This disclosure relates to composite undergarment fabrics.
In typical composite undergarment fabrics, water management controls movement of liquid sweat (or water) from the inner side layer or surface of a knit construction, i.e. facing the skin, to the outer side layer or surface, facing away from the skin. This water management may be achieved, e.g., by contrasting denier of the fibers (dpf), with the inner side layer having dpf that is relative more coarse, e.g. 0.3 to 2.5 dpf, than the dpf of the outer side layer, e.g. 0.01 to 1.5 dpf; by use of synthetic fibers that have been rendered hydrophilic, e.g. on both the inner side layer and the outer side layer or only on the outer side layer; by selection of fiber blend, e.g. having hydrophilic fiber, i.e. natural fiber or regenerated fibers, such as cotton, wool, bamboo, cellulosic rayon, etc. on the outer side layer, blended with synthetic fibers, such as polyester, nylon, acrylic, etc., or by use of 100% hydrophilic fibers on the outer side layer; and/or by forming the outer and inner side fabric layers by plaited construction, e.g. by plaited jersey, double knit, plaited terry sinker loop, warp knit, tricot, woven fabric or double weave.
Composite undergarment fabrics formed by plaited knit construction and having good water management are described, e.g., in Lumb et al. U.S. Pat. No. 5,312,667; Rock et al. U.S. Pat. No. 5,344,698; Rock et al. U.S. Pat. No. 6,194,332; Rock et al. U.S. Pat. No. 6,602,811; and Rock et al. U.S. Pat. No. 7,217,456.
According to one aspect of this disclosure, a composite undergarment fabric comprises an inner side fabric layer of synthetic yarn and an outer side fabric layer of yarn selected from the group consisting of: moisture-absorbent hydrophilic yarn, synthetic yarn rendered hydrophilic, and combinations thereof, an inner surface of the inner side fabric layer having a non-continuous treatment of durable, water repellent chemical, and the outer side fabric layer being relatively more hydrophilic than the inner side fabric layer.
Preferred embodiments of this aspect of the disclosure may include one or more of the following additional features. The inner side fabric layer and the outer side fabric layer are formed concurrently by knitting a plaited construction. The synthetic yarn of the inner side fabric layer is rendered hydrophilic. The inner side fabric layer has a raised surface, and the non-continuous treatment of durable, water repellent chemical is applied pre-raising or post-raising. The inner side fabric layer has a flat surface. The fabric has a circular knit construction selected from the group consisting of 2-end fleece, 3-end fleece, terry with regular plaiting, double terry, double needle raschel, plaited single jersey, double knit, and terry knit with reverse plaiting. The inner side fabric layer comprises yarn fibers having a denier of at least that of the yarns fibers of the outer side fabric layer. The yarn fibers of the inner side fabric layer have a denier between 0.3 and 5.0 and the yarn fibers of the outer side fabric layer have a denier between 0.03 and 2.5. The moisture-absorbent yarn is selected from the group consisting of cotton, rayon, and wool.
The synthetic yarn material of the inner side fabric layer is selected from the group consisting of polypropylene, polyester, acrylic, and nylon. The inner side layer and/or the outer side layer comprises flame retardant fabric. The flame retardant fabric comprises fibers selected from the group consisting of: m-aramid fibers, modacrylic F/R rayon fibers, other F/R fibers, and blends of F/R fibers with non F/R fibers. Each of the layers has an elastomeric yarn plaited therein. The outer side fabric layer comprises at least 3% by weight of the moisture-absorbent yarn.
