Footwear with support structure

The footwear's innovative sole structure with a carbon fiber plate and thermoplastic polyurethane heel support enhances stability and efficiency by optimizing force distribution, addressing the limitations of conventional designs.

JP7813782B2Active Publication Date: 2026-02-13PUMA SE
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Patent Information

Application Number
JP2023526144
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-28
Filing Date
2021-10-27
Publication Date
2026-02-13
Estimated Expiration
2041-10-27

AI Technical Summary

Technical Problem

Existing footwear designs lack targeted support structures to enhance stability and reduce energy expenditure during physical activities, limiting user efficiency.

Method used

The footwear incorporates a sole structure with a plate disposed between upper midsole cushioning members, featuring angled curves and segments made of carbon fiber, and includes heel support structures formed of thermoplastic polyurethane, with midsole and heel cushioning members made using supercritical foaming processes.

Benefits of technology

The design provides enhanced stability and reduces energy expenditure, improving user efficiency during activities by distributing force effectively across the foot.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

The article of footwear includes an upper and a sole structure defining a forefoot region, a midfoot region, and a heel region, the sole structure including an upper midsole cushioning member, a lower midsole cushioning member, an outsole coupled to a bottom surface of the lower midsole cushioning member, and a plate disposed between the upper midsole cushioning member and the lower midsole cushioning member.
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Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE The present disclosure relates generally to articles of footwear that include a sole structure having a plate or support structure therein. [Background technology]

[0002] Many conventional shoes or other footwear generally include an upper and a sole attached to the lower end of the upper. Conventional shoes also include an interior space, i.e., a cavity or hollow space formed by the upper and the inner surface of the sole, that receives the user's foot before fastening the shoe to the foot. The sole is attached to the underside or border of the upper and is positioned between the upper and the ground. As a result, the sole typically provides the user with stability and cushioning while wearing the shoe. In some embodiments, the sole may include multiple components, such as an outsole, a midsole, and an insole. The outsole provides traction to the bottom surface of the sole, while the midsole is attached to the inner surface of the outsole and may provide cushioning or additional stability to the sole. For example, the sole may include a specific foam material that can increase stability at one or more desired locations along the sole, or a foam material that can reduce stress or impact energy applied to the foot or leg when the user is running, walking, or engaging in another activity. The sole may also include additional components, such as a plate embedded in the sole, to increase the overall rigidity of the sole and reduce energy loss during use.

[0003] The upper generally extends upward from the sole and defines an interior cavity that completely or partially encases the foot. The upper most often spans the instep and toe areas, as well as the medial and lateral sides of the foot. Many footwear articles may include a tongue that extends across the instep area to fill the gap between the medial and lateral ends of the upper that define the opening to the cavity. The tongue may also be located below the laces, between the medial and lateral sides of the upper, to allow adjustment of the shoe's tightness. The tongue may also be manipulated by the user to allow the foot to move in and out of the interior space or cavity. Furthermore, the laces may allow the user to adjust the size of the upper or sole, thereby allowing the upper to accommodate a variety of foot shapes, including different sizes and shapes.

[0004] The upper can be constructed from a wide variety of materials, selected based on one or more intended uses of the shoe. The upper can also include sections made of different materials specialized for specific areas of the upper. For example, it may be desirable to provide greater resistance or stiffness in the forefoot or heel areas of the upper to increase stability, while other parts of the shoe may incorporate soft woven fabrics to provide areas with stretch resistance, flexibility, breathability, or moisture wicking.

[0005] However, while many currently available shoes have various features related to the above properties, many shoes, and their sole structures, could be further optimized to provide targeted support to a user's feet to aid in stability during running, walking, or other strenuous activities. Additionally, many shoes and their sole structures could be further optimized to provide targeted support to a user's feet to reduce energy expenditure, thereby increasing a user's efficiency during physical activities such as running. Summary of the Invention [Problem to be solved by the invention]

[0006] Therefore, there is a need for an article of footwear having features that provide such benefits throughout the foot area. These and other deficiencies of the prior art are outlined in the following disclosure. [Means for solving the problem]

[0007] The articles of footwear described herein can have a variety of configurations. The articles of footwear can have an upper and a sole structure. The sole structure can define a forefoot region, a midfoot region, and a heel region. The sole structure can further include an upper midsole cushioning member, a lower midsole cushioning member, and an outsole coupled to a bottom surface of the lower midsole cushioning member. The sole structure can further include a plate disposed between the upper midsole cushioning member and the lower cushioning member.

[0008] In some embodiments, the plate may include a curved portion and a flat portion. In these embodiments, the curved portion may include a forward curved portion extending through at least the forefoot region of the article of footwear and a rearward curved portion extending through the midfoot region of the article of footwear and at least a portion of the heel region of the article of footwear. In further embodiments, the plate may be formed from carbon fiber. Furthermore, the forward curved portion may include a divided first segment and a divided second segment.

[0009] In further embodiments, the sole structure may also include a heel support structure in a heel region of the article of footwear, and the heel support structure may be formed of thermoplastic polyurethane. In some embodiments, the upper midsole cushioning member and the lower cushioning member are each foamed materials. For example, in certain embodiments, the foamed materials are formed from a material selected from the group consisting of ethylene vinyl acetate, thermoplastic polyurethane, thermoplastic elastomer, and mixtures thereof. In further embodiments, the foamed materials may be formed by a supercritical foaming process or a physical foaming process using nitrogen, carbon dioxide, or supercritical nitrogen or carbon dioxide.

[0010] In certain embodiments, the front curve is angled at an angle ranging from about 5 degrees to about 45 degrees relative to the reference plane, the back curve is angled at an angle ranging from about 3 degrees to about 45 degrees relative to the reference plane, and the flat is angled at an angle ranging from about 0 degrees to about 5 degrees relative to the reference plane.

[0011] Another embodiment of the present disclosure provides an article of footwear including an upper and a sole structure. In this embodiment, the sole structure may define a forefoot region, a midfoot region, and a heel region, and the sole structure may include a midsole cushioning member, an outsole coupled to a bottom surface of the midsole cushioning member, and a plate. The plate may also include a toe section, an arch section, and a rear segment. Furthermore, in these embodiments, the toe section and arch section are disposed between the midsole cushioning member and the outsole, and the rear segment is disposed above the midsole cushioning member.

[0012] In some embodiments, the midsole cushioning member includes an opening, and a portion of the plate between the rear segment and the arch extends between the opening in the midsole cushioning member. The sole structure can further include a heel cushioning member and a heel support collar. In further embodiments, the plate can include a forward curve, a middle curve, a rear curve, and a flat portion. The forward curve, middle curve, rear curve, and flat portion can each be angled relative to a reference plane.

[0013] In yet another embodiment, the present disclosure provides an article of footwear having an upper and a sole structure coupled to the upper. The sole structure, in this embodiment, can define a forefoot region, a midfoot region, and a heel region. The sole structure can further include an outsole coupled between an upper midsole cushioning member, a lower midsole cushioning member, and a bottom surface of the lower midsole cushioning member, and a plate disposed between the upper and lower midsole cushioning members. In these embodiments, the upper and lower midsole cushioning members are foam formed using supercritical gas, and the plate is formed of carbon fiber.

[0014] Other aspects, including features and advantages, of the articles of footwear described herein will become apparent to those skilled in the art upon review of the drawings and detailed description herein, and all such aspects of the articles of footwear are intended to be included in the detailed description and this summary. [Brief explanation of the drawings]

[0015] [Figure 1] FIG. 1 is a perspective view of an article of footwear configured as a left shoe including an upper and sole structure including components that enable increased stability and increased efficiency during physical activities, as described herein. [Figure 2] FIG. 2 is a side view of the shoe of FIG. [Figure 3] FIG. 3 is a side view of the medial side of the shoe of FIG. [Figure 4] FIG. 4 is a top view of the shoe of FIG. [Figure 5] FIG. 5 is a top plan view of the shoe of FIG. 1 with the upper removed, with the anatomy of a user's skeletal foot superimposed thereon. [Figure 6] FIG. 6 is a bottom perspective view of the shoe of FIG. [Figure 7] FIG. 7 is a bottom view of the shoe of FIG. [Figure 8]FIG. 8 is an exploded view of the sole structure of FIG. 1, which includes an outsole, a midsole body, a plate, and a heel support collar. [Figure 9] FIG. 9 is a perspective view of the plate of FIG. [Figure 10] FIG. 10 is a top view of the plate of FIG. [Figure 11] FIG. 11 is a bottom view of the plate of FIG. [Figure 12] FIG. 12 is a side view of the plate of FIG. [Figure 13] FIG. 13 is a top view of the plate of FIG. 8 with the user's skeletal foot structure superimposed thereon. [Figure 14] FIG. 14 is a perspective view showing the midsole body of FIG. [Figure 15] 15 is a bottom perspective view showing the midsole body of FIG. 8. FIG. [Figure 16] FIG. 16 is a bottom view showing the midsole body of FIG. [Figure 17] FIG. 17 is a side view of the midsole body of FIG. 8, with its internal structure shown in dashed lines. [Figure 18] FIG. 18 is a cross-sectional view of the sole structure of FIG. 7 taken along line 18-18. [Figure 19] FIG. 19 is an exploded top perspective view of another sole structure according to a second embodiment of the present disclosure. [Figure 20] 20 is an exploded bottom perspective view of the sole structure of FIG. 19. FIG. [Figure 21] FIG. 21 is an exploded bottom perspective view of yet another sole structure according to a third embodiment of the present disclosure. [Figure 22] FIG. 22 is an exploded bottom perspective view of yet another sole structure according to a fourth embodiment of the present disclosure. [Figure 23] FIG. 23 is an exploded top perspective view of another sole structure having an outsole, a lower midsole cushioning member, an upper midsole cushioning member, a heel support, and a plate according to a fifth embodiment of the present disclosure. [Figure 24]FIG. 24 is an exploded top perspective view of yet another sole structure having an outsole, a midsole, and a plate according to a sixth embodiment of the present disclosure. [Figure 25] FIG. 25 is a partial view of the sole structure of FIG. 24 with the plate in a first position relative to the midsole. [Figure 26] FIG. 26 is a partial view of the sole structure of FIG. 24 with the plate in a second position relative to the midsole. [Figure 27] FIG. 27 is a top view of another embodiment of a plate for a sole structure. [Figure 28] FIG. 28 is a side view of an article of footwear having a sole structure with the plate of FIG. [Figure 29] FIG. 29 is a top view of the sole of FIG. 28, with its internal components shown in dashed lines. [Figure 30] FIG. 30 shows a cross-sectional view of the sole structure of FIG. 28 taken along line 30-30 of FIG. [Figure 31] FIG. 31 shows a cross-sectional view of the sole structure of FIG. 28 taken along line 31-31 of FIG. [Figure 32] FIG. 32 shows a cross-sectional view of the sole structure of FIG. 28 taken along line 32-32 of FIG. [Figure 33] FIG. 33 is a cross-sectional view of the sole structure of FIG. 28 taken along line 33-33 of FIG. [Figure 34] FIG. 34 shows a cross-sectional view of the sole structure of FIG. 28 taken along line 34-34 of FIG. [Figure 35] FIG. 35 shows a cross-sectional view of the sole structure of FIG. 28 taken along line 35-35 of FIG. [Figure 36] FIG. 36 is a perspective view showing another sole structure for an article of footwear. [Figure 37] FIG. 37 is an exploded perspective view of the sole structure of FIG. [Figure 38] 38 is an exploded bottom perspective view of the sole structure of FIG. 36. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0016] The following description and accompanying figures disclose various embodiments or configurations of shoes having upper and sole structures. While the embodiments are disclosed with reference to athletic shoes, such as running shoes, tennis shoes, and basketball shoes, the concepts related to the shoe embodiments can be applied to a wide range of shoes and shoe styles, such as basketball shoes, cross-training shoes, soccer shoes, golf shoes, hiking shoes, hiking boots, ski and snowboard boots, soccer shoes and cleats, walking boots, and track cleats. The shoe concepts can also be applied to footwear considered non-athletic, such as dress shoes, sandals, loafers, slippers, heels, and the like.

