Controlling the depth to which foaming chemicals or coating materials penetrate a fabric is difficult due to the nature of the foaming process. Indeed, foaming chemicals or coating materials often expand or flow in a non-uniform manner. As such, a fabric incorporating these foaming chemicals or coating materials may suffer from irregularities such as, for example, changing thickness, an uneven look or feel, and so on.
For a more complete understanding of the present disclosure, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:
The making and using of the presently preferred embodiments are discussed in detail below. It should be appreciated, however, that the present disclosure provides many applicable inventive concepts that can be embodied in a wide variety of specific contexts. The specific embodiments discussed are merely illustrative and do not limit the scope of the disclosure.
Disclosed herein is a fabric or article incorporating or benefiting from a foam core. By constructing a soft, stretchable, lightweight knit with a foam core (e.g., closed cell aerogel foam core), an improved garment or article (e.g., coats, jackets, hats, gloves, footwear, watch bands, bicycle frames, beverage coolers, etc.) with enhanced properties may be produced.
Referring to
In an embodiment, the barrier layer 102 is configured to inhibit fluid flow. In other words, the barrier layer 102 is generally liquid resistant or waterproof. Therefore, the barrier layer 102 functions to discourage fluid flow through the fabric 100. In addition, in an embodiment the barrier layer 102 is also windproof, yet still permits the fabric 100 to be breathable. In other words, the barrier layer 102 is able to block wind from undesirably passing through the fabric 100 while still permitting moisture vapor generated by, for example, body heat to be dissipated.
Still referring to
As shown, in an embodiment the yarn 104 is stitched through more than a majority (e.g., greater than 50%) of the barrier layer 102. In other words, the yarn 104 is stitched over a substantial portion of the length and width of barrier layer 102. Depending on how tightly the stitching is performed, the yarn 104 may permit portions of the underlying barrier layer 102 to be visible or may obscure all or a portion of the underlying barrier layer 102.
In an embodiment, the fabric 100 of
Referring now to
In an embodiment, the barrier layer 202 may support or include a radiant reflective film. That is, a radiant reflective film may be disposed upon a surface of the barrier layer 202 or incorporated into the barrier layer 202. In an embodiment, the radiant reflective film on or in the barrier layer 202 prevents or inhibits radiant energy from entering an article (e.g., a beverage cooler). In an embodiment, the radiant reflective film prevents or inhibits radiant energy from exiting the interior of an article (e.g., a beverage cooler).
In an embodiment, the barrier layer 202 is a non-woven fabric. In such an embodiment, the yarn 204 is stitched through the barrier layer 202. However, the stitch holes 206 that are formed are not plugged by melting a portion on of the barrier layer 202 as described elsewhere herein.
In an embodiment, a beverage cooler may be formed using a fabric 200 containing a barrier layer 202 benefitting from a radiant reflective film (e.g., a soft side beverage cooler). In an embodiment, the barrier layer 202 is moisture vapor permeable. Therefore, any steam generated by hot items placed in the beverage cooler is allowed to escape. As such, the steam does not condense inside the beverage cooler, which helps keeps the items therein both hot and dry.
In an embodiment, the foam core 208 comprises any structure having pockets of gas trapped in a liquid or solid. In an embodiment, the foam core 208 comprises a closed cell aerogel foam, a polyurethane foam (i.e., foam rubber), a polystyrene foam, a polyvinyl chloride (PVC) foam, and so on. In an embodiment, the foam core 208 has either hydrophobic or hydrophilic surfaces. In an embodiment, the foam core 208 comprises a non-foaming coating (e.g., polyurethane).
In an embodiment, a stitched fabric (e.g., fabric 200) includes a barrier layer (e.g., barrier layer 202), a yarn (e.g., yarn 204) stitched through and forming stitch holes (e.g., stitch holes 206) in the barrier layer, where a melted portion of the barrier layer fills at least a portion of the stitch holes, and a coating (e.g., foam core 208, non-foaming coating, etc.) formed over the barrier layer. In an embodiment, the coating is prevented from progressing further into the stitched fabric by the barrier layer. In an embodiment, the coating comprises a polyurethane, another suitable polymer (e.g., Polycarbonate, Polyether-Polycarbonate, Polyether-Polyester, etc.), or a coating containing or formed from a polymer resin. In an embodiment, the coating is non-foaming. In an embodiment, the barrier layer supports or includes a radiant reflective film.
In an embodiment, a stitched fabric (e.g., fabric 200) includes a non-woven barrier layer (e.g., barrier layer 202), a yarn (e.g., yarn 204) stitched through and forming stitch holes (e.g., stitch holes 206) in the non-woven barrier layer, and a foam core (e.g., foam core 208) formed over the non-woven barrier layer. In an embodiment, the non-woven barrier layer includes or supports a radiant reflective film. In an embodiment, the foam core is prevented from progressing further into the stitched fabric by the non-woven barrier layer. In an embodiment, the non-woven barrier layer is configured to control a depth to which the foam core penetrates into the stitched fabric.
In an embodiment, a stitched fabric (e.g., fabric 200) includes a non-woven barrier layer (e.g., barrier layer 202), a yarn (e.g., yarn 204) stitched through and forming stitch holes (e.g., stitch holes 206) in the barrier layer, and a coating (e.g., foam core 208, non-foaming coating, etc.) formed over the non-woven barrier layer. In an embodiment, the coating is prevented from progressing further into the stitched fabric by the barrier layer. In an embodiment, the coating comprises a polyurethane, another suitable polymer (e.g., Polycarbonate, Polyether-Polycarbonate, Polyether-Polyester, etc.), or a coating containing or formed from a polymer resin.
