shoe, especially a sports shoe
Knitted fabric for outsoles and midsoles addresses waste and inefficiencies in shoe manufacturing, resulting in lightweight, durable, and customizable sports shoes with improved cushioning and traction.
Patent Information
- Application Number
- DE102013207156
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2013-04-19
- Publication Date
- 2025-12-24
- Estimated Expiration
- 2033-04-19
AI Technical Summary
Existing shoe manufacturing methods generate waste and are inefficient, particularly in creating functional zones for outsoles and midsoles, leading to increased production time, cost, and weight.
Utilizing knitted fabric for outsoles and midsoles, which are produced in the required shape without cutting and easily joined, allowing functional zones to be formed during fabrication, and incorporating thermoplastic yarns for stability and cushioning.
Reduces waste, simplifies manufacturing, and enables lightweight, durable, and customizable shoes with improved cushioning and traction.
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Abstract
Description
1. Technical field
[0001] The present invention relates to a shoe, in particular a sports shoe. 2. State of the art
[0002] Generally, a shoe consists of an outsole and an upper attached to it. Sports shoes, in particular, usually also have a midsole, also known as a midsole, located between the upper and the outsole. The upper, outsole, and midsole (if present) are typically made of leather in classic shoes, while sports shoes usually use synthetic materials. The outsole can also be made of rubber.
[0003] A shoe differs from a sock in that the upper part of the shoe provides much greater stability to the foot. The foot is held much more firmly in place by a shoe's upper than by a sock. Furthermore, the sole protects the foot from injury and provides cushioning, meaning it absorbs impacts, for example, when running. Through the use of suitable materials, such as rubber, and / or a tread pattern, a shoe's sole also ensures the necessary traction with the ground. A sock cannot fulfill the functions of a shoe described above.
[0004] Leather outsoles and midsoles are cut from a single piece of leather. Rubber or plastic outsoles and midsoles can be cut from sheets of material or manufactured using a casting process.
[0005] Several aspects of known methods for manufacturing outsoles and midsoles have proven to be disadvantageous. For example, when manufacturing leather soles, a certain amount of waste is always generated if the soles are cut from a single piece of leather.
[0006] When manufacturing outsoles and midsoles from different materials, bonding them together often proves problematic. For example, if the outsole is made of rubber and the midsole of polyurethane, they cannot be glued together without considerable effort. Frequently, the use of an adhesion promoter is unavoidable.
[0007] Outsoles and midsoles, especially in athletic shoes, are often designed with functional zones. For example, an outsole might have differently profiled areas, which can even be made of different materials or material blends. A midsole, for instance, might be equipped with cushioning elements in specific areas to reduce the typical stresses experienced by the wearer while running. Creating these functional zones during the manufacturing process is often time-consuming, incurs additional costs and production steps, and usually increases the shoe's weight.
[0008] US 2012 / 0255201A1 relates to a seamless shoe upper and methods for its manufacture. EP 0959704B1 relates to a breathable outsole.
[0009] DE 20 2007 019 490 U1 concerns a footwear article with a flat-knit upper material structure or other upper material structure.
[0010] DE 20 2009 010 225 U1 concerns a sock with a double-walled sole area.
[0011] DE 10 2006 009 974 A1 relates to a shoe stabilization material, a barrier unit, a shoe sole composite and footwear.
[0012] WO 2010 / 020 391 A1 concerns a shoe floor with air ventilation.
[0013] US 5 345 638 A relates to a method for manufacturing a shoe-shaped part from a web of material and a resulting shoe-shaped part.
[0014] US 2 0,47 724 A relates to a knitted article and methods for its manufacture.
[0015] The present invention therefore addresses the problem of reducing or avoiding the aforementioned disadvantages of prior art. In particular, the present invention addresses the problem of providing a lightweight shoe, especially a sports shoe, which is simple, inexpensive, and quick to manufacture with minimal waste. 3. Summary of the invention
[0016] According to a first aspect of the present invention, this problem is solved by a shoe, in particular a sports shoe, which has a shoe upper and an outsole which is connected to the shoe upper, wherein the outsole has a knitted fabric and wherein the outsole is provided with functional areas which were formed during the manufacture of the knitted fabric.
[0017] To illustrate the invention, reference is also made below to a midsole that the shoe could have.
[0018] When using knitted fabric for the outsole and / or midsole, waste during production is largely avoided, as the knitted fabric can be produced on a knitting or warp knitting machine in the required shape without the need for subsequent cutting.
[0019] If the outsole and / or midsole are made of knitted material, they are particularly easy to join together. For example, they can be sewn together, eliminating the need for glue or bonding agents. The outsole and midsole could also be joined simply by heating if the knitted material of the outsole and / or midsole contains a thermoplastic yarn that melts under pressure and heat and solidifies upon subsequent cooling.
[0020] The use of knitted fabric for a shoe's outsole and / or midsole is particularly advantageous for creating functional zones. These zones can be formed during the fabric's production, for example, on a knitting or warp knitting machine. In the forefoot area, for instance, flexibility is often desirable, which can be achieved by incorporating structures with joint support. In the midfoot area, stability is often required, which can be achieved, for example, through a denser knit. In the heel area, especially in athletic shoes, a high degree of cushioning is frequently desired, which can be achieved, for example, through thicker knitted fabric.
[0021] In another example, the thickness of the knit fabric can be easily adjusted according to the stress in specific areas of the outsole and / or midsole by varying the yarn thickness, yarn type or material, and / or the stitch pattern. Furthermore, for instance, ventilation of the wearer's foot can be provided by using coarser stitches and / or knitted-in openings in the knit fabric.
[0022] The advantages shown above are achieved by using knitted fabric for the outsole and / or midsole of a shoe.
[0023] Preferably, the shoe upper is made of knitted fabric. This allows the shoe upper to be easily connected to the outsole and / or midsole, for example by sewing.
[0024] Preferably, the shoe upper, together with the outsole and / or midsole, is manufactured as a single piece of knitted fabric. This allows for very simple production of the entire shoe in one operation, for example on a knitting or warp knitting machine.
[0025] Preferably, the knitted fabric in the outsole and / or midsole area has a different weave than in the upper area. By selecting a suitable weave for the upper and the outsole and / or midsole, specific functional areas can be created. For example, a more durable weave (e.g., twill weave for knitted fabrics) could be used in the outsole area than in the upper. Conversely, a more elastic weave (e.g., jersey weave for knitted fabrics) could be used in the upper, allowing it to easily adapt to the individual shape of the foot.
[0026] Preferably, the shoe upper has a first yarn, and the knit fabric in the outsole and / or midsole area has a second yarn. The choice of suitable yarns allows for functional adaptation of the respective knit fabric. For example, a rubberized yarn could be used in the outsole area, which increases friction and thus traction. In the shoe upper area, a yarn that promotes breathability, e.g., a yarn with relatively low bulk, could be used.
[0027] Preferably, the second yarn is thicker than the first. This makes the outsole and / or midsole thicker overall, thus improving cushioning properties. In the outsole area, a thicker yarn also ensures greater durability. In the upper area, however, a thinner yarn promotes breathability.
[0028] The second yarn is preferably more abrasion-resistant than the first. This makes the outsole and / or midsole, which are subject to greater stress compared to the upper part of the shoe, more durable and longer-lasting. For example, the more abrasion-resistant yarn could be a Kevlar® yarn.
[0029] Preferably, the second yarn is more water-repellent than the first yarn. This reduces or completely prevents water from penetrating the outsole and any midsole that may be positioned above it.
[0030] Preferably, the knit fabric in the upper area of the shoe is more breathable than in the outsole and / or midsole. This promotes air exchange between the inside and outside of the shoe, transporting moist air from the foot to the outside and supplying fresh air to the foot. In contrast, the outsole can be knitted or woven more tightly to repel dirt and water.
[0031] Preferably, the knitted material in the area of the outsole and / or midsole is arranged such that the knitted strands of the material run essentially transversely to a longitudinal axis of the outsole and / or midsole. This increases traction, particularly in the longitudinal direction, as the transversely arranged knitted strands act like a transversely profiled sole.
[0032] Preferably, the knitted fabric incorporates stability elements in the outsole and / or midsole area. Alternatively, the knitted fabric incorporates stability elements in both the outsole and midsole areas. These stability elements can be knitted or woven directly into the fabric, providing additional sole stability.
[0033] The stability elements preferably take the form of ribs, waves, or studs. Ribs, waves, or studs on the outsole act like a profile, increasing friction and traction. Ribs, waves, or studs in the midsole can engage with corresponding ribs, waves, or studs in the outsole, creating a particularly stable connection between the two. Ribs, waves, or studs on the upper surface of the midsole, i.e., the side facing the foot, can provide a massaging effect.
[0034] Preferably, the ribs are arranged essentially transversely to a longitudinal axis of the shoe. This increases traction, particularly in the longitudinal direction, as the transversely arranged ribs act like a transversely profiled sole. Furthermore, transversely arranged ribs improve the flex properties of the sole.
[0035] In a preferred embodiment of the invention, the knit fabric is knitted. Either the knit fabric of the outsole and / or the midsole is knitted. Alternatively, the knit fabric of the shoe upper is knitted. A further alternative is that both the knit fabric of the outsole and / or midsole, as well as the knit fabric of the shoe upper, is knitted. Knit fabric can be knitted particularly easily into the desired shape on a suitable machine without producing any waste. On flat knitting machines, the knit fabric can also be shaped or 3D knitted.
[0036] In an alternative embodiment of the invention, the knitted fabric is fabricated. Either the fabric of the outsole and / or the midsole is knitted. Alternatively, the fabric of the upper is knitted. A further alternative is the fabric of both the outsole and / or the midsole, as well as the fabric of the upper. In particular, warp-knitted fabrics, due to the use of a large number of warp threads, allow for especially rapid production.
[0037] Preferably, the outsole and / or midsole is reinforced with a polymer material. The reinforcing polymer material increases the stiffness and stability of the knitted fabric in the area of the outsole and / or midsole. The reinforcing polymer material can be applied in liquid form and then allowed to dry. Preferably, the polymer material is a thermoplastic polymer.
[0038] Preferably, the knitted fabric incorporates a thermoplastic yarn in the outsole and / or midsole area. A thermoplastic yarn is easy to process and can, for example, be knitted, woven, or embroidered into the fabric during its production. If the shoe is then heated above the melting point of the thermoplastic yarn, it melts and solidifies upon subsequent cooling. This stiffens the knitted fabric and provides stability.
[0039] In a preferred embodiment, the thermoplastic yarn comprises a low-melting thermoplastic. This allows the knitted fabric to be adapted directly to the foot or the last.