According to another aspect of this disclosure, a composite undergarment fabric comprises an inner side fabric layer of synthetic yarn selected from the group consisting of polyester, acrylic, and nylon, the synthetic yarn of the inner side fabric layer being naturally, or having been rendered, hydrophilic, and an outer side fabric layer of material selected from the group consisting of: (a) moisture-absorbent hydrophilic yarn selected from the group consisting of cotton, rayon, and wool; (b) synthetic yarn that has been rendered hydrophilic and selected from the group consisting of polyester, polypropylene, acrylic, and nylon; and (c) combinations of: moisture-absorbent hydrophilic yarn selected from the group consisting of cotton, rayon, and wool; synthetic yarn that has been rendered hydrophilic and selected from the group consisting of polyester, polypropylene, acrylic, nylon, or synthetic; and neutral synthetic yarn material not rendered hydrophilic and blended with natural fibers; the outer side fabric layer being relatively more hydrophilic than the inner side fabric layer, and the inner side fabric layer and the outer side fabric layer being formed concurrently by knitting a plaited construction.
According to another aspect of this disclosure, a composite undergarment fabric comprises a pseudo plaited construction comprising a body of hydrophilic material or material rendered hydrophilic defining an inner side surface and an outer side surface, with the inner side surface, facing a wearer's skin, having a non-continuous treatment of durable water repellent chemical.
Preferred embodiments of both of these aspects of the disclosure may include one or more of the following additional features. The inner side surface has a raised surface, and the non-continuous treatment of durable, water repellent chemical is applied pre-raising, or post-raising, or the inner side surface has a flat surface. The fabric has a construction selected from the group consisting of: single jersey knit, plain woven, and plain tricot. The body comprises flame retardant fabric, preferably comprising fibers selected from the group consisting of: m-aramid fibers, modacrylic F/R rayon fibers, other F/R fibers, and blends of F/R fibers with non F/R fibers. The body has an elastomeric yarn plaited therein.
Preferred embodiments of each of these aspects of the disclosure may include one or more of the following additional features. One or both of the outer side surface and the inner side surface are treated by at least one of (a) blending the yarn with fibers having anti-microbial properties; or (b) applying a paste or coating having anti-microbial properties. The particles of refractory compound are embedded only within yarn fibers of the inner side surface, the inner side surface has an area enlarged by a raising process for creating air spaces to enhance insulation performance and for reducing contact of the inner side fabric layer upon a wearer's skin, and a substantial portion of the particles of the refractory compound are spaced from the surface of the skin, due to the raising process, to cause body heat reflected by the particles to travel through the trapped air space of the raised surface region for insulated warming of the wearer's skin. The refractory compound is selected from the group consisting of titanium carbide, zirconium carbide, and hafnium carbide.
The details of one or more implementations of this disclosure are set forth in the accompanying drawings and in the description below. Other features, objects, and advantages of the disclosure will be apparent from the description and drawings, and from the claims.
Like reference symbols in the various drawings indicate like elements.
Referring to
The composite undergarment fabric may be warp knit or weft knit, including circular knits, such as: plaited jersey, double knit, plaited terry sinker loop, warp knit, tricot, woven fabric, double weave 2-end fleece, 3-end fleece, terry with regular plaiting, and double terry.
Significantly, the composite undergarment fabric 10 of this disclosure exhibits a differential in hydrophilicity from the inner side layer 12 to the outer side layer 14, preferably with the outer side layer 14 being relative more hydrophilic. For example, the outer side layer may be formed of fiber that is relatively more hydrophilic, or the fiber forming the outer side layer may be rendered relatively more hydrophilic. In one implementation, this relationship may be achieved by applying a suitable durable wicking agent to only the outer side layer 14, or the durable wicking agent may be applied both to the inner side layer 12 and to the outer side layer 14, but with relatively more of the durable wicking agent being applied to the outer side layer at a relatively higher o.w.f. (on-weight-fiber), as compared to the application of the durable wicking agent to the inner side layer. Examples of suitable durable wicking agent include: SUPRALEV 4470 (a low molecular weight polyester liquid-wicking compound, available from ABCO Industries (Roebuck, S.C.)); LUROTEX A-25 (a polyamide derivative hydrophilic finish, available from BASF); MILEASE T (a hydrophilic polymer for use as a durable textile finishing agent, available from Clariant (Muttenz, Switzerland)); and ASTRAPLUSH (a water-dispersible polyester, available from Bayer).
