Laceless shoe

The laceless shoe upper with distinctively stiffer lateral and medial parts and a less stiff intermediate part addresses the issues of support and ease of use in laceless shoes, enhancing stability and simplicity of fitting.

DE102015219614B4Active Publication Date: 2025-06-18ADIDAS AG
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Patent Information

Application Number
DE102015219614
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2015-10-09
Publication Date
2025-06-18
Estimated Expiration
2035-10-09

AI Technical Summary

Technical Problem

Laceless shoes often fail to provide sufficient foot support, especially during athletic activities, and are difficult to put on or take off.

Method used

A laceless shoe upper design comprising a lateral part, a medial part, and an elastic intermediate part, where the stiffness of the lateral and medial parts is at least twice that of the elastic intermediate part, allowing for easy donning and doffing while providing robust foot support.

Benefits of technology

The design ensures adequate foot support during athletic movements, particularly during cutting maneuvers, while facilitating easy insertion and removal of the foot.

✦ Generated by Eureka AI based on patent content.

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Abstract

Upper shoe (10) for a shoe, in particular a sports shoe, wherein the upper shoe (10) is laceless and comprises: a. a lateral part (13); b. a medial part (12, 14); and c. at least one elastic intermediate part (16) between the lateral part (13) and the medial part (12, 14), wherein the stiffness of the lateral part (13) and / or the medial part (12, 14) is at least twice higher than the stiffness of the elastic intermediate part (16), and wherein the width of the elastic intermediate part (16) is between 10% and 60% of the width of the upper shoe (10).
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Description

1. Technical area

[0001] The present invention relates to an upper for a shoe, in particular a sports shoe, wherein the upper is laceless. 2. State of the art

[0002] Shoes are usually equipped with laces to secure the shoes. Each lace typically passes through a series of holes, eyelets, loops, or hooks on either side of the shoe. Using the laces allows the shoe to open wide enough to allow the foot to be inserted or removed. Tightening the laces and tying the ends secures the foot in the shoe.

[0003] Laceless shoes were developed to eliminate the need to tighten the laces after putting the shoe on. On the one hand, this simplifies handling, and on the other hand, a laceless shoe can be particularly advantageous for sports shoes, such as soccer cleats, where a smooth surface is preferred to allow for better ball control.

[0004] For example, document US 4 811 497 A discloses a sports shoe having a central cut of material in the vamp region, from near the toe to the top of the vamp, comprising a series of strips which remain connected to each other in a standard area of ​​elastic material connected to them by sewing, being able to separate from each other when necessary to put the shoe on or take it off.

[0005] US Patent No. 5,555,650 describes a laceless athletic shoe that lacks both laces and a tongue. The upper includes an integral elastic portion that expands to accommodate the wearer's foot and subsequently contracts to conform to the wearer's ankle. Combined with a drawstring system located along the top of the foot, this elastic portion can secure the shoe around the wearer's foot.

[0006] WO 2014 / 130319 A1 discloses a footwear product comprising an upper, a sole, and a band which is connected at one end to the medial side of the footwear, either at the side of the upper or at the sole, and which is connected at its other end to the lateral side of the footwear, either at the side of the upper or at the sole. The band comprises a layer made of reactive material. This layer is referred to as a "reactive layer." The reactive layer is prevented from expanding outward. When a person wearing the footwear engages in an activity, such as jumping or accelerating, which subjects the band to increased longitudinal tension, the thickness and / or width of the reactive layer increases, so that the reactive layer holds the footwear more firmly on the foot.

[0007] EP 2 316 292 A1 describes a boot for a football or 5-a-side or 7-a-side football comprising a sole and an upper which is connected to the sole and extends substantially continuously to cover, in use, at least the instep and sides of the foot at the back of the heel and has an upper edge defining an opening for insertion of the foot.The upper comprises a back panel which, in use, covers the back of the heel, the inlet being made of a foldable and / or compliant material intended to fold towards the inside of the boot to allow insertion of the foot into the boot from the back of the boot, and a front panel which, in use, covers the instep, which is also made of a compliant material and is intended to tie the upper of the boot uniformly without the use of laces and bows and to improve comfort and foot-to-ball sensitivity.

[0008] WO 2014 / 070 018 A1 discloses a football boot having slits, wherein the closure mechanism is formed by a strip of elastic material covering the slit and attached to the upper material. For wider feet, the elastic material stretches during use, but a suitable choice of elastic material ensures a snug fit of the boot to the foot. However, other closure mechanisms, such as laces, can also be manufactured to function satisfactorily.

[0009] US 2007 / 0 022 627 A1 relates to a footwear structure with a textile shoe upper. The shoe upper includes independent regions with a ribbed structure to provide additional stability and support to a wearer's foot, as well as regions with a non-ribbed structure. An independent region with an increased stability structure is arranged at the lateral midfoot region of the article of footwear. Another region with increased stability extends continuously from the forefoot region along the medial side of the article of footwear through the medial midfoot region to the rearfoot region or heel region of the article of footwear. Because the shoe upper can be made of sufficiently flexible and stretchable material, conventional laces or other fastening mechanisms are not necessary.

[0010] DE 60 2004 005 441 T2 relates to a sports shoe. The shoe comprises elastic means for contracting its upper material on a foot inserted into the shoe, which comprises at least a first and a second elastically deformable upper material region. Furthermore, at least one piece of stiffening material may be present, applied to the upper material and substantially defining the first and second elastically deformable regions, to increase the stiffness of the shoe and prevent it from excessively yielding during movement of the wearer. The stiffening material is a substantially non-elastically deformable material which, when applied to the upper material at discrete locations, prevents elastic deformation of the upper material in the zones where it is applied.

[0011] US 2012 / 0 180 340 A1 relates to a shoe upper comprising a first layer and a second layer arranged on the first layer outside the first layer. The second layer defines grooves in a rhombic tile pattern.

[0012] US 2014 / 0 237 738 A1 relates to a fixation system comprising an upper element and a base element. The upper element comprises a compression layer, and the base element is connected to a last element. The compression layer has a contoured portion that corresponds to the shape of a portion of the last element. The upper element can be connected to the base element, and a vacuum can be applied so that the compression layer is pulled down onto the materials arranged on the last element to fuse the materials together to form articles, for example, footwear.

[0013] US 2014 / 0 237 853 A1 relates to a method and system for manufacturing uppers for footwear. The system comprises a last assembly and a pressing system for forming the upper with the last assembly. The last assembly comprises a last element and a base element. The last element is turned over so that the underside of the last element faces away from the base element.

[0014] US 2014 / 0 239 556 A1 relates to a manufacturing system with which different material layers can be joined together to form a footwear item. The system comprises a base part, an intermediate element, and an upper element. The intermediate element comprises a flexible membrane. The intermediate element can be sealed to the base part, and a vacuum can be provided to pull the flexible membrane over material layers placed on the base part. The upper element can be sealed to the intermediate element so that external pressure can be exerted on the flexible membrane. The intermediate element and the upper element can be moved independently of one another.

[0015] US 2015 / 0 305 448 A1 relates to a method for manufacturing a footwear item, comprising applying an ambient pressure differential to a layer of upper material to conform the layer of upper material to a portion of a shoe last and thereby form at least a portion of an upper material of the footwear item. Furthermore, the method may comprise assembling the footwear item, including firmly attaching the upper of the footwear item to a sole structure.

[0016] However, the laceless shoes known from the prior art have several disadvantages. They often do not provide the desired foot support to which wearers are accustomed in shoes with laces. Good foot support is particularly necessary for sports shoes, and even more so for shoes for sports that involve cutting movements (e.g., soccer, football, rugby, etc.), as the forces exerted by the wearer on the shoe are high. State-of-the-art shoes can lead to a higher risk of twisting the ankle, especially during cutting movements, and at the very least give the wearer the false feeling of not being properly supported. In particular, some prior-art laceless shoes are very difficult to put on or take off. 3. Summary of the invention

[0017] It is therefore an object of the present invention to provide a laceless upper for a shoe, in particular a sports shoe, which in the finished shoe provides the wearer's foot with sufficient support and at the same time allows the shoe to be easily put on and taken off.

[0018] This task is fulfilled by various features of the shoe, either alone or in combination.

[0019] This object is achieved by an upper for a shoe, in particular a sports shoe, wherein the upper is laceless and comprises: (a.) a lateral part; (b.) a medial part; and (c.) at least one elastic intermediate part between the lateral and the medial part, wherein the stiffness of the lateral part and / or the medial part is at least twice higher than the stiffness of the elastic intermediate part.

[0020] In the context of the present invention, a laceless upper is an upper without laces for tightening the shoe. Furthermore, an upper and a shoe according to the invention are not equipped with fastening means. An upper according to the invention does not include fastening means with an open position and a closed position. Thus, the upper does not have fastening means such as laces, cables, hook-and-loop fasteners, strips, Velcro fasteners, etc.