[0040] Preferably, one layer of the sole is knitted or woven entirely from melt yarn. This allows for the simple production of a sole plate when this layer is melted, cooled, and solidified. Sole plates are often used in shoes to distribute forces or to protect the foot from sharp objects such as stones.
[0041] Preferably, a section of the sole is entirely knitted or crocheted from melt yarn. This allows for the simple creation of a solid element within the sole when the section is melted, cools, and solidifies. For example, this section could be a bone-shaped area positioned between the forefoot and heel, influencing the torsion of the sole. Such a solid melt yarn section can also provide stability to the midfoot.
[0042] Preferably, both the upper part of the shoe and the outsole or midsole, or both, feature melted yarn.
[0043] Preferably, the knitted fabric in the outsole area incorporates at least one rubberized yarn. This could be, for example, a solid rubber yarn, a rubber-coated yarn, or a rubber-like yarn. This increases the abrasion resistance and traction of the outsole.
[0044] Preferably, the knitted material of the outsole and / or midsole was at least partially immersed in a rubber and / or polymer bath. This post-treatment of the knitted material allows for a simple increase in friction and traction (in the case of a rubber bath) and stiffness (in the case of a polymer bath).
[0045] Preferably, the outsole and / or midsole is made of a spacer fabric. Due to its thickness, a spacer fabric offers good cushioning properties. It is preferred to adapt the thickness of the spacer fabric to the expected stresses when wearing the shoe. For example, the spacer fabric could be thicker in the heel area than in the toe area to specifically reduce the force exerted on the foot during impact, e.g., in a running shoe. The thickness of the spacer fabric can also vary in the flex zone and be thinner there, for example, to allow for a smooth rolling motion of the foot. In the midfoot area, the spacer fabric could be more tightly woven to achieve greater stiffness.
[0046] Preferably, the outsole or midsole, or both, has a spacer fabric in only one area. For example, the outsole or midsole, or both, could have a spacer fabric only in the heel area, where high forces are exerted.
[0047] Preferably, the layers of the spacer fabric or spacer knit fabric contain different yarns. This allows the spacer fabric to fulfill different functions within the shoe. For example, the layer facing the foot can contain moisture-absorbing yarn, the layer on the side facing away from the foot can contain rubber-like yarn, and the yarn between these layers, i.e., the spacer yarn, can be stable nylon yarn.
[0048] In another example, an intermediate layer of a spacer fabric in the sole features a stable yarn, such as a bulky and / or hollow one, capable of absorbing impact forces. The outermost layer of the spacer fabric, which is in direct contact with the foot, uses a moisture-absorbing yarn. The outermost layer of the spacer fabric, which functions as an outsole, uses a hydrophobic yarn.
[0049] Alternatively, these three layers of the sole are not manufactured in one piece as a spacer knit or spacer fabric, but are manufactured separately (e.g. knitted) and then joined together (e.g. sewn).
[0050] It is preferred that spaces in the spacer fabric be filled with damping materials to achieve additional cushioning. For example, the spaces could be filled with particle foam, foam inserts, and / or additional fibers.
[0051] It is further preferred that these cushioning materials are interchangeable, allowing the user to adjust the cushioning properties to their needs. For example, the midsole's knit fabric could be designed with openings, pockets, and / or tunnels that can accommodate interchangeable cushioning materials.
[0052] Preferably, the midsole's knitted fabric is designed to include at least one pocket. Preferably, a material insert is placed into this pocket. This insert could be, for example, a foam insert, an air cushion, or a gel insert. The pocket can fully or partially enclose the insert. A pocket that fully encloses the insert prevents or reduces its displacement. A material insert placed in a pocket is environmentally friendly because it can be disposed of separately from the rest of the shoe.
[0053] It is further preferred that the thickness and yarns used in the spacer fabric be adapted to the wearer and the intended use of the shoe. For example, thicker yarns could be used for a heavier wearer, and the spacer fabric could be thicker than for a lighter wearer.
[0054] It is further preferred that certain materials are knitted or incorporated into specific areas of the outsole and / or midsole. For example, rubber yarn or melt yarn could be knitted or incorporated only in those areas of the outsole that are subject to the most stress upon ground contact, depending on the rolling motion of the foot.
[0055] Preferably, the knitted material of the outsole has a knitted or crocheted pocket on the upper side into which the midsole can be inserted. The pocket can, for example, be formed in one piece with the outsole during knitting or crocheting.
[0056] Another aspect of the present invention relates to a method for manufacturing an advantageous shoe as described above, comprising the following steps: a.) providing a shoe upper; b.) manufacturing an outsole and / or a midsole comprising a knitted fabric; and c.) joining the outsole and / or the midsole to the shoe upper.
[0057] Preferably, the outsole or the midsole, or both, are joined to the upper during the knitting or weaving process. For example, the outsole or the midsole, or both, could be formed in one piece with the upper. The outsole or the midsole, or both, can be knitted or woven together with the upper on a knitting machine, such as a flat knitting machine, or a warp knitting machine.
[0058] In an alternative preferred embodiment of the invention, the outsole or the midsole, or both, are manufactured separately from the upper and then joined to it. For example, the outsole or the midsole, or both, could be sewn, glued, welded, or stitched to the upper. 4. Brief description of the characters
[0059] In the following, aspects of the present invention will be explained in more detail with reference to the accompanying figures. These figures show: Fig. 1a: Schematic representation of textile structures which can be used for the present invention; Fig. 1b: A schematic representation of a knitted fabric with a stand-up yarn, which can be used for the present invention; Fig. 2: Three different layouts of a knitted fabric which can be used for the present invention; Fig. 3: Row of stitches and stitches of a knitted fabric which can be used for the present invention; Fig. 4: Stitch formation using tongue needles when knitting; Fig. 5a: An embodiment of a shoe upper which can be used for the present invention, comprising two connected textile areas; Fig. 5b: An alternative embodiment of a shoe upper which can be used for the present invention, comprising two connected textile areas; Fig. 6: Three cross-sections ( Fig. 6a, Fig. 6b and Fig. 6c) of an embodiment of a shoe upper connected to a shoe sole by means of adhesive tape, which can be used for the present invention; Fig. 7: Cross-sectional views of fibers for yarns used in knitted fabrics, which can be used for the present invention; Fig. 8: Front view and back view of a knitted fabric which can be used for the present invention; Fig. 9: a shoe according to an embodiment of the present invention; Fig. 10: a shoe according to an alternative embodiment of the present invention. Fig. 11: another embodiment of a shoe according to the invention; Fig. 12a: a side view of a further embodiment of the present invention; Fig. 12b: a cross-sectional view of the embodiment of the present invention Fig. 12a; Fig. 12c: a cross-sectional view of an alternative embodiment of the present invention Fig. 12a; Fig. 13a: a cross-sectional view of a further embodiment of the present invention; Fig. 13b: a cross-sectional view of an alternative embodiment of the present invention Fig. 14: A top view of a shoe according to the invention, viewed from the underside and the top. 5. Detailed description of preferred embodiments
[0060] In the following, exemplary embodiments and modifications of the present invention are described in more detail using a shoe upper for a shoe, in particular for a sports shoe.
[0061] The use of knitted fabrics allows for the production of products such as shoe uppers (also known as shoe shafts) or shoe soles (e.g., insoles, Strobel soles, midsoles, and / or outsoles) with areas exhibiting different properties, all with minimal manufacturing effort. These properties include, for example, flexibility, elasticity (expressed, for instance, as the modulus of elasticity), air and water permeability, thermal conductivity, heat capacity, moisture absorption, static friction, abrasion resistance, hardness, and thickness.
[0062] To achieve specific properties or functions, various techniques are employed, which are described below. These include suitable techniques for the production of knitted fabrics, such as knitting techniques, the selection of fibers and yarns, the coating of fibers, yarns, or the knitted fabric with polymers or other materials, the use of monofilaments, the combination of monofilaments and polymer coatings, the use of melt yarns, and multi-layered knitted fabrics. In principle, the yarns used for the production of knitted fabrics can be finished accordingly, e.g., coated. Additionally or alternatively, the finished knitted fabric can be finished accordingly.
[0063] Another aspect of providing functionality involves the targeted use of knitted fabrics for specific areas of a product, such as a shoe upper or sole, and the joining of different parts using suitable joining techniques. These aspects and techniques, as well as others, are explained below.
[0064] The described techniques can be used individually or combined in any way. Knitwear
[0065] The knitted fabric used in the present invention is divided into knitted and single-yarn fabrics on the one hand, and warp-knitted fabrics on the other. The essential characteristic of knitted fabrics is that they are formed from interlocking loops of yarn or thread. These loops of thread are also called stitches and can be formed from one or more yarns or threads.
[0066] Yarn or thread is a structure made of one or more fibers that is long relative to its diameter. A fiber is a relatively thin, flexible structure compared to its length. Very long fibers, of practically unlimited length in terms of their use, are called filaments. Monofilaments are yarns that consist of a single filament, that is, a single fiber.
[0067] In knitted and single-yarn fabrics, stitch formation requires at least one thread or yarn, with the thread running transversely to the fabric, i.e., essentially perpendicular to the direction in which the fabric is formed during the manufacturing process. In warp-knitted fabrics, stitch formation requires at least one warp thread system, i.e., a plurality of so-called warp threads. These stitch-forming threads run longitudinally, i.e., essentially in the direction in which the fabric is formed during the manufacturing process.
[0068] In the Fig. Figure 1a shows the fundamental difference between a woven fabric 10, knitted fabrics 11 and 12, and a knitted fabric 13. A woven fabric 10 has at least two yarn systems, usually arranged at right angles to each other. The yarns are laid over and under each other and do not form stitches. Knitted fabrics 11 and 12 are produced by knitting with one yarn from left to right, by interlacing stitches. Figure 11 shows a front view (also called the right side of the fabric) and Figure 12 a back view (also called the wrong side of the fabric) of a knitted fabric. The right and wrong sides of the fabric differ in the direction of the stitch legs 14. On the wrong side of the fabric 12, the stitch legs 14 are concealed, unlike on the right side of the fabric 11.
[0069] In the Fig. Figure 1b shows a variant of a knitted fabric that can be used for the present invention, featuring a so-called stand-up thread 15. A stand-up thread 15 is a length of yarn inserted longitudinally between two stitches and held in place by transverse threads of other binding elements. By combining the stand-up thread 15 with other binding elements, the properties of the knitted fabric are influenced or various pattern effects are achieved. For example, a stand-up thread 15 can reduce the elasticity of the knitted fabric along the direction of the stitches.
