Method for producing a sporting goods component
By employing textiles with varying shrinkage ratios and applying a shrink condition, the method addresses the inefficiencies of conventional sports article component production, achieving seamless, visually appealing, and cost-effective three-dimensional shapes.
Patent Information
- Application Number
- DE102017223743
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2017-12-22
- Publication Date
- 2025-07-10
- Estimated Expiration
- 2037-12-22
AI Technical Summary
Conventional methods for producing sports article components with three-dimensional shapes are time-consuming and costly due to multiple production steps and visible seams, and existing technologies do not effectively address the need for visually appealing and efficient manufacturing.
A method involving the use of two textiles with different shrinkage ratios, connected and subjected to a shrink condition such as heat or water, to deform and form a three-dimensional shape without seams, allowing seamless production of sports article components like shoe uppers and apparel.
Enables time-efficient, cost-effective production of visually appealing sports article components with complex three-dimensional shapes by eliminating the need for additional sewing steps and visible seams.
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Abstract
Description
1. Technical area
[0001] The present invention relates to a method for producing a sporting goods component. 2. State of the art
[0002] Sporting goods components often have a three-dimensional shape. For example, a sports shoe has an upper and a sole. The upper typically has a three-dimensional shape designed to accommodate and cover a human foot. Another example is the shape of sportswear, which follows the human anatomy.
[0003] A three-dimensional shape of a sporting goods component is often created by joining two-dimensional parts. For example, a shoe upper often has various components, such as the vamp, toe cap, heel counter, etc., sewn or glued into a three-dimensional shape. Additionally, the shoe upper is often pulled over a last shaped like a human foot.
[0004] This conventional method for molding a sporting goods component is time-consuming and costly due to the comparatively high number of manufacturing steps. Furthermore, the sporting goods components manufactured this way consist of visible seams, which often impair the visual appearance of the sporting goods.
[0005] According to US 4 027 406 A, a performance part of a shrinkable, preferably oriented thermoplastic polymer material is attached, preferably by stitching, to a shoe upper edge and shrunk by heating, if thermoplastic, to a temperature between its glass transition temperature and its melting point. The shrinkage of the performance part holds the shoe upper to the last. The performance part can be a performance cord, a continuous belt or strip, or a sheet, panel, mesh, or strap. However, US 4 027 406 A does not address the general problem of how to obtain a three-dimensional sporting goods component from two-dimensional parts. Furthermore, US 4 027 406 A is directed to general footwear and does not address the specific needs of the sports industry.
[0006] EP 3 330 420 A1 relates to a knitted fabric and a method for joining knitted fabrics. In one embodiment, a foot instep covering and a tongue of a shoe upper are joined together. As an example of a fraying prevention treatment, a measure is possible in which the last stitch row of the tongue is knitted with a heat-shrinkable yarn and the tongue is subjected to a heat treatment.
[0007] WO 2017 / 142857 A1 relates to a weatherproof shoe upper for an article of footwear. The shoe upper is formed by knitting a first yarn comprising a thermoplastic polymer and a second yarn comprising an elastomeric filament. The shoe upper can be knitted to have a first side and an opposite second side. The first side comprises the first yarn, and the second side comprises the second yarn. By applying steam, certain yarns become thermoset, such as polyester yarns, and other yarns shrink, such as the yarns comprising the elastomeric filament.
[0008] US 2016 / 0 076 176 A1 relates to a seamless insulation article. According to some embodiments, the seamless insulation article comprises a knitted base comprising a first yarn and a second yarn incorporated into a continuous fabric defined by the first yarn and the second yarn in a predetermined pattern to form a plurality of three-dimensional surfaces. In some embodiments, the first yarn may have a first shrinkage behavior and the second yarn may have a second shrinkage behavior different from the first shrinkage behavior to define a differential relative shrinkage behavior between the first yarn and the second yarn under heat exposure.
[0009] US 2015 / 0 107 307 A1 relates to a shoe having an outer knitted portion disposed on the outside of the shoe and an inner knitted portion disposed on the inside of the shoe. The outer knitted portion and the inner knitted portion are connected at a foot opening of the shoe. The knitting yarn for the inner knitted portion and the knitting yarn for the outer knitted portion are different. A knitting yarn that is not a hot-melt yarn is used as the first knitting yarn. A hot-melt yarn having a core-shell structure with a core made of a material that contracts when heated and a sheath made of a material with a lower melting point than the core is used for the second yarn, which is the hot-melt yarn.
