Water-Repellent Fibre
20240301588 ยท 2024-09-12
Inventors
Cpc classification
D03D15/60
TEXTILES; PAPER
D02G3/02
TEXTILES; PAPER
D03D15/283
TEXTILES; PAPER
D02G3/26
TEXTILES; PAPER
D10B2331/04
TEXTILES; PAPER
D01D5/253
TEXTILES; PAPER
International classification
D02G3/26
TEXTILES; PAPER
D02G3/02
TEXTILES; PAPER
Abstract
A water-repellent fibre (300) for a yarn and/or a fabric or textile is provided. The fibre (300) comprises a hydrophobic material. The fibre (300) also comprises a shape or configuration comprising one or more micro and/or nano-sized structures (310).
Claims
1. A water-repellent fibre for a yarn and/or a fabric or textile, wherein the fibre comprises: a hydrophobic material; and a shape or configuration comprising one or more micro and/or nano-sized structures.
2. The water-repellent fibre of claim 1, wherein the one or more micro and/or nano-sized structures have a size of between substantially 10 nm and substantially 100 ?m.
3. The water-repellent fibre of claim 1, wherein the one or more micro and/or nano-sized structures form at least part of or are located on an outer surface of the fibre.
4. The water-repellent fibre of claim 1, wherein the fibre comprises a cross-sectional shape or configuration that forms or provides the one or more micro and/or nano-sized structures; and/or wherein the fibre comprises a thickness or diameter of between substantially 100 nm and substantially 500 ?m.
5. (canceled)
6. The water-repellent fibre of claim 1, wherein the one or micro and/or nano-sized structures comprise one or more projections from and/or recesses in the outer surface of the fibre; and, optionally or preferably, wherein a height and/or depth of the one or more projections and/or recesses is between substantially 100 nm and substantially 10 ?m.
7. (canceled)
8. The water-repellent fibre of claim 1, comprising a plurality of micro and/or nano-sized structures, and optionally comprising between substantially 3 and substantially 50 micro and/or nano-sized structures.
9. The water-repellent fibre of claim 8, wherein a spacing between adjacent micro and/or nano-sized structures is between substantially 100 nm and substantially 10 ?m.
10. The water-repellent fibre of claim 1, wherein the hydrophobic material is or comprises a hydrophobic polymeric material.
11. The water-repellent fibre of claim 10, wherein the fibre comprises a mixture of the hydrophobic polymeric material and one or more other polymeric materials.
12. The water-repellent fibre of claim 11, wherein the mixture comprises or is arranged in a core-sheath structure, an island-in-sea structure or a random blend structure.
13. The water-repellent fibre of claim 11, wherein the hydrophobic polymeric material is or comprises a polymethylpentene polymer.
14. The water-repellent fibre of claim 13, wherein the mixture comprises substantially 5% or more by volume of the hydrophobic polymeric material, and optionally comprises between substantially 60% and substantially 80% by volume of the hydrophobic polymeric material.
15. The water-repellent fibre of claim 14, wherein the one or more other polymers are or comprise one or more of an ?-olefin, a polyester, a nylon and a thermoplastic polymer.
16. The water-repellent fibre of claim 13, wherein the polymethylpentene polymer is or comprises a 4-methyl-1-pentene polymer.
17. The water-repellent fibre of claim 16, wherein the polymethylpentene polymer is or comprises a copolymer of 4-methyl-1-pentene with one or more ?-olefins, and optionally wherein the one or more ?-olefins each comprise between 2 and 20 carbon atoms.
18. A water-repellent yarn for a fabric or textile, comprising at least one water-repellent fibre according to claim 1.
19. The water-repellent yarn of claim 18, wherein: the yarn comprises a diameter of between substantially 200 nm and substantially 1000 ?m; and/or the yarn comprises between substantially 15 twists/m and substantially 2000 twists/m.
20. A water-repellent plied yarn for a fabric or textile, comprising at least one water-repellent yarn according to claim 18.