[0017] As used herein, the term "about" refers to variations in a numerical quantity that may occur, for example, through typical measuring and manufacturing procedures used in an article of footwear or other product encompassed by embodiments of the present disclosure, due to inadvertent errors in these procedures, due to differences in the manufacture, source, or purity of ingredients used in making a composition or mixture or practicing a method, etc. Throughout this disclosure, the terms "about" and "approximately" refer to a range of values ​​of ±5% of the numerical value that the term precedes.

[0018] The present disclosure relates to an article of footwear or a specific component of an article of footwear, such as an upper or sole or sole structure. The upper can be composed of knitted materials, woven fabrics, nonwoven fabrics, leather, mesh, suede, or a combination of one or more of the above materials. Knitted materials can be made by knitting yarns, woven fabrics can be made by weaving yarns, and nonwoven fabrics can be made by weaving a single nonwoven fabric. Knitted fabrics include fabrics formed by warp knitting, weft knitting, plain knitting, circular knitting, or other suitable knitting methods. Knitted fabrics include, for example, plain knit, mesh knit, and ribbed knit structures. Woven fabrics include, but are not limited to, fabrics formed by any of a number of weaving methods, such as plain weave, twill weave, satin weave, dobbin weave, jacquard weave, double weave, and double cloth weave. Nonwoven fabrics include, for example, fabrics made by airlaying and spunlaying methods. The upper can be constructed from different materials, such as the first yarn, second yarn, or third yarn, which can have different properties or different visual characteristics.

[0019] 1-7 illustrate an exemplary embodiment of an article of footwear configured as a shoe 100 including an upper 102 and a sole structure 104. As described further herein, the upper 102 is attached to the sole structure 104 and, together with the sole structure 104, defines an interior cavity 106 (see FIGS. 1 and 4 ) into which a user's foot can be inserted. For reference, the article of footwear 100 includes a forefoot region 108, a midfoot region 110, and a heel region 112 (see FIGS. 4 and 5 ). The forefoot region 108 generally corresponds to the portion of the article of footwear 100 that encompasses the toes, the ball of the foot, and the joints connecting the metatarsals to the toes or phalanges. The midfoot region 110 is adjacent to and proximal to the forefoot region 108 and generally corresponds to the portion of the article of footwear 100 that encompasses the arch of the foot and lies with the top of the foot. Heel region 112 is proximate and adjacent to midfoot region 110 and generally corresponds to the portion of footwear 100 that wraps around the rear of the foot, including the calcaneus or heel bone, ankle, or Achilles tendon.

[0020] Although only one shoe 100 is illustrated, i.e., a shoe worn on a user's left foot, it should be understood that the concepts disclosed herein are also applicable to a pair of shoes (not shown) including a left shoe and a right shoe that can be sized and shaped to accommodate a user's left and right feet, respectively. However, for ease of disclosure, while reference is made to a single shoe to describe aspects of the present disclosure, the following disclosure referring to the article of footwear 100 is applicable to both the left and right shoes. However, in some embodiments, there may be differences between the left and right shoes other than the left / right configuration. Furthermore, in some embodiments, the left shoe may include one or more additional elements that the right shoe does not include, or vice versa.

[0021] Continuing with reference to Figures 1-7, upper 102 is shown disposed over and coupled to sole structure 104. Upper 102 may be conventionally formed from multiple elements, such as fabric, polymer foam, polymer sheet, leather, or synthetic leather, which are joined together through seam bonding or stitching. In some embodiments, upper 102 of article of footwear 100 is formed from a knit construction or knit material. In various embodiments, the knit material can incorporate different types of yarns, which can provide different properties to the upper. For example, the upper mesh layer may be warp knit, while the mesh backing layer may be constructed with a circular knit.

[0022] In some embodiments, the various layers of the upper 102 are heat-pressed together to bond the various layers of the upper 102. For example, the layers comprising the upper 102 may be heat-pressed together at a single temperature at one time. The upper 102 may further be attached to a strobe board 114 (see FIG. 4 ) by strobe stitching (not shown). During the manufacture of the upper 102, locating pins (not shown) may be used to align the various holes (not shown) in the upper 102. In some embodiments, the various layers of the upper 102 may be waterproof or semi-waterproof and may include multiple layers of mesh or other materials. The materials comprising the upper 102 may include an inner mesh layer, a thermoplastic polyurethane (TPU) film, and an outer mesh layer. In some embodiments, a TPU skin may be applied along the other surface of the upper.

[0023] The material comprising the upper 102, or relative to the material, the particular properties that a particular type of yarn imparts to a region of the knitted material can depend, at least in part, on the materials forming the various filaments and fibers of the yarn. For example, cotton can impart a soft effect, biodegradability, or a natural aesthetic to the knitted material. Elastic and stretchy polyesters can provide knitted materials with desirable bounce and recovery, respectively. Rayon can provide a high-shine, moisture-wicking material, wool can provide enhanced moisture-wicking, nylon can provide a durable, abrasion-resistant material, and polyester can provide a durable, hydrophobic material.

[0024] Other aspects of the knit material can also be varied to affect the properties of the knit material and provide desired attributes. For example, the yarns forming the knit material can include monofilament yarns or multifilament yarns, or the yarns can include filaments, each formed of two or more different materials. Additionally, knit materials may be formed using specific knitting processes to impart specific properties to regions of the knit material. Thus, both the materials forming the yarns and other aspects of the yarns can be selected to impart different properties to specific regions of the upper 102.

[0025] In some embodiments, the elasticity of a knit structure can be measured based on a comparison of the width or length of the knit structure in a first, unstretched state to the width or length of the knit structure in a second, stretched state after the knit structure is subjected to a lateral force.

[0026] In some embodiments, upper 102 can include additional structural elements, or additional structural elements can surround or be coupled to upper 102. For example, a heel cup can be provided at heel end 116 in heel region 112 of shoe 100 to provide additional support for the user's heel. In some embodiments, other elements, such as plastic materials, logos, trademarks, etc., can also be applied and secured to the exterior surface using adhesives or a thermoforming process. In some embodiments, properties associated with the upper, such as stitching type, thread type, or properties associated with different stitching types or thread types, such as elasticity, aesthetic appearance, thickness, breathability, or scuff resistance, can be varied.

[0027] Continuing with reference to FIGS. 1-7 , article of footwear 100 also includes a tightening system 118 including laces 120 and a plurality of apertures 122. In this embodiment, laces 120 extend through the plurality of apertures 122. In some embodiments, tightening system 118 may include an elastic band. Tightening system 118 may allow a user to modify the size of upper 102, for example, tightening or loosening a portion of upper 102 around the foot as desired by the wearer. Tightening system 118 may also include a band (not shown) extending along the center of upper 118 and including one or more loops through which laces 120 can be guided. In other embodiments, tightening system 118 may be a hook-and-loop fastening system such as Velcro®. For example, in some embodiments, tightening system 118 may include one or more hook-and-loop fastening straps. In further embodiments, tightening system 118 may be another laceless tightening system known in the art. In still further embodiments, the tightening system 118 may include another manual lacing system, a rotary closure device, or an automatic lacing system, such as the lacing systems described in U.S. Patent Application No. 15 / 780,368, filed May 31, 2018, and U.S. Patent Application No. 16 / 392,470, filed April 23, 2019 (both of which are incorporated by reference in their entireties).

[0028] 2 and 3, the article of footwear 100 also defines a lateral side 124 and a medial side 126, with the lateral side 124 shown in FIG. 2 and the medial side 126 shown in FIG. 3. Laces 120 extend from the lateral side 124 to the medial side 126. The lateral side 124 corresponds to the outward-facing portion of the article of footwear 100 when the user is wearing the shoe, and the medial side 126 corresponds to the medial-facing portion of the article of footwear 100 when the user is wearing the shoe. Thus, the left shoe and the right shoe have opposing lateral and medial sides such that the medial sides are closest to each other when the shoe is being worn by a user, while the lateral sides are defined as the sides furthest from each other when the shoe is being worn. As described in more detail below, the medial side 126 and the lateral side 124 are adjacent to each other at opposite distal ends of the article of footwear 100.