[0021] The intermediate part of the upper is defined as covering at least the U-shaped neck of the upper. The U-shaped neck of a laceless upper corresponds to the tongue of a conventional laced upper, meaning it is a part located above the instep of the foot and designed to deform to allow the foot to be inserted and removed from the shoe.

[0022] Stiffness in this application is related to the ratio of the load (e.g., a force) applied to a piece of material relative to the deformation (e.g., a change in length) of that material. Measurements were performed using specimens cut from shoes, with the specimens being 20 mm in diameter and 50 mm long from clamp to clamp. A load was applied through the clamps, from 0% to 30% strain of the original specimen length, and then released, allowing the material to return to its original length of 50 mm. Measurements from the third cycle of load application were used. Generally, measurements with a strain greater than 5% produce accurate results.

[0023] The inventors have discovered that a laceless upper shoe comprising a lateral part and a medial part with a stiffness at least twice the stiffness of an elastic intermediate part provides a shoe that provides sufficient support for a wearer's foot while allowing easy donning and doffing. The necessary support for the foot is provided by the lateral part and the medial part with a significantly higher stiffness than the intermediate part, thereby limiting the load on the lateral and medial parts, so that the foot is held firmly in place, even during cutting movements. On the other hand, the elastic intermediate part has a stiffness at least twice less than the lateral and medial parts, allowing easy stretching of the shoe, so that the shoe can be comfortably put on and taken off.

[0024] The intermediate part in the context of the present invention may be, for example, a dorsal part of the upper shoe.

[0025] The lateral part can be configured to extend from a lateral connection point of the upper shoe to the sole to the elastic intermediate part. Thus, the stability of the upper shoe can be increased because the comparatively stiff and inelastic lateral part can be directly connected to the sole (e.g., by gluing, sewing, or welding) and extends to the elastic intermediate part, so that the lateral side is covered substantially along its entire height. This improves foot support, particularly during athletic activities, and furthermore, particularly during cutting movements.

[0026] The medial part can be configured to extend from a medial connection point of the upper shoe to the sole to the elastic intermediate part. Thus, the stability of the upper shoe can be increased because the comparatively stiff and inelastic medial part can be directly connected to the sole (e.g., by gluing, sewing, or welding) and extends to the elastic intermediate part, so that the medial side is covered substantially along its entire height. This increases the support of the foot, particularly during athletic activities, and furthermore, especially during cutting movements.

[0027] The upper may have a single elastic intermediate portion between the lateral portion and the medial portion. Furthermore, the elastic intermediate portion of the upper may comprise a single, one-piece elastic material. Thus, the elastic intermediate portion may be designed with a smooth surface. This is particularly advantageous for some sports shoes, especially football or rugby shoes, to enable good ball control.

[0028] The elastic intermediate portion may extend at least partially to a dorsal portion. Furthermore, the upper may be configured so that the intermediate portion extends to the dorsal portion of a foot when the upper is integrated into a shoe. This allows for a better fit, as the instep of the foot can vary from person to person. Since the elastic portion is located between the lateral and medial portions, this allows the upper to adapt to the shape and size of the foot.

[0029] At least a portion of the centerline of the elastic intermediate part can extend into the medial half of the upper. Further preferably, at least a portion of the elastic intermediate part, which is close to the toe part, can extend into the medial half of the upper. In this way, better grip (especially during cutting movements) on the lateral side is enabled, since the comparatively less elastic lateral part can be made larger. Furthermore, when the upper is used for, e.g., a soccer shoe, the shooting area is also larger on the top and lateral side of the shoe. In fact, the shooting area is advantageously stiffer. Furthermore, the shooting area advantageously comprises a coating, in particular an adhesive coating. Such a coating can stiffen the upper, and the elastic intermediate part is advantageously relocated towards the medial half of the shoe.

[0030] The length of the elastic intermediate part can be between 20% and 60% of the length of the upper shoe. More preferably, the length of the elastic intermediate part can be between 30% and 50% of the length of the upper shoe, and more preferably, between 40% and 45% of the length of the upper shoe. The inventors have found that such a length of the elastic intermediate part allows the shoe to be put on and taken off comfortably while maintaining sufficient stability. In particular, such a length of the elastic dorsal part allows for sufficiently rigid parts on the shoe so that it stays on the foot during athletic movements.

[0031] The width of the elastic intermediate part is between 10% and 60% of the width of the upper. The width of the upper is measured along the intersection of the surface of the upper and a cross-sectional plane. More preferably, the width of the elastic intermediate part can be between 20% and 40% of the width of the upper. In particular, the width of the lowest part of the elastic intermediate part (which is the part furthest to the front of the elastic dorsal part) can be between 20% and 30% of the width of the upper in this area of ​​the upper, and more preferably between 20% and 25%. The width of the highest part of the elastic intermediate part (which is the part furthest to the back of the elastic dorsal part near the collar or opening of the shoe, e.g.) may in particular be between 25% and 50% of the width of the upper in this area of ​​the upper, and more preferably between 33% and 40%.

[0032] If the elastic intermediate part has no straight edges, the lengths and widths given above are to be understood as average lengths and widths. For example, the width in the lowest part of the elastic intermediate part can be understood as the average width of the lowest 10% of the elastic intermediate part.

[0033] Furthermore, the upper shoe can have at least one continuous, one-piece layer that at least partially covers the lateral part and at least partially the intermediate part. Thus, the transition between the elastic intermediate part and the lateral part can be made very smooth, which is particularly advantageous, for example, for a football boot.

[0034] The upper may particularly advantageously comprise at least one continuous, one-piece layer extending over the entire upper. This provides an upper and a shoe with a very consistent layer and no seams. Indeed, seams can locally change the properties of the shoe. Without seams, the local properties of the upper can be better controlled. This also provides a better fit and increased comfort for the wearer of the shoe. Furthermore, while an upper comprising different parts that are assembled to form the upper can wear out quickly, as the seams are the weak points of the shoe, an upper comprising at least one continuous, one-piece layer is more durable.Such a continuous one-piece layer also allows the attachment of different parts to each of its sides, and allows the relative positioning of these parts.

[0035] The stiffness of the medial part can be between two and thirty times higher than the stiffness of the intermediate part. In particular, the stiffness of the medial part can be between two and twenty-five times higher, and more preferably between four and twenty times higher, e.g., approximately five times higher than the stiffness of the intermediate part. In particular, the stiffness of the medial part can be between two and eight times higher for an elongation below 10%, more preferably between three and six times higher for an elongation below 10%, e.g., approximately four times higher for an elongation below 10%, than the stiffness of the intermediate part. In particular, the stiffness of the medial part can be between three and twenty times higher for an elongation between 10% and 20%, more preferably between four and eleven times higher for an elongation between 10% and 20%, than the stiffness of the intermediate part.In particular, the stiffness of the medial part may be between five and twenty-five times higher for an elongation between 20% and 30%, and more preferably between five and twenty times higher for an elongation between 20% and 30%, e.g., between five and eleven times higher for an elongation between 20% and 30%, in some embodiments about five times higher at a 30% elongation than the stiffness of the intermediate part.

[0036] The medial portion may comprise a coating applied to a base layer, wherein the coating is configured to increase the stiffness of the base layer. In this way, the required ratio between the stiffness of the medial portion and the stiffness of the intermediate portion can be achieved. In particular, the stiffness of the medial portion is increased. A coating may also strengthen the upper in a specific area, provide water resistance, provide better grip, and / or improve the visual appearance of the upper.

[0037] A coating according to the invention is a layer of another material, in particular a material bonded to a base layer. In particular, a coating is a thin layer of a polymer material bonded to a base layer, for example, a fabric, e.g., a knitted fabric.

[0038] The coating can have holes of any shape and size.

[0039] Alternatively, or in combination, the coating may be integrally formed on the upper or comprise multiple pieces. In particular, the upper may comprise a plurality of pieces of the coating. At least some of the pieces of the coating may at least partially overlap. The pieces of the coating may be made of the same material, or at least one piece of the coating may be made of a first material and the other piece of the coating may be made of a different material.

[0040] The coating can be applied to the base layer in a solid or liquid state. The coating can be applied in a solid state and then melted to bond to the base layer, or it can be glued to the upper. Other methods, such as sewing the coating to the base layer, can also be considered.

[0041] The medial coating can extend from back to front along the upper, along the length of the shoe, on the medial side. This provides support along the entire medial side of the shoe.

[0042] The stiffness of the lateral part can be between three and fifty times higher than the stiffness of the intermediate part. In particular, the stiffness of the lateral part can be between three and forty times higher, and more preferably between three and twenty-nine times higher, e.g., about twenty times higher than the stiffness of the intermediate part. In particular, the stiffness of the lateral part can be between three and forty times higher for an elongation below 10%, more preferably between three and thirty times higher for an elongation below 10%, e.g., about eight times higher for an elongation below 10%, than the stiffness of the intermediate part.

