Footwear counter for easy donning and doffing

The deformable heel cup and compressible ankle collar in footwear allow for easy foot insertion and removal without manual assistance, addressing the challenge of shoe entry and exit complexity.

JP7808730B2Active Publication Date: 2026-01-29SKECHERS USA INC II
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Patent Information

Application Number
JP2025145622
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-10-15
Filing Date
2025-09-02
Publication Date
2026-01-29
Estimated Expiration
2042-10-14

AI Technical Summary

Technical Problem

Traditional footwear requires manual assistance or a shoehorn to prevent the quarter from collapsing under the heel during foot insertion, making it difficult to easily put on and take off shoes.

Method used

A deformable heel cup with a concave structure that compresses under foot load to widen the shoe opening, and a compressible ankle collar that applies pressure to facilitate easier foot insertion and removal, combined with a rigid heel counter support for stability.

Benefits of technology

Enables hands-free and easy foot entry and exit from shoes by utilizing a deformable heel cup and compressible ankle collar, enhancing user convenience and comfort.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a footwear counter for supporting easier insertion of a foot when a user wears footwear.SOLUTION: An article of footwear includes a heel cup attached to an upper and extending from a sole structure to at least a portion of a rear heel collar of the upper. The heel cup is uniformly molded with an upper portion, midportion, and lower portion and the upper portion has a smaller mediolateral length than the midportion, and the midportion and lower portion forms a concave structure configured to receive the heel. The upper portion is capable of distorting from a first configuration into a second configuration under a load of a user's foot when the user is donning the footwear. In the second configuration, at least part of the upper portion is lowered relative to the first configuration and is capable of returning to the first configuration after the load of the user's foot is removed. The midportion includes a peripheral portion thicker than a central portion.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This disclosure claims the benefit of priority to U.S. Provisional Patent Application No. 63 / 256,521, filed October 15, 2021.

[0002] FIELD OF THE DISCLOSURE The present disclosure relates generally to shoe heel counters or heel counter components, and specifically to heel counters designed to facilitate entry of a wearer's foot into a shoe. [Background technology]

[0003] Traditionally, when putting on footwear such as sports shoes, a user often had to use one or both hands, or operate a shoehorn separate from the shoe, to properly place the foot in the shoe and prevent the quarter from collapsing under the heel. Summary of the Invention [Means for solving the problem]

[0004] Aspects of the present invention relate to an article of footwear having a deformable structure to assist in easier foot insertion.

[0005] In one aspect of the invention, the heel cup may be uniformly shaped with an upper portion, a middle portion, and a lower portion, the upper portion having a shorter medial-lateral length than the middle portion. The middle portion and the lower portion may form a concave structure configured to receive the heel. The upper portion of the heel cup has a first configuration in a natural state and is capable of deforming to a second configuration under the load of a user's foot when the user is wearing the footwear. In the second configuration, at least a portion of the upper portion is lowered relative to the first configuration, and the upper portion may return to the first configuration after the load of the user's foot is removed. The middle portion may include a peripheral portion having a first thickness and a central portion having a second thickness, the second thickness being less than the first thickness.

[0006] In another aspect of the invention, an upper portion of a heel cup has a first configuration in its natural state, is deformable to a second configuration under the load of a user's foot while the user is wearing the footwear, and returns to the first configuration after the load of the user's foot is removed. In the first configuration, the upper portion slopes downward at a first angle relative to a vertical line perpendicular to the horizontal plane of the floor, and in the second configuration, the upper portion slopes at a second angle greater than the first angle. Also, in the second configuration, a lower region of a central portion of the heel cup that widens the shoe opening in the medial-lateral direction extends outward, away from the shoe opening.

[0007] In another aspect of the invention, an upper of an article of footwear includes a substantially tubular, U-shaped foam ankle collar that forms a top region of a foot-receiving shoe opening. The foam ankle collar at least partially surrounds and extends over the foot-receiving shoe opening and can be compressed by a user's heel upon foot insertion. The ankle collar can apply pressure to the user's ankle upon foot insertion. The ankle collar can also have a flat region along its length that forms a downward angle from the top region toward the front of the footwear article.

[0008] In another aspect of the present invention, a heel counter support is located on the upper and above the sole structure. The heel counter support can have at least two hollow receptacles with backward angles, and each of the two hollow receptacles receives one end of a compressible component. The compressible component has a first configuration in its natural state, and the compressible component can deform to a second configuration under the load of a user's foot when the user is wearing the footwear, and can automatically return to the first configuration after the user's foot is fully inserted into the footwear.

[0009] Selected embodiments and aspects of the present invention are described below by way of example only. In each description, reference is made to a drawing ("FIG.") illustrating the matter being described. Some of the views shown in the drawings or photographs accompanying this specification may represent footwear for either the left or right foot. Each view includes one or more identifiers representing one or more components or elements of the present invention.