Referring now to
Referring now to
In
A melting point of the adhesive 520 is generally lower than a melting point of the intermediate material 522. Therefore, the adhesive 520 may be melted without also melting the intermediate material 522. In other words, the adhesive 520 may be forced to flow through the application of sufficient heat without flowing, or compromising the integrity of, the intermediate material 522.
In an embodiment, the melting point of the adhesive 520 may be between about 140° C. to about 180° C. (about 284° F. to about 356° F.) while the melting point of the intermediate material 522 exceeds about 180° C. (about 356° F.). Where the adhesive 520 and the intermediate material 522 have different distinct melting points as noted above, the barrier layer 512 may be referred to as having an “A-B” type format. In an embodiment, the adhesive 520 is approximately two thousandths of an inch (i.e., 2 mils) and the intermediate material 522 is approximately one thousandth of an inch (i.e., 1 mil).
In general, the adhesive 520 is a thermoplastic, copolyamide, or other suitably meltable type of material capable of bonding two layers of fabric together. A variety of different adhesives 520 may be used in the barrier layer 512. By way of example, the adhesive 520 may be a high-quality textile adhesive such a polyurethane adhesive film, an ethylene-vinyl acetate, and the like. In an embodiment, the adhesive 520 may be heat sensitive, pressure sensitive, or both.
The intermediate material 522 of the barrier layer 512 may be either a membrane or a film formed from a variety of different materials. In an embodiment, the intermediate material 522 is formed from polyurethane, polyester, urethane, polyether, polytetrafluoroethylene (PTFE), or another polymer-based material. The intermediate material 522 may be manufactured using, for example, an extrusion, a melt blowing, or an electrospinning process.
As shown in
In an embodiment, a resin or other coating chemistry may be used in place of any of the foam cores disclosed herein. The resins may be used in conjunction with, for example, carbon fibers to form the fabrics. In an embodiment, the composite fabrics 100-400 with the foam cores are thermo-moldable.
In
In an embodiment, the melted portion 715 of the barrier layer 702 may penetrate the yarn 704 and occupy a portion of the interstitial spaces between individual strands of the yarn 704. If the melted portion 715 of the barrier layer 702 penetrates the yarn 704 sufficiently, the melted portion 715 of the barrier layer 702 may occupy the interstitial spaces between the individual strands 723 of the yarn 704 to prevent liquid from passing from one side 750 of the barrier layer 702 to another side 752 of the barrier layer 702 via the yarn 704. If, however, the melted portion 715 of the barrier layer 702 does not penetrate the yarn 704 sufficiently and does not occupy the interstitial spaces between the individual strands 723 of the yarn 704, a liquid may still be able to pass from one side 750 of the barrier layer 702 to another side 752 of the barrier layer 702 via the yarn 704 as shown in
In an embodiment, the coating 708 abuts against an external surface of the barrier layer 702 on the one side 760 of the stitched fabric 700. In an embodiment, the coating 708 includes an adhesive to secure the coating 708 to the barrier layer 702. The coating 708 may be applied to the barrier layer 702 and the yarn 704 in a variety of different ways. For example, the coating 708 may be sprayed, foamed, or poured on the barrier layer 702 and the yarn 704. In an embodiment, the coating 708 is heated to adhere the coating to the barrier layer 702 and/or the yarn 704. In an embodiment, the coating 708 is secured to the barrier layer 702 and/or the yarn 704 without the application of heat. In an embodiment, the barrier layer 702 and/or the yarn 704 may be dipped into the coating 708.
In an embodiment, the coating 708 entirely covers the yarn 704 on the one side 760 of the stitched fabric. In an embodiment, another coating (not shown) similar to the coating 708 is formed on or over the barrier layer 702 on the other side 762 of the stitched fabric 700. In an embodiment, the coating 708 is hydrophobic, waterproof, or water resistant so as to prevent or inhibit a liquid from flowing through the yarn 704.
In block 806, the method 800 includes filling interstitial spaces between individual strands of the yarn with a coating to prevent a liquid from passing from one side of the stitched fabric to another side of the stitched fabric via the yarn.
In an embodiment, the method further includes flowing and/or forcing the coating into the stitch holes. In an embodiment, the method further includes restricting the coating from entirely covering the yarn on the one side of the stitched fabric.
While several embodiments have been provided in the present disclosure, it should be understood that the disclosed systems and methods might be embodied in many other specific forms without departing from the spirit or scope of the present disclosure. The present examples are to be considered as illustrative and not restrictive, and the intention is not to be limited to the details given herein. For example, the various elements or components may be combined or integrated in another system or certain features may be omitted, or not implemented.
In addition, techniques, systems, subsystems, and methods described and illustrated in the various embodiments as discrete or separate may be combined or integrated with other systems, modules, techniques, or methods without departing from the scope of the present disclosure. Other items shown or discussed as coupled or directly coupled or communicating with each other may be indirectly coupled or communicating through some interface, device, or intermediate component whether electrically, mechanically, or otherwise. Other examples of changes, substitutions, and alterations are ascertainable by one skilled in the art and could be made without departing from the spirit and scope disclosed herein.
This application is a continuation-in-part of co-pending U.S. patent application Ser. No. 16/713,923 filed on Dec. 13, 2019, by Dustin English, et al., entitled “Fabric with Flow Restricting Core,” which claims priority to U.S. Provisional Application No. 62/779,824 filed Dec. 14, 2018 by Dustin English, et al., entitled “Fabric with Flow Restricting Core,” each of which is incorporated herein by reference as if reproduced in its entirety.
Number | Date | Country | |
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62779824 | Dec 2018 | US |
Number | Date | Country | |
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Parent | 16713923 | Dec 2019 | US |
Child | 18149262 | US |