[0043] In particular, the stiffness of the lateral part can be between ten and forty times higher for an elongation between 10% and 20%, more preferably between fifteen and thirty times higher for an elongation between 10% and 20%, e.g., about twenty times higher for an elongation between 10% and 20%, than the stiffness of the intermediate part. In particular, the stiffness of the lateral part can be between ten and forty times higher for an elongation between 20% and 30%, and more preferably between fourteen and twenty-nine times higher for an elongation between 20% and 30%, e.g., between twenty-two and twenty-nine times higher for an elongation between 20% and 30%, in some embodiments, between seventeen and twenty-seven times higher at a 30% elongation, than the stiffness of the intermediate part.

[0044] The lateral part may comprise a coating applied to a base layer, wherein the coating is configured to increase the stiffness of the base layer. In this way, the required ratio between the stiffness of the lateral part and the stiffness of the intermediate part can be achieved. In particular, the stiffness of the lateral part is increased. A coating may also strengthen the upper in a specific area, provide water resistance, provide better grip, and / or improve the visual appearance of the upper.

[0045] The lateral coating can extend from back to front along the upper, along the length of the shoe, on the lateral side. This supports support along the entire lateral side of the shoe.

[0046] The stiffness of the lateral part can be between one and twenty times higher than the stiffness of the medial part. This allows for better foot support during cutting movements. In particular, the stiffness of the lateral part can be between one and ten times higher, and more preferably between 1.3 and 5.0 times higher than the stiffness of the medial part. For example, the stiffness of the lateral part can be between 1.8 and 3.0 times higher at 30% elongation than the stiffness of the medial part.

[0047] The upper may have at least a forefoot portion with a stiffness at least equal to the stiffness of the medial portion. Furthermore, the forefoot portion may comprise a vamp portion and a toe portion. The toe portion may cover the lower tip of the upper. The width of the toe portion may be between 5mm and 30mm from the sole. The vamp portion may have substantially the same stiffness as the medial portion (ratio of 1). The stiffness of the toe portion may be between 0.4 and 1.4 of the stiffness of the vamp portion, in particular between 0.6 and 1.2 of the stiffness of the vamp portion, e.g., about 0.7 of the stiffness of the vamp portion. Thus, in some embodiments, the toe portion may be stiffer than the vamp portion, while in other embodiments, the vamp portion may be stiffer than the toe portion.

[0048] Furthermore, the medial part may include a lower part configured to be placed along the sole and a higher part between the lower part and the intermediate part. The stiffness of the lower part and the stiffness of the higher part may have the same stiffness ratio as the vamp part and the toe part. In particular, the stiffness of the low part of the medial part may be the same as the stiffness of the toe part. The stiffness of the higher part of the medial part may be the same as the stiffness of the vamp part.

[0049] Furthermore, the lateral part may include a lower part configured to be placed along the sole and a higher part between the lower part and the intermediate part. The stiffness of the lower part and the stiffness of the higher part may have the same stiffness ratio as the vamp part and the toe part. In particular, the stiffness of the lower part of the lateral part may be the same as the stiffness of the toe part. The stiffness of the higher part of the lateral part may be the same as the stiffness of the vamp part.

[0050] Thus, a portion of the upper may extend along the sole, from the front tip of the shoe and along the medial and lateral sides, with substantially the same stiffness. This portion may extend on the lateral and / or medial sides, up to a heel portion of the upper. Such a portion may provide support throughout the shoe and may provide a smooth transition from the stiffness of the sole to the medial stiffness of the upper.

[0051] The upper may include at least one forefoot coating applied to the forefoot portion of the upper. This may increase the stiffness of the forefoot portion, support the forefoot portion, and enhance foot support. A coating may also strengthen the upper in the corresponding area, provide water resistance, improve grip, and / or improve the visual appearance of the upper.

[0052] The upper may include at least one heel portion comprising a coating applied to a base layer and configured to modify the stiffness of the base layer. This can increase the stiffness of the heel area, support the heel, and improve foot support. A coating may also reinforce the upper in the corresponding area, provide water resistance, improve grip, or improve the visual properties of the upper.

[0053] The upper may have one or more coatings applied to substantially the entire base layer of the upper except for the elastic intermediate portion. This provides maximum support for the shoe, while allowing the shoe to be easily put on and taken off due to the elastic intermediate portion. A coating may also strengthen the upper in the corresponding portion, provide water resistance, provide better grip, or improve the visual appearance of the upper.

[0054] In some embodiments, the elastic intermediate part may also comprise an elastic coating having a functionality of, e.g., water resistance of the elastic intermediate part.

[0055] The upper may include a knitted layer. Knitting allows the upper to be manufactured essentially without any waste.

[0056] The knitted layer can be knitted in one piece and cover at least 80% of the upper surface. This eliminates the need for additional manufacturing steps for assembling the upper from separate pieces.

[0057] Furthermore, specific functional areas can be provided during the knitting process by varying the knit structure in selected zones of the upper. This allows for a continuous, one-piece layer of the upper to be provided, but with different functional areas that exhibit different characteristics such as stiffness, breathability, etc.

[0058] The upper may further comprise a first region with a first knitted structure and a second region with a second knitted structure that is different from the first knitted structure. In this way, specific functions can be imparted to selected areas of the upper. For example, a more open knit structure may be used over the vamp part to improve ventilation and grip on a ball, while the parts of the knitted upper that are to be connected to the sole may have a very tight knit to improve foot support, increase the stability of the entire shoe, and ensure a strong connection to the sole.

[0059] The upper may thus comprise: at least one layer of fabric, e.g., a knitted layer with different knitting structures; at least one continuous layer in one piece, e.g., the knitted layer; a coating applied to at least one of the layers of the upper, e.g., on the outer surface of the knitted layer. The upper may additionally comprise at least one of the following elements: a stiffening element on the medial part, e.g., on the outer side of the coated knitted layer; a stiffening element on the lateral part, e.g., on the inner side of the knitted layer; a stiffening element in the forefoot part, either in the vamp part and / or the toe part; a comfort element in one or more areas of the upper, e.g., foam padding.

[0060] The knitted layer of the upper can be placed with the weft direction in a medial-lateral direction of the upper; thus, the warp direction is the longitudinal direction of the upper.

[0061] The upper shoe may further include an elastic collar surrounding the shoe opening. This makes putting on and taking off the shoe more comfortable, as the collar can expand as the foot is inserted into the shoe. Furthermore, the collar may provide a snug fit around the foot, particularly around the ankle, below, on, or above the ankle.

[0062] The stiffness of the collar can be between 0.2 and 3.0 times the stiffness of the elastic intermediate part, in particular between 0.3 and 0.8 times the stiffness of the elastic intermediate part. These values ​​refer in particular to elongation values ​​between 0% and 30% of the initial length of the material, during a third cycle of testing on an unused material.

[0063] The upper may further include a retaining tab near the junction between the elastic intermediate portion and a collar of the shoe. A retaining tab allows the upper, and in particular the U-neck portion, to be held in place during insertion or removal of the foot into or from the shoe.

[0064] The stiffness of the lateral, medial, and intermediate segments can be measured at strains greater than 5%. As discussed above, stiffness measurements are most accurate at strains above 5%.

[0065] The upper may have additional layers on its outer surface or on its inner surface. For example, the upper may have a support element. In particular, the upper may have additional layers for padding some areas, for containing padding, and / or for adding rigidity to some areas, and / or for adding protection to some areas. At least one layer may be added to the inner surface of a portion of the lateral portion to increase its rigidity. Similarly, at least one layer may be added to the inner surface of at least a portion of the medial portion to increase its rigidity. Such a layer may be made of a different material than the other layers, in particular of a different material as a one-piece knitted layer. These different layers may be glued and / or sewn together.Also, at least one layer can be added to ensure the protection of certain areas, such as a heel counter to ensure rigidity and protection of the heel, a toe box to protect the toes of the foot, etc.

[0066] Another aspect of the invention relates to a shoe, in particular a sports shoe, comprising: (a.) a sole; and (b.) an upper as described herein, attached to the sole.

[0067] The shoe may further comprise a sock disposed at least partially within the upper. The sock allows for a better fit around the foot and improves foot stability. The sock may be attached to the upper, for example, by sewing, gluing, or welding. The sock may be attached to the upper, to the collar portion of the upper, to a lateral and medial side of a junction between the upper and a sole, and to a forefoot portion of the upper.

[0068] The inner sock may be configured to cover at least a dorsal portion of the foot. In particular, it may be configured to cover a medial portion of the foot, rather than the heel portion of the forefoot portion of a foot.

[0069] The inner sock can be knitted. The inner sock can, in particular, be knitted with a very open structure, so that it has holes.

[0070] The inner sock may comprise elastic yarn, such as elastane, to ensure very low stiffness and high elasticity and recovery. This also provides a better fit and compression of the foot.

[0071] The shoe may further comprise an upper with a retention tab as described above, wherein a first end of the retention tab is attached to the upper and a second end of the retention tab is attached to the sock. This allows the wearer of the shoe to hold both the upper and the sock while inserting the foot into the shoe, so that the upper and the sock remain in a proper position.