21. The water-repellent plied yarn of claim 20, wherein: the plied yarn comprises a diameter of between substantially 400 nm and substantially 5000 ?m; and/or the plied yarn comprises between substantially 15 twists/m and substantially 2000 twists/m.
22. (canceled)
23. (canceled)
24. (canceled)
25. A method of manufacturing a water-repellent fibre for a yarn and/or a fabric or textile, the method comprising: forming a fibre comprising a hydrophobic material; and providing the fibre with a shape or configuration comprising one or more micro and/or nano-sized structure
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] Embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
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[0050] Like reference numerals in different Figures may represent like elements.
DETAILED DESCRIPTION
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[0056] By combining a hydrophobic material with one or more micro and/or nano-sized structures, the fibre 300 has enhanced hydrophobic performance relative to the inherent hydrophobic properties of the hydrophobic material. Incorporating the fibre 300 into a yarn for a fabric or textile, or directly into a fabric or textile, may provide a yarn, fabric or textile having enhanced water repellent, oil repellent, anti-fouling and anti-stain properties without requiring a separate coating. The improved properties of the yarn, fabric or textile may be more durable and longer lasting than those provided by a separate coating. A separate coating is susceptible to contamination and abrasion during use of the yarn, fabric or textile, leading to reduced hydrophobic performance over time. In contrast, because the hydrophobic properties of the fibre 300 are integral to the fibre 300 itself, the hydrophobic performance of the yarn, fabric or textile is also integral to the yarn, fabric or textile and is not dependent upon a coating that can be removed from the yarn, fabric or textile.
[0057] The star-shaped cross-section may alternatively have any suitable number of micro and/or nano-sized structures 310 that each form a point or arm of the star, for example three or more structures 310. The fibre 300 may alternatively have any suitable diameter, for example between substantially 100 nm and substantially 500 ?m. Each structure 310 may alternatively have any suitable height or depth, for example between substantially 10 nm and substantially 100 ?m, or up to substantially 10% of the diameter or thickness of the fibre 300. Adjacent structures 310 may be spaced any suitable distance apart, for example between substantially 10 nm and substantially 100 ?m apart.
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[0066] It will be appreciated that a fibre 300 may comprise both internal and external (e.g., on an outer surface) micro and/or nano-sized structures 310. For example, the annular fibre 300 of
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[0071] In the embodiments shown, the hydrophobic polymeric material 312 is a polymethylpentene polymer substantially as described above, although that is not essential. In the embodiment shown, the one or more other polymeric materials 314 is or comprises a different hydrophobic polymer such as an ?-olefin polymer, a polyester, a nylon, a thermoplastic polymer etc. For example, the one or more other polymeric materials 314 may be or comprise polypropylene. Polypropylene may improve the mechanical properties of the fibre 300 without substantially reducing the hydrophobic properties of the fibre 300 (because polypropylene is also hydrophobic). However, that is not essential, and any other suitable polymeric material 314 may alternatively be used, hydrophobic or not.
[0072] In the embodiment shown, the mixture (e.g., the fibre 300) comprises substantially 60% by volume of the hydrophobic polymeric material 312. The mixture (e.g., the fibre 300) comprises substantially 40% by volume of the one or more other polymeric materials 314. However, that is not essential, and any mixture ratio of the two may alternatively be used.
[0073]
[0074] The yarn 320 is formed by twisting a plurality of fibres together using conventional techniques. One of the fibres is a fibre 300 comprising a hydrophobic material and having a shape or configuration comprising one or more micro and/or nano-sized structures, as described above. By incorporating at least one fibre 300 in the yarn 320, the enhanced hydrophobic properties of the fibre 300 are also incorporated into the yarn 320, thereby making the yarn 320 water-repellent. In the embodiment shown, the fibre 300 is an eight-pointed star as described above with respect to
[0075] The plied yarn 330 is formed by twisting a plurality of yarns together using conventional techniques. One of the yarns is the yarn 320 described above. By incorporating at least one water-repellent yarn 320 in the plied yarn 330, the plied yarn 330 is also water-repellent (by virtue of the enhanced hydrophobic properties of the at least one fibre 300 in one or more of the yarns 320). Alternatively, the plied yarn 330 may comprise a plurality of yarns 320 twisted together, optionally with one or more other yarns. The plied yarn 330 may have a diameter or thickness of between substantially 400 nm and substantially 5000 ?m, depending on a diameter or thickness of each yarn and the number of yarns in the plied yarn 330.