[0010] According to US 2,440,393 A, a section of fabric is first woven from chenille yarn alone or from a wool yarn. Then a second or middle section is knitted, and as each row of this section is formed, a relatively thick, heavy strand of vinyon is placed between the needles so that the strand is incorporated into the knit in the following row. A shoe upper comprising this fabric is then heat-treated while stretched over a last. At the end of a steaming process, the vinyon strands have increased in diameter and contracted with the fabric in which they are embedded, so that the vinyon strands and the fabric fit snugly against the last.
[0011] According to EP 2 805 638 A1, the footwear is seamlessly knitted using a flat knitting machine and includes a base knitting part with a mixed section knitted using a first knitting yarn and a second knitting yarn interwoven along the first knitting yarn. The first knitting yarn configuring the mixed section of the footwear is a knitting yarn that is not a heat-fusible yarn, and the second knitting yarn is a heat-fusible yarn with thermal adhesiveness and heat-shrinkable properties. The footwear is held in a shape corresponding to a last while being thermally processed while being positioned over the last.
[0012] WO 2011 / 090845 A1 is directed to textile composites comprising a first fabric layer and a second fabric layer formed simultaneously with the first fabric layer in an interlocked construction. The second fabric layer has a plurality of anchored regions where the second fabric layer is anchored to and in intimate contact with the first fabric layer. The second fabric layer also contains a plurality of bubbles or floating regions located between the anchored regions. The floating regions overlie and are separated (bulged outwardly) from the first fabric layer. The first and second fabric layers are formed by knitting two different yarns that exhibit significantly different shrinkage behavior when exposed to dry or humid heat.
[0013] Further prior art is from DE 10 2013 207 153 A1, US 2017 / 0 066 212 A1 and DE 10 2012 109 108 A1.
[0014] The technical object of the present invention is therefore to provide a method for producing a sporting goods component which is time and cost efficient and enables the production of visually appealing sporting goods. 3. Summary of the invention
[0015] This object is achieved by a method for producing a sporting goods component, comprising the steps of: selecting a first textile, wherein the first textile comprises a first material having a shrinkage ratio under a predetermined shrinkage condition and shrinks upon application of the shrinkage condition; forming a first part of the component using the first textile; selecting a second textile, wherein the second textile comprises a second material having a shrinkage ratio under the predetermined shrinkage condition and shrinks upon application of the shrinkage condition, wherein the second shrinkage ratio is higher than the first shrinkage ratio; forming a second part of the component using the second textile; joining the first textile and the second textile together;and applying the shrinking condition, wherein the application of the shrinking condition gives the sporting goods component a three-dimensional shape either from a flat two-dimensional shape or from a three-dimensional shape to another three-dimensional shape.;
[0016] According to the invention, a sporting goods component is provided with a first textile and a second textile. Both textiles differ at least in their shrinkage ratio when a predetermined shrinkage condition is applied. Examples of shrinkage conditions are given below. If the shrinkage condition is applied, the second textile with a higher shrinkage condition shrinks more than the first textile. Since both textiles are bonded to one another, the different shrinkage of the two textiles leads to a deformation of the sporting goods component. If the size, shape, arrangement, and shrinkage ratio of both textiles are selected accordingly, the deformation results in a desired shape for the sporting goods component. In this way, the sporting goods component can be provided with a quite complex three-dimensional shape without having to bond different parts together.
[0017] The invention also allows less attractive seams to be relocated to a different location, where they can be covered by another part of the sporting goods component. Examples are provided below. This allows for the production of more attractive sporting goods components.
[0018] For the purposes of the present invention, "shrinkage ratio" refers to the ratio of the length of a specific portion of a respective textile before and after the application of the shrinkage condition. For example, if a specific portion of the first textile or the second textile has a length of 2 cm before shrinkage and 1 cm after shrinkage, the shrinkage ratio is 2, or the shrinkage ratio can be expressed as a percentage indicating how much the portion has shrunk. For example, if the length of the portion is 1 cm before shrinkage and 0.7 cm after shrinkage, the shrinkage ratio is 30%. Depending on the invention, a shrinkage ratio of 1 (or 0%) is possible, meaning the textile may not shrink at all.
[0019] The process includes the step of applying the shrinkage condition. This causes the second textile to shrink more than the first, as its shrinkage ratio is higher. Since both textiles are bonded together, a tensile force is created within the sporting goods component, leading to deformation.
[0020] Applying the shrinkage condition gives the sporting goods component a three-dimensional shape. In this way, a flat, two-dimensional shape can be transformed into a three-dimensional sporting goods component simply by applying the shrinkage condition. In other embodiments, a three-dimensional sporting goods component is transformed from one three-dimensional shape to another three-dimensional shape simply by applying the shrinkage condition. The shrinkage condition may involve the application of heat and / or water. Water may be in liquid, gas, or vapor form. Heat and water are readily available, and their application is quite simple.
