWRT articles described herein. Optionally, the panel 1310 can be bonded to an interior panel (e.g., panel 1210). In some cases, the exterior panel 1310 includes a core layer bonded to a single-layer textured film. In other examples, the exterior panel 1310 includes a core layer bonded to a two-layer textured film. In some examples, the outer panel 1310 includes a core layer bonded to a three-layer textured film. In some embodiments, the outer panel 1310 includes a core layer bonded to a four-layer textured film. Outer panels with five, six, seven, or more layers of film can also be manufactured.
[0074] In some embodiments, an interior panel for a recreational vehicle includes a core layer having a front and a back surface, the core layer including a web of reinforcing fibers held together by a thermoplastic material. The interior panel can further include a multilayer film disposed on the front surface of the core layer, wherein a non-smooth film layer of the multilayer film is disposed on the interior surface of the front surface of the core layer and toward the interior volume of the recreational vehicle.
[0075] In some examples, the core layer of the interior panel comprises 20% to 80% by weight of reinforcing fibers and 20% to 80% by weight of a thermoplastic material. In some examples, the reinforcing fibers comprise glass fibers, and the thermoplastic material comprises a polyolefin. In certain examples, the multilayer film comprises a polyolefin film layer beneath a non-smooth film layer. In other examples, the interior surface of the interior panel of a recreational vehicle has a surface roughness of less than 12 micrometers in the machine direction and less than 15 micrometers in the cross direction, as measured using a stylus profilometer. Even if the surface roughness is below a certain value, it can be greater than zero to provide some texture on the surface. In some examples, the interior surface of the interior panel of a recreational vehicle has an RMS roughness of less than 15 micrometers in the machine direction and less than 15 micrometers in the cross direction. Even if the RMS surface roughness is below a certain value, it can be greater than zero to provide some texture on the surface. In other examples, the interior surface of the interior panel of a recreational vehicle has a maximum roughness of less than 90 micrometers in the machine direction and less than 120 micrometers in the cross direction. Even if the maximum surface roughness can be below a certain value, it can be greater than zero to provide some texture on the surface. In certain embodiments, the interior surface of an interior panel of a recreational vehicle has a surface roughness of less than 8 micrometers in the machine direction and less than 8 micrometers in the cross direction, an RMS roughness of less than 10 micrometers in the machine direction and less than 9 micrometers in the cross direction, and a maximum roughness of less than 55 micrometers in the machine direction and 50 micrometers in the cross direction when tested using a stylus profilometer.
[0076] In some embodiments, the film for recreational vehicle panels can have a multilayer film thickness between 0.1 mm and 0.2 mm. In some cases, the multilayer film includes a tie layer between the non-smooth film layer and the adhesive layer. In other configurations, the core layer includes a scrim disposed on the backside. The exact basis weight of the RV interior panel can vary, but in some cases, the RV interior panel has a basis weight of less than 1200 grams per square meter (gsm). Similarly, the overall thickness of the RV interior panel can vary; for example, the RV interior panel can have a thickness of less than 4 mm. In some embodiments, the core layer includes a reinforced glass fiber and polypropylene thermoplastic material, and optionally an inorganic flame-retardant material, and the multilayer film includes a tie layer between the non-smooth film layer and the underlying layer. In some examples, the non-smooth film layer may or may not include a filler. When the multilayer film includes an adhesive as a layer, the adhesive includes a hot-melt adhesive having a melting temperature of about 90-150°C. In some cases, the RV interior panel does not include cellulose.
[0077] In certain embodiments, the multilayer, non-smooth films described herein can be used within or as recreational vehicle ceiling tiles. For example, an RV ceiling tile can include a core layer having a front surface and a back surface, the core layer including a web of reinforcing fibers held together by a thermoplastic material. The RV ceiling tile can further include a multilayer film disposed on the front surface of the core layer, wherein a non-smooth film layer of the multilayer film is disposed on the inner surface of the front surface of the core layer and toward the interior volume of the RV. The multilayer film can further include an adhesive layer disposed on the front surface and a tie layer between the non-smooth film layer and the adhesive layer. In some cases, the core layer of the RV ceiling tile includes 20% to 80% by weight of reinforcing fibers and 20% to 80% by weight of a thermoplastic material. In other examples, the reinforcing fibers include glass fibers, and the thermoplastic material includes a polyolefin. In certain configurations, the multilayer film includes a polyolefin film layer below the non-smooth film layer.