[0070] Chain-knitted fabric 13 is produced by knitting with many threads from top to bottom as in the Fig. Figure 1a shows this process. The stitches of one thread are hooked into the stitches of adjacent threads. Depending on the pattern in which the stitches of adjacent threads are interlocked, one of the seven known basic weaves (also called "lays" in warp knitting) is created: fringe, jersey, shawl, satin, velvet, satin, and twill.
[0071] Examples include: Fig. Figure 2 shows the knitting patterns: Jersey 21, Cloth 22, and Atlas 23. Depending on how the stitches of the highlighted thread 24 are inserted into the stitches of adjacent threads, a different pattern results. In Jersey 21, each stitch-forming thread runs in a zigzag pattern lengthwise through the knitted fabric and binds between two adjacent stitches. Cloth 22 binds similarly to Jersey 21, but each stitch-forming warp thread skips one stitch. In Atlas 23, each stitch-forming warp thread runs in a step-like pattern to a turning point and then changes direction.
[0072] Stitches are stitches arranged one above the other with common binding points. In the Fig. Figure 3 shows a stitch as an example for a knitted fabric with reference number 31. The term "stitch" is also used analogously for knitted fabrics. Accordingly, stitches run vertically through the knitted fabric. A row of stitches is defined as rows of stitches arranged side by side, as in the... Fig. Figure 3 shows an example of a knitted fabric with reference number 32. The concept of a row of stitches is also applied analogously to knitted fabrics. Accordingly, rows of stitches run transversely through the knitted fabric.
[0073] In knitwear, three basic stitch patterns are known, recognizable by the direction of the stitches along a stitch. In the knit-purl stitch pattern, only knit stitches are visible on one side of the fabric along a stitch, and only purl stitches on the other. This stitch pattern is produced on a single row of needles on a knitting machine, i.e., an arrangement of adjacent knitting needles, and is also called single-layer or single jersey. In the knit-knit stitch pattern, knit and purl stitches alternate within a single row; that is, along a stitch pattern, either only purl or only knit stitches are found, depending on which side of the fabric the stitch pattern is viewed from. This stitch pattern is produced on two rows of needles, with the needles positioned opposite each other. In the purl-purl stitch pattern, knit and purl stitches alternate within a single stitch pattern. Both sides of the fabric look the same.This binding is done with tongue needles, as used in the . Fig. The stitches shown in figures 4 are produced by transferring stitches. Transferring stitches can be avoided by using double-pronged needles, which have a hook and a prong at each end.
[0074] A key advantage of knitted fabrics over woven textiles is the variety of structures and surfaces that can be created. Essentially the same manufacturing technique allows for the production of very heavy and / or stiff knitted fabrics as well as very soft, transparent, and / or stretchy ones. The parameters that influence the material properties are primarily the knitting pattern, the yarn used, the needle size or spacing, and the tension under which the yarn is placed on the needles.
[0075] Knitting has the advantage that specific yarns can be knitted into freely selectable areas. In this way, selected zones can be given particular properties. For example, the upper of a soccer cleat can be made with zones of rubberized yarn to increase friction and thus give the player better ball control. By knitting specific yarns into selected areas, no additional materials need to be applied.
[0076] Knitted fabrics are produced on machines in an industrial context. These machines typically have a large number of needles. For knitting, tongue needles 41 are generally used, each with a movable tongue 42, as shown in... Fig. Figure 4 shows this. This tongue 42 closes the hook 43 of the needle 41, so that a thread 44 can be pulled through a stitch 45 without the needle 41 getting stuck on the stitch 45. When knitting, the tongue needles are usually individually movable, so that each individual needle can be controlled to catch a thread for stitch formation.
[0077] Knitting machines are classified as either flat or circular. In flat knitting machines, a yarn feeder moves the yarn back and forth over one or more rows of needles. In circular knitting machines, the needles are arranged in a circle, and the yarn is fed in a circular motion over one or more circular rows of needles.
[0078] Instead of a single row of needles, a knitting machine can also have two parallel rows. The needles of the two rows can, for example, be positioned at a right angle to each other when viewed from the side. This allows for the creation of more complex structures or knits. The use of two rows of needles enables the production of single-layer or double-layer knit fabrics. Single-layer knit fabrics are created when the stitches produced on the first row of needles are knitted together with the stitches produced on the second row. Double-layer knit fabrics are created, accordingly, when the stitches produced on the first row of needles are not knitted together with the stitches produced on the second row, or are only knitted together at specific points, and / or are only knitted together at the edges of the fabric.If the stitches created on the first row of needles are only sparsely interwoven with those on the second row of needles using an additional yarn, this is called spacer knitting. The additional yarn, for example a monofilament, is thus passed back and forth between the two layers, creating a gap between them. The two layers can then be joined together, for example, by a loop.
[0079] Basically, the following types of knitted fabric can be produced on a knitting machine with two rows of needles: If only one row of needles is used, a single-layered fabric is created. When using two rows of needles, the stitches of both rows can be joined together continuously, so that the resulting fabric has a single layer. If, when using two rows of needles, the stitches of both rows are not joined, are only joined at specific points, or are joined only at the edges, two layers are created. If, when using two rows of needles, the stitches of both rows are joined alternately at specific points using an additional thread, a spacer fabric is created. This additional thread is also called a spacer thread and can be inserted via a separate yarn feeder.
[0080] Single-thread knitted fabrics (also known as looped knit fabrics) are produced using needles that move together. Alternatively, the needles are stationary and the fabric is moved. Unlike knitting, the needles cannot be moved individually. Similar to knitting, there are flat looped and circular looped knitting machines.
[0081] In chain knitting, one or more chains of yarn, i.e., adjacent, coiled threads, are used. When forming stitches, the individual warp threads are placed around the needles and the needles are moved together.
[0082] The techniques described herein, as well as further aspects of the production of knitted fabrics, can be found, for example, in "Fachwissen Bekleidung" (Clothing Expertise), 6th edition, by H. Eberle et al. (published in English under the title "Clothing Technology"), in "Textil- und Modelexikon" (Textile and Fashion Lexicon), 6th edition, by Alfons Hofer, and in "Maschenlexikon" (Knitting Lexicon), 11th edition, by Walter Holthaus. Three-dimensional knitwear
[0083] Three-dimensional (3D) knitwear can also be produced on knitting and warp knitting machines, especially flat knitting machines. This refers to knitwear that, although knitted or warp-knitted in a single operation, has a spatial structure. Three-dimensional knitting and warp knitting technology makes it possible to produce spatial knitwear without seams, cutting, or finishing in one piece and a single process.
[0084] Three-dimensional knitwear can be produced, for example, by varying the number of stitches in the stitch direction through the formation of partial rows of stitches. The corresponding machine process is called "needle parking." Depending on requirements, this can be combined with structural variations and / or variations in the number of stitches in the stitch row direction. When forming partial rows of stitches, stitch formation occurs temporarily only across a portion of the knitted or crocheted fabric. The needles not involved in stitch formation hold the half-stitches in place ("needle parking") until knitting resumes at that position. In this way, for example, curves can be achieved.
[0085] Three-dimensional knitting or weaving allows, for example, a shoe upper to be adapted to the last or foot, and a sole to be profiled. The tongue of a shoe can be knitted into shape. Contours, structures, nubs, curves, cutouts, openings, fastening elements, loops, and pockets can be integrated into the knitted fabric in a single process.
[0086] Three-dimensional knitted fabric can be advantageously used for the present invention. Functional knitwear
[0087] Knitted fabrics, and in particular knitted fabrics, can be provided with a number of functional properties and can be used advantageously in the present invention.
[0088] Knitting techniques make it possible to produce knitted fabrics with different functional areas while simultaneously maintaining their shape. The structure of a knitted fabric can be adapted to specific functional requirements by selecting the knitting pattern, yarn, needle size, needle spacing, or tension under which the yarn is placed on the needles.
[0089] For example, structures with large meshes or openings within the knit fabric can be used in areas where ventilation is desired. Conversely, in areas where support and stability are required, tightly woven knit patterns, stiffer yarns, or even multi-layered knit structures, which are described below, can be used. The thickness of the knit fabric is also variable.
[0090] A multi-layered knit fabric opens up numerous construction possibilities, offering many advantages. A multi-layered knit fabric, for example, two layers, can be knitted or crocheted in a single pass on a multi-needle knitting or warp knitting machine, for example, two rows, as described above in the "Knit Fabrics" section. Alternatively, the multiple layers, for example, two layers, can be knitted or crocheted in separate passes and then layered on top of each other and, if necessary, joined together, for example, by sewing, gluing, welding, or linking.
[0091] Generally, multiple layers increase the strength and stability of knitted fabrics. The resulting strength depends on the number of layers and the techniques used to bond them together. The same yarn or different yarns can be used for the individual layers. For example, a knitted fabric might consist of one layer of multifilament yarn and one layer of monofilament, with their stitches interwoven. This combination of different yarns reduces the stretch of the knitted layer. An advantageous variation of this construction is to place a layer of monofilament between two layers of multifilament yarn to reduce stretch and increase the strength of the knitted fabric. This results in a pleasant surface of multifilament yarn on both sides of the knitted fabric.
[0092] One type of two-layer knit fabric, as explained in the "Knit Fabrics" section, is called spacer fabric. In this type of fabric, a spacer yarn is loosely woven or interwoven between two knitted or woven layers, connecting the two layers and simultaneously serving as filling. The spacer yarn can be made of the same material as the layers themselves, such as polyester, or a different material. It can also be a monofilament, which provides stability to the spacer fabric.
[0093] These spacer fabrics, also known as three-dimensional knits or knitted fabrics, but distinct from the shape-giving 3D knits or knitted fabrics mentioned above in the section "Three-Dimensional Knitwear," can be used wherever additional cushioning or protection is desired, for example, on the upper (also called the shoe shaft) or tongue of a shoe upper, or in certain areas of a sole. Three-dimensional structures can also create spaces between adjacent textile layers or between a textile layer and the foot, thus providing ventilation. Furthermore, the layers of a spacer fabric can contain different yarns depending on its position on the foot.
[0094] The thickness of a spacer fabric can be adjusted in different areas depending on its function or the wearer. Different thicknesses can be used to achieve varying degrees of cushioning. Thinner areas, for example, can increase flexibility and thus fulfill the function of joints or flex lines.
[0095] Multi-layered constructions also offer possibilities for color design by using different colors for the different layers. For example, a knitted fabric can be made with two different colors for the front and back. A shoe upper made of such a knitted fabric can then have a different color on the outside than on the inside.