[0021] The first textile can be a knitted or warp-knitted fabric, and / or the second textile can be a knitted or warp-knitted fabric. Knitted or warp-knitted fabrics are well suited for sporting goods components such as shoe uppers, but also for sportswear. Furthermore, yarns with different shrinkage ratios can be used by knitting machines to produce the first and second textiles fully automatically.
[0022] The method may further comprise the step of forming the first part and the second part of the component during the same knitting or warp-knitting process. This results in a one-piece, seamless knitted or warp-knitted fabric, allowing for simple and cost-effective production and a beautiful finished product. Furthermore, such a knitted or warp-knitted component may be produced on a flat knitting machine and designed three-dimensionally using the shrinkage condition.
[0023] The method may further comprise the step of joining the first part and the second part together by knitting stitches during the knitting or warp-knitting process. As already mentioned, this technique avoids seams between the two parts. Nevertheless, and in accordance with the invention, other methods for attaching the first and second parts may be used, such as sewing, gluing, fusing, etc.
[0024] The method may further comprise the steps of forming the first part at least partially by a first knitting row and the second part at least partially by a second knitting row. In this way, the two different textiles can be integrated into the sporting goods component, e.g., by changing the yarn on a knitting machine after knitting the first row.
[0025] The first part of the component can be obtained by using a first selection of yarn or yarns on a first needle, and the second part of the component can be obtained by using a second selection of yarn or yarns on a second needle, wherein the second needle forms stitches adjacent to stitches formed by the first needle, and the second selection of yarn or yarns has a higher shrinkage ratio than the first selection of yarn or yarns. Such a construction shortens production time because both textiles can be incorporated into the sporting goods component simultaneously.
[0026] The method may further comprise the step of forming the first and second textiles by small circular knitting. Small circular knitting is a technique that allows the production of a single circularly knitted component with a diameter adapted to the final shape of the component. Compared to conventional circular knitting or flat knitting, no additional cutting step is required. Since this is a three-dimensional circularly knitted component, no additional sewing step is required to form a two-dimensional flat part into a three-dimensional part. In addition, by applying the shrinkage condition, the circularly knitted or round-knitted part can be further shaped into the desired shape.
[0027] The first textile and the second textile can be knitted in a single small circular knitting process to obtain a tube comprising the first part and the second part. The shape of the tube can then be locally modified by the method according to the invention.
[0028] The second shrinkage ratio may be at least 10% higher than the first shrinkage ratio. In particular, the shrinkage ratio may be at least 20%.
[0029] The sporting goods component manufactured according to the method described here can, in particular, be a shoe upper for a sports shoe. As mentioned above, shoe uppers are typically sewn or glued together from two-dimensional parts. These steps can be eliminated if the method is applied according to the invention.
[0030] Another aspect of the present invention relates to a sporting goods component comprising: a first part comprising a first material having a first shrinkage ratio under a predetermined shrinkage condition, which shrinks upon application of the shrinkage condition; and a second part comprising a second material having a second shrinkage ratio under the predetermined shrinkage condition, which shrinks upon application of the shrinkage condition, wherein the sporting goods component has a three-dimensional shape caused at least in part by a difference between the first shrinkage ratio and the second shrinkage ratio.
[0031] As described above, such a sporting goods component can have a fairly complex three-dimensional shape without the need to connect different parts together. The invention also allows less attractive seams to be relocated, where they can be covered by another part of the sporting goods component. Examples are provided below.
[0032] The sporting goods component has a three-dimensional shape that is caused at least in part by a difference between the first shrinkage ratio and the second shrinkage ratio. Thus, a three-dimensional sporting goods component can be obtained from a flat two-dimensional shape. A three-dimensional sporting goods component can also be obtained from a three-dimensional shape, e.g., a complex three-dimensional sporting goods component can be obtained from a tubular component.
[0033] The sporting goods component can be a shoe upper. As mentioned above, shoe uppers are typically sewn or glued together from two-dimensional parts. These steps can be eliminated when a shoe upper is manufactured according to the invention, which involves less time, effort, and cost.
[0034] The shrinkage condition may involve the application of heat and / or water. Heat and water are readily available and their application is quite simple.
[0035] The first part can comprise a knitted or warp-knitted textile, and / or the second part can comprise a knitted or warp-knitted textile. Knitted or warp-knitted fabrics are well suited for sporting goods components such as shoe uppers, but also for sportswear. Furthermore, yarns with different shrinkage ratios can be used by knitting machines to produce the first and second textiles fully automatically.