[0078] In some examples, the interior surface of a recreational vehicle ceiling tile has a surface roughness of less than 12 micrometers in the machine direction and less than 15 micrometers in the cross direction when tested using a stylus profilometer. Even if the surface roughness may be below a certain value, it can be greater than zero to provide some texture on the surface. In some examples, the interior surface of a recreational vehicle ceiling tile has an RMS roughness of less than 15 micrometers in the machine direction and less than 15 micrometers in the cross direction. Even if the RMS roughness may be below a certain value, it can be greater than zero to provide some texture on the surface. In other examples, the interior surface of a recreational vehicle ceiling tile has a maximum roughness of less than 90 micrometers in the machine direction and less than 120 micrometers in the cross direction. Even if the maximum roughness may be below a certain value, it can be greater than zero to provide some texture on the surface. In one configuration, the interior surface of a recreational vehicle ceiling tile has a surface roughness of less than 8 micrometers in the machine direction and less than 8 micrometers in the cross direction, an RMS roughness of less than 10 micrometers in the machine direction and less than 9 micrometers in the cross direction, and a maximum roughness of less than 55 micrometers in the machine direction and 50 micrometers in the cross direction when tested using a stylus profilometer.
[0079] In some examples, the thickness of the multilayer film for the RV ceiling tile is between 0.1 mm and 0.2 mm. In additional examples, the core layer includes a scrim disposed on a backing. In some examples, the core layer includes a reinforced glass fiber and polypropylene thermoplastic material, and optionally an inorganic flame-retardant material. In some configurations, the non-smooth film layer includes a polyolefin and a filler. In some embodiments, the adhesive layer of the multilayer film can include or be configured as a hot melt adhesive having a melting temperature of 90 to 150°C. In some examples, the ceiling tile does not include cellulose.
[0080] In other configurations, the textured films described herein can be used in non-RV automotive applications, including vehicle panels, vehicle base shields, headliners, load floors, and the like. For example, an interior automotive panel configured to bond to the inside of a vehicle chassis can include the textured film. The interior automotive panel includes a core layer including a web of reinforcing fibers held together by a thermoplastic material, and the panel further includes a textured multilayer film disposed on the core layer, with the textured layer of the multilayer film disposed toward the interior surface, and the textured multilayer film reduces the surface roughness of the interior automotive panel compared to the surface roughness in the absence of the textured multilayer film. For example, the presence of the multilayer film can reduce the surface roughness (compared to the surface roughness of the core layer) by 10%, 20%, 30%, 40%, or 50% or more.
[0081] In certain examples, the textured films described herein can be used in non-automotive or non-RV items, such as furniture. For example, referring to FIG. 14 , a display cabinet 1400 is shown including a top surface 1410, side surfaces 1412 and 1414 bonded to the front surface 1410, and a back surface 1420 bonded to the side surfaces 1412 and 1414. The surfaces 1410, 1412, 1414, and 1420 together form a user-accessible interior storage area. While not shown, the cabinet 1400 may include a front surface, e.g., a glass surface or other material, for viewing the contents of the cabinet. Alternatively, a door or other device may be attached to the cabinet 1400 to protect the contents within the cabinet 1400 from view. One or more surfaces of the cabinet 1400 may be constructed as a composite article including a prepreg or core layer and a textured film layer bonded to the prepreg or core layer. In some examples, the back surface 1420 may include a core layer including a web of reinforcing fibers held together by a thermoplastic material and a multilayer film disposed on the core layer, where a non-smooth film layer of the multilayer film is disposed on the exterior surface of the back surface 1420 of the furniture 1400. If two or more of the surfaces of the article 1400 include a non-smooth film layer, the non-smooth film layers need not have the same configuration, thickness, or number of layers.