[0076] The yarn 320 may have between substantially 15 and substantially 2000 twists/m. The plied yarn 330 may have between substantially 15 and substantially 2000 twists/m. Increasing twists/m of the yarn 320 and/or the plied yarn 330 generally increases mechanical properties of the yarn 320 and/or plied yarn 330 such as tensile strength and stiffness. The twists/m may be varied in order to provide the yarn 320 and/or plied yarn 330 with suitable mechanical properties for an intended application of the yarn 320 and/or plied yarn 330.
[0077] Each of the fibre 300, the yarn 320 and/or the plied yarn 330 may be incorporated into or used to form a fabric or textile, for example woven or knitted into a fabric or textile or incorporated into or used to form a non-woven fabric or textile. Incorporating one or more fibres 300, yarns 320 and/or plied yarns 330 into a fabric or textile may provide a substantially waterproof fabric or textile, due to the water-repellent or enhanced hydrophobic properties of the fibre(s) 300, yarn(s) 320 and/or plied yarn(s) 330.
[0078] For a woven fabric or textile, the fibre(s), yarn(s) 320 and/or plied yarn(s) 330 may form one or warp threads and/or one or weft threads of the fabric or textile. The twists/m of a yarn 320 or plied yarn 320 may be higher for a warp thread than a weft thread, because typically warp threads require greater strength and stiffness than weft threads during weaving. One or more other fibres or yarns may be incorporated into the fabric or textile to provide the fabric or textile with additional functional properties. For example, silver or copper fibres or yarns may be incorporated into the fabric or textile to provide anti-bacterial and anti-viral properties.
[0079] The fabric or textile may be used in a variety of applications. For example, it may be used to form substantially waterproof garments such as for outdoor pursuits including walking, hiking, climbing, mountaineering etc., or personal protective equipment (PPE) such as masks and gowns for healthcare. Similar, the fabric or textile may be used to form substantially waterproof apparatus such as tents, hammocks, sleeping bags, umbrellas, bags, rucksacks etc., or upholstered items such as chairs, sofas, vehicle sets etc., or an interior textile product such as for a house (e.g., carpet, curtains) or a car (e.g., a car floor) The fabric or textile may also be used for construction or landscaping purposes, for example as a geotextile or geomembrane to prevent water from travelling through an area or retain water in a specific location.
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[0081] At step 405, the method 400 comprises forming a fibre 300 comprising a hydrophobic material. At step 410, the method 400 comprises providing the fibre 300 with a shape or configuration comprising one or more micro and/or nano-sized structures.
[0082] In the embodiment shown, the method 400 comprises extruding a material comprising a hydrophobic material to form the fibre 300. The apparatus 500 comprises a vessel 505 configured to contain a polymer feedstock (for example, a melt or solution). The apparatus 500 includes a metering pump 505a is included to control feed of the polymer feedstock, but that is not essential. The apparatus 500 a spinneret 510 configured to form one or more fibres 300 from the polymer feedstock. In the embodiment shown, the spinneret 510 comprises one or more nozzles (not shown) through which the polymer feedstock passes. In the embodiment shown, one or more of the nozzles comprises a structure configured to provide the formed fibres 300 with one or more micro and/or nano-sized structures. In the embodiment shown, steps 405 and 410 therefore take place substantially simultaneously. For example, the nozzle may be shaped (e.g., have a cross-sectional shape) or configured to impart one or more micro and/or nano-sized structures on an outer surface of the fibre 300 during extrusion of the fibre. Examples of such nozzles are shown in
[0083] The apparatus 500 comprises a filter 508 to filter the polymer feedstock prior to passing through the spinneret 510, although that is not essential. A flow of cooling air F is provided to solidify the fibres 300 following exit from the spinneret, although that is not essential. A series of spools 512a-c are then provided to capture the fibres 300, although that is not essential.