[0036] The first knitted or warp-knitted textile and the second knitted or warp-knitted textile may be parts of a one-piece knitted or warp-knitted fabric. Thus, the sporting goods component comprises a one-piece, seamless knitted or warp-knitted fabric that may originally be flat but acquires a three-dimensional shape through the application of the shrinkage condition.
[0037] The first and second parts may have been joined together by knitting stitches during a knitting or warp-knitting process. As already mentioned, this technique avoids seams between the two parts.
[0038] The first part can be formed at least partially by a first knitting row, and the second part can be formed at least partially by a second knitting row. In this way, the two different textiles can be integrated into the sporting goods component, e.g., by changing yarn on a knitting machine after knitting the first row.
[0039] The first textile and the second textile may be formed by small circular knitting. As mentioned above, small circular knitting is a technique that allows for the production of a single circular knit section with the correct size and shape. Compared to conventional circular knitting or flat knitting, in which multiple components (i.e., shoe uppers or parts thereof) are produced simultaneously, no additional cutting step is required. Since this is a three-dimensional circular-knitted component, no additional sewing step is required to form a two-dimensional flat part into a three-dimensional part. In addition, by using textiles with different shrinkage conditions, the circular-knitted component can be further shaped into the desired shape of the finished sporting goods component.
[0040] According to one aspect of the inventive concept of the present invention, a shrink yarn is incorporated into a sporting goods component so that when the sporting goods are worn, the shrink yarn surrounds a part of the human body. For example, the shrink yarn can be wrapped around a toe area of a shoe upper so that it surrounds a human foot when a shoe with the shoe upper is worn.
[0041] By applying a shrinkage condition, as described here, the shrink yarn can shrink and give the sporting goods component a desired shape. In the example above, the shoe upper can be provided with a smaller diameter in the toe area than, for example, in the midfoot area.
[0042] The sporting goods component can consist of a base material and the shrink yarn. When the shrink condition is applied, the shrink yarn can exhibit a higher shrinkage ratio than the base material. The base material can be textile, leather, or synthetic leather, for example.
[0043] The sporting goods component can be a shoe upper. As described above, the shoe upper can be formed into the desired shape by simply applying the shrinkage condition.
[0044] The sporting goods component can be sportswear. For example, the shrink yarn can be arranged so that it surrounds the waist of the human body when worn. This allows the clothing to be well-adjusted to the human body. 4. Short description of the characters
[0045] The currently preferred embodiments of the method according to the invention and of a sporting goods component according to the invention are described in the following detailed description with reference to the following drawings: Fig. 1A and Fig. 1B shows an exemplary shoe upper according to the invention; Fig. 2A and Fig. 2B show an embodiment according to the invention relating to a shoe upper; Fig. 3 shows a further embodiment according to the invention relating to a shoe upper; Fig. 4A and Fig. 4B show an embodiment according to the present invention using layers with different shrinkage ratios; Fig. 5A and Fig. 5B show another embodiment according to the present invention using layers with different shrinkage ratios; Fig. 6A and Fig. 6B show yet another embodiment according to the present invention using layers with different shrinkage ratios; Fig. 7A and Fig. 7B show an embodiment of a yarn according to the present invention; Fig. 8A and Fig. 8B show an exemplary shoe upper according to the invention; Fig. 9A, Fig. 9B and Fig. 9C show an exemplary shoe upper according to the invention; Fig. 10 shows another exemplary shoe upper according to the invention; and Fig. 11A and Fig. 11B show an embodiment according to the inventive idea of the present invention. 5. Detailed description of preferred embodiments
[0046] The Fig. 1A and Fig. 1B show an exemplary sporting goods component, namely an upper 11 for a sports shoe. In general, the present invention applies to all types of sporting goods, such as sportswear. According to the exemplary embodiment of Fig. 1A and Fig. 1B, the shoe upper 11 is manufactured by small circular knitting. Small circular knitting is a technique that allows for the production of a single circular knitting section of the correct size and shape at a time. Compared to conventional circular knitting or flat knitting, in which multiple components (i.e., shoe uppers or parts thereof) are produced simultaneously, no additional cutting step is required.
[0047] Thus, the shoe upper 11 is initially a small circular knit sock. The upper 11 has a shrink zone 12, which shrinks more than the rest 13 of the sock when heat is applied to the knitted or warp-knitted fabric. In particular, in the currently preferred embodiment of the invention, the shrink part 12 is placed at the bottom of the forefoot portion of the sock. In this way, some parts, such as the seam 14 on the front of the sock, can be pulled down so that they are concealed when the shoe upper is then joined to a sole (not in the Fig. 1A and Fig. 1B).