[0082] In some examples, the core layer of the furniture article 1400 may include 20% to 80% by weight of reinforcing fibers and 20% to 80% by weight of thermoplastic material. In other embodiments, the reinforcing fibers include glass fibers, and the thermoplastic material includes polyolefin. In some configurations, the multilayer film of the furniture article 1400 includes a polyolefin film layer below a non-smooth film layer. In other examples, the exterior surface of the back surface 1420 has a surface roughness of less than 12 micrometers in the machine direction and less than 17 micrometers in the cross direction, as tested using a stylus profilometer. Even if the surface roughness is below a certain value, it can be greater than zero to provide some texture to the surface. In another configuration, the exterior surface of the back surface 1420 includes an RMS roughness of less than 15 micrometers in the machine direction and less than 20 micrometers in the cross direction. Even if the RMS roughness is below a certain value, it can be greater than zero to provide some texture to the surface. In certain configurations, the exterior surface of the back surface 1420 includes a maximum roughness of less than 90 micrometers in the machine direction and less than 125 micrometers in the cross direction. Even if the maximum roughness may be below a certain value, it can be greater than zero to provide some texture on the surface. In some examples, the exterior surface of the back surface 1420 has a surface energy of less than 30 mN / m. In particular examples, the thickness of the multilayer film of the furniture 1400 is between 0.1 mm and 0.2 mm. In certain configurations, the multilayer film of the furniture includes a tie layer between the non-smooth film layer and the adhesive layer.
[0083] In some configurations, furniture may be configured to receive at least one drawer. For example, with reference to FIG. 15 , cabinet 1500 is shown including drawer 1510 and back surface 1520. Back surface 1520 may include, for example, a composite article described herein. Other surfaces of cabinet 1500 may further include a textured film and / or a composite article including a textured film described herein. In other configurations, furniture may be configured to receive (or may include) at least one door. With reference to FIG. 16A , cabinet 1600 includes door 1610 and back surface. Back surface 1620 may include, for example, a composite article described herein. Other surfaces of cabinet 1600 may further include a textured film and / or a composite article including a textured film described herein. Optionally, the exterior surface of door 1610 may include a textured film described herein or may include a composite article including a textured film described herein. If the cabinet includes a door, the door need not be closable via hinges 1612, 1614, as shown in FIG. 16A. Instead, the door may be configured as a sliding door 1660, as shown in FIG. 16B. The cabinet 1650 of FIG. 16B may include a textured film described herein or may include a composite article with a textured film described herein. For example, the back surface 1670 of the cabinet 1650 may include a textured film described herein or may include a composite article with a textured film described herein.
[0084] In some examples of furniture, the back surface (and / or other surfaces of the furniture including the non-smooth film) has a basis weight of less than 1600 gsm and a thickness of less than 4 mm. In some cases, the core layer of the furniture comprises a reinforced glass fiber and a polypropylene thermoplastic material, and optionally, the multilayer film comprises a tie layer between the non-smooth film layer and the underlying layer. In other examples, the underlying layer comprises an adhesive, and the non-smooth film layer comprises a polyolefin and a filler, or may be filler-free. In some examples, the adhesive comprises a hot melt adhesive having a melting temperature of 90 to 150°C. In certain embodiments of furniture, the back surface does not contain cellulose. In some examples of furniture, at least one side comprises a second core layer comprising a web of reinforcing fibers held together by a thermoplastic material, and a second multilayer film disposed on the second core layer, with the non-smooth film layer of the second multilayer film disposed on the outer surface of the side of the furniture.