[0010] Various embodiments are described with reference to the following drawings. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 16 is a front view of the compressible heel cup. [Figure 2] FIG. 2 is a perspective view of the compressible heel cup of FIG. 1. [Figure 3] FIG. 2 is a side view of the compressible heel cup of FIG. 1. [Figure 4A] FIG. 2 is a front perspective view of the compressible heel cup of FIG. 1 in a compressed configuration. [Figure 4B] FIG. 2 is a front perspective view of the compressible heel cup of FIG. 1 in an uncompressed configuration. [Figure 4C] 2 is a top view of the compressible heel cup of FIG. 1 placed in a shoe in a compressed configuration. [Figure 4D] FIG. 2 is a top view of the compressible heel cup of FIG. 1 placed in an uncompressed configuration within a shoe. [Figure 5] FIG. 12 is a front view of a heel cup configured with a series of cross beams. [Figure 6A] 2 is a schematic cross-sectional view of the arc length of the rearmost part of the heel cup of FIG. 1. FIG. [Figure 6B] 6 is a cross-sectional view of the heel cup of FIG. 1 taken along line 6-6 of FIG. 1. [Figure 7] FIG. 1 is a side view of a heel counter with a heel cup disposed therein. [Figure 8] FIG. 8 is a top view of the heel counter of FIG. 7. [Figure 9] FIG. 8 is a perspective view of the heel counter of FIG. 7. [Figure 10]10 is a cross-sectional view of the heel counter of FIG. 8 taken along line 10-10 of FIG. 8. [Figure 11] FIG. 1 is a perspective view of a shoe having a heel counter incorporating a rigid heel cup. [Figure 12] FIG. 12 is a side view of the shoe of FIG. [Figure 13] FIG. 12 is a rear view of the shoe of FIG. [Figure 14] FIG. 10 is a bottom view of the tongue and instep support. [Figure 15] 1 is a perspective view of a shoe having a cushioned lining. [Figure 16] FIG. 16 is a side view of the cushioned lining of FIG. 15. [Figure 17] FIG. 16 is a perspective view of the cushioned lining of FIG. 15. [Figure 18] FIG. 16 is a top view of the cushioned lining of FIG. 15. [Figure 19] 19 is a cross-sectional view of the cushioned lining of FIG. 18 taken along line 19-19 of FIG. 18. [Figure 20A] FIG. 1 is a side view of a shoe having a heel counter support. [Figure 20B] FIG. 1 is a perspective view of a shoe having a heel counter support. [Figure 20C] FIG. 20B is a rear view of the shoe of FIG. 20A. [Figure 21] FIG. 21 is a perspective view of the bottom of the shoe upper of FIG. 20. [Figure 22] FIG. 24 is a perspective view of the sole and heel counter support of the shoe of FIG. 23. DETAILED DESCRIPTION OF THE INVENTION

[0012] The shoe may include a sole and an upper. The sole may include an outsole, a midsole, and / or an integrally formed outsole and midsole. The upper may include a toe box, a vamp, a tongue, a medial quarter, a lateral quarter, and a heel counter. The shoe has a forefoot portion, a rear portion, a medial side, and a lateral side. The upper may include an exterior layer, interior layers or an interior structure, and / or an inner lining. The upper may form a shoe opening that can receive a user's foot when the user is wearing the shoe.

[0013] The rear of the heel counter or upper can include structure(s) that allow for easy foot insertion into the shoe opening. These structures can also assist in easy foot removal. Additionally, the rear of the heel counter or upper can temporarily expand when the user is putting on or taking off the shoe. The shoe opening expansion can be initiated by the user applying a load to the rear of the heel counter or upper that can be exerted by the user's foot with minimal or no manual assistance. In other embodiments of the invention, the heel counter is compressible when subjected to sufficient load and can also return to an uncompressed state. Lowering the heel counter can also allow for easier user foot insertion. The heel counter can have a compressible layer, such as a foam element, that ensures or enhances foot fixation when the user inserts the foot into the shoe during normal shoe wear.

[0014] Compressible heel cup Referring to the embodiment of Figures 1-10, the heel counter 32 can include a compressible heel cup 52, which can be an internal component of the upper 16, or can be a part of or an attachment adjacent to the medial lining 46 of the upper 16 so that the heel cup 52 contacts the foot, or can be a part of or an attachment on the outer surface of the outer layer 42 of the upper 16.

[0015] 1-4, the heel cup 52 has a shape that substantially corresponds to the heel cover, with a profile resembling a pear shape. As shown in FIGS. 1-2, the heel cup has a smaller medial-lateral width near the heel cup collar 84 than the medial-lateral width of the lower portion 54.