[0096] One variation of multi-layered constructions involves pockets or tunnels where two layers of knitted or crocheted fabric are joined only in specific areas, creating a cavity. Alternatively, two knitted or crocheted fabrics are joined in separate processes to create a cavity, for example, by sewing, gluing, welding, or linking. A cushioning material such as foam, eTPU (expanded thermoplastic urethane), ePP (expanded polypropylene), expanded EVA (ethylene vinyl acetate), or particle foam, an air cushion, or a gel cushion can then be inserted through an opening, for example, at the tongue, the upper of the shoe, the heel, the sole, or other areas. Alternatively or additionally, the pocket can also be filled with a filling thread or a spacer fabric.Threads can also be threaded through tunnels, for example, to reinforce areas of a shoe upper under tensile loads. Shoelaces can also be guided through such tunnels. Furthermore, loose threads can be inserted into tunnels or pockets for padding, for example, in the ankle area. More rigid reinforcing elements, such as caps, tabs, or stays, can also be inserted into tunnels or pockets. These can be made of materials such as TPU, polyethylene, or polypropylene, etc.
[0097] Another way to functionally enhance a knitted fabric is by using specific variations of the basic stitch patterns. For example, when knitting, thickenings, ribs, or waves can be created at certain points to provide reinforcement. A wave, for instance, can be created by accumulating stitches on one layer of the fabric. This means that more stitches are knitted or worked on one layer than on another. Alternatively, different stitches are worked on one layer, for example, by knitting them tighter, looser, or using a different yarn than on another layer. Both variations result in thickenings.
[0098] Ribs, waves, or similar patterns can also be used on the underside of a knitted shoe outsole to provide a profile and improve grip. To achieve a relatively thick knit, for example, the knitting techniques "fang" or "pearlfang" can be used, as described, for instance, in "Fachwissen Bekleidung" (Clothing Expertise), 6th edition, by H. Eberle et al.
[0099] Waves can be knitted or worked in such a way that a connection is created between two layers of a two-ply knit fabric, or that no connection is created between the two layers. A wave can also be knitted as a double-sided knit-purl wave, with or without a connection between the two layers. A textured effect in the knit fabric can be achieved through an uneven stitch ratio on the front and back of the fabric.
[0100] Another possibility for the functional design of knitted fabrics within the scope of the present invention is to provide openings in the knitted fabric during the knitting or weaving process. One embodiment within the scope of the present invention, which can be combined with other embodiments, relates to an insole comprising knitted fabric. This embodiment can also be applied to a Strobel sole. Likewise, the embodiment can be applied to a topsole. An insole, Strobel sole, or topsole is generally arranged over a midsole. The midsole can have cushioning properties. The midsole can, for example, comprise or consist of a foam material. Other suitable materials are, for example, eTPU (expanded thermoplastic urethane), ePP (expanded polypropylene), expanded EVA (ethylene vinyl acetate), or particle foam.
[0101] The knitted fabric of the insole, Strobel sole, or topsole has at least one opening, which is incorporated into the fabric during the knitting or weaving process. This opening allows the wearer's foot to directly contact the midsole. This improves the overall cushioning properties of the shoe, allowing the midsole thickness to be reduced.
[0102] Preferably, at least one opening is located in the area of the heel bone. An arrangement in this location has a particularly positive effect on the cushioning properties. Other positioning of the at least one opening is conceivable.
[0103] Another possibility for the functional design of knitted fabric within the scope of the present invention is to form shoelaces integrally with the knitted fabric of a shoe upper. In this embodiment, the shoe upper comprises knitted fabric, and shoelaces are knitted or crocheted integrally with the knitted fabric during the knitting or crocheting process. A first end of a shoelace is attached to the knitted fabric, while a second end is free.
[0104] Preferably, the first end of a shoelace is connected to the knit fabric of the upper in the area where it transitions from the tongue to the forefoot. More preferably, the first end of a first shoelace is connected to the knit fabric of the upper on the medial side of the tongue, and the first end of a second shoelace is connected to the knit fabric of the upper on the lateral side of the tongue. The second ends of each shoelace can then be threaded through eyelets to lace the shoe.
[0105] One way to speed up the one-piece knitting or weaving of shoelaces is to terminate all yarns used for knitting or weaving the fabric in the area where the upper transitions from the tongue to the forefoot. Preferably, the yarns terminate on the medial side of the upper, on the medial side of the tongue, forming the shoelace connected to the tongue. Preferably, the yarns terminate on the lateral side of the upper, on the lateral side of the tongue, forming the shoelace connected to the lateral side of the tongue. The yarns are then preferably cut to a length sufficient to form the shoelaces. The yarns can, for example, be twisted or braided. Preferably, the second end of each shoelace is fitted with a shoelace clip. Alternatively, the second ends are fused or coated.
[0106] Due to its construction, knitted fabric is particularly stretchy in the stitch direction (lengthwise). This stretch can be reduced, for example, by a subsequent polymer coating of the knitted fabric. However, the stretch can also be reduced during the manufacturing process itself. One possibility is to reduce the stitch size, that is, to use a smaller needle size. Smaller stitches generally result in less stretch in the knitted fabric. Tightly woven knitted fabric can be used, for example, in a shoe upper (also called a shoe shaft). Furthermore, the stretch of the knitted fabric can be reduced by knitted reinforcements, such as three-dimensional structures. Such structures can be placed on the inside or outside of a shoe upper. Additionally, a non-stretch yarn, e.g.,Made of nylon, it is laid in a tunnel along the knit fabric to limit the stretching to the length of the non-stretch yarn.
[0107] Colored areas with multiple colors can be created by using a different yarn and / or additional layers. In transition areas, smaller stitch sizes (smaller needle sizes) are used to achieve a smooth color transition.
[0108] Further effects can be achieved through knitted inserts (intarsia) or jacquard knitting. Intarsia refers to areas that feature only a specific yarn, for example, in a particular color. Adjacent areas, which may contain a different yarn, for example, in a different color, are then connected by a so-called loop.
[0109] Jacquard knitting uses two rows of needles and involves, for example, two different yarns running through all areas. However, in certain areas, only one yarn is visible on the side of the fabric, while the other yarn remains hidden on the opposite side.
[0110] A product made from knitted fabric can be manufactured in one piece on a knitting or warp knitting machine. Functional areas can then be created during the knitting or warp knitting process using appropriate techniques described here.
[0111] Alternatively, the product can be composed of several knitted fabric components and may also include parts not made of knitted fabric. Each knitted fabric component can be designed with different functions, for example, regarding its thickness, insulation, moisture transport, etc.
[0112] For example, a shoe upper and / or sole can be manufactured as a whole from knitted fabric, or it can be assembled from individual knitted fabric pieces. An entire shoe upper, or parts of it, can be cut from a larger piece of knitted fabric, for example, by die-cutting. This larger piece of knitted fabric could be, for example, a circular knit or a flat knit.
[0113] For example, a tongue can be manufactured as a single, continuous piece and subsequently attached to the shoe upper, or it can be manufactured as one piece with the upper. Regarding its functional design, raised sections on the inside can, for instance, improve the tongue's flexibility and create a gap between the tongue and the foot, providing additional ventilation. Shoelaces can be guided through one or more knitted channels in the tongue. The tongue can also be reinforced with polymer to provide stability and, for example, prevent it from rolling up, especially if it is very thin. Furthermore, the tongue can then be shaped to fit the last or the foot.
[0114] For example, only the front part of a shoe upper might be made of knit fabric. The rest of the upper could be made of a different textile and / or material, such as a woven fabric. The front part might, for instance, be limited to the toes, extend behind the toe joints, or reach into the midfoot. Alternatively, the back of the upper, such as the heel, could be made of knit fabric and perhaps reinforced with a polymer coating. In principle, any part of a shoe upper or sole can be made of knit fabric.
[0115] Applications such as polyurethane (PU) prints, thermoplastic polyurethane (TPU) tapes, textile reinforcements, leather, etc., can be subsequently applied to knitted fabrics. For example, a shoe upper that is entirely or partially made of knitted fabric can have a plastic heel or toe cap added for reinforcement, or logos and eyelets for laces can be attached, for example by sewing, gluing, or welding, as described below.
[0116] Suitable joining techniques for connecting individual knitted fabrics to other textiles or other knitted fabrics include sewing, gluing, or welding. Another way to join two knitted fabrics is overlocking. In this process, the edges of two knitted fabrics are joined together in a stitch-by-stitch manner (usually stitch by stitch).
[0117] One method for welding textiles, especially those made of synthetic yarns or threads, is ultrasonic welding. In this process, mechanical vibrations in the ultrasonic frequency range are transmitted to a tool called a sonotrode. These vibrations are then transferred by the sonotrode under pressure to the textiles to be joined. The resulting friction heats and softens the textiles at the point of contact with the sonotrode, ultimately creating a bond. Ultrasonic welding allows for a fast and cost-effective joining of textiles, particularly those made with synthetic yarns or threads. A band can also be applied to the weld seam, for example, by gluing it on, which further reinforces the weld and improves its appearance. Furthermore, it increases wearing comfort by preventing skin irritation, especially at the tongue.
[0118] Joining different textile areas can occur in very different places. For example, the seams for joining different textile areas of a shoe upper can be in different positions, as in the Fig. 5a and Fig. 5b shown. In the Fig. Figure 5a shows a shoe upper 51, which has two textile areas 52 and 53. These are sewn together. The seam 54, which connects both textile areas 52 and 53, runs diagonally from an instep area of the shoe upper to an area of the sole in the transition zone from the midfoot to the heel. In the Fig. In section 5b, seam 55 also runs diagonally, but is positioned further forward towards the toes. Other arrangements of seams and connection points in general are conceivable. In the cases described in the Fig. 5a and Fig. 5b. The seams shown can each be a thread seam, an adhesive seam, a weld seam, or an overlock seam. The two seams 54 and 55 can each be located on only one side of the shoe upper 51 or on both sides of the shoe upper.
[0119] Another way to join textiles is by using adhesive tape. This can also be used in addition to an existing joint, such as over a sewn or welded seam. Adhesive tape can fulfill additional functions beyond joining, such as protection against dirt or water. Adhesive tape can also exhibit varying properties along its length.
[0120] In the Fig. 6a, Fig. 6b and Fig. Figure 6c shows an embodiment of a shoe upper 51 connected to a shoe sole 61 by means of adhesive tape. Fig. 6a, Fig. 6b and Fig. Figure 6c each shows a cross-section through a shoe with different foot positions and the resulting deformations of the shoe. For example, in Fig. 6a Tensile forces act on the right side of the shoe, while compressive forces act on the left side.