[0085] In another example, the composite articles described herein can be used in furniture chassis. For example, the furniture chassis can include a backing layer including a core layer comprising a web of reinforcing fibers held together by a thermoplastic material, where the backing layer further includes a multilayer film disposed on the core layer, with a non-smooth film layer of the multilayer film disposed on the outer surface of the backing layer. Referring to FIG. 17 , a furniture chassis 1700 is shown comprising a backing layer 1710. The exact configuration of the furniture chassis 1700 can vary depending on the final configuration of the furniture comprising the chassis 1700. For example, the chassis 1700 can be configured as a bed frame, a mattress frame, a mattress support in a mattress such as a memory foam mattress, a sofa frame, a chair frame, a table frame, a cabinet frame, a recliner frame, an ottoman frame, a bookshelf frame, a door frame, a window frame, a headboard frame, a desk frame, a bureau frame, or can be used in other furniture. In some cases, the prepreg or core layer present in the furniture chassis comprises 20% to 80% by weight of reinforcing fibers and 20% to 80% by weight of thermoplastic material. In some examples, the reinforcing fibers of the prepreg or core layer comprise glass fibers, and the thermoplastic material of the prepreg or core layer comprises a polyolefin. In some embodiments, the multilayer film present in the furniture chassis comprises a polyolefin film layer below a textured film layer.
[0086] In some configurations, the outer surface of the backing layer has a surface roughness of less than 12 micrometers in the machine direction and less than 17 micrometers in the cross direction when tested using a stylus profilometer. Even if the surface roughness is below a certain value, it can be greater than zero to provide some texture to the surface. In some examples, the outer surface of the backing layer has an RMS roughness of less than 15 micrometers in the machine direction and less than 20 micrometers in the cross direction. Even if the RMS roughness is below a certain value, it can be greater than zero to provide some texture to the surface. In some cases, the outer surface of the backing layer has a maximum roughness of less than 90 micrometers in the machine direction and less than 125 micrometers in the cross direction. Even if the maximum roughness is below a certain value, it can be greater than zero to provide some texture to the surface. In some examples, the outer surface of the backing layer has a surface energy of less than 30 mN / m. In other examples, the thickness of the multilayer film is between 0.1 mm and 0.2 mm. In certain embodiments, the multilayer film includes a tie layer between the textured film layer and the adhesive layer. In certain examples, the chassis is configured to receive at least one drawer. In other examples, the chassis is configured to receive at least one door. In some embodiments, the chassis is configured to receive at least one sliding door. In some embodiments, the backing layer has a basis weight of less than 1600 gsm and a thickness of less than 4 mm. In certain examples, the core layer comprises reinforced glass fiber and a polypropylene thermoplastic material, and optionally, the multilayer film comprises a tie layer between the non-smooth film layer and the underlying layer. In some examples, the underlying layer comprises an adhesive, and the non-smooth film layer comprises a polyolefin and a filler, or may be filler-free. In some examples, the adhesive comprises a hot melt adhesive having a melting temperature of 90 to 150°C. In other examples, the backing layer of the furniture chassis does not comprise cellulose. In some examples, the furniture chassis has at least one side including a second core layer comprising a web of reinforcing fibers held together by a thermoplastic material and a second multilayer film disposed on the second core layer, wherein a non-smooth film layer of the second multilayer film is disposed on the outer surface of the side of the furniture.
[0087] In certain examples, the composite articles described herein can be used in cabinets. For example, the cabinet can include a front surface, a side surface bonded to the front surface, and a back surface bonded to the side surface, where the back surface of the cabinet includes a core layer including a web of reinforcing fibers held together by a thermoplastic material and a multilayer film disposed on the core layer, and a non-smooth film layer of the multilayer film disposed on an exterior surface of the back surface of the cabinet. Optionally, the back surface of the cabinet can be cellulose-free.
[0088] In some examples, the composite articles described herein can be used in display cases. For example, the display case can be configured to receive at least one fastener, where the display case includes a back surface including a core layer including a web of reinforcing fibers held together by a thermoplastic material and a multilayer film disposed on the core layer, with a non-smooth film layer of the multilayer film disposed on an exterior surface of the back surface of the display case. In some cases, the back surface of the display case can be cellulose-free.
[0089] In another configuration, the furniture may include a chassis and at least one non-smooth surface, where the non-smooth surface includes a core layer and a multilayer film disposed on the core layer, the core layer including reinforcing fibers and a thermoplastic material, and the multilayer film includes a non-smooth film layer on an outer surface of the at least one non-smooth surface.
