The present invention is related to shoes and more particularly is directed towards an improved shoe sole having an array of intersecting cells and a shoe sole assembly incorporating this shoe sole as part of the midsole.
A shoe generally consists of two basic parts: an upper and a sole. The upper is generally designed to enclose the foot. The upper is attached to a sole.
The sole typically has two components: the outsole and the midsole. The outsole is the ground-contacting portion of the shoe and which provides the traction during use of the shoe. The various elements comprising the midsole provide protection, cushioning and stability to the foot during use.
Cushioning and stability are factors in the design and construction of shoes. Compressive and shear forces are generated during usage of the shoe, such as when the user is running, walking, or standing.
It is well known in the art that shoe design is one manner in which to reduce stress on the body during running, walking, or standing.
The present invention is a shoe sole comprising an array of elliptical cells, wherein each cell has a wall, and wherein each cell wall is conjoined to or contiguous with at least one other cell wall. The cell wall may be conjoined to another cell wall by a conjoining element. At least some of the cell walls buckle when compressive or shear force is applied during use. The sole is made from any material with elastic properties for this application.
The shoe sole may further comprise an array of elliptical cells wherein each cell has a major axis and a minor axis, the major axis having opposing vertices and the minor axis having opposing co-vertices. The vertices are located at an intersection of the major axis and the cell wall, and the co-vertices are located at an intersection of the minor axis and the cell wall. The cell wall is conjoined to or contiguous with another cell at the vertices or co-vertices.
The shoe sole may further comprise a substrate affixed to an upper level, lower level, or periphery of the array of cells. This substrate may also be made of elastomeric material. The substrate and array of cells can form a unitary piece. Variations can also be made to the height, dimensions and arrangement of the cells.
The present invention also comprises a shoe sole assembly incorporating the above shoe sole as a midsole. This shoe sole assembly comprises an outsole, a midsole seated above the outsole, and a support structure seated about the periphery of the midsole.
The above elements, their combination and their various embodiments, are described below in more detail.
Referring to the drawings, like reference numerals represent identical or corresponding parts throughout the several views of
While the present invention will be described in terms of the preferred embodiment, it will be understood that it is not intended to limit the invention to that specific embodiment. The present invention is intended to cover alternatives, modifications and equivalents as may be included within the spirit and scope of the invention as defined by the claims herein.
Referring to
At least some of the cell walls buckle when compressive or shear force is applied during use. The array of cells is made with any material with elastic properties for this application, which includes materials presently known in the art such as thermoplastic elastomers, thermoplastic polyurethanes, including gelatinous elastomers and materials such as Thermal Plastic Resin (TPR).
Referring to
As can be seen in
Referring to
The upper layer 41 of the elliptical cell walls 22 are of uniform height along a horizontal plane. The elliptical cell walls 22 can also be of varying height. For example, as shown in
The geometry of the cells can be varied by changing the ratio of the major axis 30 to the minor axis 40 of any or all of the cells to create a longer or shorter, wider or narrower cell.
Referring to
The cell walls 22 may also be configured in any number of shapes and geometries other than an ellipse, such as circles, squares, S-shaped, diamond-shaped, parallelogram, or triangular, any combination of such, or any irregular shape, as long as the cell walls are fused, joined or integrated with adjacent cell walls.
In the present embodiment, the cells 21 are arranged in a staggered fashion such as in
These intersecting elliptical cells may also be arranged longitudinally, with the major axis 30 of each cell running parallel to the longitudinal axis of the wearer's foot, as shown in
Referring to
The substrate 60 and its periphery can vary in thickness, from 0.2 to 1.5 inches, and can also vary in width along the longitudinal axis of the wearer's foot. The height of the substrate 60 can also be greater in areas of the foot which are frequently exposed to relatively high levels of ground reaction forces, such as the heel or the ball of the foot. Alternatively, for arch support, the height could be greater in the area substantially corresponding to the arch of the wearer's foot.
In embodiments where the substrate 60 is integrated with or affixed to the upper level 41 of the array of cell walls, this substrate 60 forms the part of where the wearer's foot rests, such as the insole, which can be covered with any suitable material such as fabric, leather, vinyl foam, polyurethane or the like. Alternatively, this substrate 60 can also form the outsole of the shoe, with an outer sole surface which is the ground-contacting surface.
The substrate 60 can be made from the same material as the elastomeric cell walls 22, or from any material with elastic properties which include those presently known in the art such as by way of example, various elastomers which include thermoplastic elastomers, thermoplastic polyurethanes, gelatinous elastomers, and TPR. Alternatively, it could also be made from rubber if this substrate 60 is also the shoe outsole comprising the ground-contacting surface of the shoe.
The shoe sole 20 may be manufactured using any appropriate technique and methodology known in the field, such as, by way of example, compression molding, thermoforming, or extrusion molding. The preferred method, however, is injection molding.
Referring now to
Referring to
The heel portion 100 has an elliptical heel region 101 with a plurality of projections 102. Similarly, the forefoot portion 200 has an elliptical heel region 201 with a plurality of projections 202. These projections aid in traction and gripping the ground surface during use of the shoe. In various embodiments, these projections may be in the form of cleats, which include metal, plastic or hard rubber pieces. These projections may also be configured in any number of shapes such as, by way of example, rounded, arcuate, triangular, square, rectangular, oval, or diamond-shaped.
As shown in
The support structure 80 is typically made of blown plastic foam such as, by way of example, polyurethane foam or EVA. Higher-density foam materials are preferred for added support.
The above-described integrated array of cells facilitates the attenuation of ground reaction forces by distribution of shear or compressive forces through enhanced instability. This instability is achieved through buckling of the cell walls 22, as described below.
Specifically, in the operation of the shoe sole assembly 50 of the present invention, the wearer of the shoe places weight on the shoe by standing, walking, running, or jumping. Various forces, such as compressive and shear forces, are created by such usage. These forces are transmitted from ground contact, upon heel strike to forefoot stance, to the shoe sole components. When shear or compressive forces are transmitted from the outer sole surface 90, to the outsole 70, then to the midsole 20 comprising an array of intersecting elliptical cells made of elastomeric material, the elliptical cell walls 22 buckle. This buckling of the cell walls 22 upon ground contact by the user disperses the shear and/or compressive forces to adjoining cell walls, which dispersal is facilitated by the presence of intersecting cell walls. This is believed to result in distribution of shear and compressive forces by the enhanced instability of the midsole provided by this array of intersecting cell walls.
The present invention can be used in any use or application of footwear.
Moreover, this disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size and arrangement of parts, within the principle of the invention, to the full extent indicated by the broad general meaning of the terms in which the claims herein are expressed.