[0084] The method 400 described above comprises a conventional melt-spinning process in combination with one or more specific nozzles configured to produce a fibre 300 comprising one or more micro and/or nano-sized structures. It will be appreciated that any suitable manufacturing technique may alternatively be used to form the fibre 300, for example melt-blowing, dry-spinning, wet-spinning, dry-jet wet-spinning etc. It will also be appreciated that similar techniques may be used to form fibres 300 having multi-material compositions, for example core-sheath structures, island-in-sea structures and random blend structures.
[0085] If the polymer feedstock comprises a random blend of a hydrophobic material and one or more other materials, an annealing step may be performed after formation of the fibre 300. The reason for that is to cause the hydrophobic material to diffuse towards an outer surface of the fibre 300. The low surface energy of the hydrophobic material makes it energetically favourable for the hydrophobic material to be located at an outer surface of the fibre 300. Annealing may provide a sufficient temperature to enable the hydrophobic material to diffuse towards an outer surface of the fibre 300. However, annealing may not be necessary if the temperature used during formation of the fibre 300 is sufficient to enable the hydrophobic material to diffuse towards an outer surface of the fibre 300 during formation. A suitable temperature may be between substantially 80? C. and substantially 230? C., depending on the polymer(s) chosen.
[0086] Alternatively, a different technique may be used to form a fibre 300 comprising a shape or configuration comprising one or more micro and/or nano-sized structures. For example, step 405 may comprise forming a fibre using a mixture of a hydrophobic material and a filler material. The filler material may be or comprise polymer particles and/or fibres (for example, micro and/or nano-sized particles and/or fibres), for example polyester (PES), polylactic acid (PLA), polyvinyl alcohol (PVA) etc. Additionally or alternatively, the filler material may be or comprise inorganic particles and/or fibres (for example, micro and/or nano-sized particles and/or fibres) such as calcium carbonate, clays, salt, silica, titanium dioxide (TiO.sub.2), Zinc Oxide (ZnO) etc. It will be appreciated that a number of conventional filler materials may be suitable, such as filler materials soluble in water or industry standard solvents. Forming the fibre may comprise using the method 400 substantially as described above. However, the fibre may be formed using a conventional nozzle having a substantially circular cross-section.
[0087] Step 410 may comprise at least partially removing the filler material from the formed fibre to form a fibre 300 comprising a shape or configuration comprising one or more micro and/or nano-sized structures, for example one or more projections and/or recesses in an outer surface of the fibre. Removing the filler material may comprise dissolving the filler material. That may require the fibre to be placed into a bath of a suitable reagent to allow the filler material to be dissolved, for example water, alcohols, esters, acids, dimethylformamide (DMF), or any other suitable organic or water based conventional solvent or mixture. One or more other methods such as ultrasonication and/or heating of the solvent may be used in conjunction with the dissolving, in order to aid with removal of the filler material.
[0088] From reading the present disclosure, other variations and modifications will be apparent to the skilled person. Such variations and modifications may involve equivalent and other features which are already known in the art of textiles, in particular waterproof fibres, yarns and/or fabrics or textiles, and which may be used instead of, or in addition to, features already described herein.
[0089] Although the appended claims are directed to particular combinations of features, it should be understood that the scope of the disclosure of the present invention also includes any novel feature or any novel combination of features disclosed herein either explicitly or implicitly or any generalisation thereof, whether or not it relates to the same invention as presently claimed in any claim and whether or not it mitigates any or all of the same technical problems as does the present invention.
[0090] Features which are described in the context of separate embodiments may also be provided in combination in a single embodiment. Conversely, various features which are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable sub-combination. The applicant hereby gives notice that new claims may be formulated to such features and/or combinations of such features during the prosecution of the present application or of any further application derived therefrom.
[0091] For the sake of completeness, it is also stated that the term comprising does not exclude other elements or steps, the term a or an does not exclude a plurality, and any reference signs in the claims shall not be construed as limiting the scope of the claims.