[0090] In some examples, a non-automotive chassis includes at least one textured surface, the textured surface including a core layer and a multilayer film disposed on the core layer, the core layer including reinforcing fibers and a thermoplastic material, and the multilayer film including a textured film layer on an outer surface of the at least one textured surface.
[0091] In certain examples, the prepreg or core of the articles described herein can generally be prepared using chopped glass fiber, thermoplastic material, flame-retardant material, and open-cell film and / or woven or nonwoven fabric made of glass fiber or thermoplastic fibers (e.g., polypropylene (PP), polybutylene terephthalate (PBT), polyethylene terephthalate (PET), polycarbonate (PC), PC / PBT blends, or PC / PET blends, etc.). In some embodiments, PP, PBT, PET, PC / PET blends, or PC / PBT blends can be used as the thermoplastic material. To manufacture the prepreg or core, the thermoplastic material, reinforcing material, flame-retardant material(s), and / or other additives can be added to or metered into a dispersed foam contained in an open-top mixing tank fitted with an impeller. Without being bound by any particular theory, the presence of trapped air cavities in the foam can aid in dispersing the glass fiber, thermoplastic material, and any flame-retardant material. In some instances, the dispersed mixture of glass and resin can be pumped through a distribution manifold to a headbox above the wire section of the papermaking machine. The dispersed mixture can then be applied to a moving wire screen using a vacuum to continuously produce a uniform, fibrous wet web, removing the foam but not the glass fiber, flame-retardant material, or thermoplastic. The wet web can then be passed through a dryer at an appropriate temperature to reduce the moisture content and melt or soften the thermoplastic material. As the hot web exits the dryer, a surface layer, such as a textured film, can be laminated onto the web by passing the glass fiber, thermoplastic, and textured film web through the nip of a set of heated rollers. If desired, additional layers, such as another film layer or a scrim layer, can be attached to one or both sides of the web along with the textured film to facilitate handling of the resulting composite. The composite can then be passed through tension rolls and subsequently cut (trimmed) to the desired size for later forming the final composite.Further information regarding the preparation of such composite materials, including suitable materials and processing conditions used to form such composite materials, can be found, for example, in U.S. Pat. Nos. 6,923,494, 4,978,489, 4,944,843, 4,964,935, 4,734,321, 5,053,449, 4,925,615, and 5,609,966, as well as U.S. Patent Application Publication Nos. 2005 / 0082881, 2005 / 0228108, 2005 / 0217932, 2005 / 0215698, 2005 / 0164023, and 2005 / 0161865.
[0092] In a particular example, a method for manufacturing a composite article includes combining a thermoplastic material, reinforcing fibers, and optionally a flame-retardant material in a mixture to form an agitated aqueous foam. The foam is placed on a wire support, and the water is wicked away to form a web or open-cell structure comprising the thermoplastic material, the fibers, and optionally the flame-retardant material. Optionally, the web is then heated to a first temperature above the melting temperature of the thermoplastic material. Optionally, pressure can then be applied to the web, for example, using a nip roller or other device, to provide a thermoplastic composite sheet comprising the flame-retardant material dispersed throughout the web. A textured film can then be placed over the optionally heated formed prepreg or core to bond the textured film to the prepreg or core. In another example, the textured film can be added to the formed prepreg or core immediately prior to thermoforming to bond the textured film to the formed prepreg or core layer.
[0093] In some instances, the various film layers of the textured film can be disposed as individual layers on a web, prepreg, or core layer, e.g., the individual layers that together form the textured film can be sequentially disposed on a prepreg or core layer to provide a composite article.
[0094] In order to illustrate some further novel and useful aspects of the techniques described herein, specific examples will now be described.
[0095] Example 1 Two different composite articles were produced, as shown below in Table 1. These composite articles can be used, for example, as ceiling tiles and wall panels (e.g., interior wall panels) in RV or trailer applications. [Table 1]
[0096] Example 2 Various mechanical properties were measured for the specimens of Example 1. The results are shown below in Tables 2 to 4. Flexural properties in the machine direction (MD) and cross direction (CD) were measured according to ASTM D790-2007. [Table 2] [Table 3] [Table 4]
[0097] In the machine direction, ST-12369 is 22% stiffer and 29% stronger than an RV2.7 article containing 2.7mm thick LWRT (top scrim / 960gsm core / bottom scrim) and no non-smooth film. In the cross direction, the ST-12369 article is 67% stronger and 37% stiffer than regular RV2.7.