[0029] 4 and 5, upper 102 extends along a lateral side 124 and a medial side 126 across forefoot region 108, midfoot region 110, and heel region 112 to accommodate and encase a user's foot. When fully assembled, upper 102 also includes a medial surface 128 and an lateral surface 130. Medial side 126 faces inward and generally defines interior cavity 106, while lateral surface 130 of upper 102 faces outward and generally defines the periphery or boundary of upper 102. Medial surface 128 and lateral surface 130 may form part of the upper layer disclosed above. Upper 102 also includes an opening 132 located at least partially in heel region 112 of article of footwear 100 that provides access to interior cavity 106 (see, for example, FIG. 4 ) and through which the foot may be inserted or removed. In some embodiments, upper 102 may also include an instep region 134 that extends from opening 132 in heel region 112 across an area corresponding to the instep to an area adjacent forefoot region 108. Instep region 132 may define an area similar to where tongue 136 of the present embodiment is located. In some embodiments, upper 102 does not include tongue 136, i.e., upper 102 is tongueless.

[0030] 5 , the medial side 126 and the lateral side 124 are adjacent to one another along a longitudinal midplane or axis 150 of the article of footwear 100. As discussed further herein, the longitudinal midplane or axis 150 may define a central, intermediate axis between the medial side 126 and the lateral side 128 of the article of footwear 100. Stated differently, the longitudinal plane or axis 150 may extend between the heel end 116 of the article of footwear 100 and the toe end 152 of the article of footwear 100, and may continuously define the middle of the insole, sole structure 104, or upper 102 of the article of footwear 100; i.e., the longitudinal plane or axis 150 may be a linear axis extending through the heel end 116 of the heel region 112 to the toe end 152 of the forefoot region 108.

[0031] Forefoot region 108, midfoot region 110, heel region 112, medial side 126, and lateral side 124 are intended to define boundaries or zones of article of footwear 100. As such, forefoot region 108, midfoot region 110, heel region 112, medial side 126, and lateral side 124 generally characterize portions of article of footwear 100. An aspect of the present disclosure may refer to portions or elements coexisting with one or more of forefoot region 108, midfoot region 110, heel region 112, medial side 126, or lateral side 124. Additionally, both upper 102 and sole structure 104 may be characterized as having portions along forefoot region 108, midfoot region 110, heel region 112, or medial side 126 or lateral side 124. Thus, the upper 102 and sole structure 104, or individual portions of the upper 102 and sole structure 104, may include the forefoot region 108, the midfoot region 110, the heel region 112, or portions thereof located along the medial side 126 or the lateral side 124.

[0032] Continuing to refer to FIG. 5 , the forefoot region 108, midfoot region 110, heel region 112, medial side 126, and lateral side 124 are shown in detail. The forefoot region 108 extends from a toe tip 152 to a widest portion 154 of the article of footwear 100. The widest portion 154 is defined or measured along a first line 156 perpendicular to the longitudinal axis 150, which extends from a distal portion of the toe tip 152 to a distal portion of the heel end 116 opposite the toe tip 152. The midfoot region 110 extends from the widest portion 154 to a narrowest portion 158 of the article of footwear 100. The narrowest portion 158 of the article of footwear 100 is defined as the narrowest portion of the article of footwear 100, measured along a second line 160 perpendicular to the longitudinal axis 150. The heel region 112 extends from the narrowest portion 160 to the heel end 116 of the article of footwear 100 .

[0033] In view of the foregoing description, it should be understood that many variations will be apparent to those skilled in the art, and that individual components thereof may be incorporated into numerous articles of footwear. Accordingly, aspects of article of footwear 100 and its components may be described with reference to general areas or portions of article of footwear 100, with the understanding that the boundaries of forefoot region 108, midfoot region 110, heel region 112, medial side 126, or lateral side 124 described herein may vary between articles of footwear. However, aspects of article of footwear 100 and its individual components may also be described with reference to precise areas or portions of article of footwear 100, and the scope of the claims appended hereto may incorporate limitations related to these boundaries of forefoot region 108, midfoot region 110, heel region 112, medial side 126, or lateral side 124 described herein.

[0034] Continuing to refer to FIG. 5 , medial side 126 begins at distal toe tip 152 and arcs outward along forefoot region 108 toward midfoot region 110. At a first line 156, medial side 126 curves inward toward central longitudinal axis 150. Medial side 126 extends from first line 156, i.e., widest portion 154, toward a second line 160, i.e., narrowest portion 158, where it crosses first line 156 and enters midfoot region 110. After reaching second line 160, medial side 126 curves outward, away from central longitudinal axis 150, at which point medial side 126 extends beyond second line 160, i.e., into heel region 112. The medial side 126 then curves outward and then inward toward the heel end 116 , terminating at the point where the medial side 126 meets the central longitudinal axis 150 .

[0035] Continuing to refer to FIG. 5 , the lateral side 124 also begins at the distal toe tip 152 and arcs outward along the forefoot region 108 toward the midfoot region 110. The lateral side 124 reaches a first line 156, at which point the lateral side 124 curves inward toward the central longitudinal axis 150. The lateral side 124 extends from the first line 156, or widest portion 154, toward a second line 160, or narrowest portion 158, before crossing the first line 156 and entering the midfoot region 110. After reaching the second line 160, the lateral side 124 curves outward, away from the central longitudinal axis 150, and extends into the heel region 112 at the point where the lateral side 124 crosses the second line 160. The lateral side 124 then curves outward and then inward toward the heel end 116 , terminating at the point where the lateral side 124 intersects the central longitudinal axis 150 .

[0036] 2 and 3 , sole structure 104 includes an outsole or outsole region 162, a midsole or midsole region 164, and an insole or insole region (not shown). In some embodiments, sole structure 104 includes an insole, but in the illustrated embodiment, the insole is a separate element inserted into a foot cavity above strobe board 114. Outsole 162, midsole 164, and insole, or components thereof, may include portions within forefoot region 108, midfoot region 110, or heel region 112. Additionally, outsole 162, midsole 164, and insole, or any components thereof, may include portions on lateral side 124 or medial side 126. Outsole 162, midsole 164, and any other portions of sole structure 104 may be attached to one another via adhesive (not shown). Upper 102 is further attached to the sole structure via adhesive or stitching.

[0037] In some examples, outsole 162 may be defined as the portion of sole structure 104 that at least partially contacts the exterior, e.g., the ground, when the article of footwear 100 is worn. Insole may be defined as the portion of sole structure 104 that at least partially contacts a user's foot when the article of footwear is worn. Finally, midsole 164 may be defined as at least a portion of sole structure 104 that extends from the outsole toward upper 102 or otherwise extends between and connects outsole 162 and an insole region.

[0038] With particular reference to FIG. 8 , which is an exploded view of sole structure 104 of article of footwear 100, sole structure 104 can include outsole 162, plate 170, heel cushioning member 172, heel support collar 174, and midsole cushioning member 176. In this embodiment, midsole cushioning member 176 includes opening 178 (see FIGS. 14 and 15 ) through which rear segment 179 of plate 170 (see FIGS. 9-13 ) can be inserted, as described further herein. While outsole 162, plate 170, heel cushioning member 172, heel collar 174, and midsole cushioning member 176 are depicted as individual components in this embodiment, these components, or portions thereof, may be integrated with other components in alternative embodiments. For example, in some embodiments, heel cushioning member 172 and heel support collar 174 may be integral or one-piece.

[0039] As shown in FIG. 8 and FIG. 18 , which is a cross-sectional view of sole structure 104, outsole 162 may define a lower edge or surface of sole structure 104 across heel region 112, midfoot region 110, and forefoot region 108. Additionally, as previously described herein, outsole 162 may be the ground-contacting portion of sole structure 104, opposite its insole. Outsole 162 may be formed from one or more materials to impart durability, abrasion resistance, wear resistance, or traction to sole structure 104. In some embodiments, outsole 162 may be formed from rubber, for example.

[0040] In this embodiment, sole structure 104 may include a heel cushioning member 172, which may be adjacent to and disposed on outsole 162 in heel region 112, or may be partially disposed in midfoot region 110. In other words, heel cushioning member 172 may be adjacent to outsole 162 or may extend from heel end 116 of sole structure 104 through heel region 112 and partially through midfoot region 110. Heel cushioning member 172 may also include a cutout portion 180 defined by a lateral prong 182 and a medial prong 184. Heel cushioning member 172 may be constructed from ethylene vinyl acetate (EVA), copolymers thereof, or similar types of materials. For example, in some embodiments, heel cushion member 172 may be an EVA-Solid-Sponge ("ESS") material, EVA foam (e.g., PUMA® ProFoam Lite™, IGNITE Foam), polyurethane, polyether, olefin block copolymer, thermoplastic material (e.g., thermoplastic polyurethane, thermoplastic elastomer, thermoplastic polyolefin, etc.), or supercritical foam. Heel cushion member 172 may be a single polymeric material or a blend of materials, such as EVA copolymer, thermoplastic polyurethane, polyether block amide (PEBA) copolymer, and / or olefin block copolymer.

[0041] In embodiments in which the heel cushion member 172 is formed from a supercritical foaming process, the supercritical foam may comprise a microporous or particulate foam, such as TPU, EVA, PEBAX®, or a mixture thereof, produced using a process conducted in an autoclave, an injection molding apparatus, or a sufficiently heated / pressurized container capable of processing a mixture of a supercritical fluid (e.g., CO, N, or a mixture thereof) with a material (e.g., TPU, EVA, a polyolefin elastomer, or a mixture thereof), preferably in a molten state. In a typical process, a solution of the supercritical fluid and molten material is pumped into a pressurized container, after which the pressure in the container is released, causing the molecules of the supercritical fluid to rapidly convert to a gas, forming small pockets within the material, expanding the material into a foam that can be used as the heel cushion member 172. In further embodiments, the heel cushion member 172 may be formed using alternative methods known in the art, including the use of an expansion press, an injection machine, a pellet expansion process, a cold foaming process, compression molding techniques, die cutting, or any combination thereof. For example, heel cushioning member 172 may be formed using a process that includes an initial foaming process using a supercritical gas to foam a material, which is then compression molded or die-cut into a particular shape. However, in certain embodiments, heel cushioning member 172 is provided to reduce stress or increase strength in portions of sole structure 104, such as heel region 112. As such, in these embodiments, heel cushioning member 172 has a higher stiffness (e.g., tensile strength or flexural strength) than midsole cushioning member 176.