[0072] The first end of the retaining tab can be attached to the upper of the intermediate part of the shoe. This prevents the upper portion of the U-neck from folding when the foot is inserted into the shoe, as the wearer can slightly lift the U-neck to facilitate insertion of the foot into the shoe.

[0073] A further aspect of the present invention relates to a method for manufacturing an upper shoe as described above, comprising at least the following steps: (a.) forming the lateral part; (b.) forming the medial part; and (c.) forming the elastic intermediate part such that the stiffness of the lateral part and / or the medial part is at least twice higher than the stiffness of the elastic intermediate part.

[0074] The method may further comprise the step of coating, at least partially, the lateral part and / or the medial part. In this way, the stiffness of the lateral and / or medial part can be increased at targeted locations.

[0075] The lateral part and / or medial part may comprise fabric.

[0076] The method may further comprise the following steps: (a.) providing the fabric comprising a first surface and a second surface opposite the first surface; (b.) placing the fabric on a surface of a support structure, wherein the support structure is configured to allow gas circulation through at least a portion of its surface and comprises at least one raised or embossed portion on its surface, and wherein the fabric is placed such that the first surface of the fabric faces the surface of the support structure and such that the fabric is at least partially disposed over the raised or embossed portion of the support structure; (c.) providing at least one coating comprising a first surface and a second surface opposite the first surface; (d.) placing the coating at least partially on the second surface of the fabric such that the first surface of the coating faces the fabric; and (e.) applying a gas differential pressure between the second surface of the coating and the first surface of the fabric.

[0077] Thus, according to these method steps, a fabric is placed at least partially over a raised or embossed portion of a support structure. According to method step (d), the coating is placed over the fabric, and the fabric is placed at least partially over the raised or embossed portion of the support structure. The support structure is configured to allow gas circulation through at least a portion of its surface. Thus, a gas differential pressure can be applied between the upper surface of the coating and the lower surface of the fabric.

[0078] In this regard, the substance is placed on at least one of a plurality of holes in the surface of the support structure, particularly advantageously on a plurality of holes in the surface of the support structure, said holes being hydraulically connected to at least one vacuum pump.

[0079] In this way, a very good bond can be created between the coating and the fabric due to the differential pressure. This means that the coating is not simply pressed against the fabric, but is also sucked in. The resulting bond is better because the coating can at least partially penetrate between the fibers of the fabric. If the coating is applied to protect the fibers of the fabric, e.g. against water, this also helps to achieve better protection of the fibers. This is particularly advantageous with thin-film coatings or liquid coatings. For example, a liquid coating can be sprayed onto the fabric and can be at least partially sucked through the fabric, where it can then dry.Furthermore, when the fabric is not flat, for example, some fabrics may have a specific surface texturing with a relief, a method according to the invention makes it possible to obtain a coating corresponding to the surface texture of the fabric.

[0080] The fabric is advantageously breathable, allowing gas to pass through, at least when a differential pressure is applied across the thickness of the fabric.

[0081] The fabric may be a knitted fabric. The use of a knitted fabric is advantageous in the context of the present invention because it allows for good gas permeability due to the open-mesh structure.

[0082] The method may further comprise the step of placing an enveloping membrane on the fabric and coating before applying the differential pressure.

[0083] The enveloping membrane can exert additional pressure on the coating and fabric to enhance the bond. Furthermore, the enveloping membrane can help hold the coating to the fabric prior to bonding.

[0084] The method may further comprise the step of heating the coating. Heat may further enhance the bond between the coating and the fabric. Heat may be applied in different ways. For example, the support structure, i.e., its surface, may be heated, thereby transferring heat to the fabric and the coating. Heat may be applied directly to the coating, e.g., by infrared light. If used, the heat may be applied through the enveloping membrane. For example, the enveloping membrane may be transparent to infrared light or microwaves.

[0085] The step of heating the coating can be performed, at least partially, simultaneously with the step of applying a gas differential pressure. Thus, the heat is applied while the coating is in firm contact with the fabric, resulting in a very good bond between the coating and the fabric.

[0086] The coating may be a water-resistant coating. Alternatively, or in combination, the coating may be a coating that reduces flow resistance. This may be enabled either by the material of the coating and / or by its surface texturing. Such a coating may be decorative or associated with a decorative coating. The coating may also increase resistance to abrasion, stress, and / or wear. Alternatively or additionally, the coating may add strength, stiffness, and / or elasticity to the fabric. Furthermore, the coating may improve the adhesion provided by the fabric. This is particularly advantageous when the fabric is used in an upper shoe, such as a football boot.

[0087] The coating may be particularly suitable for ensuring the function of maintaining the three-dimensional shape of the fabric once the fabric is removed from the support structure after the method according to the present invention has been performed. For this purpose, in some embodiments, the coating may be placed at least partially over the raised or embossed part of the support structure. In this way, the coating at least partially conforms to the shape of the raised or embossed part and ensures that the fabric retains its shape once the coating has cured.

[0088] The coating can be a thermoplastic coating. Thermoplastic coatings are applied to the fabric by heat transfer and enable a very good bond with the fabric. Even for fabrics with openings (such as those formed by the stitches of a knitted fabric), a (thin) thermoplastic coating can be melted and penetrate the yarns, while maintaining the fabric's openings and air permeability.

[0089] The coating can be a film. A film can be precisely placed on the fabric either manually or by means of an automatic feeder (e.g., a robotic arm). The use of a film coating with a method according to the invention thus enables very precise positioning of the coating on the fabric.

[0090] The coating may have a surface structure before being applied to the fabric. For example, the coating may include a small embossing and / or overprint. The surface structure may be in the form of dots, pyramids, or lines. A surface structure can advantageously increase the grip of the upper, for example, to a ball.

[0091] The coating can have a thickness between 0.02 mm and 3 mm. In particular, the thickness is between 0.1 mm and 1.5 mm, and more advantageously between 0.2 mm and 1 mm, e.g., 0.3 mm.

[0092] The coating may be a thermoplastic coating. In particular, the coating may be a polyurethane. Alternatively, or in combination, the coating may comprise a plurality of layers, such as, for example, a layer of a thermoset selected according to the functionality it provides to the fabric, and a layer of a thermoplastic selected for its ability to bond to the fabric under differential pressure and heat application.

[0093] The step of providing at least one coating may comprise providing a plurality of coatings, and the steps of placing the at least one coating may comprise placing the plurality of coatings. The coatings of the plurality of coatings may be of the same or different shapes. For example, the first coating may be a mirror image of a second coating, with the first coating being applied to a right side of the fabric and the second coating being applied to the left side of the fabric.

[0094] The coatings of the plurality of coatings may be made of the same or different materials, may have the same or different thicknesses, and may have the same or different colors. The coatings of the plurality of coatings may be identical, overlapping, or separate from one another. Furthermore, it is possible for at least one coating to be placed above the fabric according to method step (d) and for at least one further coating to be placed below the fabric accordingly. Thus, the fabric can be coated on both sides.

[0095] The coating may be a polymer having a hardness in the range of 40-80 Shore A, more preferably in the range of 50-70 Shore A and more preferably with a hardness of 60 Shore A.

[0096] The coating may be a thermoplastic. In particular, the coating may be a polyurethane. Alternatively, or in combination, the coating may comprise a plurality of layers, such as, for example, a layer of a thermoset selected for the functionality it provides to the fabric and a layer of a thermoplastic selected for its ability to bond to the fabric under differential pressure and heat.

[0097] The step of providing at least one coating may comprise providing a plurality of coatings, and the step of placing the coating may comprise placing the plurality of coatings. The coatings of the plurality of coatings may be of the same or different shapes. For example, a first coating may be a mirror image of a second coating, with the first coating being applied to a right side of the fabric and the second coating being applied to the left side of the fabric.

[0098] The coatings of the plurality of coatings may be made of the same or different materials, may have the same or different thicknesses, and may have the same or different colors. The coatings of the plurality of coatings may be identical, overlapping, or separate from one another. Furthermore, it is possible for at least one coating to be placed above the fabric according to method step (d) and for at least one further coating to be placed below the fabric accordingly. Thus, the fabric can be coated on both sides.

[0099] The raised or embossed portion of the support structure may correspond to an ankle portion and an upper portion of a dorsal portion of a last. A portion of the shoe or upper can thus be formed into a three-dimensional shape using this process.

[0100] If the support structure includes a raised portion, the raised portion may correspond to the upper portion of a dorsal portion of the instep. In this case, the support structure may be flat around the raised portion. This allows for easier manufacturing and greater accuracy during the positioning of the elements on the support structure.

[0101] However, according to the invention, the raised or embossed part of the support structure may also correspond to a part of a last, but may also have some differences with the corresponding part of the last used in a later step of assembling and shaping the shoe.

[0102] In the case of a raised portion, the raised portion may correspond to at least part of the instep of a last. The size and / or shape of the raised portion may be varied to form uppers of different sizes and / or shapes. This may help the uppers better adapt to the different feet of the wearers. In particular, the raised portion may be adapted to a wearer's foot. The adaptation may be based on foot data, such as that obtained through 3D scanning.