[0121] The shoe sole 61 can be either an outsole or a midsole. The shoe upper 51 and the shoe sole 61 are connected to each other by means of a circumferential adhesive tape 62. The adhesive tape 62 can have varying degrees of flexibility along its length. For example, the adhesive tape 62 could be particularly stiff and inflexible in the heel area of the shoe to provide the necessary stability in this area. This can be achieved, for example, by varying the width and / or thickness of the adhesive tape 62. In general, the adhesive tape 62 can be designed to absorb specific forces in certain areas along its length. In this way, the adhesive tape 62 not only connects the shoe upper to the sole but also simultaneously serves as a structural reinforcement. Fibers
[0122] The yarns or threads used for the knitted fabrics of the present invention generally consist of fibers. As explained above, a fiber is defined as a relatively thin, flexible structure in relation to its length. Very long fibers, of practically unlimited length with regard to their use, are called filaments. Fibers are spun or twisted into threads or yarn. Fibers can also be long and twisted together to form a yarn. Fibers can consist of natural or synthetic materials. Natural fibers are environmentally friendly because they are compostable. Examples of natural fibers include cotton, wool, alpaca, hemp, coconut fibers, and silk. Examples of synthetic fibers include polymer-based fibers such as Nylon™, polyester, elastane / spandex, or Kevlar™, which can be produced as classic fibers, high-performance fibers, or technical fibers.
[0123] It's conceivable that, for example, a shoe could be composed of different parts, where, for instance, a knitted or crocheted part consists of natural yarn made from natural fibers, and a removable part, such as the insole, consists of plastic. Both parts can then be disposed of separately. In this example, the knitted part could be composted, while the insole could be recycled.
[0124] The mechanical and physical properties of a fiber and the yarn produced from it are also determined by the cross-section of the fiber, as in Fig. Figure 7 shows these different cross-sections, their properties, and examples of materials with such cross-sections. These different cross-sections, their properties, and examples of materials with such cross-sections are explained below.
[0125] A 710 circular cross-section fiber can be either solid or hollow. A solid fiber is the most common, allowing for easy bending and a soft feel. A hollow circular fiber with the same weight-to-length ratio as a solid fiber has a larger cross-section and greater resistance to bending. Examples of circular cross-section fibers include Nylon™, polyester, and lyocell.
[0126] A fiber with a bone-shaped cross-section (730) has the property of conducting moisture. Examples of materials for such fibers are acrylic or spandex. The concave areas in the center of the fiber facilitate the longitudinal transport of moisture, quickly wicking it away from and distributing it.
[0127] The following additional cross-sections are in Fig. 7 shown: - Polygonal cross-section 711 with flowers; example: flax; - Oval to round cross-section 712 with overlapping sections; example: wool; - Flat, oval cross-section 713 with extension and folding; example: cotton; - Circular, serrated cross-section 714 with segmental grooves; example: viscose; - Lima bean cross-section 720; smooth surface; - Serrated lima bean cross-section 721; Example: Avril™ viscose; - Triangular cross-section 722 with rounded edges; example: silk; - Three-pointed star cross-section 723; like triangular fiber with a shinier appearance; - Club-shaped cross-section 724 with segmental grooves; sparkling appearance; example: acetate; - Flat and wide cross-section 731; Example: acetate in a different configuration; - Star-shaped or concertina cross-section 732; - Cross-section 733 in the form of a compressed tube with a hollow center; and - Square cross-section 734 with cavities; example: AnsoIV™ - nylon.
[0128] The following describes individual fibers and their properties that are relevant for the production of knitted fabrics for the present invention: - Aramid fibers: good resistance to abrasion and organic solvents; non-conductive; temperature resistant up to 500°C; low flammability. - Para-aramid fibers: known under the trade names Kevlar™, Techova™ and Twaron™; outstanding strength relative to weight; high modulus of elasticity and high tensile strength (higher than meta-aramids); low elongation and low tearing elongation (approx. 3.5%). - Meta-Aramids: Known under the trade names Numex™, Teijinconex™, New Star™, X-Fiper™. - Dyneema fibers: Highest resistance of all known thermoplastics; high resistance to corrosive chemicals, except oxidizing acids; extremely low moisture absorption; very low coefficient of friction, significantly lower than that of Nylon™ and acetate and comparable to Teflon; self-lubricating; high resistance to abrasion (15 times higher than steel); better abrasion resistance than Teflon; non-toxic. - Carbon fiber: An extremely thin fiber with a diameter of approximately 0.005 - 0.010 mm, consisting essentially of carbon atoms; very stable in terms of size; a yarn is made from several thousand carbon fibers; high tensile strength; low weight; low thermal expansion; very resistant to stretching or bending; thermal and electrical conductivity. - Glass fiber: High surface area to weight ratio; due to the inclusion of air, blocks of glass fibers have good thermal insulation; thermal conductivity is 0.05 W / (m·K); the thinnest fibers are the most stable because they are more flexible; the properties of glass fibers are consistent along the fiber and across its cross-section because glass has an amorphous structure; correlation between the bending diameter of the fiber and the fiber diameter; thermal, electrical, and acoustic insulation; higher elongation before breakage than carbon fibers. yarns
[0129] For the production of knitted fabrics used in the present invention, a variety of different yarns can be used. As already defined, a yarn is a structure consisting of one or more fibers that is long in relation to its diameter.
[0130] Functional yarns can transport moisture and therefore absorb sweat and moisture. They can be electrically conductive, self-cleaning, thermally regulating and insulating, flame-resistant and UV-absorbing, and can reflect infrared radiation. They can be suitable for sensor applications. Antibacterial yarns, such as silver yarns, prevent odor formation.
[0131] Stainless steel yarn contains fibers made from a blend of nylon or polyester and steel. Its properties include high abrasion resistance, high cut resistance, high thermal abrasion resistance, high thermal and electrical conductivity, high tensile strength, and high weight.
[0132] Electrically conductive yarns can be used in knitted textiles to integrate electronic devices. For example, these yarns can transmit electrical impulses from sensors to devices for processing the impulses, or the yarns themselves can function as sensors and, for example, measure electrical currents on the skin or physiological magnetic fields. Examples of the use of textile-based electrodes can be found in European patent application EP 1 916 323.
[0133] Melt yarns can be a blend of a thermoplastic yarn and a non-thermoplastic yarn. There are essentially three types of melt yarn: a thermoplastic yarn wrapped around a non-thermoplastic yarn; a non-thermoplastic yarn wrapped around a thermoplastic yarn; and pure thermoplastic melt yarn. When heated to its melting temperature, the thermoplastic yarn fuses with the non-thermoplastic yarn (e.g., polyester or Nylon™), stiffening the knitted fabric. The melting temperature of the thermoplastic yarn is set accordingly and is typically lower than that of the non-thermoplastic yarn in the case of a blended yarn.
[0134] A shrink yarn is a two-component yarn. The outer component is a shrinkable material that shrinks when a defined temperature is exceeded. The inner component is a non-shrinkable yarn such as polyester or nylon. Shrinkage increases the stiffness of the textile material.
[0135] Other yarns used in knitwear include luminous or reflective yarns and so-called "smart" yarns. Examples of smart yarns are those that react to moisture, heat, or cold and change their properties accordingly, for example, contracting to reduce the size of the stitches or changing their volume to increase air permeability. Yarns made of piezoelectric fibers or coated with a piezoelectric substance are able to convert kinetic energy or pressure changes into voltage, which can power sensors, transmitters, or batteries, for example.
[0136] Yarns can also be post-treated, e.g. coated, to obtain certain properties, such as elongation, color or moisture resistance. Polymer coating
[0137] Due to their mesh structure, knitted or crocheted fabrics are significantly more flexible and stretchable than woven textile materials. For certain applications and requirements, e.g., in specific areas of a shoe upper or sole according to the present invention, it is therefore necessary to reduce this flexibility and stretchability in order to achieve sufficient stability.
[0138] For this purpose, a polymer layer can be applied to one or both sides of knitted or woven fabrics, as well as other textile materials. Such a polymer layer reinforces and / or stiffens the knitted fabric. In a shoe upper, for example, it can serve to support and / or stiffen and / or reduce elasticity in the toe area, heel area, along the eyelets, on lateral and / or medial surfaces, or in other areas. Furthermore, the elasticity of the knitted fabric, and especially its stretchability, is reduced. The polymer layer also protects the knitted fabric against abrasion. Additionally, the polymer coating can be used to give the knitted fabric a three-dimensional shape through compression molding.
[0139] In the first step of polymer coating, the polymer material is applied to one side of the mesh fabric. It can also be applied to both sides. The material can be applied by spraying, squeegeeing, brushing, printing, sintering, ironing, or spreading. If the polymer material is in film form, it is placed on the mesh fabric and bonded to it, for example, using heat and pressure. The most common application method is spraying. This can be done with a tool similar to a hot glue gun. Spraying allows for an even application of the polymer material in thin layers. Furthermore, spraying is a fast process. Effect pigments, such as color pigments, can be added to the polymer coating.
[0140] The polymer is applied in at least one layer with a thickness of preferably 0.2–1 mm. One or more layers can be applied, and these layers can have different thicknesses and / or colors. Continuous transitions from areas with thin polymer coatings to areas with thick polymer coatings are possible between adjacent areas with different polymer coating thicknesses. Similarly, different polymers can be used in different areas, as described below.
[0141] During application, the polymer material adheres to the contact points or nodes of the yarns in the knitted fabric and also fills the gaps between the yarns, forming a continuous polymer surface on the fabric after the processing steps described below. However, with larger mesh sizes or holes in the textile structure, this continuous polymer surface may be interrupted, for example, to allow for ventilation. This also depends on the thickness of the applied material: the thinner the polymer material is applied, the more likely the polymer surface is to be interrupted. Furthermore, the polymer material can also penetrate and permeate the yarn, thus contributing to its strengthening.
[0142] After the polymer material is applied, the knitted fabric is pressed under heat and pressure in a press. During this step, the polymer material liquefies and bonds with the yarn of the textile material.
[0143] In a further optional step, the knitted fabric can be pressed into a three-dimensional shape using a molding press. For example, the heel or toe area of a shoe upper can be shaped three-dimensionally over a last. Alternatively, the knitted fabric can also be directly fitted to a foot.
[0144] After pressing and molding, the reaction time until complete stiffening can take one to two days, depending on the polymer material used.
[0145] The following polymer materials can be used: polyester; polyester-urethane prepolymer; acrylate; acetate; reactive polyolefins; copolyesters; polyamide; copolyamide; reactive systems (mainly polyurethane systems that react with H2O or O2); polyurethanes; thermoplastic polyurethanes; and polymeric dispersions.
[0146] A suitable viscosity range for the polymer material is 50–80 Pa·s (Pascal-second) at 90–150°C. A range of 15–50 Pa·s (Pascal-second) at 110–150°C is particularly preferred.