[0042] The heel cushioning member 172 has a tensile strength of approximately 0.05 grams per cubic centimeter (g / cm 3 ) to approximately 0.30 g / cm 3 or approximately 0.10 g / cm 3 to approximately 0.20 g / cm 3In a further embodiment, the heel cushion member 172 can have a density ranging from about ten (10) Shore A to about fifty (50) Shore A. In a further embodiment, the heel cushion member 172 can be a bladder enclosing a plurality of beads, such as a plurality of spherical or ellipsoidal beads or pellets formed from thermoplastic polyurethane, thermoplastic elastomer, or supercritical foam. For example, the heel cushion member 172 can define an interior cavity (not shown) that receives a pressurized fluid or a plurality of ellipsoidal or spherical beads, such as the hollow space filled with a number of plastic bodies described in PCT Publication No. WO 2017 / 097315, filed December 7, 2015, the entire contents of which are incorporated herein by reference.

[0043] 8 and 18 , the heel support collar 174 may be disposed adjacent to and above the heel cushioning member 172 and adjacent to and below the midsole cushioning member 176. In certain embodiments, the heel support collar 174 may have a shape that mimics the perimeter wall 186 of the heel cushioning member 172. For example, in this particular embodiment, the heel support collar 174 mimics the perimeter wall 186 of the heel cushioning member 172 and is generally U-shaped or horseshoe-shaped. Furthermore, as best shown in FIG. 18 , the outer edge 188 of the heel support collar 174 may extend a distance rearward beyond the rear end 190 of the heel cushioning member 172 and the rear end 192 of the midsole cushioning member 176. The heel support collar 174 may be formed from a thermoplastic material, such as a thermoplastic polyurethane, a thermoplastic elastomer, or a thermoplastic olefin. Additionally, in certain embodiments, heel support collar 174 can have a hardness ranging from about ten (10) Shore A to about ninety (90) Shore A. In some embodiments, heel support collar 174 can have a hardness or stiffness value that is greater than the hardness or stiffness value of heel cushion member 176.

[0044] Sole structure 104 also typically includes a midsole cushioning member 176, which may be adjacent to and overlying outsole 162 in the forefoot region 108 and adjacent to and overlying heel cushioning member 172 in the heel region 112 of footwear 100. Sole structure 104 may also include recesses 194, 196 (see FIGS. 15 and 16 ) that contact, embed, or encapsulate at least a portion of plate 170 and heel cushioning member 172, as discussed further herein. Further, as described herein, the midsole cushioning member 176 has a portion of the plate 170, e.g., its rear segment 179, vertically above the midsole cushioning member 176 in the heel region 112 (see FIG. 18 ), and a portion of the plate 170, e.g., its arch segment 200 and / or toe segment 202 (see FIGS. 10 and 12 ), vertically below the midsole cushioning member 176 in the midfoot region 110 and / or forefoot region 108 of the article of footwear 100 (see FIG. 18 ). In this embodiment, the midsole cushioning member 176 may also include a recess 196 in the heel region 112 (see FIG. 14 ) that cooperates with the rear segment 179 of the plate 170 and defines its shape and size. For example, in this particular embodiment, the upper surface 206, which may be the strobe board 114, may include the recess 196.

[0045] 14-16 , the midsole cushioning member 176 may include an upper surface 206 that is the strobe board 114 having a recess 196 in the heel region 112 that follows the rear segment 179 of the plate 170. The midsole cushioning member 176 may further include a bottom surface 207 that has a recess 194 in the forefoot region 108 and midfoot region 110 of the article of footwear 100 that follows the toe segment 202 and arch segment 200 of the plate 170. Further, the opening 178 is adjacent to a front end 208 of the recess 196, i.e., the end of the recess 196 closest to the toe tip 152 of the article of footwear 100, and adjacent to a rear end 209 of the recess 194, i.e., the end of the recess 194 closest to the heel tip 116 of the article of footwear 100.

[0046] In some embodiments, the sidewalls may partially surround a portion of the periphery of the midsole cushioning member 176 to define a cavity that helps support and retain the foot. For example, in this particular embodiment, the midsole cushioning member 176 includes sidewalls that form a rim around the heel region 112 and at least a portion of the midfoot region 110 of the article of footwear 100, which can act to support the foot as it moves during use of the article of footwear 100. For example, in this particular embodiment, the midsole cushioning member 176 includes sidewalls that form a rim around the heel region 112 and at least a portion of the midfoot region 110 of the article of footwear 100, which can act to support the foot as it moves during use of the article of footwear 100.

[0047] Midsole cushioning member 176 can be constructed from EVA, its copolymers, or similar types of materials. For example, in some embodiments, midsole cushioning member 176 can be an ESS material, EVA foam (e.g., PUMA® ProFoam Lite™, IGNITE Foam), polyurethane, polyether, olefin block copolymer, thermoplastic material (e.g., thermoplastic polyurethane, thermoplastic elastomer, thermoplastic polyolefin, etc.), or supercritical foam. Like heel cushioning member 172, midsole cushioning member 176 can be a single polymeric material or a blend of materials, such as EVA copolymer, thermoplastic polyurethane, polyether block amide (PEBA) copolymer, and / or olefin block copolymer. Additionally, midsole cushioning member 176 can be formed from a supercritical foaming process, in which a supercritical gas, such as CO2, N2, or a mixture thereof, is used to foam a material, such as EVA, TPU, TPE, or a mixture thereof. In such embodiments, midsole cushioning member 176 can be manufactured using a process carried out in an autoclave, an injection molding machine, or any sufficiently heated / pressurized vessel capable of processing the mixture of a supercritical fluid (e.g., CO, N, or mixtures thereof) with a preferably molten material (e.g., TPU, EVA, polyolefin elastomer, or mixtures thereof). For example, in an exemplary process, a solution of supercritical fluid is mixed with the molten material. This mixture is pumped or injected into a pressurized vessel, after which the pressure in the vessel is released, causing the molecules of the supercritical fluid to rapidly convert to a gas and form small pockets within the material, allowing the material to expand into a foam that can be used as midsole cushioning member 176. In further embodiments, midsole cushioning member 176 can be formed using alternative methods known in the art, including the use of an expansion press, an injection machine, a pellet expansion process, a low-temperature foaming process, compression molding techniques, die cutting, or any combination thereof.In certain embodiments, midsole cushioning member 176 may be formed using a process that includes an initial foaming process using a supercritical gas to foam a material, and a second step of compression molding or die-cutting the foamed material into a particular shape. For example, midsole cushioning member 176 may be formed using a process that includes an initial foaming process using a supercritical fluid to foam a material, and a second step of compression molding the foamed material to form concave surfaces 194, 196 on top and bottom surfaces 206, 207 of midsole cushioning member 176, respectively.

[0048] In certain embodiments, the midsole cushioning member 176 is provided to provide sufficient cushioning to the sole structure 104. The midsole cushioning member 176 has a resistance of about 0.05 g / cm 3 to approximately 0.20 g / cm 3 in the range of 0.10 g / cm 3 to approximately 0.20 g / cm 3 In a further embodiment, the midsole cushioning member 176 may have a hardness ranging from about ten (10) Shore A to about fifty (50) Shore A. In a further embodiment, the midsole cushioning member 176 may comprise a plurality of beads, e.g., thermoplastic It may also be a bladder containing a plurality of spherical or elliptical beads or pellets formed from plastic polyurethane, thermoplastic elastomer, or supercritical foam. For example, midsole cushioning member 176 may define an interior cavity (not shown) that receives a pressurized fluid or a plurality of elliptical or spherical beads, such as the hollow space filled with a plurality of plastic bodies described in PCT Publication No. WO2017 / 097315, filed December 7, 2015, which is incorporated herein by reference in its entirety.

[0049] 8 and 18 , sole structure 104 may include a plate 170, or multiple plates, disposed therein. In particular embodiments, plate 170 may be disposed adjacent outsole 162 and between the outsole and midsole cushioning member 176 in the forefoot region 108 of footwear 100, such that plate 170 is vertically below midsole cushioning member 176 in the forefoot region 108 of footwear 100 and / or vertically below midsole cushioning member 176 in the midfoot region 110 of footwear 100. Additionally, as mentioned above, midsole cushioning member 176 includes recess 194 into which plate 170 can fit or seat, such that midsole cushioning member 176 at least partially surrounds plate 170. Plate 170 also extends through opening 178; more particularly, a rear segment 179 of plate 170 extends through opening 178. Thus, in this embodiment, at least a portion of rear segment 179 is disposed above midsole cushioning member 176. Additionally, recess 196 in midsole cushioning member 176 may partially surround rear segment 179 of plate 170. In this particular embodiment, recess 196 in midsole cushioning member 176 completely surrounds and encloses rear segment 179 such that the upper surface of plate 170 is flush with upper surface 206 of midsole cushioning member 176 (see FIG. 18 ).

[0050] 9-13 are diagrams illustrating a footwear plate or plate 170 that can be incorporated into article of footwear 100. Fig. 9 shows a top perspective view of plate 170, Fig. 10 shows a top view of plate 170, Fig. 11 shows a bottom view of plate 170, Fig. 12 shows a side view of plate 170, and Fig. 13 shows another top view of plate 170 with the skeletal structure of a left foot superimposed thereon.

[0051] Plate 170 can be defined by a rear segment 179, an arch segment 200, and a toe segment 202. With reference to FIGS. 10 and 18 , rear segment 179, when incorporated into article of footwear 100, may correspond to a portion of plate 170 that extends through at least heel region 112 and is positioned near a rear portion of the foot, including the heel or calcaneus, ankle, or Achilles tendon. Arch segment 200 of plate 170 is proximate and adjacent to rear segment 179 and corresponds to a portion of plate 170 located near midfoot region 110 of article of footwear 100 that wraps around the arch of the foot and, together with the instep, wraps around the instep. The toe segment 202 of the plate 170 is adjacent to and adjacent to the arch segment 200 and corresponds to the portion of the plate 170 located near the forefoot region 108 of the article of footwear 100 that encompasses the portion of the foot including the toes, the ball of the foot, and the joints connecting the metatarsals to the toes or phalanges (i.e., the metatarsophalangeal joints).