[0103] The support structure may have the shape of a shoe last. Thus, an upper comprising a fabric can be precisely adapted to the shape of the last when the fabric is coated. The coating then corresponds to the actual shape of the last and at least partially retains the fabric in the shape of the last after it has been removed from the support structure. The last may comprise at least one hole—and preferably a plurality of holes—on its surface, which are hydraulically connected to at least one low-pressure source. In this regard, one or more air channels may be formed within the last. 4. Brief description of the drawings

[0104] Further aspects of the present invention are described in detail below with reference to the figures. The figures show: Fig. 1A shows an exemplary embodiment of a knitted upper shoe according to the invention; Fig. 1B an exemplary coating structure of the knitted upper shoe according to Fig. 1A; Fig. 2A is a lateral view of an exemplary embodiment of a shoe according to the invention; Fig. 2B is a medial view of an exemplary embodiment of a shoe according to the invention; Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E is an illustration of an exemplary method for coating an upper shoe according to the invention; Fig. 4 is a flowchart of an exemplary method for manufacturing an upper shoe according to the invention; Fig. 5 is a flowchart of an exemplary method for manufacturing a shoe according to the invention; Fig. 6 an exemplary upper shoe according to the invention; Fig. 7A is a medial view of an exemplary shoe according to the invention; Fig. 7B is a plan view of an exemplary shoe according to the invention; Fig. 7C is a lateral view of an exemplary shoe according to the invention; Fig. 8A and Fig. 8B Stress-strain diagrams obtained by measuring shoe parts of a shoe according to the present invention; Fig. 9 shows an exemplary embodiment of a sock for an upper shoe according to the invention; Fig. 10 inner layers of a forefoot part of an upper shoe according to the invention; and Fig. 11 inner layers of a heel part of an upper shoe according to the invention. 5. Detailed description of preferred embodiments

[0105] An exemplary base layer of an upper shoe according to the invention is described with reference to Fig. 1A and Fig. 1B. Fig. Figure 1A shows the knitted structure of a base layer of an upper shoe 10 according to the invention, which is knitted, wherein Fig. 1B shows the corresponding coating structure of the layer of an upper shoe 10. The upper shoe 10 can be knitted with a conventional knitting machine and can be based on flat or circular knits. However, it should be noted that the present invention is not limited to knitted upper shoes and that the upper shoe 10 can also be made of other materials, such as woven fabrics, non-woven fabrics, stitches, etc. Furthermore, while the upper shoe of the exemplary embodiment of the Fig. 1A and Fig. 1B is knitted in one piece, the upper shoe 10 can generally also be made of different pieces which are connected to one another, for example by gluing, sewing or welding.

[0106] The knitted layer of the Fig. 1A is a continuous one-piece knit construction, having different knit structures in different areas.

[0107] The leaf part 11 of the Fig. 1A is based on a very open knit structure with holes. The medial part 12 is based on an open knit structure (70%) and includes holes of a smaller size than the leaf part 11. It is based on a distribution pattern.

[0108] The lateral part 13 is based on a medium-open knit structure. It is also based on a distribution pattern. The medial part 14 is based on a medium-open knit structure. It is also based on a distribution pattern. The part 15, which connects the upper 10 to a sole of the shoe, is based on a tight knit structure. This increases the stability of the upper, since the comparatively stiff and inelastic tight knit structure part 15 of the upper can be directly connected to the sole (e.g., by gluing, sewing, or welding), thus providing support around the entire foot. The part 15 is based on a tuck loop.

[0109] The intermediate (or dorsal or U-neck) part 16 is a tight knit structure also based on a tuck loop.

[0110] It should be noted that the layer of an upper shoe 10 in the embodiment of the Fig. 1A and Fig. 1B has at least two medial parts 12 and 14, and that a part of the vamp part 11 can also be considered a medial part. Likewise, the vamp part 11 extends to the lateral side of the upper 10, so that a part of the vamp part 11 can be considered a lateral part. In any case, the intermediate part 16 is arranged between at least one medial part and at least one lateral part.

[0111] In the exemplary embodiment of the Fig. 1A and Fig. 1B, different yarns can be used. For example, if only PES yarns are to be used, the yarns in the dorsal neck part 15 can be based on 90.8% polyester and 9.2% elastane, for example. However, if yarns with additional nylon are used, the composition of the yarns can be, for example, 87.5% polyester, 3.3% nylon, and 9.2% elastane.

[0112] Finally, the collar portion 17 may be based on a collar rib produced by means of a tuck loop. This makes the collar portion 17 more elastic to facilitate the insertion of the foot. In the exemplary embodiment of the Fig. 1A and Fig. 1B, different yarns can also be used for this part. For example, if only PES yarns are to be used, the yarns in the collar part 16 can be based on 64.4% polyester and 35.6% elastane, for example. However, if yarns with additional nylon are used, the composition of the yarns can be, for example, 51.7% polyester, 12.7% nylon, and 35.6% elastane.

[0113] The size (i.e. the linear mass density) of the yarns in the exemplary embodiment of the Fig. 1A and Fig. 1B may be 840 denier. However, yarns of different sizes may also be used in different embodiments. It should also be noted that the arrangement of parts, knitting structures, and yarn composition described above are only exemplary. Accordingly, various arrangements of parts, different knitting structures, and different yarns may be used in the context of the present invention.

[0114] Fig. 1B shows the structure of a coating which is applied to the knitted upper of the Fig. 1A is applied. As in Fig. As shown in Figure 1B, the coating is applied to parts 11 to 15. The coating is not applied to the intermediate (or dorsal or U-neck) part 16 to maintain the elasticity of this part. Furthermore, the coating is not applied to the collar part 17 to also maintain its elasticity.

[0115] Applying the coating to parts 11 to 15 allows for increased stiffness of the lateral, medial, and forefoot parts. The coating can be applied as described below. In addition to reducing the elasticity of the knitted structure, the coating can also impart water resistance, adhesion, or other properties to the knitted fabric.

[0116] In addition to or as an alternative to a coating, coating pieces can be applied to the knitted upper 10. Such coating pieces can be applied to the coating (on top of it or under it) or directly to the knitted layer. Such coating pieces can also be applied to modify the stiffness of the knitted layer.

[0117] The Fig. 2A and Fig. 2B show an exemplary embodiment of a shoe 20 according to the invention. Fig. Figure 2A shows a lateral view of the shoe 20, while Fig. 2B shows a medial view of the shoe 20. The shoe 20 includes an upper having a layer similar to the layer of an upper 10 as described above with reference to the Fig. 1A and Fig. 1B. In addition, the shoe 20 comprises a sole 21, which is connected to the upper shoe 10. The sole 21 can be connected to the upper shoe 10, for example, by sewing, gluing, or welding.

[0118] The sole 21 comprises studs, two of which are identified, for example, by the reference numeral 22. Accordingly, the exemplary embodiment of the Fig. 2A and Fig. 2B shows a soccer shoe. However, it should be noted that the present invention can also be used for any type of shoe, in particular any type of sports shoe. Examples include soccer shoes, rugby shoes, tennis shoes, basketball boots, etc.

[0119] As in the Fig. 2A and Fig. As shown in Figure 2B, the upper 10 includes a support element 25 on the lateral side. This support element 25 adds rigidity to the lateral side of the upper, thus making the lateral part 13 of the upper stiffer than the medial part 14 and the vamp part 11.

[0120] The retaining element, for example, is a thermoplastic material. Its thickness is between 0.1 mm and 3 mm, for example, approximately 1 mm. It can be bonded to the coating using heat.

[0121] As in the Fig. 2A and Fig. 2B, the upper 10 comprises a retaining tab 23. The retaining tab 23 is arranged near the junction between the elastic intermediate part 16 and the collar part 17 of the upper 10. The retaining tab 23 allows the U-neck to be held during insertion or withdrawal of the foot into or out of the shoe 20. For this purpose, a first end of the retaining tab 23 is connected to the upper 10 at the top of the dorsal part 15. A second end of the retaining tab 23 is connected to a sock (not shown). Fig. 2A and Fig. 2B) which is arranged in the upper shoe 10. The sock is attached to the upper shoe 10 at the collar part 17 of the upper shoe 10 (e.g., by gluing, sewing, or welding). An exemplary layer for a sock is shown in Fig. 9 shown.

[0122] In an exemplary embodiment of the Fig. 2A and Fig. 2B, the upper shoe 10 also includes a retaining tab 24 located in the heel area of ​​the upper shoe 10. The retaining tab 24 facilitates putting on or taking off the shoe 20.

[0123] Measurements were performed on an upper shoe 10 according to the invention. The following table shows the local maximum elongation values ​​of the shoe parts in the 2nd to 5th columns during the movements of the 1st column: Table 1 Aktivität U-Hals medialer Teil lateraler Teil Vorderfuß Stehen 40% 20% 15% 15% gerades Sprinten 15% 10% 10% 15% Schneidbewegung 20% 10% 10% 10%

[0124] The stretch of the straight sprinting activity and the cutting movement activity is the additional stretch compared to the standing activity.