[0147] A preferred hardness range for the cured polymer material is 40–60 Shore D. However, other hardness ranges are also conceivable depending on the application.
[0148] The described polymer coating can be used effectively wherever support functions, stiffening, increased abrasion resistance, elimination of tension, increased comfort, and / or adaptation to predefined three-dimensional geometries are desired. It is also conceivable, for example, to adapt a shoe upper to the individual shape of a wearer's foot by applying polymer material to the upper, which then conforms to the shape of the foot under heat. Monofilaments for reinforcement
[0149] As previously defined, a monofilament is a yarn consisting of a single filament, that is, a single fiber. The elasticity of monofilaments is therefore significantly lower than that of yarns made from many fibers. This also reduces the elasticity of knitted fabrics made from or containing monofilaments, which are used in the present invention. Monofilaments are typically made of polyamide. However, other materials such as polyester or a thermoplastic material would also be conceivable.
[0150] While monofilament knit fabrics are significantly stiffer and less stretchy, they lack the desired surface properties such as suppleness, color, moisture transport, appearance, and the variety of textile structures found in conventional knit fabrics. This disadvantage is overcome by the knit fabric described below.
[0151] Fig. Figure 8 shows a knitted fabric with a knitted layer of a first yarn, for example, a multifilament yarn, and a knitted layer of monofilament. The monofilament layer is knitted into the first yarn layer. The resulting two-layered fabric has significantly greater strength and lower elasticity than the yarn layer alone. If the monofilament is slightly melted, it bonds even better with the first yarn.
[0152] Fig. Figure 8 shows, in particular, a front view 81 and a back view 82 of a two-layer knitted fabric 80. Both views show a first knitted layer 83 made of the first yarn and a second knitted layer 84 made of monofilament. The first textile layer 83 made of the first yarn is linked to the second layer 84 via stitches 85. This transfers the greater strength and lower elasticity of the second textile layer 84 made of monofilament to the first textile layer 83 made of the first yarn.
[0153] A monofilament can also be slightly melted to bond with the layer of the first yarn and further restrict stretching. The monofilament then fuses at the points of contact with the first yarn, fixing the first yarn to the monofilament layer. Combination of monofilaments and polymer coating
[0154] The two-layer knitted fabric described in the previous section can be further reinforced with a polymer coating, as already described in the section "Polymer Coating." The polymer material is applied to the knitted monofilament layer. It does not bond with the monofilament material (e.g., polyamide) because the monofilament surface is very smooth, but rather penetrates the underlying first layer of yarn (e.g., polyester). During subsequent pressing, the polymer material bonds with the first yarn of the first layer, thus reinforcing it. The polymer material has a lower melting point than the first yarn of the first layer and the monofilament of the second layer. The pressing temperature is chosen so that only the polymer material melts, not the monofilament or the first yarn. Melting yarn
[0155] To strengthen the fabric and reduce elongation, the yarn used in the knitted fabric according to the invention can also be, additionally or alternatively, a melt yarn that secures the knitted fabric after pressing. There are essentially three types of melt yarn: a thermoplastic yarn surrounded by a non-thermoplastic yarn; a non-thermoplastic yarn surrounded by a thermoplastic yarn; and pure melt yarn made of thermoplastic material. To improve the bond between the thermoplastic yarn and the non-thermoplastic yarn, the surface of the non-thermoplastic yarn can be textured.
[0156] Pressing is preferably carried out at a temperature of 110 to 150°C, particularly preferably at 130°C. During this process, the thermoplastic yarn melts at least partially and bonds with the non-thermoplastic yarn. After pressing, the knitted fabric is cooled so that the bond hardens and sets. The melt yarn can be arranged in the upper part of the shoe and / or the sole.
[0157] In one embodiment, the melt yarn is knitted into the knitted fabric. With multiple layers, the melt yarn can be knitted into one, several, or all layers of the knitted fabric.
[0158] In another embodiment, the melt yarn can be arranged between two layers of a knitted fabric. The melt yarn can simply be placed between the layers. This arrangement between the layers has the advantage that the mold is not contaminated during pressing and forming, as there is no direct contact between the melt yarn and the mold. Thermoplastic textile for reinforcement
[0159] Another way to reinforce knitted fabrics, which is used for the present invention, for example, in a shoe upper and / or sole, is to use a thermoplastic textile. This is a thermoplastic woven fabric or a thermoplastic knitted fabric. A thermoplastic textile melts at least partially under the influence of heat and solidifies upon cooling. A thermoplastic textile can be applied, for example, to the surface of a shoe upper or sole, which may, for instance, be made of knitted fabric, by applying pressure and heat. Upon cooling, the thermoplastic textile solidifies and reinforces, for example, the shoe upper or sole in the specific area where it has been applied.
[0160] The thermoplastic textile can be specifically manufactured in terms of its shape, thickness, and structure for reinforcement purposes. Additionally, its properties can be varied in certain areas. For example, the mesh structure, the stitch pattern, and / or the yarn used can be varied to achieve different properties in different applications.
[0161] One embodiment of a thermoplastic textile is a knitted or crocheted fabric made of thermoplastic yarn. The thermoplastic textile may also contain a non-thermoplastic yarn. The thermoplastic textile can be applied, for example, to a shoe upper or sole using pressure and heat.
[0162] Another embodiment of a thermoplastic textile is a fabric whose weft and / or warp threads are thermoplastic. Different yarns can be used in the weft and warp directions of the thermoplastic fabric to achieve different properties, such as elasticity, in each direction.
[0163] Another embodiment of a thermoplastic textile is a spacer fabric made of thermoplastic material. In this case, for example, only one layer can be thermoplastic, for instance, to be attached to a shoe upper or sole. Alternatively, both layers can be thermoplastic, for example, to bond the sole to the shoe upper.
[0164] A thermoplastic knitted or woven fabric can be produced using the manufacturing techniques for knitted fabrics described in the "Knitted Fabrics" section.
[0165] A thermoplastic textile can only be partially bonded to the surface to be reinforced under pressure and heat, meaning that only certain areas of the thermoplastic textile bond with the surface. Other areas do not bond, thus maintaining permeability to air and / or moisture. This can alter the function and / or design of, for example, a shoe upper or sole. Shoe with knit fabric
[0166] Fig. Figure 9 shows a shoe 91 according to an embodiment of the present invention. The shoe is described in Figure 91. Fig. The shoe 91 shown has an upper 51, which can be made of leather, canvas, or plastic. The upper 51 is attached to an outsole 92, which is made of knitted fabric. The knitted fabric can be woven or crocheted, for example, on a machine, as described above in the section "Knitted Fabric". The upper 51 can be glued, welded (using ultrasound, as described above in the section "Functional Knitted Fabric", or using high frequency or laser welding), or sewn to the outsole 92.
[0167] The shoe 91 can also have a midsole (in the Fig. 9 (not shown) which may also contain knit fabric. Alternatively, only the midsole may contain knit fabric, but not the outsole 92. The midsole may be glued, welded (ultrasound, as described above, high frequency or laser) or stitched to the outsole 92 or to the upper 51. Alternatively, a connection may also be made by overlocking.
[0168] In an alternative embodiment, the outsole 92 is formed together with the midsole as a single piece of knitted fabric. Such a single piece of knitted fabric can be produced, for example, on a knitting or warp knitting machine with two rows of needles, wherein the outsole 92 and the midsole are knitted or warp-knitted on different rows of needles. The outsole 92 and the midsole can be joined together at the edge or over their entire surface during the knitting or warp-knitting process.
[0169] The outsole (92) and midsole can also be made of a spacer fabric, as described above, for example, in the sections "Knitted Fabrics" and "Functional Knits," where the first layer forms the outsole and the second layer forms the midsole. The yarn between the two layers then provides additional cushioning and thus takes on the function of a midsole.
[0170] Alternatively, only the midsole features a spacer fabric. The outsole 92 can then be knitted or crocheted, or it can be made entirely of fabric. The outsole 92 can be water-repellent, dirt-repellent, and / or slip-resistant. The first layer of the spacer fabric in the midsole provides cushioning, depending on its thickness. The second layer of the spacer fabric in the midsole forms the Strobel sole or, more precisely, the insole. In this embodiment, the foot rests directly on the second layer of the spacer fabric. The second layer can contain a moisture-absorbing yarn and, additionally or alternatively, an antibacterial and / or odor-inhibiting yarn, such as a silver yarn. Alternatively, the second layer can be made entirely or almost entirely of melt yarn.When the melt yarn is melted and solidifies upon subsequent cooling, the second layer functions as a sole plate. The sole plate can be shaped to fit the sole of the foot, thus distributing pressure and loads evenly across it.
[0171] Channels can be knitted into the spacer fabric of the midsole, for example by skipping stitches in specific areas of the midsole's knit. For instance, the channels could lead from the insole through the Strobel outsole and out laterally from the midsole, thus providing ventilation. At the same time, the outsole can be virtually airtight, preventing the penetration of dirt and water.
[0172] The outsole 92 and / or the midsole can also each incorporate a spacer fabric, as described above, for example, in the sections "Knitted Fabrics" and "Functional Knits." In this case, the outsole and / or the midsole and the spacer fabric can be made of different materials, such as different yarns. Generally, the thickness of a spacer fabric used for the outsole 92 and / or midsole can be adapted to the expected stresses when wearing the shoe 91. For example, the spacer fabric could be thicker in the heel area than in the toe area to specifically reduce the force exerted on the foot during impact, such as in a running shoe.Thicker yarns could also be used for a heavier supporter, and the spacer fabric could be thicker than for a lighter supporter.
[0173] The layers of a spacer fabric used for shoe 91 can contain different yarns. For example, the layer facing the foot can contain a moisture-absorbing yarn, the layer on the side facing away from the foot can contain rubberized yarn, and the yarn between these layers can be stable nylon yarn (monofilament).
[0174] The spaces within the spacer fabric can be filled with damping materials to achieve additional damping. For example, the spaces could be filled with particle foam, e.g., made of eTPU (expandable thermoplastic urethane) or ePP (expandable polypropylene), foam inserts, and additional (loose) fibers.
[0175] These cushioning materials can be interchangeable, allowing the user to adjust the cushioning properties to their needs. For example, the mesh of the outsole (92) and / or the midsole (in the Fig. 9) not shown) be knitted in such a way that it has openings, pockets or tunnels which can accommodate the cushioning materials interchangeably.
[0176] The openings, pockets, or tunnels can be accessible from the outside of the shoe. For example, the cushioning material could be inserted laterally from the outside into an opening, pocket, or tunnel in the outsole and / or midsole. Alternatively, the opening, pocket, or tunnel may be accessible from inside the shoe. For example, there might be an opening, pocket, or tunnel in the outsole and / or midsole beneath an insole. To insert the cushioning material, the insole could then first be lifted or removed to access the opening, pocket, or tunnel.