[0016] As shown in FIG. 2 , the inner wall 66 of the upper part 64 of the heel cup at the rearmost portion of the heel cup can have a downward slope of 0 to 90 degrees relative to a vertical line 86 perpendicular to a horizontal plane 88 of the floor. In this exemplary embodiment, the upper part 66 can have a downward slope of 30 degrees. The inner wall 66 of the upper part 64 of the heel cup 52 can also have a convex curve facing the shoe opening 48. The upper part of the convex curve has a downward slope A1 of 30 degrees. The lower part of the convex curve extends directly above the heel-receiving portion of the heel cup 52. The lower part of the convex curve can have a downward slope that is smaller than the downward slope A1 and gradually decreases as it approaches a slope equal to the vertical line 86. The heel cup 52 has a concave curve that surrounds the rear of the heel. The inner and outer surfaces of the heel cup 52 can also extend to a portion of the quarters or even the vamp to provide support therefor.

[0017] The thickness of the heel cup 52 may decrease at various locations. The top edge 88 may include tapering of the inner surface of the heel cup 52 and the outer surface of the heel cup 52. The heel cup 52 may have an increased thickness T1, such as 2-3 mm, along other perimeter edges. In another exemplary embodiment, the thickness T1 may decrease in some areas to increase the flexibility of the heel cup 52 when putting on and taking off the shoe 12. In one embodiment, the thickness T1 of the heel cup 52 may gradually decrease from the peripheral portion 70, which forms the peripheral area of ​​the heel cup 52, toward the central portion or central region 50 of the intermediate portion 58. The minimum thickness T1 in the central region 50 of the intermediate portion 58 may be, but is not limited to, 0.5-1 mm, which is 1 / 4-1 / 6 of the thickness of the thickest portion of the perimeter of the heel cup 52. The thickest region at the upper portion may be thicker than the thickest region at the lower portion. The reduced thickness T1 in the central region of the midsection 58 can allow the heel cup 52 to compress under a sufficient load. In another embodiment, the thickness T1 can be reduced throughout the entire medial-lateral portion or in multiple regions, such as in the midsection 58 and / or in the upper 64. The thinner regions can increase the flexibility and flexibility of the heel cup 52, thereby providing the necessary compressibility under the load of a user's foot, such as while the shoe 12 is being worn. Such compression can move the upper 64 and / or midsection 58 of the heel cup 52 rearward, widening the shoe opening 48 and facilitating foot insertion. The heel cup 52 can transform from a first, natural configuration to a second configuration under the load of a user's foot when the user is wearing the footwear. For example, the heel cup 52 can be partially compressed such that the upper 64 and / or midsection 58 of the heel cup 52 retracts sufficiently to allow insertion of the user's foot. See, for example, FIG. 9 . Once the user's foot is inserted into the shoe 12, the heel cup 52 can return to its uncompressed configuration.

[0018] Further to this embodiment, when a user puts on the shoe 12, as the heel counter 32 compresses, the top of the convex curve of the heel cup 52, or the top segment of the heel counter 32 of the shoe 12, can retract and widen backward, away from the foot, as shown in FIG. 4A . This action allows the user to insert their foot into the shoe opening 48 with low plantar flexion. During compression of the heel cup 52, a portion of the heel cup 52 can advance toward the forefoot. Deforming the heel cup 52 can include widening the shoe opening by expanding the attached heel counter 32 and causing the medial and lateral sides of the heel cup to move outward. The medial-lateral widening of the shoe opening 48 allows for easier entry, such as easier insertion of the forefoot of the user's foot. In one exemplary embodiment, a 7.5 cm shoe opening can widen up to 4 cm, or approximately 50%. See FIGS. 4C and 4D . This widening can be small or large depending on the shoe size and the flexibility of the heel cup. Some shoes allow for a smaller or larger desired spread depending on the needs of fixation and use.

[0019] In an exemplary embodiment of the heel cup 52 shown in FIGS. 1-4, the heel cup 52 may be formed from a polymeric material, such as DuPont Hytrel, and have a thickness T1 ranging from 0.4 millimeters to 4 millimeters. The thickness T1 of the heel cup may range from thinner to thicker in various regions depending on the desired elastic and durability properties of the material. For example, the center portion may be thinner than the periphery, specifically the central portion as shown in FIG. 6B. The central portion may be spaced apart from the medial and lateral edges, and the periphery may have a greater thickness. Other suitable materials may include other thermoplastic elastomers or other polymers that can provide compressible properties for the heel cup.

[0020] In another exemplary embodiment, the heel cup can be configured with a series of cross beams forming an egg-crate-like configuration. FIG. 5 shows an exemplary embodiment with beams in a diagonal configuration. In another embodiment, the beams can be configured in a longitudinal and transverse configuration. The apertures between the beams can be generally uniform in size. The beams can be of uniform dimensions or can vary in thickness and width. Thinner or narrower beams are used to increase flexibility and compressibility in designated locations, while thicker or wider beams provide varying degrees of rigid support. For example, the beams can be thinner in the middle, specifically in the central portion of the middle spaced from the edges. The peripheral beams can be thicker than the central portion. The central portion can allow for greater flexibility to deform under load.