[0125] Further preferably, the following local maximum elongation values ​​were found when an upper shoe 10 according to the present invention was measured on a shoe according to the present invention: Table 2 Aktivität U-Hals medialer Teil lateraler Teil Vorderfuß Stehen 30% 10% 10% 10% gerades Sprinten 10% 5% 5% 10% Schnittbewegung 15% 5% 5% 5%

[0126] An exemplary method for manufacturing an upper shoe comprising a fabric according to the invention will now be described with regard to the Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E. The method comprises a first step (a.) of providing a fabric 30 having a first surface and a second surface opposite the first surface. In the example of Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E, the fabric 30 has the shape of an upper for a shoe. Thus, in this example, the upper is integrally formed from the fabric 30. However, it is also possible for an upper according to the invention to be partially formed from the fabric 30. In that case, the upper could also comprise other materials, such as woven fabrics, nonwoven fabrics, mesh, etc.

[0127] The upper may also have additional layers on its outer surface, such as the support element 25, or on its inner surface. In particular, the additional layers may be used to cushion some areas, to retain the cushioning, and / or to add additional rigidity to some areas, and / or to add protection to some areas. For example, at least one layer may be added to the inner side of at least a portion of the lateral portion to increase its rigidity. Similarly, at least one layer may be added to the inner surface of at least a portion of the medial portion to increase its rigidity. Such a layer may be made of a different material than the other layers, in particular of a different material than a one-piece knitted layer. The different materials may be glued and / or sewn together.Furthermore, at least one layer can be added to ensure the protection of some areas, such as a heel counter to provide rigidity and protection to the heel, or a toe box to protect the tips of the foot, etc.

[0128] For example, in Fig. 10 inner layers of a forefoot part are shown. In order from the base layer to the inner space of the shoe, there is a toe box 101, a toe pad, and a lining. These elements are connected to the base layer, e.g., by gluing and / or sewing.

[0129] The toe box 101 is located on the upper right side of the Fig. 10. The toe box 101 is formed to reinforce the tip of the upper to better protect the foot from impact. The toe box may also, in some embodiments, stiffen this portion of the upper.

[0130] The toe padding 102 is a piece of foamed material and is located on the lower right side of the Fig. 10. The toe padding 102 is configured to protect the foot from impact.

[0131] On the left side of the Fig. 10 illustrates an inner lining 103. The inner lining 103 is constructed to contain the toe padding 102 and to protect the toe padding 102 from foot friction, as well as to increase the wearer's comfort. The inner lining 103 may, in some embodiments, stiffen this portion of the upper.

[0132] In Fig. Figure 11 shows the inner layers of a heel part. In order from the base layer to the inner space of the shoe, there is a hot melt layer 111, a first heel pad 112, a heel wrap 113, a second heel pad 114, and an inner lining 115.

[0133] The hot molten layer 111 is located at the lower left side of the Fig. 11. The hot molten layer 111 is configured to bond the first heel cushion 112 and the heel wrap 113 to the base layer of the upper. In some embodiments, the hot molten layer 111 can stiffen this portion of the upper. Thus, the hot molten layer 111 can serve as a heel counter.

[0134] The first heel padding 112 is a piece of foamed material and is located on the right side of the Fig. 11 below the second heel pad 114. The heel pad 112 is disposed between the hot molten layer 111 and the heel enclosure 113. The heel pad 112 and 114 are configured to protect the foot from impact.

[0135] The heel closure 113 is in the middle part on the left side of the Fig. 11. The heel wrap 113 protects the heel cushions 112 and 114 from foot friction. In some embodiments, the heel wrap 113 can stiffen this portion of the upper. In particular, the heel wrap 113 can reinforce the hot molten layer 111.

[0136] The second heel padding 114 is a piece of foamed material and is located on the right side of the Fig. 11 above the first heel pad 112. The heel pad 114 is disposed between the first heel collar 113 and the inner lining 115. The heel pad 112 and 114 are configured to protect the foot from impact.

[0137] On the upper left side of the Fig. 11, an inner lining 115 is shown. The inner lining 115 is constructed to contain the heel cushions 112, 114 and the heel wrap 113 and to increase the wearer's comfort. The inner lining 115 also includes a tongue 116 which is configured to be connected to the retaining tab 24, e.g., by sewing. The inner lining 115 is also, in some embodiments, sewn to an inner sock (such as, for example, the sock shown in Fig. 9). The inner lining 115 is, in some embodiments, glued and / or stitched to the base layer. The inner lining 115 may, in some embodiments, stiffen this portion of the upper.

[0138] In the example of Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E, the fabric 30 is a knitted fabric. The knitted fabric 30 could be weft-knitted or warp-knitted and can be produced using a suitable knitting machine. The knitted fabric could also be flat-knitted or circular-knitted. However, it should be noted that the invention is not limited to knitted fabrics, and that the upper shoe could also comprise fabrics such as woven or nonwoven fabrics, mesh, etc.

[0139] The method comprises the step (b.) of placing the fabric on a surface 32 of a support structure 31. In the example of Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E, the support structure 31 comprises a flat table with a raised part 33 on its surface 32 (see Fig. 3A). A stamped part could also be used.

[0140] In the exemplary embodiment of the Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E, the raised part 33 is a modular piece arranged on the surface 32 of the support structure 31 (see Fig. 3A). Thus, the raised portion 33 can be easily replaced, for example, with a raised portion 33 of a different size and / or shape. In this way, the raised portion 33 can be configured to produce upper shoes or shoes of different sizes. However, in some embodiments, the raised portion 33 can be formed integrally with the surface 32 of the support structure 31.

[0141] The fabric 30 comprises a first lower surface facing the support structure 31 and a second, upper surface facing away from the support structure 31.

[0142] The support structure 31 is configured to allow gas circulation through at least a portion of its surface 32. Gas circulation could be facilitated by perforations in the surface 32. In the embodiment shown, the gas is ambient air.

[0143] The fabric 30 is placed such that the first surface of the fabric faces the surface 32 of the support structure 31 and such that the fabric 30 is at least partially arranged over the raised part 33 of the support structure 31. In the example of Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E, a portion of the intermediate (or dorsal portion, or instep portion, or U-neck) of the upper shoe is placed above the raised portion 33. Accordingly, the raised portion 33 has the shape of an instep of a last. In various embodiments, it is possible for the raised portion 33 to correspond to an ankle portion and / or an upper portion of a dorsal portion of a last. In various embodiments, the support structure 31 or a portion thereof may have the shape of a shoe last.

[0144] The method comprises a step (c.) of providing at least one coating 34 comprising a first surface and a second surface opposite the first surface. In the exemplary embodiment of the Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E, the coating 34 is a thin film of polymer material, e.g., PU. The coating material has, for example, a hardness in the range of 40-80 Shore A. Other materials can also be used for the coating 34. In the embodiment shown, the film has a thickness of approximately 0.3 mm. In other embodiments, it is possible to apply a liquid coating, for example, by spraying or brushing.

[0145] The method comprises a step (d.) of placing the coating 34 at least partially on the second surface of the fabric 30 such that the first surface of the coating 34 faces the fabric 30. Thus, in this method step, the coating 34 is arranged over the fabric 30.

[0146] In the example of Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E, an optional step is shown, namely placing a shell (or female form) 36 over the fabric 30 and optionally partially over the coating 34 (see Fig. 3C).

[0147] As in Fig. 3B, the shell 36 has a shape adapted to engage the shape of the raised portion 33. Thus, the fabric 30 and the coating 34 disposed on the fabric 30 are firmly held in position for the subsequent processing step, and both conform closely to the shape of the raised portion 33. Furthermore, the shell 36 protects the U-neck region from the heat that may be used to apply the coating to the fabric, as described below, since many fabrics (including knit fabrics) degrade under the influence of heat. Thus, the shell 36 may include a heat insulation layer that reflects IR radiation. Furthermore, the shell 36 may cover the entire U-neck region to prevent degradation of the fabric in areas where no coating is applied.

[0148] The method comprises a step (e.) of applying a gas differential pressure between the second surface of the coating 34 and the first surface of the fabric 30. For this purpose, the support structure 31 could be connected to a vacuum source, such as a pump, to expel ambient air through perforations in the surface 32 of the support structure 31. In this way, a differential pressure is obtained between the upper surface of the coating 34 and the lower surface of the fabric 30.

[0149] It should be noted that instead of a single coating 34, a plurality of coatings could be placed on the fabric 30. The coatings may be consistent, overlapping, or separate. The coatings may also vary in size, shape, and / or thickness. Coatings may differ in the material used and / or the condition of the material. For example, one coating may be a thin polymer film, whereas another coating may be a liquid polymer.