In another implementation of the disclosure, a non-continuous treatment of durable hydrophobic (i.e. water repellent) chemical agent, e.g. a chemical that suitably reduces the surface tension of the textile material, may be applied only to the inner side fabric layer 12, while only the outer side layer 14 is rendered hydrophilic. Suitable hydrophobic chemical agents may be based on, e.g., fluorocarbon, silicon, wax, etc., with or without extender or cross linking agent. The non-continuous treatment of durable hydrophobic chemical agent may be applied to the surface 13 of the inner side layer 12, e.g., by rotary screen print, gravure roll, spray or other suitable chemical application process. In another implementation, the hydrophobic chemical agent may be applied to the surface 13 of the inner side layer 12 of the composite undergarment fabric 10 after pretreatment of the outer side layer 14, or with pretreatment of both layers 12, 14, with a durable wicking agent. In both implementations, the hydrophobic chemical agent can be applied uniformly to the tips of the surface 13 of the inner side layer 12.
According to another implementation, the non-continuous treatment of durable hydrophobic chemical agent can be applied through a printing, e.g. screen printing, process, where the hydrophobic chemical agent is applied to selected fibers or regions of fibers at the surface 13 of the inner side layer 12, e.g., in a predetermined pattern. In this case, other fibers or regions of fiber at the surface 13 of the inner side layer 12 will remain without printing or application of the hydrophobic chemical agent. As a result, these fibers or regions of fibers without hydrophobic chemical agent will act to facilitate transfer of water or sweat from the surface 13 at the inner side layer 12, through to the outer side layer 14. In contrast, the fibers or regions of fibers that are printed with hydrophobic chemical agent, or to which hydrophobic chemical agent is otherwise applied, will remain, or quickly become, relatively dry next to the skin, S, even after being in touch with drops of liquid sweat or water, W.
As described in more detail below, other chemical additives or fibers, such as antimicrobial agents or refractory or ceramic particles, may be applied or incorporated into the composite undergarment fabric 10 prior to application of the hydrophobic chemical agent.
Referring now again to the drawings, by way of example,
Referring now to
The inner surface of the inner side fabric, i.e. the surface worn facing the wearer, may be raised or flat. For example, referring to
Referring next to
Next, in
The composite undergarment fabrics of this disclosure may also include other features and attributes selected to facilitate good water management. For example, referring again to
Also, the denier of the yarn (as opposed to the denier of the yarn fibers) of the inner side fabric layer 12 is no greater than (but can be approximately the same as) the denier of the yarn of the outer side fabric layer 14. This provides for a greater liquid capacity in the outer side layer than in the inner side layer, which facilitates horizontal spreading of moisture along the surface 15 of the outer side fabric layer 14, i.e. moisture collected by the inner side fabric layer is transferred to the outer side fabric layer and more evenly distributed on the outer side fabric layer. Overall, moisture is more rapidly transported from the inner side fabric layer to the outer side fabric layer of the composite undergarment fabric, since there is a lesser build-up of moisture in specific fabric locations in the outer side fabric layer as a result of the facilitated spreading along the outer side fabric layer. Also, because the yarn of the outer side fabric layer is relatively more coarse than the yarn of the inner side fabric layer, the likelihood of a “sink effect” in the outer fabric layer is increased, and the likelihood of liquid moisture back-up into the inner side fabric layer, where it would wet the skin of the wearer, is reduced. The denier of the yarn of the outer fabric layer may be in a range, e.g., of between about 70 denier and 600 denier, while the denier of the yarn of the inner side fabric layer may be in a range, e.g., of between 30 denier and 300 denier.