[0021] In an exemplary embodiment, the rearmost portion of the heel cup 52 can have an overall vertical cross-sectional shape that generally resembles an S-wave, as shown in the cross-sectional view of FIG. 6A. The upper and lower portions of the S-wave can be distinguished at point P1, a horizontal plane drawn between the upper and lower arc ends of the S-wave and intersecting the heel counter 52 and the inflection point of the S-wave, i.e., midline 90. The amplitude (AU) and width (WU) of the upper arc of the S-wave can be different from the amplitude (AL) and width (WL) of the lower arc of the S-wave. In an exemplary embodiment, WU is about 0.44 times WL. AU is about 1 / 3 of AL. In one possible embodiment, WU is about 2 centimeters and WL is about 4.5 centimeters. AU is about 3 millimeters and AL is about 9 millimeters. This S-shaped configuration reduces both AU / AL and WU / WL in the cross section of the area extending from the cross section of the most aft portion of the heel cup 52, and can consist of only a lower arc along the medial and lateral surfaces of the heel cup 52. The measurements at the most aft portion of the heel cup 52 of the exemplary embodiment are intended to be exemplary.

[0022] The central region of the intermediate portion of the heel cup can have a single aperture or multiple apertures. Just as the central region of the intermediate portion of the heel cup can be constructed of less material than the maximum thickness of the collar and / or the maximum thickness of the base, the central region of the intermediate portion of the heel cup can be constructed of a more flexible material than the material forming its periphery. The resulting effect of the central region including a single aperture, multiple apertures, less thickness and / or more flexible material can serve to facilitate the user's entry and exit of the shoe.

[0023] Further to this exemplary embodiment, as shown in FIG. 10 , the heel cup 52 can be attached to at least an interior foam layer 92. As shown in FIGS. 8-10 , the heel cup 52 can be positioned within the heel counter 32 of the upper 16. The foam layer 92 can cover both the inner wall 66 of the heel cup 52 and the outer wall of the heel cup 52. The foam layer 92 can also extend around the upper and mid-section, protruding further into the shoe opening 48. The foam layer 92 can be thicker at or near the upper 64 and mid-section 58 of the heel cup 52 to form part of the cuff of the shoe opening 48. A thick foam layer 92 can secure a user's foot when inserted into the shoe 12, as the foam is positioned above the calcaneus region of the user's foot and extends around at least a portion of the ankle region of the foot. Because the foam is compressible, the foam can be compressed by the heel during insertion and removal, providing support for the ankle when the foot is inserted.

[0024] Rigid heel cup In one exemplary embodiment, the shoe 12 can have a heel counter 32 located at the rear 36 of the shoe upper 16 as shown in Figures 11-13. The heel counter 32 can include a heel cup 52, which can be an internal component of the upper 16, or can be a part of or an attachment adjacent to the medial lining 46 of the upper 16 so that the heel cup 52 contacts the foot, or can be a part of or an attachment on the outer surface of the outer layer 42 of the upper 16.

[0025] The heel cup can have a lower portion forming a heel cup configured to receive the heel of the foot. The lower portion of the heel cup can further have side extensions around both the medial and lateral sides. The heel cup can have a middle portion located above the lower portion of the heel cup that curves inward above the calcaneus or can be configured with an aperture. The heel cup can have an aperture located at the rear of the heel cup. In addition to this embodiment, the heel cup can also be a rigid heel cup constructed of a material that is substantially incompressible under the load of the foot.

[0026] The intermediate portion of the rigid heel cup can incorporate at least one aperture that can be added to enhance the shoe's fit around the foot at the heel. The upper material layer covering the aperture can include an elastic material that allows the material to stretch around the contours of the heel. The tension created as the elastic material stretches can enhance foot fixation during normal shoe wear.

[0027] The upper portion of the heel cup can be configured with a smooth curvature that extends downward from the upper edge of the heel cup toward the shoe opening 48. The interior wall of the upper portion has a general downward slope that extends from the curved upper edge of the upper toward the interior of the upper 16. The interior wall of the upper portion can have shoehorn-like dimensions such that the smooth curvature and downward slope of the upper portion facilitates sliding the heel of the foot into the shoe 12. The heel cup can be constructed of a rigid material that does not substantially compress under the load of the user's foot. In another embodiment, the heel cup can have some flexibility, such that the upper portion of the heel cup has sufficient flexibility to flex downward and away from the shoe opening and / or to widen the shoe opening 48 to facilitate foot insertion and / or removal.