[0052] As shown in FIGS. 9-13, the toe segment 202 of the plate 170 may also include a bifurcation 210 that bifurcates the toe segment 202 into a first toe segment 212 on the lateral side of the plate 170 and a second toe segment 214 on the medial side of the plate 170. In this embodiment, the bifurcation 210 may be defined by an inner wall 216 of the first toe segment 212 and an inner wall 218 of the second toe segment 212 and may be generally curved or parabolic. As shown in FIG. 13, the first toe segment 212 may support the fourth and fifth toes or phalanges, and the second toe segment 214 may support the first and second toes or phalanges, as discussed further herein. In alternative embodiments, the sizes of the first toe segment 212, the second toe segment 214, and the bifurcation 210 may vary. As a result, the first toe segment 212 and / or the second toe segment 214 can individually support any one of the toes or phalanges, as described later herein.

[0053] As best shown in FIG. 10 , the plate 170 may also be defined by a first end 220 that is the distal end of the second toe segment 214 and a second end 222 that is the distal end of the rear segment 179. In this embodiment, the plate 170 may also include a third end 224 that is the distal end of the first toe segment 212. In these embodiments, the length L1 of the plate 170 may be defined by the distance between the first end 220 and the second end 222 and may be equal to or less than the length of the midsole cushioning member 176. The plate 170 may include a lateral side 226 and a medial side 228 that extend between the first end 220 and the second end 222. The distance between the lateral side 226 and the medial side 228 may define a width of the plate 170, e.g., width W1, which may vary between the first end 220 and the second end 222 of the plate 170.

[0054] 10 , the medial side 228 begins at the first end 220 and curves outward along the toe segment 202 toward the arch segment 200. Proximate the arch segment 200, the medial side 228 curves inward toward the posterior segment 179, at which point the medial side 228 extends in a straight line toward the second end 222. The lateral side 226 begins at the second end 224 and curves to curve outward along the toe segment 202 toward the arch segment 200. Proximate the arch segment 200, the lateral side 226 curves inward toward the posterior segment 179, at which point the lateral side 226 extends in a straight line toward the second end 222.

[0055] Referring to FIG. 12 , plate 170 may also be defined by a curved portion 250 that extends through the forefoot region 108 and midfoot region 110 of footwear 100 and a flat portion 252 that extends through the heel region 112 of footwear 100 to second end 222. Flat portion 252 is generally within 10 degrees or within 5 degrees of horizontal relative to a ground contact surface, or reference plane 254 (see FIG. 12 ), when plate 170 is placed on footwear 100. Flat portion 252 may also have a height H1 relative to reference plane 254. In some embodiments, height H1 may range from approximately 1 millimeter to approximately 50 millimeters. In other embodiments, height H1 may range from approximately 5 millimeters to approximately 35 millimeters, or from approximately 10 millimeters to approximately 20 millimeters.

[0056] Continuing with reference to FIG. 12 , the curved portion 250 may include one or more radii of curvature. For example, in this embodiment, the curved portion 250 includes a front curved portion 256, a central curved portion 258, and a back curved portion 260, each having a radius of curvature. The front curved portion 256 may extend between the first end 220 and an apex 262, which in this embodiment is the location along the plate 170 where the plate 170 meets the reference plane 254. The central curved portion 258 may be adjacent to the front curved portion 256 and may extend between the apex 262 and a transition point 264, which is defined as the location along the plate where the angle of the plate 170 relative to the reference plane 254 changes. For example, in this embodiment, the angle of the curved portion 250 relative to the reference plane 254 increases at the transition point 264. The back curved portion 260 is adjacent to the central curved portion 258 and extends from the transition point 264 to the flat portion 252 of the plate 170.

[0057] 12 , the forward curved portion 256, the central curved portion 258, and the rear curved portion 260 may be defined by lengths L2, L3, and L4 and angles A1, A2, and A3, respectively. Length L2 is measured along the reference plane 254 between the apex 262 and the front end 220 of the plate 170, length L3 is measured along the reference plane 254 between the apex 262 and the transition point 264, and length L4 is measured along the reference plane 254 between the transition point 264 and the front end 266 of the rear segment 179 of the plate 170. As further shown in FIG. 12 , the rear segment 179 or flat portion 252 can have a length L5 measured from its front end 266 to the second end 222. In some embodiments, length L2 may be approximately ten percent (10%), 20%, 30%, or 40% of the overall length L1 of plate 170, length L3 may be approximately 10%, 20%, 30%, 40%, 50%, or 60% of the overall length L1 of plate 170, length L4 may be approximately 10%, 20%, 30%, 40%, 50%, or 60% of the overall length L1 of plate 170, and length L5 of flat portion 179 may be approximately 10%, 20%, 30%, or 40% of the overall length L1 of plate 170. In another embodiment, curved portion 250 may not include transition point 264 such that plate 170 includes only a forward portion 256 extending from apex 262 to a front end 220 of plate 170 and a rear portion (not shown) extending from apex 262 to a front end 266 of rear segment 179. In such an embodiment, the length of the rear portion may be approximately equal to the sum of length L3 and length L4.

[0058] As previously mentioned, the forward curve 256, the central curve 258, and the rear curve 260 of the plate 170 can be defined by angles A1, A2, and A3, respectively. The angle A1 of the forward curve 256 can be defined as the angle at which the forward portion 256 extends from the apex 262 toward the front end 220. Or, stated differently, the angle A1 can be defined as the angle between the reference plane 254 and a linear plane 268 extending between the apex 262 and the front end 220. The angle A1 can be in the range of about 3 degrees to about 45 degrees, or in the range of about 5 degrees to about 20 degrees, or in the range of about 10 degrees to about 20 degrees.

[0059] Similarly, angle A2 of central curve 258 can be defined as the angle at which central curve 258 extends from apex 262 toward rear segment 179 of plate 170. Or, stated differently, angle A2 can be defined as the angle between reference plane 254 and a second linear plane 270 extending between apex 262 and transition point 264. Angle A2 can be a value in the range of about 3 degrees to about 45 degrees, or in the range of about 5 degrees to about 20 degrees, or in the range of about 10 degrees to about 20 degrees. In some embodiments, angle A2 of central curve 258 and angle A1 of front curve 268 are substantially equal to one another.

[0060] Angle A3 of the rear curve 260 can be defined as the angle at which the rear curve 260 extends toward the rear segment 179 and can be defined as the angle between the reference plane 254 and a third linear plane 272 extending between the transition point 264 and the front end 266 of the rear segment 179 of the plate 170. Angle A3 can be a value in the range of about 5 degrees to about 70 degrees, or in the range of about 20 degrees to about 50 degrees, or in the range of about 30 degrees to about 50 degrees. In some embodiments, angle A3 of the rear curve 260 is greater than angles A1, A2 of the central curve 258 and the front curve 256.

[0061] Plate 170 can be formed from a thermoplastic material, such as a thermoplastic polyurethane, a thermoplastic elastomer, or a thermoplastic olefin. However, in certain embodiments, plate 170 can be formed from a composite or one or more layers of fibers, such as carbon fiber, aramid fiber, boron fiber, glass fiber, natural fiber, and polymer fiber, or a combination thereof. In these embodiments, the fibers can be affixed or bonded to a substrate or thermoplastic material, such as a thermoplastic polyurethane, a thermoplastic polyolefin, or a thermoplastic elastomer, by stitching or adhesive.

[0062] In some embodiments, one or more materials of plate 170 can have a stiffness (e.g., tensile strength) defined by Young's modulus. For example, in certain embodiments, one or more materials forming plate 170 may have a Young's modulus of at least about 25 gigapascals (GPa), at least about 40 GPa, or at least about 70 GPa, or at least about 85 GPa, or at least about 200 GPa. In further embodiments, one or more materials forming plate 170 may have a Young's modulus in the range of about 25 GPa to about 200 GPa, or in the range of about 25 GPa to about 80 GPa, or in the range of about 25 GPa to about 70 GPa, or in the range of 50 GPa to about 75 GPa. In some embodiments, plate 170 and its stiffness can be selected and designed for a particular user. For example, the stiffness of plate 170 can be selected based on the muscle strength, tendon flexibility, or joint flexibility of a particular user. In further embodiments, the stiffness of plate 170 can be varied such that one portion of plate 170 is stiffer compared to another portion of plate 170. For example, when a user pronates, the medial second toe segment 214 of plate 170 may be stiffer than the first toe segment 212, arch segment 200 (or individually, central curve 258 and / or posterior curve 260), and rear segment 179 of plate 170. For example, when a user pronates, the medial second toe segment 214 of plate 170 may be stiffer than the first toe segment 212, arch segment 200 (or individually, central curve 258 and / or posterior curve 260), and rear segment 179 of plate 170. In other embodiments, if additional support is needed in the arch or midfoot region 110 of the footwear article 100, the arch portion 200 of the plate 170 (or, individually, the central curve portion 258 and / or the rear curve portion 260) may be stiffer than the toe segment 202 and rear segment 179 of the plate 170.Essentially, it is contemplated that the first toe segment 212, the second toe segment 214, the arch portion 200 (or, individually, the central curve portion 258 and / or the rear curve portion 260), and the rear segment 179 may each have an individual stiffness within the aforementioned ranges, and that may be greater or less than the stiffness of other segments of the plate 170. In alternative embodiments, the stiffness of the plate 170 may be uniform and constant between the first toe segment 212, the second toe segment 214, the arch portion 200, and the rear segment 179.

[0063] Plate 170 can also have a uniform or substantially uniform thickness in the range of about 0.5 millimeters (mm) to about 3.0 mm, or in the range of about 0.5 mm to about 2.0 mm, or in the range of about 0.7 mm to about 1.0 mm. In other embodiments, plate 170 can have a non-uniform thickness or a thickness that varies across plate 170. For example, similar to the stiffness of the plate 170, the thickness of the first toe segment 212 may be different from the thickness of the second toe segment 214, the arch segment 200 (or, individually, the central curve 258 and / or the rear curve 260), and / or the rear segment 179; the second toe segment 214 may be different from the thickness of the first toe segment 214, the arch segment 200, and / or the rear segment 179; the arch segment 200 may be different from the thickness of the first toe segment 212, the second toe segment 214, and / or the rear segment 179; or the rear segment 179 may have a different thickness than the thickness of the first toe segment 212, the second toe segment 214, and / or the arch segment 200. Essentially, the thickness of the first toe segment 212, the second toe segment 214, the arch segment 200, or the rear segment 179 can be individually selected as the plate 170 is formed. In certain embodiments, the thickness of the plate 170, and its regions, can be selected for a particular user and their particular muscle strength, tendon flexibility, or joint flexibility. In these embodiments, the thickness of the plate 170 and the individual thicknesses of its segments 179, 200, 212, 214 can range from about 0.5 mm to about 3.0 mm, or from about 0.5 mm to about 2.0 mm, or from about 0.7 mm to about 1.0 mm.