[0150] In the example of Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E is additionally a gas-tight enveloping membrane 35 (see in particular Fig. 3D) is used to increase the pressure on the coating 34 and the fabric 30. As in Fig. As shown in Figure 3D, after the coating 34 and the optional shell 36 have been placed on the fabric 30, the enveloping membrane 35 is placed over the coating 34 and the fabric 30. When differential pressure is used, the ambient air between the fabric 30 and the coating 34 and the enveloping membrane 35 is pumped out, and the enveloping membrane 35 is pressed tightly against the coating 34 and the fabric 30 by the vacuum, as shown in Fig. 3E. It should be noted that the enveloping membrane 35, like the shell 36, is optional.

[0151] If a liquid coating or a solid thin film of coating is used, it is sucked through the mesh structure of the fabric 30 by the differential pressure and dries to form a firm bond with the mesh structure.

[0152] To improve the bond between the coating 34 and the fabric 30, the method may further comprise the step of heating the coating 34. Heat may be applied, for example, by heating the support structure 31 and / or by heating an enclosing membrane 35, if present. If the heating membrane 35 is made of a transparent material, infrared radiation or microwaves may be used to heat the coating 34. Furthermore, the support structure could be heated. To enhance the bond, the heat should be applied simultaneously with the differential pressure.

[0153] The coating 34 applied to the upper provides a stiffness of the lateral part and / or the medial part of the upper that is at least twice higher than the stiffness of the elastic intermediate part. However, the coating 34 could also impart other properties. Accordingly, the coating 34 could also be a waterproof coating and / or a stretch-resistant coating. The coating 34 could also be decorative or could be combined with a decorative coating. Furthermore, the coating 34 could be a low-drag coating. This can be achieved either through the material of the coating and / or through its surface texture. Such a coating can be decorative or combined with a decorative coating.

[0154] The method according to the invention allows the use of a coating film in one piece and ensures that it is perfectly positioned on a three-dimensional object, such as the shoe upper 10. To build on the above example, if the coating 34 were applied to the shoe upper on a flat surface instead of an embossed surface, the opening of the shoe might not be wide enough, so the opening of the finished shoe would be too narrow to allow the foot to be inserted into the shoe; moreover, the coating 34 might break when the shoe is put on. Also in this example, if the coating were applied to the shoe upper on a completely flat surface, the U-neck would not have a shape corresponding to a foot and might also crumple during coating application.Placing the fabric 30 over the raised portion 33 of the support structure 31 ensures that the fabric 30 takes the correct shape and forms a sufficiently wide opening when used as an upper shoe.

[0155] Fig. Figure 4 shows a flowchart of method steps according to an exemplary method of the invention for manufacturing an upper shoe 10. In method step 41, a fabric is placed on a surface of a support structure. The fabric, in this example, may be a knitted fabric. The support structure of this example includes a raised portion. The fabric is placed on the surface of the support structure, with a portion of the fabric configured to form a tongue portion (or U-neck) of an upper shoe, disposed over the raised portion of the support structure.

[0156] In process step 42, one or more coatings are applied to the fabric. The coating can be, for example, a polyurethane film with a thickness of 0.3 mm. In an optional step (not included in Fig. 4), the coating can be pre-positioned on the fabric using an ultrasonic welding machine. For this purpose, the coating can be temporarily fixed to the fabric at a variety of welding points, e.g., fourteen welding points. Two of these optional welding points are shown in Fig. 3C is designated by reference numeral 37. The coating film may also be weakly bonded to the fabric, e.g., by heating its lower surface before being placed on the fabric, so that it does not move relative to the fabric until it is definitively bonded by the vacuum and heat application.

[0157] In process step 43, the device is closed, i.e. an optional enveloping membrane is placed over the fabric and the coating.

[0158] In process step 44, a vacuum is applied, whereby air is sucked through the holes in the surface of the support structure. The vacuum is applied along the coating and the fabric. Thus, the enveloping membrane is pressed firmly against the coating, which in turn is sucked towards the fabric. The vacuum pressure can be 0.1 MP (100 kg / cm / s). 2 ) be.

[0159] In process step 45, heat is applied to the coating. The heating temperature can be in a range of 150° to 190° Celsius, preferably 160° to 180° Celsius. Heat can preferably be applied for a duration of 120-240 seconds, e.g., 180 seconds.

[0160] In process step 46, the heating is stopped and the coating is cooled. The coating can be cooled to a temperature of 50° to 60° Celsius within 40 seconds.

[0161] In process step 47 the vacuum is released.

[0162] It should be noted that other optional processing steps may be performed before, during, or after the processing steps described above. For example, additional elements such as toe or heel caps, decoration, logos, etc., may be placed on the upper shoe 10.

[0163] Fig. 5 shows a flowchart of method steps according to an exemplary method for manufacturing a shoe 20 according to the present invention.

[0164] In process step 51, a knitted upper shoe 10 is provided. Such a knitted upper shoe 10 may have been produced in a previous process step in one piece, e.g., in a knitting machine. Alternatively, the upper shoe 10 could be cut from a roll of knitted fabric.

[0165] In process step 52, process steps 41-47 of the Fig. 4 to provide a coated fabric.

[0166] According to process step 53, the upper shoe 10 is cut to its final shape. Instead of cutting, the upper shoe 10 could also be punched.

[0167] In process step 54, the upper shoe 10 is sewn. First, the back of the heel is sewn, then the bottom of the rear foot part is sewn.

[0168] In process step 55, the upper shoe 10 is placed on a last and the bottom of the forefoot part of the upper shoe 10 is sewn.

[0169] Finally, in process step 36, the upper shoe 10 is joined to a sole 21. For example, the upper shoe 10 could be sewn, welded, or glued to the sole 21.

[0170] It should be noted that other optional processing steps may also be performed before, during, or after the above-mentioned processing steps. For example, additional elements such as toe or heel caps, decorations, logos, etc., may be placed on the upper shoe 10.

[0171] Fig. Figure 6 shows an exemplary upper shoe 60 manufactured according to a method of the present invention. The upper shoe comprises a fabric 30 with a coating 34 which is applied as described above with reference to Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E. The fabric in this example is knitted and the coating is a PU coating with a thickness of 0.3 mm. As in Fig. As can be seen in Figure 6, the coating perfectly matches the knitted fabric, even its texture.

[0172] The dorsal part (intermediate part, U-neck) has a raised part 61 formed during the previous manufacturing steps. Such a raised part 61 provides a better fit—and in particular facilitates the insertion and removal of the foot in the finished shoe—and prevents wrinkling that might occur during the manufacturing process.

[0173] The Fig. 7A, Fig. 7B and Fig. 7C show an exemplary shoe 70 obtained by a method according to the invention. In this example, the article is a football shoe 70 comprising a knitted fabric 30 forming the upper 10 and an embroidered sole 71 connected to the upper 10. In this example, the knitted fabric 30 integrally forms the outer layer of the upper 10. However, in other embodiments, it is possible for the upper 10 to be formed by two or more knitted fabrics connected to each other, for example, by sewing, gluing, or welding. It is also possible for the upper 10 to comprise, in addition to at least one knitted fabric 30, other materials such as mesh, woven fabrics, non-woven fabrics, etc.

[0174] In the example of Fig. 7A, Fig. 7B, Fig. 7C, the shoe 70 is a laceless shoe as described herein. Thus, the upper 10 does not include laces in the instep region. Instead, the shoe 70 is connected to the wearer's foot primarily through the stretching and elasticity of the knitted fabric 30, which has a stiffness in the intermediate portion of at least twice the stiffness of the lateral and / or medial portion. A close fit and increased stability is provided by the coating 34, which covers a major portion of the upper, namely the medial portion (see Fig. 6A), the lateral part (see Fig. 6C), the toe part (see Fig. 6B) and the heel part (see Fig. 6A and Fig. 6C). In particular, the lateral and medial portions of the shoe 70 have a stiffness that is at least twice as high as the stiffness of the intermediate portion to provide increased support, particularly during cutting movements. The coating 34 is applied to the knitted fabric 30 of the shoe 70 according to the method described above with reference to Fig. 3A, Fig. 3B, Fig. 3C, Fig. 3D and Fig. 3E. As further described in the Fig. 7A, Fig. 7B and Fig. As shown in Figure 7C, the coating perfectly matches the knitted fabric, even in its texture, especially in the forefoot part and the medial part.

[0175] The Fig. 8A and Fig. 8B shows stress-strain diagrams obtained by measuring various areas of a shoe according to the invention. The measurements were taken during the third stretching and recovery cycle with a strain ranging from 0% to 30% using specimens 20 mm wide and 50 mm long from clamp to clamp. The ordinate represents load values ​​in Newtons, and the abscissa represents the strain in mm. An abscissa of, for example, 15 mm represents a 30% strain (for specimens 50 mm long from clamp to clamp).