The outer side layer 14, as described above, may be made entirely of synthetic yarn, or moisture absorbent (naturally hydrophilic) yarn, or it may be a blend thereof. It may also include elastomeric yarn plaited therein. If moisture absorbent yarn is included in combination with a synthetic yarn, the moisture-absorbent yarn may be present in an amount of at least 3% by weight, and preferably in an amount of at least 50% by weight, and the synthetic yarn material will have been rendered hydrophilic. The preferred moisture-absorbent yarn is cotton, as it can absorb 2 to 3 times its weight in water. Other suitable moisture-absorbent materials include rayon and wool, as well as other natural fibers. Alternatively, the second or outer side fabric layer may be made entirely from a synthetic yarn material, such as nylon, acrylic, polypropylene or polyester, which has been rendered hydrophilic.
The inner side fabric layer 12 includes either polyester, polypropylene, acrylic, or nylon material that is or has been rendered hydrophilic. It may also include an elastomeric yarn material plaited or commingled therein.
The inner side fabric layer 12 may utilize a fiber with a modified cross-section, or it may be chemically treated so that it is rendered hydrophilic, e.g., as described in Lumb et al. U.S. Pat. No. 5,312,667. If the outer side fabric layer 14 includes synthetic yarn that has been rendered hydrophilic, the denier per fiber may be smaller than the denier per fiber of the yarn in the first or inner side fabric layer. This may also be achieved as described in Lumb et al. U.S. Pat. No. 5,312,667.
The yarn of the outer side fabric layer 14 may be spun, multi-filament, textured, end-in-end, or any combination thereof.
Referring next to
The composite undergarment fabrics of disclosure may also be made of or include flame retardant fibers, such a m-aramid, modacrylic F/R rayon, etc., and blends with non F/R fibers.
Referring next to
Testing of composite undergarment fabrics 10 in which the outer side fabric layer 14 has incorporated therein fibers 50, e.g. nylon or another synthetic yarn coated or imbedded with ionic silver or copper, demonstrates that bacterial proliferation in the outer side fabric layer 14 is substantially inhibited. As a result, an oily mixture of lipids and proteins that has been secreted and migrated with liquid sweat from the wearer's skin through the inner side layer 12, ultimately collecting in the outer side layer of the fabric 14, does not decompose, and the production of body odor is substantially prevented.
Thus, the composite undergarment fabric 10 of the disclosure, because there is nothing interposed between the inner side and outer side fabric layers 12, 14, rapidly moves moisture away from the skin, S, and through a garment made with the composite undergarment fabric 10, enhanced by the creation of a moisture concentration gradient. In addition, because the outer side fabric layer 14 incorporates fibers 50 with anti-microbial properties, bacterial growth in that layer is substantially inhibited, and therefore, body odor is materially prevented.
In an alternative of this implementation, shown in
The main component of the paste or coating 51, into which the particles are incorporated, may be polyurethane, acrylic, or silicone polymers. The paste or coating may be hydrophilic, such as by selecting polymers that are hydrophilic, or may be rendered hydrophilic by subsequent treatment. In order to improve fabric breathability, the paste or coating may be aerated (into a foam or froth) prior to application; it may also be applied to the outer side fabric layer 14 in a pattern or design having uncoated areas. In general, application of the paste or coating 51 to the outer side layer 14 of the fabric 10 is carried out with a roller, plain or rotogravure, a knife or by any other conventional coating technique. Application may also be carried out by screen printing. In other implementations of the disclosure, antimicrobial compound may be applied to both surfaces of the textile fabric, e.g. by pad, jet dyeing or other suitable process.
Referring next to
Alternatively, as shown in
A number of implementations of the disclosure have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. For example, the hydrophobic chemical agent may be applied to the surface 13 of the inner side fabric layer 12 in a random or other pattern. Also, a composite undergarment fabric of the disclosure may have both antimicrobial properties and particles of refractory compound for reflection of low energy radiation, as described above with respect to
Accordingly, other implementations are within the scope of the following claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US10/29128 | 3/30/2010 | WO | 00 | 11/22/2011 |
Number | Date | Country | |
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61165739 | Apr 2009 | US |