[0064] 13 , the first toe segment 212 can be positioned proximate to and support the fourth distal and / or fourth proximal phalanges 300 and the fifth distal and / or fifth proximal phalanges 302. In this manner, the characteristics of the first toe segment 212 can be tailored to provide an optimal or desired amount of support, resilience, or spring force to these particular regions of the user's foot. Additionally, the second toe segment 214 can be positioned proximate to and support the first distal and / or first proximal phalanges 304 and the second distal and / or second proximal phalanges 306. In this manner, the characteristics of the first toe segment 212 can be tailored to provide an optimal or desired amount of support, resilience, or spring force to these particular regions of the user's foot. The arch segment 200 may be positioned adjacent to and support the first metatarsal 308, the second metatarsal 310, the third metatarsal 312, the fourth metatarsal 314, and / or the fifth metatarsal 316, as well as the cuboid 318, the navicular 320, and / or the cuneiform 322, e.g., the lateral cuneiform, the intermediate cuneiform, and the medial cuneiform. In this manner, the characteristics of the arch segment 200 can be tailored to provide an optimal or desired amount of support, resilience, or spring force to these particular regions of the user's foot. Finally, the rear segment 179 can provide support proximate the heel or calcaneus 324 of the user's foot, and the characteristics of such rear segment 179 may be tailored to provide an optimal or desired amount of support, resilience, or spring force to these particular regions of the user's foot. For example, when a runner performs a forefoot strike, i.e., when the runner places the weight of impact on the toes and ball of the foot (e.g., the distal and / or proximal phalanges 300-306), the majority of the user's weight and force may be applied to the first toe segment 212 and the second toe segment 214 of the plate 170 when running. As such, the first toe segment 212 and the second toe segment 214 may be designed to provide the necessary stiffness to support the user's foot when running, thereby reducing energy dissipation. Additionally, in this embodiment, the arch segment 200 and rear segment 179 of plate 170 can be constructed from lightweight materials since minimal weight or force is applied to these areas, resulting in less support being needed in these particular areas for runners with forefoot strikes. Alternatively, if the runner has a heel strike or midfoot strike, the first toe segment 212, second toe segment 214, arch segment 200, and rear segment 179 can be constructed from rigid materials to provide support to the user's foot throughout the stride and during contact with the ground.

[0065] In other embodiments, as described further herein, the size and shape of the plate 170 can be varied to provide desired support and structure to the wearer's foot. For example, in this particular embodiment, the first toe segment 212 may have a width W2 (see FIG. 10 ). Width W2 can be defined as the distance between the outer surface 226 of the plate 170 and the inner walls 216, 218 of the fork 210 on the third distal end 224 of the plate 170. Additionally, the second toe segment 214 may have a width W3 defined as the distance between the inner side 228 of the plate 170 and the inner wall 218 of the fork 210. Additionally, the fork 210 may have a width W4 defined as the distance between the first toe segment 212 and the second toe segment 214. In some embodiments, as discussed further herein, the width W4 of the bifurcation portion 210 may be increased and the widths of the first toe segment portion 212 and the second toe segment portion 214 may be decreased (see, for example, FIGS. 19 and 20).

[0066] In some embodiments, widths W2, W3 can be, individually, in the range of about 2.5 millimeters (mm) to about 100 mm, or in the range of about 5 mm to about 50 mm, or in the range of about 10 mm to about 30 mm, or in the range of about 15 mm to about 30 mm, or in the range of about 20 mm to about 30 mm, or in the range of about 25 mm. Additionally, width W4 of branch 210 can be in the range of about 2.5 mm to about 100 mm, or in the range of about 5 mm to about 50 mm, or in the range of about 10 mm to about 30 mm, or in the range of about 15 mm to about 30 mm, or in the range of about 20 mm to about 30 mm, or in the range of about 30 mm to about 70 mm, or in the range of about 30 mm to about 50 mm, or in the range of about 35 mm to about 45 mm.

[0067] 19 and 20 provide a sole structure 400 according to a second embodiment of the present disclosure. In this embodiment, the sole structure 400 includes an outsole 402, a midsole cushioning member 404, and a plate 406. Furthermore, while FIGS. 19 and 20 illustrate only the sole structure 400, it should be understood by those skilled in the art that the sole structure 400 can be connected to an upper, such as the upper 102, to form an article of footwear. Accordingly, an embodiment of the upper 102 combined with the sole structure 400 can be envisioned, where the upper 102 is attached to the sole structure 400 and, together with the sole structure 400, can define an internal cavity into which a foot can be inserted.

[0068] The configuration of sole structure 400 is substantially similar to sole structure 104, except that sole structure 400 does not include heel cushioning member 172 and heel support collar 174, but rather includes an outsole 402, a midsole cushioning member 404, and a plate 406 having a first toe segment portion 408 and a second toe segment portion 410.

[0069] As previously discussed herein, the width W2 of the first toe segment 212, the width W3 of the second toe segment 214, and the width W4 of the bifurcation 210 may vary depending on and are dependent upon the desired support needed for the sole structure 104. For example, if relatively little support is needed on the lateral side 124 of the sole structure 104 and relatively little support is needed on the medial side 126 of the sole structure 104, the width W2 of the first toe segment 212 and the width W3 of the second toe segment 214 may be narrower, while the width W4 of the bifurcation 210 may be wider. For example, with particular reference to Figures 10 and 20, the width of the first toe segment 408 is less than the width W2 of the first toe segment 212, the width of the second toe segment 410 is less than the width W3 of the second toe segment 410, and the width of the branch 412 is greater than the width W4 of the branch 210.

[0070] 21 illustrates a sole structure 450 including a midsole cushioning member 452, a plate 454, and an outsole 456 according to a third embodiment of the present disclosure. While FIG. 21 illustrates only the sole structure 450, it should be understood that the sole structure 450 can be connected to an upper, such as the upper 102, to form an article of footwear. Thus, one can envision an aspect of the upper 102 combined with the sole structure 450, where the upper 102 is attached to the sole structure 450 and, together with the sole structure 450, can define an interior cavity into which a user's foot can be inserted.

[0071] In this embodiment, the midsole cushioning member 452 may be adjacent to and located on the outsole 456 in the forefoot region, midsole region, and heel region. The midsole cushioning member 452 may include a recess 458 that communicates with the plate 454. In other words, the recess 458 of the midsole cushioning member 452 may embed, encapsulate, or surround at least a portion of the plate 170. In this manner, the recess 458 of the midsole cushioning member 452 may also define the shape and size of the plate 170.

[0072] As mentioned above, sole structure 450 can also include plate 454 disposed therein. In certain embodiments, plate 454 can be disposed adjacent to and between outsole 456 and midsole cushioning member 452 in a forefoot region of the article of footwear such that plate 454 is vertically directly below midsole cushioning member 452 in the forefoot region of the article of footwear and / or vertically directly below midsole cushioning member 452 in the midfoot region of the article of footwear. In other words, plate 454 can be disposed between midsole cushioning member 452 and outsole 456 in the forefoot and / or midfoot regions. Further, in this particular embodiment, the depth of recess 458 in the forefoot region is less than the depth of recess 458 in the heel region of sole structure 450. As a result, plate 454 is disposed within recess 458 in the forefoot region of sole structure 450 upon assembly, but extends therefrom so that outsole 456 interlocks with or contacts plate 454 in the forefoot region. However, because the depth of the recess 458 in the heel region is greater than the thickness of the plate 454, in this embodiment, the midsole cushioning member 452 completely surrounds the plate 454, and a gap (not shown) exists between the plate 454 and the outsole 456 when assembled.

[0073] In this embodiment, plate 454 can also be defined by a rear segment 460, an arch segment 462, and a toe segment 464. When assembled therein, rear segment 460 can extend through at least a portion of the heel region of sole structure 450 and can correspond to a portion of plate 454 located near the rear of the foot, including the heel or calcaneus, ankle, or Achilles tendon. Arch portion 462 of plate 454 is proximate and adjacent to rear segment 460 and corresponds to a portion of plate 454 located near the midfoot region of the footwear that, along with the instep, encases the arch of the foot. Toe segment 464 of the plate is proximate and adjacent to arch segment 462 and corresponds to a portion of the foot including the toes, the ball of the foot, and the joints connecting the metatarsals to the toes or phalanges (i.e., the metatarsophalangeal joints).

[0074] The toe segment 464 of the plate 454 may also include a bifurcation 466 that bifurcates the toe segment 464 into a first toe segment portion 468 on the outside of the plate and a second toe segment portion 470 on the inside of the plate 454 .

[0075] 21 , the arch portion 462 can also be curved or bowed such that the toe segment 464 has a relative position below the arch portion 462 and / or the rear segment 460 of the plate 454 when the plate 454 is placed in the sole structure 450. In other words, when assembled, the toe segment 464 of the plate 454 is closer to the outsole 456 than the rear segment 460 of the plate 454, and the rear segment 460 of the plate 454 is closer to the top surface (not shown) of the insole or midsole cushioning member 452 than the toe segment 464 of the plate 454. In these embodiments, the arch portion 462 curves upward toward the relatively flat rear segment 460. In certain embodiments, the rear segment 460 is substantially flat and approximately horizontal to within 10 degrees or within 5 degrees of the ground or a reference plane when the plate 454 is placed in the sole structure 450. However, unlike sole structures 104, 400, midsole cushioning member 452 does not include an opening through which a portion of plate 454 extends, such that no portion of plate 454 is above midsole cushioning member 452. Rather, the entire length of plate 454 is below midsole cushioning member 452 in this embodiment and is disposed between midsole cushioning member 452 and outsole 456.

[0076] As discussed above in connection with FIGS. 1-21 , the toe portion of the plate 170, 406, 454, e.g., the toe segment 202, 464, can be modified to change the support of the sole structure 104, 400, 450, and thus the support provided to the forefoot region of the user's foot. Similarly, in alternative embodiments, the rear portion of the plate 170, 406, 454, e.g., the rear segment 179, 460, can be modified to change or optimize the support provided to the heel region of the sole structure 104, 400, 450. In other words, the rear segment of the plate 170, 406, 454 can be modified to increase or decrease support to the heel region of the user's foot. For example, FIGS. 22 and 23 illustrate additional embodiments of sole structure 500 (see FIG. 22 ) and sole structure 600 (see FIG. 23 ) in which the rear portion of the plate is modified to provide optimized support to the heel region of the article of footwear.