[0028] 11, the upper edge 72 of the heel counter 32 may also form a resilient support structure for a rear heel collar 74. When the heel cup 52 is incorporated into the upper 16, a fabric material(s) or suitable material(s) known in the art may be used to cover the heel cup 52 to form the outer layer 42 and the inner layer or structure 44 of the upper. The fabric material may extend above the heel cup 52 to form an extension of the heel collar 74.

[0029] The inner compressible layer of the upper 16 of FIG. 11 can be a foam material or any inner lining material(s) known in the art. The foam material 76 can be adhered to the inner surface of the heel cup 52 to provide cushioning against a rigid heel cup material. The thickness of the foam material can be uniform or can vary at specific locations depending on the desired cushioning or support for the foot. In one exemplary embodiment, an increased thickness of foam material is disposed on the inner wall 66 of the upper 64 and can further extend at least partially along the medial-lateral length of the inner wall 66. This foam material can be configured to curve around at least a portion of the ankle above the heel when the shoe 12 is worn, similar to the foam material configuration shown in FIG. 10. In this embodiment, the user's foot can compress the foam material during foot insertion. After foot insertion, the foam material can expand to a fully uncompressed state or partially expand to improve foot stability within the shoe 12. A thinner foam material can also be used to cover other portions of the heel cup 52.

[0030] The rigid heel cup 52 can be used in combination with a shoe upper 16 having at least one elastic region 78 located on the side of the upper between the heel cup 52 and a forward portion of the foot-receiving shoe opening 48. The elastic region 78 can include one or more elastic materials that allow the rear of the heel counter 32 to temporarily retract and widen the foot-receiving shoe opening 48 to facilitate foot insertion into the shoe 12. As shown in FIG. 11 , the elastic material can be a gore piece 80 configured to be secured within a void in the upper, such as in the form of a gusset in the medial quarter or lateral quarter, or both. The elastic material can be present anywhere between the heel cup 52 and the quarter 30, or the vamp 24, or an upper portion located on the tongue, as the case may be. The elastic material can also be configured as a series of elastic strips or webbing extending between the heel cup 52 and the medial and lateral surfaces of the vamp 24, or the tongue, as the case may be.

[0031] Instep Support In some embodiments, an instep support can be used to help prevent the top of the user's foot from pulling part of the instep or tongue partially into the throat area when the user puts on the shoe.

[0032] In some embodiments having a tongue 126 as shown in FIG. 14 , the inner surface of the upper portion 132 of the tongue 126 is attached to a first or proximal end of an inner elastic strap 128, and the outer surface of the upper portion 132 of the tongue 126 is attached to a first or proximal end of an outer elastic strap 130. The front lower portion of the tongue is attached directly to the upper. Each of the inner and outer elastic straps can have its second or distal end attached directly to the inner lining of the upper. In another embodiment, the elastic straps can extend through openings in the inner lining of the inner and outer quarters, respectively. The second ends of the inner and outer elastic straps can terminate in the sole, insole, or inner lining area of ​​the upper, respectively. The elastic straps function to maintain the general position of the tongue when the user is wearing the shoe.

[0033] In other embodiments, the inner and outer edges of the tongue, or the top of the tongue, are attached to the inner linings of the inner and outer quarters of the upper by gussets made of elastic material. Similarly, the gussets can function to maintain the general position of the tongue when the user is wearing the shoe. In another embodiment of the tongue, at least a portion of the inner and outer edges of the tongue can be affixed or sewn directly to the interior of the upper and the tongue. Furthermore, the upper portion of the tongue can extend more widely in the medial-lateral direction than a conventional tongue, with the edges or a portion of this extension being affixed or sewn to the interior of the upper.

[0034] In other embodiments, an instep or tongue support, which may comprise a sheet-like material stiffer than the instep or tongue fabric, may be attached to the outer surface of the tongue or embedded between the outer tongue layer and the inner tongue layer facing the shoe opening. The instep or tongue support may limit or prevent the instep or tongue from collapsing during foot insertion. In one embodiment shown in FIG. 14, the tongue support 134 may be a rigid material, such as a thermoplastic polymer, configured to be stiffer than the tongue. In some embodiments, the instep or tongue support may have a thickness of 0.2 mm to 1 mm. The instep support may be coextensive with the instep or tongue or may extend beyond the medial or lateral surface of the instep or tongue. In the embodiment shown in FIG. 14, the tongue support 134 may be narrower and shorter than the instep or tongue.