[0048] After shrinking the part 12, the shoe upper 11 is deformed in the forefoot area so that the front seam 14 is positioned below the shoe upper 11. The connecting line separating the part of the shoe upper 11 that is visible on the final product and the part of the upper 11 that is connected to the sole unit is indicated by dashed lines 15. After shrinking, the seam 14 is located below the connecting line, so it is not visible on the final product.
[0049] The process can be applied to any knitted or warp-knitted textile, in particular to a flat-knitted or warp-knitted textile, or to any other material. One or more of the textiles may be a knit or warp-knitted fabric, a net, a braid, a woven fabric, or a nonwoven fabric.
[0050] The area where the higher shrinkage ratio is intended may be located at a different location than in the above example of the Fig. 1A and Fig. 1B. In particular, it can be in several parts with different sizes and shapes. More than two sections can also have a different shrinkage ratio. The shrinkage ratio can also change gradually, e.g., by gradually changing the proportions of shrink yarn in a knitted or warp-knitted fabric. In this way, a small circular knit tube can be preformed into a shoe shape, as shown in the Fig. 2A and Fig. 2B.
[0051] In this example, a small circular knitted tube 21 has four different zones 22, 23, 24 and 25, each with a different shrinkage ratio. As in Fig. As shown in Figure 2B, the toe zone 25 has the highest shrinkage ratio, while the ankle zone 23 has the lowest shrinkage ratio. Of course, the number of zones, the arrangement of the zones, and the shrinkage ratios can vary.
[0052] In general, shrinkable yarns can be used in the present invention. A shrinkable yarn can be based, for example, on polyamides, polyesters, polyacrylonitriles or vinyl polymers, olefin polymers, TPU, wool felt, Lycra®, yarns containing rubber, and biomimetic yarns such as spider silk yarn obtained by bioengineering (e.g., using genetically modified bacteria).
[0053] In some embodiments, a PES yarn may be used in a part that is intended to shrink only slightly (e.g., between 1% and 5%), and a blend of PES and Lycra yarn may be used in shrink parts with a higher shrinkage ratio (e.g., between 5% and 30%, in particular between 10% and 20%).
[0054] One of the advantages of the invention is that a basic component of one size can be shrunk to different percentages to obtain different sizes of the final sporting goods. This is particularly advantageous in small circular knitting, where the number of needles is fixed and thus the diameter of the resulting tube is also essentially fixed. However, by varying the shrinkage ratio and / or the size and / or the shape and / or the arrangement of the shrink parts and / or the shrinking conditions (particularly the application time), different sizes and shapes can be achieved.
[0055] In one example, a sock obtained by small circular knitting is to be used as a sports shoe upper. The size of the sock, as it emerges from the small circular knitting machine, corresponds to a European shoe size 40. By deliberately adding a shrink yarn during the knitting or warp-knitting process and applying a shrinkage condition, it is possible to shrink the sock to fit smaller shoe sizes such as 39, 38, 37, etc.
[0056] In general, the shrink part can have a different width across a dimension of the shoe upper, so that one part becomes smaller than other parts, as in Fig. 3. In this example, a tube 31 to be used for a shoe upper has a shrink portion 32 that has a higher shrink ratio than other portions 33 of the tube 31. The width of the shrink portion 32 varies along its length. The central portion 34 of the shrink portion 32 is quite large compared to its end portions 35a and 35b. Thus, when the shrinkage condition is applied, the tube 31 acquires a smaller diameter in the region of the central portion 34 of the shrink portion 32 compared to the regions of the end portions 35a and 35b of the shrink portion 32. Such a central portion 34 can, for example, correspond to the arch portion of a sock or a shoe upper.
[0057] A shrinkage area, shrinkage zone, or shrinkage part according to the invention is understood to be an area that shrinks more than another area of the sporting goods component (e.g., a shoe upper). For example, the shrinkage area, shrinkage zone, or shrinkage part can be knitted and have a higher proportion of shrinkage yarn. Other areas may have less or no shrinkage yarn.
[0058] In some embodiments, a sporting goods component may comprise two overlapping textile layers, with a first layer having a lower shrinkage ratio than a second layer. The two layers may be bonded together or attached only at certain points (e.g., at the edges). Thus, the behavior of the parts is different whether the two layers are bonded or not. The first (less shrinking) layer may be a stretch layer with a higher degree of elasticity.