[0077] With reference to Figure 22, sole structure 500 can include midsole cushioning member 502, plate 504, heel cushioning member 506, and outsole 508. With reference to Figure 23, sole structure 600 can include upper midsole cushioning member 602, plate 604, lower midsole cushioning member 606, heel support collar 608, and outsole 610. In these embodiments, as with the previous embodiments, Figures 22 and 23 illustrate only sole structures 500, 600, but it should be understood that sole structures 500, 600 can be connected to an upper, such as upper 102, to form an article of footwear.

[0078] 22 and 23, the sole structure 500, 600 includes a plate 504, 604 having a branch 510, 610 that branches a toe portion into a first toe segment 512, 612 lateral to the plate 504, 604 and a second toe segment 514, 614 medial to the plate 504, 604, and a second branch 516, 616 that branches a rear portion into a first rear segment 518, 618 lateral to the plate 504, 604 and a second rear segment 520, 620 medial to the plate 504, 604. In these embodiments, the second branch 516, 616 may be defined by an inner wall 522, 622, which may be generally curved or parabolic. In some embodiments, the size of the first rear segment 518, 618 and / or the second rear segment 520, 620 can provide support to the heel region of the sole structure 500, 600.

[0079] Further, similar to plate 170 of sole structure 104, plates 504, 604 may include a flat portion and a curved portion having a front curved portion, a central curved portion, and / or a rear curved portion. For example, as shown in FIG. 23 , plate 604 may include a flat portion 624 and a curved portion having a front curved portion 626, a central curved portion 628, and a rear curved portion 630. Lower midsole cushioning member 606 may include a support surface 632 that protrudes upwardly from an upper surface 634 of lower midsole cushioning member 606. In this embodiment, support surface 632 contacts or engages the lower surfaces of flat portion 624, rear curved portion 630, and central curved portion 628.

[0080] 24-26 show another sole structure 700 including a midsole cushioning member 702, a plate 704, and an outsole 706 according to another aspect of the present disclosure. In this particular embodiment, the plate 704 includes a base 708 and medial and lateral arms 710, 712. Additionally, the midsole cushioning member 702 may include an opening 714 through which the base 708 extends. For example, as shown in FIGS. 25 and 26, the base 708 may be folded onto itself and inserted through the opening 714. When the base 708 is inserted through the opening 714, the base 708 is positioned within the recess 716.

[0081] FIG. 27 illustrates a top view of plate 800 according to another embodiment of the present disclosure, which may be characterized and defined in a manner similar to plate 170 described above. Additionally, FIGS. 28-35 illustrate an article of footwear 802, or sole structure 804 thereof, including plate 800. Article of footwear 802 or sole structure 804 thereof may include upper midsole cushioning member 806, heel support collar 808, plate 800, lower midsole cushioning member 810, outsole 812, and upper 813 in accordance with yet another aspect of the present disclosure. Similar to the embodiments described herein above, plate 800 may be defined by rear segment 814 (see FIG. 30), arch segment 816 (see FIG. 30), and toe segment 818 (see FIG. 30). With continued reference to FIG. 30, rear segment 814, when incorporated therein, may extend through at least the heel region of article of footwear 802 and may correspond to the portion of plate 800 positioned near the rear of the foot, as described herein above. Arch segment 816 of plate 800 is adjacent to and adjacent to rear segment 814 and corresponds to the portion of plate 800 located near the midfoot region of footwear 802 that encases the arch of the foot along with the instep. Toe segment 818 of plate 800 is adjacent to and adjacent to arch segment 816 and corresponds to the portion of plate 800 that is positioned near the forefoot region of footwear 802.

[0082] Similar to plate 170, toe segment 818 of plate 800 may also include a bifurcation 820 that bifurcates toe segment 818 into a first toe segment 822 on the lateral side of plate 800 and a second toe segment 824 on the medial side of plate 800. First toe segment 822, second toe segment 824, and bifurcation 820 may have similar characteristics to first toe segment 212, second toe segment 214, and bifurcation 210. For example, first toe segment 822, second toe segment 824, and bifurcation 820 may have widths equal to widths W2, W3, and W4, respectively, as previously described herein. As best shown in FIG. 27 , the plate 800 may also be defined by a first end 826 that is the distal end of the second toe segment 824, a second end 828 that is the distal end of the rear segment 814, and a third end 830 that is the distal end of the first toe segment 822. The length L6 of the plate 800 may be defined by the distance between the first end 826 and the second end 828 and may be equal to or less than the length of a midsole, such as the upper midsole cushioning body 806 of the article of footwear. The plate 800 may include a lateral side 832 and a medial side 834 that extend between the first end 826 and the second end 828. The distance between the lateral side 832 and the medial side 834 may define a width W5 of the plate 800, which may vary between the first end 826 and the second end 828 of the plate 800.

[0083] 27 , the medial side 834 begins at the first end 826 and curves outward along the toe segment 818 toward the arch segment 816. Proximate the arch segment 816, the medial side 834 curves inward toward the posterior segment 814, at which point the medial side 834 curves outward again. The lateral side 832 begins at the third end 830 and curves outward along the toe segment 818 toward the arch segment 816. Proximate the arch segment 816, the lateral side 832 curves inward toward the posterior segment 814, at which point the lateral side 832 curves outward again.

[0084] 30 , plate 800 may also include a curved portion 816 that extends through the forefoot and midfoot regions of article of footwear 802, and a flat region 814 that extends through the heel region of article of footwear 802 to a second end 828. When plate 800 is placed within article of footwear 802, flat region 814 is substantially flat and approximately horizontal to within 10 degrees or within 5 degrees of the ground.

[0085] Similar to plate 170, toe segment 818 and curved portion 816 can have one or more radii of curvature. For example, in this embodiment, curved portion 816 can have an angle similar to rear curved portion 256, and toe segment 818 can have an angle similar to middle curved portion 256 and / or rear curved portion 260. Toe segment 818 and curved portion 816 can each be defined by a length, such as length L7 or L8, and an angle, such as angles A1, A2, and / or A4, as described above. Rear segment 814 can also be defined by a length L9, similar to length L5.

[0086] As previously described herein, plate 800, or plate 170, 406, 454, 504, 604, 704, may be formed from a thermoplastic material, such as a thermoplastic polyurethane, a thermoplastic elastomer, or a thermoplastic olefin. However, in certain embodiments, plate 800, or plate 170, 406, 454, 504, 604, 704, may be formed from a composite or one or more layers of fibers, such as carbon fiber, aramid fiber, boron fiber, glass fiber, and polymer fiber, or a combination thereof. In these embodiments, the fibers may be affixed or bonded to the substrate or thermoplastic material, such as a thermoplastic polyurethane, a thermoplastic polyolefin, or a thermoplastic elastomer, by stitching or adhesive. In other embodiments, plate 800, or plate 170, 406, 454, 504, 604, 704, may be formed from a unidirectional tape containing carbon fiber, aramid fiber, boron fiber, glass fiber, polymer fiber, or the like.

[0087] In some embodiments, one or more materials of plate 800, or plates 170, 406, 454, 504, 604, 704, can have a stiffness (e.g., tensile strength) defined by Young's modulus. For example, in certain embodiments, one or more materials forming plate 800, or plates 170, 406, 454, 504, 604, 704, can have a Young's modulus of at least about 25 gigapascals (GPa), at least about 40 GPa, or at least about 70 GPa, or at least about 85 GPa, or at least about 200 GPa. In further embodiments, one or more materials forming plate 800 can have a Young's modulus in the range of about 25 GPa to about 200 GPa, or in the range of about 25 GPa to about 80 GPa, or in the range of about 25 GPa to about 70 GPa, or in the range of about 50 GPa to about 75 GPa. In some embodiments, plate 800, or plate 170, 406, 454, 504, 604, 704, and its stiffness may be selected and designed for a particular user. For example, the stiffness of plate 800, or plate 170, 406, 454, 504, 604, 704 may be selected based on the user's particular muscle strength, tendon flexibility, or joint flexibility. In further embodiments, the stiffness of plate 800, or plate 170, 406, 454, 504, 604, 704 may be varied such that portions of plate 800, or plate 170, 406, 454, 504, 604, 704 are stiffer than other portions, as described previously herein.

[0088] Plate 800, or plate 170, 406, 454, 504, 604, 704, can also include a uniform or substantially uniform thickness in the range of about 0.5 millimeters (mm) to about 3.0 mm, or in the range of about 0.5 mm to about 2.0 mm, or in the range of about 0.7 mm to about 1.0 mm. In other embodiments, plate 800, or plate 170, 406, 454, 504, 604, 704, can have a non-uniform thickness or a non-uniform thickness that varies throughout plate 800, or throughout plate 170, 406, 454, 504, 604, 704, as previously described herein.

[0089] 30-35, plate 800 may be adjacent to and disposed between upper midsole cushioning member 806 and lower midsole cushioning member 810. Upper midsole cushioning member 806 may include a recess into which plate 800 may fit or seat such that upper midsole cushioning member 806 at least partially encases plate 800. A portion of lower cushioning member 810 may also extend inside the recess of upper cushioning member 806 (see, for example, FIG. 34).