[0035] In one embodiment, a reinforcing quarter element can extend from the heel counter to the instep or eyestay. When a gusset, such as gusset 80 in FIGS. 11-12, is incorporated, the reinforcing quarter element can extend from the heel counter 52, along the front lower edge of the gusset, around the upper edge of the collar, and into the instep, the area near the vamp 24, or the eyestay adjacent to the tongue. The reinforcing quarter element can be more rigid than the upper or quarter material. The reinforcing quarter element material can be constructed of leather, plastic, or a stiff fabric. The reinforcing quarter element can be attached to the upper by gluing or stitching. The reinforcing quarter element can be configured as an elongated shape, such as a strip extending along the front lower edge of the gusset and along the collar. The reinforcing quarter element can be located on the exterior surface or can be an interior layer of the upper, such as a layer embedded within the upper or a layer along a portion of the inner lining of the upper. The reinforcing quarter element can provide greater stability to the shoe opening, such that when a foot is inserted into the shoe and pushes rearward against the heel cup, the quarter and instep area resist collapsing or moving inward into the shoe opening.

[0036] When the reinforcing quarter element is used in combination with an eyestay layer used in laced shoes, the eyestay can add additional structural support in resisting the quarter and instep from collapsing or moving inward into the shoe opening. Thus, when the foot presses against the heel cup and the gusset stretches rearward, the reinforcing quarter element is not pulled rearward as much. Thus, the shoe opening can achieve a wider opening when the foot is inserted into the shoe and presses against the heel cup rearward.

[0037] Compressible Lining In some embodiments, the inner surface of the heel counter and heel / ankle collar can have portions with a compressible layer, such as a foam layer. The compressible layer can extend into the shoe opening. The compressible layer compresses under load during donning and doffing of the shoe. The foam layer fully or partially expands to a non-compressed state after the foot is inserted into the shoe, and such expansion can enhance fixation of the foot within the shoe.

[0038] In one exemplary embodiment, the compressible layer 100 is embedded within at least a portion of the ankle collar 140 and the upper region of the heel counter 32. See FIGS. 15-19. The compressible layer 100 extends within the opening of the shoe. While wearing the shoe, the foot exerts weight on the compressible layer, expanding the opening through temporary compression of the compressible layer. After the foot is inserted into the shoe, the compressible layer partially or completely expands to its original shape. As the compressible layer expands, the foam can expand around the foot to enhance comfort and stability. In some embodiments, the compressible layer extends above and / or around the calcaneus of the user's foot and around at least a portion of the ankle region of the foot.

[0039] The compressible layer can be constructed of a foam material, such as EVA or polyurethane foam. The shape of the compressible layer can be preformed by molding the material to adhere the compressible layer between at least two layers of fibrous material. The shape of the compressible layer can have an at least partially rounded outer surface that extends into the opening of the shoe and / or the ankle collar of the shoe. As shown in Figures 17-18, the volume of the compressible layer can be greater at the rear of the heel counter and tapered along the length of the medial portion of the foam layer on both sides of the shoe. The compressible layer can be tapered or rounded along a vertical axis, with the compressible layer having a greater volume at the top of the ankle collar 140 and a smaller volume at the bottom of the ankle collar 140. See Figures 18-19. The compressible layer can be used to form the entire heel cup without the need for an additional heel cup or heel counter. Alternatively, the compressible layer can be used in combination with a compressible heel cup, such as that shown in Figure 1. The heel cup can define an outer surface of the upper, the heel cup can define an inner surface of the upper, or the heel cup can define an inner layer, for example, when embedded within a compressible layer.

[0040] In exemplary embodiments, a lower flange 118 extends downward from the ankle collar and is configured to attach to the upper. The lower flange can be configured with any dimensions necessary to secure the ankle collar to the upper. The lower flange can also vary in length. In some embodiments, the lower flange can define a portion of the ankle collar attached to the upper without extending downward from the ankle collar at all. In other embodiments, the lower flange can extend downward partially or completely to the bottom of the upper. In some embodiments, the lower flange can be configured to form a heel counter. In other embodiments, a heel cup, such as that shown in FIG. 1, can be partially or completely recessed into the lower flange.

[0041] The compressible layer 100 can be covered with any type of fabric. The fabric can be elastic and have wicking properties. The fabric can conform to the contours of the compressible layer. In a preferred embodiment, an adhesive, such as a thermoplastic-based adhesive, is applied to the compressible layer before the compressible layer is inserted into the elastic fabric sleeve. The resulting product can be attached by any means, such as adhesive or stitching, according to the desired pattern of the ankle collar 140. The fabric can also comprise a thermoplastic material, and heat can be applied to fuse the fabric to the compressible layer 100 after the compressible layer 100 is inserted into the fabric sleeve. In a preferred embodiment, steam can be applied to cause the fabric to conform to a preformed shape that forms part of the ankle collar and / or heel counter.