[0177] Materials can be knitted or woven into specific areas of the outsole (92) and / or midsole. For example, melt yarn could be knitted or woven only in the areas that are subject to the most stress during the rolling motion of the foot. This reinforces the most stressed areas.
[0178] Melt yarn can be knitted into the midfoot area in the form of so-called torsion elements. After the melt yarn is melted and subsequently solidified, a one-piece functional element is created. Melt yarn can also be knitted only medially and then serve as a pronation aid, i.e., provide extra support to the foot on the medial side. A continuous layer of melt yarn in the outsole 92 and / or the midsole would have the effect of a continuous sole plate.
[0179] Rubberized yarn can be knitted or woven in only in the areas that have the strongest contact with the ground – corresponding to the rolling motion of the foot. A rubberized yarn can be used in the forefoot area, from the sole up to the toes. This provides additional stability in the toe area and protects against the upper separating from the sole due to wear and tear.
[0180] Fig. Figure 10 shows a shoe 91 according to a further embodiment of the present invention. In the case of the Fig. Shoe 91, shown in Figure 10, features both the outsole 92 and the upper 51 made of knitted fabric. The knitted fabric of the upper 51 can be knitted or crocheted, for example, on a machine, as described above. The upper 51 can be glued, welded (using ultrasound, as described in the section "Functional Knitted Fabrics", or using high frequency or laser welding), or sewn to the outsole 92. Alternatively, the upper 51 can be linked to the outsole 92 and / or the midsole (in the section "Functional Knitted Fabrics") by means of overlock stitching. Fig. 10 (not shown) be connected.
[0181] In an alternative embodiment of the Fig. In the shoe 91 shown in Figure 10, the upper 51, together with the outsole 92 and / or the midsole, is formed as a single piece of knitted fabric. In this case, the subsequent joining of the upper 51 and the outsole 92 or midsole is unnecessary. Such a single piece of knitted fabric can, for example, be produced on a circular knitting machine.
[0182] The in Fig. The trademark shown (101) can be knitted or worked directly into the knit fabric of the shoe upper (51) during its production. Subsequent application is not necessary in this case. Instead of a trademark, it can also be a decorative element. Alternatively, the trademark or decorative element can be applied subsequently, for example by gluing, welding (using ultrasound, as described above in the section "Functional Knit Fabrics", high-frequency welding, or laser), sewing, or printing.
[0183] The in Fig. The shoe upper 51 shown in Figure 10 features a reinforcement 102 in the form of a heel counter. The shoe upper 51 may have further reinforcements, for example, in the toe area. These reinforcements could be, for instance, an applied polymer layer, as described above in the sections "Polymer Coating" and "Combination of Monofilaments and Polymer Coating." Alternatively, melt yarn can be used, which is knitted or worked into the fabric during the knitting or weaving process and, after heating and cooling, provides stiffening and stabilization. Alternatively, the melt yarn can be sewn or embroidered in afterward. Another alternative is that the melt yarn can be embroidered or stitched onto the fabric and then fused with the knit.
[0184] At the in Fig. The reinforcement shown in Figure 102 could also be a subsequently attached heel counter, e.g., made of polyurethane, which may be glued, welded (using ultrasound, as described above in the section "Functional Knitwear," using high frequency, or laser), or sewn to the upper part of the shoe 51. Alternatively, the reinforcement 102 could be a reinforcing yarn knitted, woven, sewn, or embroidered into the knitwear, for example, a monofilament as described in the relevant sections, or a rubberized yarn. Another alternative is that a reinforcement, e.g., a heel counter, could be inserted or slid into a knitted or woven pocket or tunnel.
[0185] The in Fig. 9 and Fig. The shoe shown (91) may have a different binding in the outsole (92) and / or midsole area than in the upper (51). For example, a more durable binding (e.g., twill weave for knitted fabrics) could be used in the outsole (92) than in the upper (51). Conversely, a more elastic binding (e.g., tricot weave for knitted fabrics) could be used in the upper (51), allowing the upper to easily adapt to the shape of the foot.
[0186] The in Fig. 9 and Fig. Shoe 91 shown in section 10 may have a different yarn in the outsole 92 and / or midsole area than in the upper 51 area. For example, a rubber-like yarn could be used in the outsole 92 area, which increases static friction and thus traction. In the midsole area (in the Fig. 9 and Fig. (10 not shown) a stabilizing and damping yarn, e.g. a voluminous and / or hollow yarn, could be used and in the area of the shoe upper 51 a yarn that promotes air permeability, e.g. a yarn with relatively little volume such as a thin yarn.
[0187] In the area of the outsole 92 and / or the midsole, the shoe 91 could also have a thicker, more abrasion-resistant or more water-repellent yarn than in the area of the shoe upper 51. In this way, the shoe upper 51, the outsole 92 and / or the midsole can be adapted to the respective functional requirements of the shoe.
[0188] The knit fabric in the upper section (51) can, for example, be more breathable than in the outsole (92) and / or midsole. For instance, the knit fabric of the upper (51) could be more loosely knitted than the knit fabric of the outsole (92) and / or midsole. Alternatively, the knit fabric of the upper (51) can have openings that are knitted or worked into the fabric during its production. Alternatively, openings can be added to the knit fabric afterward, for example, by cutting, punching, burning, or laser cutting. The edges of these added openings can optionally be fused or glued to prevent fraying.
[0189] The knitted material can be arranged in the area of the outsole 92 and / or the midsole such that the knitted strands run essentially perpendicular to a longitudinal axis of the outsole 92 and / or the midsole. This increases traction, particularly in the longitudinal direction, as the transversely arranged knitted strands act like a transversely profiled sole. Other arrangements of the knitted material are also conceivable, depending on the requirements.
[0190] Traction can also be increased by knitting a yarn with high static friction, e.g., a rubberized yarn, into the outsole area at specific intervals. Additionally or alternatively, a yarn with high abrasion resistance (e.g., Kevlar®) can be knitted into the outsole at intervals.
[0191] The knitted fabric may feature knitted and / or crocheted ribs and / or studs in the outsole area and / or the midsole. Knitted fabric may be provided with ribs and / or studs during the knitting or crocheting process. Ribs and / or studs in the midsole area may engage with corresponding ribs and / or studs in the outsole area, thus creating a particularly stable connection between the two. Ribs can, for example, be knitted three-dimensionally, as described in the section "Three-Dimensional Knitted Fabric".
[0192] The ribs can be arranged essentially perpendicular to a longitudinal axis of the shoe. This increases traction, particularly in the longitudinal direction, as the transversely arranged ribs act like a transversely profiled sole. Other rib arrangements are also conceivable, depending on the requirements.
[0193] The outsole 92 and / or the midsole can be reinforced with a thermoplastic polymer material, as described above in the sections "Polymer Coating" and "Combination of Monofilaments and Polymer Coating". Alternatively, the outsole 92 and / or the midsole can also be reinforced with monofilament, as described above in the sections "Monof i laments for reinforcement” and “combination of monofilaments and polymer coating” are described.
[0194] The knit fabric may contain a thermoplastic yarn in the area of the outsole (92) and / or the midsole. This thermoplastic yarn can be knitted or worked into the fabric during its production. If the shoe is subsequently heated above the melting point of the thermoplastic yarn, it melts and solidifies upon cooling. This stiffens the knit fabric and provides stability.
[0195] The thermoplastic yarn can be knitted or woven across the entire surface of the outsole and / or midsole. In this case, depending on requirements, e.g., customer-specific, only certain areas can be heated and melted. Alternatively, the thermoplastic yarn can be present only in specific areas of the outsole and / or midsole. In this case, the distribution of the thermoplastic yarn can also be customized, e.g., customer-specific.
[0196] The knit fabric of the outsole 92 and / or the midsole can be immersed in a rubber, latex, starch or polymer bath, so that the yarns and / or spaces are filled with rubber, latex, starch or polymer to increase friction and traction (in the case of a rubber or latex bath) and stiffness (in the case of a starch or polymer bath).
[0197] Fig. Figure 11 shows a further embodiment of a shoe 91 according to the invention. In this embodiment, the shoe 91 has an upper 51 and an outsole 92, which are formed from a single piece of knitted fabric. Such a shoe 91 can, for example, be manufactured on a flat knitting machine. In the embodiment of the Fig. The outsole (item 11) features Kevlar® yarn, which is particularly durable and abrasion-resistant. Alternatively, another durable and abrasion-resistant yarn could be used.
[0198] In the exemplary embodiment of the Fig. The upper part of shoe 51 also features two different yarns. In the first section, two of which are designated with the reference number 111, the upper part of shoe 51 uses a standard yarn. This yarn could be a soft and flexible yarn, such as polyester. In the second section, two of which are designated with the reference number 112, the upper part of shoe 51 uses an elastic yarn. This could be, for example, elastane. Due to the elastic yarn and the arrangement of the first and second sections, the upper part of shoe 51 adapts particularly well to the shape of the foot.
[0199] The Fig. 12a, Fig. 12b and Fig. Figure 12c shows a further embodiment of a shoe 91 according to the invention. As shown in the side view of the Fig. As shown in Figure 12a, the shoe 91 has an upper 51, a midsole 121, and an outsole 92. The upper 51 can be made of any textile, for example, a woven or knitted fabric.
[0200] The midsole 121 features a spacer fabric, as described, for example, in the sections "Knitted Fabrics" and "Functional Knits." Alternatively, the midsole is made entirely of a spacer fabric. The spacer fabric of midsole 121 can, for example, use a monofilament spacer yarn. In area 122, located in the midfoot, the spacer fabric is knitted more densely than in other areas. This provides additional stability and support in the midfoot. The spacer fabric can also be knitted more densely in other areas of the foot, for example, according to the requirements of a wearer of shoe 91. The spacer fabric can also be knitted thicker in certain areas, either additionally or alternatively. For example, the spacer fabric could be knitted thicker in the arch area to support the arch.
[0201] The upper layer 123 of the spacer fabric of the midsole 121 functions as a top layer, a Strobel insole, or an insole. The top layer comes into direct contact with the foot. The upper layer 123 of the spacer fabric of the midsole 121 may contain a moisture-absorbing yarn.
[0202] Optionally, a section 124 made of melt yarn can be knitted into the spacer fabric of the midsole 121 in the midfoot area. For example, the melt yarn can be knitted into the inner or outer layer of the spacer fabric. The melt yarn melts when exposed to heat and solidifies upon cooling. This creates a firmer section 124, which can, for example, support the torsion of the midsole and simultaneously support the midfoot.