[0059] An example of overlapping layers with different shrinkage ratios is shown in the Fig. 4A and Fig. 4B. In this example, the upper layer 41 has a lower shrinkage ratio than the lower layer 42. Thus, when the shrinkage condition is applied, the lower layer 42 shrinks as shown in Fig. 4B is stronger than the upper layer 41 and “pulls” both layers into a curved shape.
[0060] Another example can be found in the Fig. 5A and Fig. 5B. In this example, the upper layer 41 and the left part 42a of the lower layer 42 are formed from a textile with a comparatively low shrinkage ratio. Both layers can be used, for example, for a spacer knit or warp-knitted fabric, or the two layers can be joined, for example, by loose seams. The right part 42b of the lower layer 42 comprises a textile with a comparatively high shrinkage ratio. As in Fig. As shown in Figure 5B, after applying the shrinkage condition, the part 42b pulls a part of the upper layer 41 into a curved shape.
[0061] Another example is in the Fig. 6A and Fig. 6B. In this example, the upper layer 41, the left part 42a, and the right part 42c of the lower layer 42 are formed from a textile with a comparatively low shrinkage ratio. The middle part 42b of the lower layer 42 comprises a textile with a comparatively high shrinkage ratio. As shown in Fig. 6B, the combination of the two layers 41 and 42 after applying the shrinkage condition creates a texturing effect on the upper layer 41. The upper layer 41 can be, for example, an outer layer of a shoe upper.
[0062] In general, the activation of shrinkage according to the invention can be induced by various elements. The shrinkage can be activated by heat, by water (liquid, gas, or vapor), and / or any combination. The heat can be provided as an electromagnetic wave in many different wavelengths: IR, microwave, radio frequency, etc., to heat the sporting goods component, such as a shoe upper.
[0063] Activation can be applied to the entire sporting goods component (e.g., a shoe upper) or locally. For example, heat or steam can be applied very locally using a nozzle, either manually or automatically (e.g., with a robotic arm). Nevertheless, the invention is particularly advantageous when activation is applied to the entire sporting goods component (e.g., a shoe upper): The process is then simpler and more cost-effective, as it requires less complex machinery and less labor. For example, the entire shoe upper can be fed into an oven. In the case of a shoe upper, shrinkage is best performed when the upper is lasted. However, it can also be performed without lasting. When the upper is lasted, heat can be transferred to the upper via the last to activate the shrinking process. For this purpose, the last can have a heating element, such as heating wires, or allow the passage of a hot medium, such as water or oil, or have steam nozzles.
[0064] According to the invention, other parts with different properties can be integrated into a shoe upper for a sports shoe (or sportswear). For example, one part can have a higher elasticity than another. This can be achieved by a higher proportion of an elastic yarn (e.g. in a knitted or warp-knitted fabric or a woven fabric). In particular, an elastic yarn can be integrated into the shrinkage area in combination with a shrink yarn. This allows the elastic yarn to pull on the shrink point when the shrink yarn is "activated" to accelerate shrinkage and / or with easier activation (e.g. at a lower temperature) and / or with a lower proportion of shrink yarn than would be necessary without the elastic yarn.
[0065] The shrinkage zone can also be combined with a second, auxetic zone. Auxetics can be achieved through the geometry and / or material of the second zone. The shrinkage zone and the auxetic zone can be positioned on the shoe upper in such a way that, during shrinkage, the shrinkage zone pulls the auxetic material in one direction. As a consequence of this pull along one direction, the auxetic zone also extends in a second direction.
[0066] The method according to the invention can generally also be used for clothing.
[0067] Another advantage of incorporating shrinkage zones is that they can make these zones stiffer. Therefore, they can form local reinforcement such as a heel counter or toe cap. They can also improve abrasion resistance. This is particularly the case with knitted or warp-knitted textiles, where the shrunken knit or warp-knit section has smaller and tighter stitches. Furthermore, the shrunken section can also be more water-repellent because the holes between the stitches are smaller. In combination with a water-repellent yarn (e.g., water-repellent coated yarn), the holes can be small enough to stop water absorption even in a knit or warp-knit fabric.
[0068] The shrinkable parts or parts thereof, such as shrink yarn, can be removed in a subsequent manufacturing step. For example, a shrink patch or shrink yarn is attached at intervals to a base layer to deform it upon shrinkage. The base layer is then fixed or consolidated in shape, and the shrinkable part is then removed. The shrinkable part can also be cut off in a subsequent manufacturing step, for example, from a shoe upper. In particular, an outer periphery of the shoe upper, which would shrink more than other parts of the shoe upper, can be cut off in a later step.