[0042] Further to this exemplary embodiment, the ankle collar 140 may have no stitching or seams at its top, but may have a seam at the bottom where it is attached to the upper 16. The seamless ankle collar 140 may extend from the medial quarter, around the heel, and to the lateral quarter. When a user's foot is inserted into the footwear, the user's heel presses the compressible layer 100 against the heel cup. The heel cup may prevent the structural integrity of a portion of the heel region of the upper 16 from collapsing when the user's heel presses against the compressible layer 100, thereby allowing the user's foot to easily enter the shoe without the user's hand or the use of an external shoehorn. Once the user's heel is fully inserted into the shoe, the compressible layer may rebound and exert a force against the back of the user's heel above the calcaneus and around a portion of the ankle region, providing comfort and helping to secure the user's foot in the shoe.

[0043] Further to this exemplary embodiment, the seamless upper section of the ankle collar 140 is substantially circular in cross section. The ankle collar 140 can be separated into a forward section 142 and a rear section 144. Each of the forward and rear sections resembles a generally circular or semicircular cross section 22, with the radius of the forward section being larger than the radius of the rear section. See Figures 18-19. The compressible layer can be attached directly to the internal structure of the heel counter or via a fabric sleeve that covers the material of the compressible layer.

[0044] Compressible heel counter with heel counter support In another exemplary embodiment, as shown in FIGS. 20-22, the heel counter support 96 can partially form the outer layer of the shoe, extending from the medial quarter of the shoe to the lateral quarter of the shoe around the heel portion of the upper 16. In other embodiments, the heel counter support can extend further along a portion of the quarter, along the entire quarter, or along the entire quarter to the vamp portion of the shoe. The heel counter support 96 can vary in height in different regions of the shoe. In an exemplary embodiment, the heights of the medial and lateral ends of the heel counter support 96 gradually decrease toward the base of the upper 16 directly above the sole 14. The heel counter support 96 can have an inner region of maximum height at the medial surface of the heel portion of the upper and an outer region of maximum height at the lateral surface of the heel portion of the upper. The heel counter support 96 extends at least a portion of the height of the upper 16. In an exemplary embodiment, the height of the medial and lateral heel portions 98 of the upper 16 is approximately 5 centimeters above the lasting surface 116, and the maximum height of the heel counter support 96 on the medial and lateral sides of the heel portion is approximately 3 centimeters above the lasting surface 116. The heel counter support 96 may gradually decrease in height from its maximum height region to a region of approximately uniform height along the rear of the heel portion 98 of the upper 16. In an exemplary embodiment, the height along the heel portion 98 of the upper 16 extends to approximately 3 centimeters above the lasting surface 116, and the approximately uniform height of the portion forming the rear of the heel counter support 96 is approximately 2 centimeters above the lasting surface 116.

[0045] The heel counter support 96 may partially form the outer surface of the upper 16. The heel counter support 96 may have an inner surface that abuts the outer surface of the heel portion 98 of the upper 16. The heel counter support 96 may have a thickness that varies from its outer surface to its inner surface. In an exemplary embodiment, angular strips 102 form the portions of increased thickness of the heel counter support 96. The angled strips 102 increase the stiffness of the heel counter support 96 and may be configured to receive the compressible element 100.

[0046] In an exemplary embodiment, the angled strip 102 has hollow protrusions on the medial and lateral surfaces of the shoe 12 to which ends of the compressible element 100 are secured. The compressible element 100 may be a pipe, with each end of the pipe secured within a hollow protrusion 102. The hollow protrusions of the angled strip 102 may extend partially or completely around the surface of the compressible element 100. In an exemplary embodiment, the compressible element 100 may be formed of polyoxymethylene or any other material having similar durability, sufficient stiffness to support the load of the foot, and flexibility to curve from the medial to the lateral surface of the heel portion of the shoe 12. A central segment 104 of the compressible element 100 may extend above the heel counter of the shoe 12, behind the ankle opening. In an exemplary embodiment, angled strip 102 can be designed to receive compressible element 100 at an angle such that compressible element 100 extends from within hollow protrusion 102 toward the rear of shoe 12 at a rearward slope A2. The rearward slope A2 of compressible element 100 is approximately 45 degrees relative to the horizontal plane of floor 88. See FIG. 20A . Foam layer 92, which extends above rear heel portion 98 of upper 16 at the rear of the heel opening, can have a rearward slope A2 similar to that of compressible element 100. The rearward slope A2 of foam layer 92 can help guide a user's foot into shoe 12 when the user puts on the shoe.

[0047] A central segment 104 of the compressible element 100 extends behind the rearmost portion of the upper 16 and can pass through one or more guide tunnels 106 in the upper 16. In an exemplary embodiment, a strip of leather material is sewn to the foam layer 92 and extends above the upper behind the heel opening. The ends of the leather strip are sewn together to form the guide tunnels 106 through which the compressible element is threaded.

[0048] When putting on the shoe 12, the user's foot can press downward and rearward through the shoe opening against the compressible element 100 and / or rearwardly sloping foam layer 92. Once the user's foot is fully within the shoe 12, the compressible element 100 and rearwardly sloping foam layer 92 return to their initial raised positions.