[0176] Some examples of load values ​​(in Newton) applied to lengthen different parts of the shoe (in percent of the original length) at different load levels during the lengthening are shown below in Table 3, according to the embodiment of the Fig. 8A. Table 3 U-Hals Zehe medial und Blatt Lateral 10% 3N 9N 13N 35N 15% 5N 19N 26N 70N 20% 7N 33N 44N 109N 25% 9N 52N 72N 157N 30% 11N 81N 118N 221N

[0177] As can be seen in both diagrams, at the same loading level at different locations of the upper, the elongation is significantly higher in the U-neck area than in the lateral and medial parts. For example, a horizontal line in Fig. 8A and Fig. 8B corresponding to the load applied to the U-neck to obtain a strain of 30%. For this load (15.8 N), the strain values ​​of the other

[0178] Parts of the upper shoe were measured and entered into Table 4 below. Table 4 angewendet Last U-Hals medial und Blatt lateral Upper shoe after Fig. 8A 15,8N 30,0% 13,9% 7,5% Upper shoe after Fig. 8B 11,0N 30,0% 9,0% 6,5%

[0179] Thus, for a given load applied to the upper, the medial and lateral parts stretch much less than the U-neck. During sports activities, and especially during cutting movements, the load is applied primarily to the lateral part of the shoe. Shoe deformation during such activities is minimal. On the other hand, during putting on or taking off the shoe, a high load is applied by the wearer to the dorsal part of the shoe, where the U-neck is located, to stretch and facilitate insertion and removal of the foot into and out of the shoe.

[0180] These measurements confirm the results obtained regarding the stretching of different parts of the upper of shoes measured during sports activities (see Tables 1 and 2).

[0181] While the shoe used for the measurements Fig. 8A has a stiffer medial and vamp part than the toe part, this is reversed in the shoe which was used for the measurement according to Fig. 8B.

Claims

[1] Upper shoe (10) for a shoe, in particular a sports shoe, wherein the upper shoe (10) is laceless and comprises: a. a lateral part (13); b. a medial part (12, 14); and c. at least one elastic intermediate part (16) between the lateral part (13) and the medial part (12, 14), wherein the stiffness of the lateral part (13) and / or the medial part (12, 14) is at least twice higher than the stiffness of the elastic intermediate part (16), and wherein the width of the elastic intermediate part (16) is between 10% and 60% of the width of the upper shoe (10). [2] Upper shoe (10) according to claim 1, wherein the lateral part (13) is arranged to extend from a lateral connection point of the upper shoe (10) with the sole to the elastic intermediate part (16). [3] Upper shoe (10) according to one of the preceding claims, wherein the medial part (12, 14) is arranged to extend from a medial connection point of the upper shoe with the sole to the elastic intermediate part (16). [4] Upper shoe (10) according to one of the preceding claims, wherein the upper shoe (10) has a single elastic intermediate part (16) between the lateral part and the medial part (12, 14). [5] Upper shoe (10) according to one of the preceding claims, wherein the elastic intermediate part (16) extends at least partially to a dorsal part. [6] Upper shoe (10) according to one of the preceding claims, wherein at least a part of the center line of the elastic intermediate part (16) extends into the medial half of the upper shoe (10). [7] Upper shoe (10) according to one of the preceding claims, wherein the length of the elastic intermediate part (16) is between 20% and 50% of the length of the upper shoe (10). [8] Upper shoe (10) according to one of the preceding claims, wherein the upper shoe (10) further comprises at least one continuous one-piece layer which at least partially covers the lateral part (13) and at least partially the intermediate part (16). [9] Upper shoe (10) according to one of the preceding claims, wherein the stiffness of the medial part (12, 14) is between 2 and 30 times higher than the stiffness of the intermediate part (16). [10] Upper shoe (10) according to one of the preceding claims, wherein the medial part (12, 14) comprises a coating applied to a base layer, the coating being arranged to modify the stiffness of the base layer. [11] The upper shoe (10) of claim 10, wherein the medial coating extends from back to front along the upper shoe (10), along the length of the shoe, on the medial side. [12] Upper shoe (10) according to one of the preceding claims, wherein the stiffness of the lateral part (13) is between 3 and 50 times higher than the stiffness of the intermediate part (16). [13] Upper shoe (10) according to one of the preceding claims, wherein the lateral part (13) comprises a coating applied to a base layer, the coating being arranged to modify the stiffness of the base layer. [14] The upper shoe (10) of claim 13, wherein the lateral coating extends from back to front along the upper shoe (10), along the length of the shoe, on the lateral side. [15] Upper shoe (10) according to one of the preceding claims, wherein the upper shoe (10) has at least one forefoot part with a stiffness that is at least equal to the stiffness of the medial part (12, 14). [16] Upper shoe (10) according to one of the preceding claims, wherein the upper shoe (10) has at least one forefoot coating which is applied to the forefoot part of the upper shoe (10). [17] Upper shoe (10) according to one of the preceding claims, wherein the upper shoe (10) has at least one heel part which has a coating which has been applied to a base layer and is arranged to modify the stiffness of the base layer. [18] Upper shoe (10) according to one of the preceding claims, wherein the upper shoe (10) has one or more coatings applied to substantially the entire base layer of the upper shoe (10) except for the elastic intermediate part (16). [19] Upper shoe (10) according to one of the preceding claims, wherein the upper shoe (10) comprises a knitted layer. [20] Upper shoe (10) according to the preceding claim, wherein the knitted layer is knitted in one piece and extends over at least 80% of the surface of the upper shoe (10). [21] Upper shoe (10) according to one of claims 18 or 19, further comprising a first region with a first knitted structure and a second region with a second knitted structure which is different from the first knitted structure. [22] Upper shoe (10) according to one of the preceding claims, further comprising an elastic collar (17) surrounding the shoe opening. [23] Upper shoe (10) according to one of the preceding claims, further comprising a retaining tab near the connection point between the elastic intermediate part (16) and a collar of the shoe. [24] Shoe (20), in particular a sports shoe, comprising: a sole (21); and b. an upper shoe (10) according to any one of the preceding claims, attached to the sole (21). [25] Shoe (20) according to the preceding claim, further comprising a sock which is at least partially arranged in the upper shoe (10). [26] Shoe (20) according to the preceding claim, comprising an upper (10) according to claim 23, wherein a first end of the retaining tab is attached to the upper (10) and a second end of the retaining tab is attached to the sock. [27] Shoe (20) according to the preceding claim, wherein the first end of the retaining tab is attached to the upper shoe (10), to the upper part of the intermediate part (16). [28] A method for producing an upper shoe (10) according to any one of claims 1-23, comprising at least the following steps: a. Forming the lateral part (13); b. forming the medial part (12, 14); and c. forming the elastic intermediate part (16) such that the stiffness of the lateral part (13) and / or the medial part (12, 14) is at least twice higher than the stiffness of the elastic intermediate part (16). [29] The method of claim 28, further comprising the step of coating, at least partially, the lateral part (13) and / or the medial part (12, 14). [30] Method according to one of claims 28 or 29, wherein the lateral part (13) and / or the medial part (12, 14) comprises fabric (30). [31] The method of claim 30, further comprising the steps of: a. Providing the fabric (30) comprising a first surface and a second surface opposite the first surface; b. Placing the fabric (30) on a surface (32) of a support structure (31), wherein the support structure (31) is configured to allow gas circulation through at least a portion of its surface (32) and comprises at least one raised or embossed portion (33) on its surface (32), and wherein the fabric (30) is placed such that the first surface of the fabric (30) faces the surface (32) of the support structure (31) and such that the fabric (30) is at least partially disposed over the raised or embossed portion (33) of the support structure (31); c. Providing at least one coating (34) comprising a first surface and a second surface opposite the first surface; d. Placing the coating (34) at least partially on the second surface of the fabric (30) such that the first surface of the coating faces the fabric (30); and e. Applying a gas differential pressure between the second surface of the coating (34) and the first surface of the fabric (30). [32] A method according to any one of claims 30 or 31, wherein the fabric (30) is a knitted fabric. [33] A method according to the preceding claim, further comprising the step of placing an enveloping membrane (35) on the fabric (30) and the coating (34) before the differential pressure is applied. [34] The method of any one of claims 31-33, further comprising the step of heating the coating (34). [35] A method according to the preceding claim, wherein the step of heating the coating (34) is performed at least partially simultaneously with the step of applying a gas differential pressure. [36] A method according to any one of claims 31-35, wherein the coating (34) is a film. [37] A method according to the preceding claim, wherein the coating (34) has a thickness of 0.02 mm to 3 mm. [38] A method according to any one of the preceding claims, wherein the coating (34) is a thermoplastic coating. [39] A method according to any one of the preceding claims, wherein the coating (34) is a polymer having a hardness in the range of 40-80 Shore A. [40] The method of any of claims 31-39, wherein the step of providing at least one coating (34) comprises providing a plurality of coatings, and the step of placing the coating (34) comprises placing the plurality of coatings. [41] A method according to any one of claims 31-40, wherein the raised or embossed part (33) of the support structure (32) corresponds to an ankle part and an upper part of a dorsal part of a last. [42] Method according to any one of claims 31-41, wherein the support structure (32) has the shape of a shoe last.

Citation Information

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