[0069] A specific shrink yarn can consist of two different material qualities, so that one part of the yarn shrinks more than another part. A clear example of such a yarn 71 can be found in the Fig. 7A and Fig. 7B. The yarn 71 has a first part 72 with a comparatively high shrinkage ratio and a second part 73 with a comparatively low shrinkage ratio. As in Fig. As shown in Figure 7B, the yarn 71 is in a wavy configuration after applying the shrinkage condition.
[0070] The yarn 71 can be produced by coextrusion of two different materials—or two different grades of one material—with different shrinkage ratios under the same predetermined conditions. Such a yarn 71 would, as in Fig. 7B, thereby exerting a tensile force. When such a yarn 71 is embedded in a textile such as a knitted or warp-knitted fabric, it exerts its tensile force on the textile and thereby deforms the textile.
[0071] The Fig. 8A and Fig. 8B show a location where a shrink part 82 can be placed in a shoe upper 81, namely in the toe area. As in Fig. As shown in Figure 8B, the toe region has a smaller diameter after applying the shrinkage condition than the rest of the shoe upper, which has a lower shrinkage condition. Another possible location for a shrinkage region is the outer perimeter 83 of a shoe upper.
[0072] It is also possible to apply a shrinkage condition more than once. For example, as in Fig. As shown in Figure 8B, a second step can be performed after the shoe support of the Fig. 2B was obtained by a first shrinking step to shrink a region 84 below the toe area. In one example, region 84 may contain a yarn with a higher activation temperature than region 82. In another example, region 82 is activated by heat while region 84 is activated by water, or vice versa.
[0073] In an optional step of the invention, a mask can be applied to at least a portion of the sporting goods component (e.g., a shoe upper) so that the application of the shrink condition does not affect it. This portion can therefore remain unshrunk or be shrunk at a later time. For example, a mask can protect at least a portion from heat exposure.
[0074] The Fig. 9A, Fig. 9B and Fig. 9C show another exemplary embodiment of the present invention, namely a shoe upper 91 for an athletic shoe. In this exemplary embodiment, a TPU yarn was used to create a shrink zone 92. The shrink zone 92 was created in the lower part of the forefoot area (or "toe area") of a knitted or warp-knitted, stocking-like shoe upper 91 (e.g., by small circular knitting). Fig. Figure 9A shows a bottom view of the knitted or warp-knitted sock-like upper 91 before shrinkage. The Fig. 9B and Fig. 9C show the shrinkage achieved in this way. As can be seen, a portion 93 of the shoe upper 91, which includes the shrinkable TPU yarn, is pulled under a portion of the toe.
[0075] In particular, Fig. 9B shows the upper 91 after the application of steam in a flat configuration. The TPU yarn-knitted or warp-knitted zone 92 shrank from 12 cm to 10 cm, as indicated by the ruler. It can be seen that the seam lines 94 (between zones 92 and 93) were drawn toward the underside of the shoe upper 91, so that the seam lines are no longer visible when the shoe upper 91 is joined to a bottom. Fig. Figure 9C shows the upper 91 after applying steam, with the upper 91 placed on a last. Here, too, the seam lines 94 have been drawn to the underside of the shoe upper 91.
[0076] The yarn proportions in this specific example are as follows: 100% PES in the 93 range and 100% TPU in the 92 range. However, similar behavior can be observed with material blends, especially with some materials that can be manufactured with higher shrinkage levels. Furthermore, material blends are advantageous for maintaining a combination of properties in the shrinkage zones, e.g., to maintain bonding behavior or comfort.
[0077] Fig. Figure 10 shows another exemplary embodiment of the present invention, namely a shoe upper 101 with a shrink portion 102 in the lower midfoot region (or arch). In this example, the shrink portion 102 helps to mold the upper 101 around the concave shape of the midfoot, thereby supporting a foot of the wearer of the finished athletic shoe and generally improving the shape and fit to the foot.
[0078] According to one aspect of the inventive idea of the present invention, a shrink yarn is incorporated into a sporting goods component so that when the sporting goods are worn, the shrink yarn surrounds a part of a human body. This principle is generally known in the Fig. 11A and Fig. 11B, which show a cylindrical shape 111. The cylindrical shape 111 generally comprises a first material 112. The center of the cylinder has a shrinkage part or shrinkage zone, which additionally comprises a second material 113 in the form of a yarn that shrinks by applying a certain shrinkage condition, e.g., applying heat above a certain temperature or applying water. The first material 112 generally does not shrink by applying the shrinkage condition or does not shrink as much as the shrinkage yarn. After applying the shrinkage condition, the center of the cylindrical shape is formed by the shortened yarn 113, as in Fig. 11B shown, narrowed.