[0049] The foam further internal heel support 114 may be thick enough to provide additional fixation of the foot at the Achilles tendon, and the calcaneus may rest below the further internal heel support 114 when the user is wearing the shoe 12. The medial heel support 114 may be tall enough to rest above the calcaneus when the foot is inserted into the shoe.

[0050] Further to this exemplary embodiment, the shoe can include a heel cup 52 of flexible material configured to receive the rear of the heel. In one embodiment, the heel cup is a thermoplastic material that provides sufficient support as a heel counter. The internal heel support 114 can be a foam lining that provides the necessary comfort for the user's heel.

[0051] Although the present invention has been described with reference to specific embodiments, it should be understood that modifications and variations can be made to the sole structure without departing from the intended scope of the invention.

Claims

1. A shoe, Sole and an upper including at least one layer of elastic material positioned to stretch and create tension that enhances fixation of a foot inserted in the shoe; a heel cup comprising a polymeric material and connected to the sole and the upper, the heel cup includes an upper portion, a middle portion, and a lower portion; The vertical cross-sectional shape of the rearmost part of the heel cup includes an S wave, the heel cup includes a plurality of diagonal beams separated by apertures, the plurality of diagonal beams including beams having at least two different widths; Heel cup and an inner foam layer adjacent at least a forward-facing surface of the upper portion of the heel cup, the inner foam layer is compressible; The inner foam layer extends into the opening of the shoe to facilitate securing the foot once inserted. an inner foam layer; Including shoes.

2. The inner foam layer is positioned to extend around a portion of the ankle region of the foot. The shoe according to claim 1.

3. The profile of the heel cup has a pear-shaped shape. The shoe according to claim 1.

4. the at least one elastic layer is positioned on at least one of the medial and lateral surfaces of the upper; The shoe according to claim 1.

5. the polymeric material comprises a thermoplastic material; The shoe according to claim 1.

6. the polymeric material comprises an elastomer; The shoe according to claim 1.

7. In a first configuration, the upper portion of the heel cup has a downward slope at a first angle relative to a vertical line perpendicular to a horizontal plane of a floor; the upper is deformable under the load of the foot when the shoe is worn to a second configuration, wherein in the second configuration the upper has a downward slope at a second angle relative to the vertical; The second angle is greater than the first angle. The shoe according to claim 1.

8. further comprising at least one fabric material covering said heel cup. The shoe according to claim 1.

9. the at least one fabric material extends above the heel cup to form an extension of a heel collar; The shoe according to claim 8.

10. The heel cup is connected to the medial lining of the upper. The shoe according to claim 1.

11. the upper portion of the heel cup is configured to recede and flare rearwardly away from the foot when the shoe is worn; The shoe according to claim 1.

12. the inner foam layer is adhered to the front-facing surface of the upper portion of the heel cup; The shoe according to claim 1.

13. the inner foam layer also abuts the middle forward-facing surface of the heel cup and the lower forward-facing surface of the heel cup; a portion of the inner foam layer adjacent to the upper forward surface is thicker than portions of the inner foam layer adjacent to the intermediate forward surface and the lower forward surface; The shoe according to claim 1.

14. the inner foam layer comprises at least one of EVA and polyurethane foam; The shoe according to claim 1.

15. The inner foam layer is covered with elastic fibers. The shoe according to claim 1.

16. The elastic fiber has wicking properties. The shoe according to claim 15.

17. The elastic fibers conform to the shape of the inner foam layer. The shoe according to claim 15.

18. The heel cup includes at least one flexibility-enhancing region. The shoe according to claim 1.

19. the at least one flexibility-enhancing region is configured to facilitate compression of the heel cup under the load of the foot while the shoe is being worn, thereby widening the opening of the shoe and allowing the shoe to be donned without the use of the wearer's hands.

19. The shoe of claim 18.

20. A shoe, Sole and an upper including at least one layer of elastic material positioned to stretch and create tension that enhances fixation of a foot inserted in the shoe; a heel cup comprising a polymeric material and connected to the sole and the upper, the heel cup includes an upper portion, a middle portion, and a lower portion; The vertical cross-sectional shape of the rearmost part of the heel cup includes an S wave, the heel cup includes a plurality of diagonal beams separated by apertures, the plurality of diagonal beams including beams having at least two different widths; the heel cup has a rearwardly facing upward recess having a first amplitude; the heel cup has a forward-facing downward recess with a second amplitude; The second amplitude is greater than the first amplitude. Heel cup and an inner foam layer adjacent at least a forward-facing surface of the upper portion of the heel cup, the inner foam layer is compressible; The inner foam layer extends into the opening of the shoe to facilitate securing the foot once inserted. an inner foam layer; Including shoes.

Citation Information

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