[0090] The upper midsole cushioning member 806 and / or the lower midsole cushioning member 810 may be constructed of EVA, TPU, TPE, combinations thereof, or similar types of materials. For example, in some embodiments, the upper cushioning member 806 and / or the lower cushioning member 810 may be an ESS material, EVA foam (e.g., PUMA® ProForm Lite™, IGNITE foam), polyurethane, polyether, olefin block copolymer, thermoplastic material (e.g., plasticized polyurethane, thermoplastic elastomer, thermoplastic polyolefin, etc.), or supercritical foam. The upper midsole cushioning member 806 and / or the lower midsole cushioning member 810 may be a single polymeric material or a blend, such as an EVA copolymer, a thermoplastic polyurethane, a polyether block amide (PEBA) copolymer, and / or an olefin block copolymer. Additionally, the upper cushioning member 806 and / or the lower midsole cushioning member 810 may be formed from a supercritical foaming process in which a supercritical gas, such as CO, N, or a mixture thereof, is used to foam a material, such as EVA, TPU, TPE, or a mixture thereof. In such embodiments, the upper midsole cushioning member 806 and / or the lower midsole cushioning member 810 may be manufactured using a process carried out in an autoclave, an injection molding machine, or any sufficiently heated / pressurized vessel capable of processing a mixture of a supercritical fluid (e.g., CO, N, or a mixture thereof) and a preferably molten material (e.g., TPU, EVA, a polyolefin elastomer, or a mixture thereof). For example, in an exemplary process, a solution of the supercritical fluid is mixed with the molten material. This mixture is pumped or injected into a pressurized container, after which the pressure in the container is released, causing the molecules of the supercritical fluid to rapidly convert to a gas, forming small pockets within the material, allowing the material to expand into a foam that can be used as upper midsole cushioning member 806 and / or lower midsole cushioning member 810.In further embodiments, the upper midsole cushioning member 806 and / or the lower midsole cushioning member 810 can be formed using alternative methods known in the art, including the use of an expansion press, an injection machine, a pellet expansion process, a cold foam process, compression molding techniques, die cutting, or any combination thereof. In certain embodiments, the upper midsole cushioning member 806 and / or the lower midsole cushioning member 810 can be formed using a process that includes an initial foaming process using a supercritical gas to foam a material, and a second step of compression molding or die-cutting the foamed material into a particular shape. For example, the upper midsole cushioning member 806 and / or the lower midsole cushioning member 810 can be formed using a process that includes an initial foaming process using a supercritical fluid to foam a material, and a second step of compression molding the foamed material to form the concave surface of the upper midsole cushioning member 806.

[0091] In a further embodiment, upper midsole cushioning member 806 and / or lower midsole cushioning member 810 may be a bladder containing a plurality of beads, e.g., a plurality of spherical or ellipsoidal beads or pellets formed from thermoplastic polyurethane, thermoplastic elastomer, or supercritical foam. For example, upper midsole cushioning member 806 and / or lower midsole cushioning member 810 may define an interior void (not shown) that receives a pressurized fluid or a plurality of ellipsoidal or spherical beads, such as the hollow space filled with a plurality of plastic bodies described in PCT Publication No. WO 2017 / 097315, filed December 7, 2015, the entirety of which is incorporated herein by reference.

[0092] Similar to heel support collar 174 of sole structure 104, sole structure 804 can also include heel support collar 808. Heel support collar 808 can be formed from a thermoplastic material, such as a thermoplastic polyurethane, a thermoplastic elastomer, or a thermoplastic olefin. Additionally, in certain embodiments, heel support collar 808 can have a hardness ranging from about ten (10) Shore A to about ninety (90) Shore A. In some embodiments, heel support collar 808 can have a hardness or stiffness value that is greater than the hardness or stiffness value of upper midsole cushioning member 806 and / or lower midsole cushioning member 810.

[0093] 36-38 illustrate another sole structure 900 for an article of footwear. In this embodiment, the sole structure 900 includes an outsole 902, a plate 904, a heel cushioning member 906, a heel support collar 908, and a midsole cushioning member 910.

[0094] In this embodiment, the plate 904 may include a lower base portion 912 that slopes at an angle ranging from approximately 10 degrees to 45 degrees, or from approximately 20 degrees to approximately 30 degrees. In other words, relative to a horizontal plane, the lower base portion 912 of the plate 904 slopes upward as it extends toward the heel region of the sole structure 900. The plate may include an arch, curved portion, or C-shaped rear portion 914 that connects to a flange 916 extending upward from the lower base portion 912. The midsole cushioning member 910 may include an upwardly extending sidewall 918, which may wrap around the sidewall 918 when the sole structure 900 is assembled, as shown in FIG. 36 . Additionally, the heel support collar 908 may be wrapped around the flange 916 of the plate 904 when the sole structure 900 is assembled. Thus, in these embodiments, a portion of the plate 904 may be positioned both above and below the midsole cushioning member 910 at certain locations along the sole structure 900. For example, near the heel region of the sole structure 900, the base 912 of the plate 904 is located below the midsole cushioning member 910 and the flange 916 of the plate 904 is located above the midsole cushioning member 910.

[0095] As previously described herein, plate 904 may be formed from a thermoplastic material such as a thermoplastic polyurethane, a thermoplastic elastomer, a thermoplastic olefin, etc. Essentially, plate 904 may be constructed from similar materials and have similar properties as plates 170, 406, 454, 504, 604, 704, 800 previously described herein.

[0096] The midsole cushioning member 910 can be constructed from materials similar to those of the midsole cushioning member 176. For example, the midsole cushioning member may be constructed from or comprised of EVA, TPU, TPE, combinations thereof, or similar types of materials. Additionally, as described previously herein, the midsole cushioning member 910 may also be formed from a supercritical foaming process using a supercritical gas, e.g., CO2, N2, or a mixture thereof, to foam a material, e.g., EVA, TPU, TPE, or a mixture thereof. In a further embodiment, the midsole cushioning member 910 may be a bladder enclosing a plurality of beads, e.g., a plurality of spherical or elliptical beads or pellets formed from thermoplastic polyurethane, thermoplastic elastomer, or supercritical foam. For example, the midsole cushioning member 910 may define an interior cavity (not shown) for receiving a pressurized fluid or a plurality of elliptical or spherical beads, such as a hollow space filled with a number of plastic bodies, as described previously herein.

[0097] In this embodiment, sole structure 900 can include a heel cushioning member 906, which may be adjacent to and disposed on outsole 902 in the heel region and partially disposed in the midfoot region. In other words, heel cushioning member 906 may be adjacent to outsole 902 and may extend from the heel end of sole structure 900, through the heel region, and partially through the midfoot region. Heel cushioning member 906 may be constructed from ethylene vinyl acetate (EVA), copolymers thereof, or similar types of materials. For example, in some embodiments, heel cushioning member 906 may be an EVA-Solid-Sponge (“ESS”) material, EVA foam (e.g., PUMA® ProFoam Lite™, IGNITE Foam), polyurethane, polyether, olefin block copolymer, thermoplastic material (e.g., plasticized polyurethane, plasticized heat treatment, polyolefin, etc.), or supercritical foam. Heel cushion member 906 may be a single polymeric material or a blend of materials, such as EVA copolymer, thermoplastic polyurethane, polyether block amide (PEBA) copolymer, and / or olefin block copolymer. In a further embodiment, heel cushion member 906 may be a bladder enclosing a plurality of beads, such as a plurality of spherical or elliptical beads or pellets formed from thermoplastic polyurethane, thermoplastic elastomer, or supercritical foam. For example, heel cushion member 906 may define an interior cavity (not shown) that receives pressurized fluid or a plurality of elliptical or spherical beads, as previously described herein.

[0098] Similar to heel support collar 174, sole structure 900 can include a heel support collar 908 disposed over midsole cushioning member 900. Heel support collar 908 can be formed from a thermoplastic material, such as a thermoplastic polyurethane, a thermoplastic elastomer, or a thermoplastic olefin.

[0099] Any of the embodiments described herein can be modified to include any of the structures or methodologies disclosed in connection with different embodiments. Similarly, materials or construction techniques other than those disclosed above may be substituted or added in some embodiments in accordance with known approaches. Furthermore, the present disclosure is not limited to the types of footwear specifically shown. Furthermore, aspects of any of the footwear embodiments disclosed herein can be modified to work with any type of footwear, apparel, or other athletic equipment.

[0100] As noted above, while the present disclosure has been described above with reference to particular embodiments and examples, those skilled in the art will appreciate that the present disclosure is not necessarily so limited, and that numerous other embodiments, examples, uses, modifications, and departures from the embodiments, examples, and uses are intended to be encompassed by the claims appended hereto.

Claims

1. Upper and a sole structure integrated with an upper having a forefoot region, a midfoot region, and a heel region, the sole structure comprising: Upper midsole cushioning member a lower midsole cushioning member; an outsole coupled to a bottom surface of the lower midsole cushioning member; a plate disposed between the upper midsole cushioning member and the lower midsole cushioning member, the upper midsole cushioning member has a recess in the heel region; the plate is configured to fit into the recess, and the upper midsole cushioning member partially surrounds the plate; A portion of the lower midsole cushioning member extends into the recess. Footwear items.

2. The article of footwear of claim 1 , wherein the plate includes a curved portion and a flat portion.

3. 3. The article of footwear of claim 2, wherein the curved portion includes a forward curved portion extending through at least the forefoot region of the article of footwear and a rearward curved portion extending through the midfoot region of the article of footwear and at least a portion of the heel region of the article of footwear.

4. The article of footwear of claim 3 , wherein the plate is formed from carbon fiber.

5. The article of footwear according to claim 4 , wherein the front curved portion includes a divided first segment and a divided second segment.

6. The article of footwear of claim 5 , wherein the sole structure further includes a heel support structure in the heel region of the article of footwear.

7. 7. The article of footwear of claim 6, wherein the heel support structure is formed from thermoplastic polyurethane.

8. 8. The article of footwear of claim 7, wherein the upper midsole cushioning member and the lower midsole cushioning member are foam.

9. 9. The method of claim 8, wherein the foam material is formed from a material selected from the group consisting of ethylene vinyl acetate, thermoplastic polyurethane, thermoplastic elastomer, and mixtures thereof. Footwear items.

10. 10. The article of footwear of claim 9, wherein the foam is formed in a process using nitrogen or carbon dioxide in a supercritical state.

11. The article of footwear according to claim 10, wherein the minimum width of the front curved portion is greater than the minimum width of the rear curved portion, and the minimum width of the flat portion is greater than the minimum width of the rear curved portion.

12. 12. The article of footwear of claim 11, wherein the front curve is inclined at an angle in the range of about 5 degrees to about 45 degrees relative to a reference plane.

13. 13. The article of footwear of claim 12, wherein the rear curve is inclined at an angle in the range of about 3 degrees to about 45 degrees relative to a reference plane.

14. 14. The article of footwear of claim 13, wherein the flat portion is inclined at an angle in the range of about 0 degrees to about 5 degrees relative to a reference plane.

Citation Information

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