[0098] Example 3 The surface roughness measurements of the test samples of Example 1 were carried out using a stylus step profiler (Mitutoyo SJ-201). a) is the arithmetic mean of the absolute values of the profile heights over the evaluation length. RMS roughness (R q ) is the root mean square average of the profile height over the evaluation length. t ) is the vertical distance between the highest and lowest points of the profile within the evaluation length. The results are shown in Table 5 below. R a , R q、 and R t All of the values were significantly reduced after laminating the non-smooth film compared to the LWRT with an exposed surface (RV2.7). Standard deviations are shown in parentheses. [Table 5]
[0099] Example 4 To test the peel strength of the textured films to the core layers, a 90-degree peel test (measured according to DAN-419) was performed. The results are shown in Table 6. The textured films could not be peeled from any of the core layers. [Table 6]
[0100] Example 5 The surface roughness of the white, non-smooth film of Example 1 was measured using a stylus profilometer (Mitutoyo SJ-201). As described in Example 3, the roughness average (R a ) is the arithmetic mean of the absolute value of the profile height over the evaluation length, and the RMS roughness (R q ) is the root mean square average of the profile height over the evaluation length, and the maximum roughness (R t ) is the vertical distance between the highest and lowest points of the profile within the evaluation length. The results are shown in Table 7. [Table 7]
[0101] Example 6 Surface energy measurements of the white, non-smooth film were performed using a dye solution. The surface energy of the dye solution is approximately 30 mN / m. Photographs of the results are shown in Figures 18A and 18B. The dye solution did not spread on the non-smooth film surface, but instead beaded up, which is consistent with the film having a surface energy of less than 30 mN / m.
[0102] Example 7 Composite articles were produced as shown below in Table 8. The composite articles can be used in non-automotive applications such as furniture or chassis, for example. [Table 8]
[0103] Example 8 Various mechanical properties were measured for the specimens of Example 7. The results are shown below in Tables 9 to 11. Flexural properties in the machine direction (MD) and cross direction (CD) were measured according to ASTM D790-2007. [Table 9] [Table 10] [Table 11]
[0104] ST-12329 is 32% stiffer and 43% stronger than the RV2.7 article, which is constructed of 2.7mm thick LWRT (top scrim / 960gsm core / bottom scrim) and has no non-smooth film.
[0105] Example 9 The surface roughness measurements of the test samples of Example 7 were carried out using a stylus step profiler (Mitutoyo SJ-201). a ) is the arithmetic mean of the absolute values of the profile heights over the evaluation length. RMS roughness (R q ) is the root mean square average of the profile height over the evaluation length. t ) is the vertical distance between the highest and lowest points of the profile within the evaluation length. The results are shown in Table 12 below. R a , R q and R t All of the values were significantly reduced after laminating the non-smooth film compared to the LWRT with an exposed surface (RV2.7). Standard deviations are shown in parentheses. [Table 12]
[0106] Example 10 To test the peel strength of the textured films to the core layers of the ST-12329 articles, a 90-degree peel test (measured according to DAN-419) was performed. The results are shown in Table 13. The textured films could not be peeled from any of the core layers. [Table 13]
[0107] When introducing elements of the embodiments disclosed herein, the articles "a," "an," "the," and "said" are intended to mean that there are one or more elements. The words "comprising," "including," and "having" are intended to be open-ended and mean that there may be additional elements other than the listed elements. One of ordinary skill in the art will recognize, given the benefit of this disclosure, that various elements of the embodiments can be interchanged or substituted for various elements of other embodiments.
[0108] While particular aspects, configurations, examples, and embodiments have been described above, those skilled in the art, given the benefit of this disclosure, will recognize that additions, substitutions, modifications, and variations of the disclosed exemplary aspects, configurations, examples, and embodiments are possible.