[0203] Ventilation channels, i.e., cutouts, can be incorporated into the spacer fabric of the midsole 121 (in the Fig. (12 not shown) are knitted in. These can be created, for example, by three-dimensional knitting. The ventilation channels can create a connection from the upper layer 123 of the spacer fabric, for example, to one side of the spacer fabric. Moist and warm air can be transported away from the foot through the ventilation channels, and fresh air can be supplied to the foot.
[0204] The outsole 92, which in the side view of the Fig. 12a and the cross-sectional view of the Fig. The midsole 121, as shown in Figure 12b, is connected to the midsole 121, for example, by gluing, sewing, or welding (using ultrasound, as described above in the section "Functional Knitwear," high-frequency welding, or laser). The outsole 92 can be made of rubber or plastic, for example. The outsole 92 can also be a coating, such as Kevlar®.
[0205] In the Fig. In the alternative embodiment shown in Figure 12c, the outsole 92 is formed by the lower layer of the spacer fabric of the midsole 121. For this purpose, the lower layer of the spacer fabric can have a rubberized yarn to increase traction. Additionally or alternatively, the lower layer can also have a particularly durable and abrasion-resistant yarn, e.g., Kevlar®.
[0206] The Fig. 13a and Fig. Figure 13b shows perspective cross-sections of two further embodiments of a shoe 91 according to the invention. In both figures, the shoe upper 51 and the outsole 92 are designed as knitted fabric. The shoe upper 51 and the outsole 92 could be manufactured as a single piece of knitted fabric, e.g., on a circular knitting machine.
[0207] Shoe 91 contains a midsole in the form of an insole 131. The insole 131 can be permanently attached to the upper part 51 and / or the outsole 92, for example, by sewing, gluing, or welding (using ultrasound, as described above in the section "Functional Knitwear," or by high-frequency welding or laser). Alternatively, the insole 131 can be removable from the shoe. It is also conceivable that the knitwear of the outsole 92 has a knitted or crocheted pocket on its upper surface (not shown in the figures) into which the insole, e.g., a midsole made of knitwear, can be inserted.
[0208] The insole 131 may be made of knitted material, thus constituting a midsole with knitted material. Alternatively, the midsole may not be made of knitted material and could be made of, for example, foam or ethylene vinyl acetate (EVA). The insole 131 may be completely surrounded by knitted or woven material of the shoe upper 51 and / or the outsole 92, for example in the form of the pocket described above, to reduce or prevent slippage.
[0209] The outsole material (92) can be made of a durable yarn, such as Kevlar® yarn. Alternatively or additionally, the outsole (92) can be coated with a durable coating, such as Kevlar®.
[0210] In the alternative embodiment of the Fig. Insole 13b features additional studs 132. If insole 131 is a knitted insole, the studs 132 can be created, for example, by appropriate knitting or weaving structures. For instance, the studs 132 could be three-dimensionally knitted structures. The studs 132 of insole 131 provide a corresponding structure to the outsole 92. In this way, the outsole 92 acquires a profile that increases traction. The knitted material of the outsole 92 could also be given a corresponding structure, for example, by three-dimensional knitting. In this case, the outsole 92 would have indentations into which the studs 132 can engage.
[0211] The outsole material of the 92 can incorporate rubberized yarn in the lug area to enhance traction. This rubberized yarn can be knitted into the fabric using a "floating" weave, for example. It can be knitted in a herringbone pattern, allowing the rubberized yarn to move freely and adapt to the ground for improved traction.
[0212] In an alternative embodiment (in the Fig. 13a and Fig. (Figure 13b not shown) has the outsole 92 openings through which the studs 132 of the insole 131 protrude and can contact the ground. In this case, the studs 131 form part of the outsole 92. The studs 131 could then be made of a resistant and durable material, e.g., rubber or Kevlar®.
[0213] Fig. Figure 14 shows a further embodiment of the present invention. The left side of the Fig. Figure 14 shows the shoe 91 according to the invention from the underside, while the right side shows the shoe 91 according to the invention from the top. The outsole 92 comprises a knitted fabric with a first yarn. This first yarn can, for example, be a polyester yarn. The knitted fabric also comprises a second yarn. This second yarn can be a rubber yarn. Alternatively, it can be a rubberized yarn. In the exemplary embodiment of the Fig. 14 arranged in rectangular structures, three of which are designated by reference numeral 141 as examples. The structures need not be rectangular and can be of any shape, for example, round. By forming the second yarn (rubber yarn or rubberized yarn) in structures on the outsole 92, traction, abrasion resistance, and stability are increased.
[0214] The arrangement of the structures with the second yarn can follow a human footprint, as shown in the embodiment of the Fig. Figure 14 shows that the structures with the second yarn are arranged on the outsole 92 where the highest abrasion occurs when the shoe 91 is worn. In principle, the structures with the second yarn can be arranged arbitrarily on the outsole 92. For example, in the exemplary embodiment of the Fig. 14. No structures with the second yarn are arranged in the area of the arch of the foot. Likewise, no structures with the second yarn are arranged in the flex zone of the toes.
[0215] In the exemplary embodiment of the Fig. 14. The outsole 92 can also be made entirely of knitted material, i.e., knitted or crocheted in one piece.
[0216] The shoe upper 51 can also be used in the exemplary embodiment of the Fig. 14 knitted fabrics, as shown on the right side of the Fig. Figure 14 shows that the knitted fabric of the shoe upper 51 can have a first yarn. This first yarn, like the first yarn of the outsole 92, can be, for example, a polyester yarn. In the exemplary embodiment of the Fig. 14 a second yarn. The second yarn can be a rubber yarn or a rubberized yarn. As with the outsole 92, the second yarn is arranged in rectangular structures on the shoe upper 51. Three of these structures are designated by reference numeral 142 as an example. However, the structures can have any shape, e.g., be round. The structures with the second yarn are shown in the exemplary embodiment of the Fig. 14 are arranged primarily in the midfoot area. This provides stability in the midfoot. The structures with the second yarn can, in principle, be distributed arbitrarily on the upper part of the shoe 51. For example, no structures with the second yarn are arranged in the forefoot area.
[0217] The shoe upper 51 can be, in the exemplary embodiment of the Fig. 14. The upper part 51 may also consist entirely of knitted fabric, i.e., be knitted or crocheted in one piece. It is also possible that the knitted fabric of the upper part 51 is formed in one piece with the knitted fabric of the outsole 92. In this case, the first yarn of the outsole 92 and the first yarn of the upper part 51 could be identical, and the second yarn of the outsole 92 could be identical to the second yarn of the upper part 51.
[0218] If the outsole 92 is formed as a single piece of knitted fabric with the upper 51, the knitted fabric can be produced on a circular knitting machine or a circular warp knitting machine. Alternatively, the single piece of knitted fabric can be produced on a flat knitting machine. In this case, a seam could be incorporated along the sole, similar to a moccasin construction, to achieve the desired shape of the shoe.
[0219] In all embodiments of the invention, the outsole 92 and / or the midsole 121 can have at least one pocket (not shown in the figures) into which a material insert can be placed. The pocket can be produced in one piece with the knitted fabric of the outsole 92 and / or the midsole 121 during knitting or weaving. The material insert can be, for example, a foam insert, an air cushion, or a gel insert, which, for example, provides cushioning. The pocket can completely or partially enclose the material insert.
Claims
[1] shoe (71), in particular a sports shoe, comprising: a. a shoe upper (72); b. an outsole (73) which is connected to the upper part of the shoe (72), wherein the outsole (73) has a knitted fabric and wherein the outsole (73) is provided with functional areas which were formed during the manufacture of the knitted fabric. [2] Shoe (71) according to claim 1, wherein the upper part of the shoe (72) is made of knitted material. [3] Shoe (71) according to claim 2, wherein the upper part of the shoe (72) and the outsole (73) are formed as a single-piece knitted fabric. [4] Shoe (71) according to claim 2 and / or 3, wherein the knitted material in the area of the outsole (73) has a different binding than in the area of the shoe upper (72). [5] Shoe (71) according to one of claims 2 to 4, wherein the upper part of the shoe (72) has a first yarn and the knitted fabric in the area of the outsole (73) has a second yarn. [6] Shoe (71) according to one of the preceding claims, wherein the second yarn is thicker than the first yarn. [7] Shoe (71) according to one of the preceding claims, wherein the second yarn is more abrasion-resistant than the first yarn. [8] Shoe (71) according to one of claims 5 to 7, wherein the second yarn is more water-repellent than the first yarn. [9] Shoe (71) according to one of the preceding claims, wherein the knitted material in the area of the shoe upper (72) is more permeable to air than in the area of the outsole (73). [10] Shoe (71) according to one of the preceding claims, wherein the knitted material in the area of the outsole (73) is arranged such that the knitted rods (31) of the knitted material run substantially transversely to a longitudinal axis of the outsole (73). [11] Shoe (71) according to one of the preceding claims, wherein the knitted material in the area of the outsole (73) has stability elements. [12] Shoe (71) according to claim 11, wherein the stability elements are ribs, waves or knobs. [13] Shoe (71) according to claim 12, wherein the ribs are arranged substantially transversely to a longitudinal axis of the shoe. [14] Shoe (71) according to one of the preceding claims, wherein the knit fabric is knitted. [15] Shoe (71) according to one of the preceding claims, wherein the knitted fabric is knitted. [16] Shoe (71) according to one of the preceding claims, wherein the outsole (73) is reinforced with a polymer material. [17] Shoe (71) according to one of the preceding claims, wherein the knitted material in the area of the outsole (73) comprises a thermoplastic yarn. [18] Shoe (71) according to one of the preceding claims, wherein the knitted fabric in the area of the outsole (73) has at least one rubberized yarn. [19] Shoe (71) according to one of the preceding claims, wherein the knitted material of the outsole (73) was at least partially immersed in a rubber and / or polymer bath. [20] Shoe (71) according to one of the preceding claims, wherein the outsole (73) is a spacer knit or spacer fabric. [21] Shoe (71) according to claim 20, wherein the layers of the spacer fabric or spacer knit fabric have different yarns. [22] Shoe (71) according to one of the preceding claims, wherein the knitted material of the outsole (73) has a knitted or crocheted pocket on the upper side into which a midsole can be inserted. [23] Method for manufacturing a shoe according to any of the preceding claims comprising the following steps: a. Providing a shoe upper; b. Manufacturing an outsole that incorporates knitted fabric, wherein the outsole is provided with functional areas which are formed during the manufacture of the knitted fabric; and c. Connecting the outsole to the upper part of the shoe.
Citation Information
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