[0079] In general, one of the shrink yarns described above can be used for this aspect of the concept of the present invention. The material 112 used for the sporting goods component can be a textile (e.g., a knitted or warp-knitted fabric), leather, or synthetic leather.
Claims
[1] Method for producing a sporting goods component (11, 21, 31, 81, 91, 101, 111) comprising the steps: - selecting a first textile, the first textile comprising a first material having a shrinkage ratio under a predetermined shrinkage condition and shrinking upon application of the shrinkage condition; - forming a first part of the component (11, 21, 31, 81, 91, 101, 111) using the first textile; - selecting a second textile, the second textile comprising a second material having a shrinkage ratio under the predetermined shrinkage condition and shrinking upon application of the shrinkage condition, the second shrinkage ratio being higher than the first shrinkage ratio; - forming a second part of the component (11, 21, 31, 81, 91, 101, 111) using the second textile; - connecting the first textile and the second textile together; - applying the shrinking condition, wherein the application of the shrinking condition gives the sporting goods component (11, 21, 31, 81, 91, 101, 111) a three-dimensional shape either from a flat two-dimensional shape or from a three-dimensional shape into another three-dimensional shape. [2] A method according to any one of the preceding claims, wherein the shrinking condition comprises the application of heat and / or water. [3] Method according to one of the preceding claims, wherein the first textile is a knitted or warp-knitted fabric and / or the second textile is a knitted or warp-knitted fabric. [4] A method according to the preceding claim, further comprising the step of forming the first part and the second part of the component (11, 21, 31, 81, 91, 101, 111) during the same knitting process. [5] A method according to the preceding claim, further comprising the step of attaching the first part and the second part to each other by knitting stitches during the knitting process. [6] A method according to any one of the preceding claims, further comprising the steps of forming the first part at least partially by a first knitting row and forming the second part at least partially by a second knitting row. [7] A method according to the preceding claim, wherein the first part of the component (11, 21, 31, 81, 91, 101, 111) is obtained by using a first selection of yarn or yarns on a first needle and wherein the second part of the component (11, 21, 31, 81, 91, 101, 111) is obtained by using a second selection of yarn or yarns on a second needle, the second needle forming stitches adjacent to stitches formed by the first needle and the second selection of yarn or yarns having a higher shrinkage ratio than the first selection of yarn or yarns. [8] A method according to any one of the preceding claims, further comprising the step of forming the first textile and the second textile by small circular knitting. [9] A method according to the preceding claim, wherein the first textile and the second textile are knitted in a single small circular knitting process to obtain a tube comprising the first textile and the second textile. [10] A method according to any one of the preceding claims, wherein the second shrinkage ratio is at least 10% higher than the first shrinkage ratio. [11] Sporting goods component (11, 21, 31, 81, 91, 101, 111) comprising: - a first part comprising a first material having a first shrinkage ratio under a predetermined shrinkage condition, which shrinks upon application of the shrinkage condition; and - a second part comprising a second material having a second shrinkage ratio under the predetermined shrinkage condition, which shrinks upon application of the shrinkage condition, wherein the sporting goods component (11, 21, 31, 81, 91, 101, 111) has a three-dimensional shape caused at least in part by a difference between the first shrinkage ratio and the second shrinkage ratio. [12] Sporting goods component (11, 21, 31, 81, 91, 101, 111) according to the preceding claim, wherein the component (11, 21, 31, 81, 91, 101, 111) is a shoe upper. [13] The sporting goods component (11, 21, 31, 81, 91, 101, 111) of claim 12, wherein the shrinking condition comprises the application of heat and / or water. [14] Sporting goods component (11, 21, 31, 81, 91, 101, 111) according to one of claims 12 to 13, wherein the first part comprises a knitted textile and / or the second part comprises a knitted textile. [15] Sporting goods component (11, 21, 31, 81, 91, 101, 111) according to the preceding claim, wherein the first knitted textile and the second knitted textile are parts of a one-piece knitted fabric. [16] Sporting goods component (11, 21, 31, 81, 91, 101, 111) according to one of claims 14 or 15, wherein the first part and the second part are connected to each other by knitting stitches. [17] Sporting goods component (11, 21, 31, 81, 91, 101, 111) according to one of claims 14 to 16, wherein the first part is formed at least partially by a first knitting row and the second part is formed at least partially by a second knitting row. [18] Sporting goods component (11, 21, 31, 81, 91, 101, 111) according to one of claims 12 to 17, wherein the first textile and the second textile are formed by small circular knitting.
Citation Information
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