Claims
1. A piece of furniture, the piece of furniture comprising: The top surface and a side surface coupled to the top surface; and a back panel bonded to the side and top surfaces, wherein the top surface, the side surfaces, and the back panel together form an interior storage area accessible to a user, the back panel comprising: a porous core layer held together by a polyolefin-based thermoplastic material and comprising a web of randomly arranged reinforcing fibers; and a multilayer film disposed on a first surface of the porous core layer, the multilayer film comprising an outer non-smooth film layer made of a polyolefin-based thermoplastic material, the outer non-smooth film layer of the multilayer film being disposed on an outer surface of the back panel of the furniture, the back panel further comprising a scrim or film on a second surface of the porous core layer, the back panel of the furniture does not contain cellulose, and the multilayer film covers the surface roughness of the porous core layer created from the reinforcing fibers in the porous core layer.
2. 2. The article of furniture according to claim 1, wherein the porous core layer comprises 20% to 80% by weight of reinforcing fibers and 20% to 80% by weight of a polyolefin-based thermoplastic material.
3. The article of furniture of claim 2 , wherein the reinforcing fibers of the porous core layer comprise glass fibers and the thermoplastic material of the porous core layer comprises a polyolefin.
4. 2. The furniture of claim 1, wherein the multilayer film comprises a polyolefin film layer under the outer non-smooth film layer, the multilayer film having a thickness between 0.1 mm and 0.2 mm, the outer surface of the back panel has a surface roughness of less than 12 micrometers in a first direction and less than 17 micrometers in a second direction perpendicular to the first direction, the outer surface of the back panel has an RMS roughness of less than 15 micrometers in the first direction and less than 20 micrometers in the second direction, and the outer surface of the back panel has a maximum roughness of less than 90 micrometers in the first direction and less than 125 micrometers in the second direction when tested using a stylus profilometer, and the porous core layer comprises reinforced glass fiber and polypropylene thermoplastic material.
5. 2. The furniture of claim 1, wherein the exterior surface of the back panel has a surface roughness Ra of less than 12 micrometers in a first direction and less than 17 micrometers in a second direction orthogonal to the first direction when tested using a stylus profilometer.
6. 2. The article of furniture of claim 1, wherein the exterior surface of the back panel has an RMS roughness of less than 15 micrometers in a first direction and less than 20 micrometers in a second direction orthogonal to the first direction.
7. 2. The article of furniture of claim 1, wherein the outer surface of the back panel has a maximum roughness of less than 90 micrometers in a first direction and less than 125 micrometers in a second direction orthogonal to the first direction.
8. 10. The article of furniture of claim 1, wherein the outer surface of the back panel comprises a surface energy of less than 30 mN / m.
9. 2. The article of furniture according to claim 1, wherein the thickness of the multilayer film is between 0.1 mm and 0.2 mm.
10. 10. The article of furniture of claim 1, wherein the multilayer film includes a tie layer between the outer non-smooth film layer and the adhesive layer.
11. 10. The furniture of claim 1, wherein the furniture is configured to receive at least one drawer or at least one sliding door.
12. The rear panel is 1600 g / m 2 2. The furniture of claim 1, having a basis weight of less than 1000 kJ / cm and a thickness of less than 4 mm.
13. 10. The article of furniture of claim 1, wherein the porous core layer comprises reinforced glass fibers and a polypropylene thermoplastic material.
14. 14. The article of furniture of claim 13, wherein the multilayer film includes a tie layer between the outer non-smooth film layer and an underlying layer.
15. 15. The article of furniture of claim 14, wherein the underlying layer comprises an adhesive and the outer non-smooth film layer comprises a polyolefin and a filler.
16. 10. The furniture article of claim 1, wherein the outer non-smooth film layer comprises depressions of different sizes and depths to provide a non-uniform texture across the surface of the back panel of the furniture article.
17. The article of furniture of claim 1 , further comprising a polyurethane adhesive layer between the multilayer film and the porous core layer.
18. The article of furniture according to claim 1 , wherein the surface of the porous core layer adjacent to the multilayer film is textured.
Citation Information
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