The present invention relates to a shoe construction and more particularly to a shoe sole having improved energy return characteristics.
There is a continued interest in improving the performance characteristics of athletic shoes. Much of the recent industry interest continues to relate to the manufacture of footwear having energy return characteristics.
One type of energy return system employs the use of netting or a mesh arrangement in selected portions of the sole construction. For example, U.S. Pat. No. 5,070,629, issued Dec. 10, 1991, discloses an energy return system that includes a rigid frame with a set of monofilaments or fibers secured under tension across the frame. The monofilaments or fibers form a spring-like grid system that stores energy during the compression portions of the gait cycle and releases energy during the push-off phase of the gait cycle. U.S. Pat. No. 5,402,588, issued Apr. 4, 1995, U.S. Pat. No. 5,561,920, issued Oct. 8, 1996, U.S. Pat. No. 5,595,002, issued Jan. 21, 1997, U.S. Pat. No. 5,852,886, issued Dec. 29, 1998, and U.S. Pat. No. 5,974,695, issued Nov. 2, 1999 disclose various improvements to this spring-like energy return system, all of which are herein incorporated by reference in their entirety.
It is an object of the present invention to provide an improved energy return system for a shoe.
In one embodiment of the present invention, an athletic shoe having a transversely extending suspension system designed to resiliently support a foot and deflect downwardly upon foot imposed forces is provided. The athletic shoe has a plurality of independent supports arrayed about the periphery of the suspension system, extending downwardly therefrom. The supports include a ground engaging section and a resilient section intermediate the ground engaging section and the suspension system, and the supports collectively provide a flexible resilient support for the suspension system.
In another embodiment of the present invention, an athletic shoe sole construction is provided. The athletic shoe sole includes a transversely extending suspension system designed to resiliently support a foot and deflect downwardly upon foot imposed forces, and an independent support structure positioned underneath the suspension system. The support structure includes a plurality of ground contacting surfaces extending about the periphery of the heel portion of the shoe sole, and a plurality of resilient sections positioned between the ground contacting surfaces and the suspension system, where deflection of a first resilient section is independent from the deflection of an adjacent second resilient section.
In yet another embodiment of the present invention, an athletic shoe construction having a transversely extending suspension system designed to resiliently support a foot and deflect downwardly upon foot imposed forces is provided. The athletic shoe has a structure supporting the midsole from below, which includes a plurality of pillars arranged around the periphery of the heel portion of the midsole, where a first pillar is constructed and arranged to deflect independently of an adjacent second pillar.
Various embodiments of the invention will now be described, by way of example, with reference to the accompanying drawings, in which:
Aspects of the invention are directed to a shoe sole construction having an energy return system. The energy return system of the present invention includes the use of components in the midsole and/or outsole region that provide both cushioning and energy return characteristics. These components may be selectively employed in the heel, midfoot, and/or forefoot portions to provide the desired energy return characteristics for a particular type of shoe. These components may be especially designed for use in athletic shoes such as walking shoes, cross-training shoes, basketball shoes, and running shoes.
In one embodiment, the design of an athletic shoe sole includes a suspension system designed to resiliently support a foot and deflect upon foot imposed forces. In one embodiment, the shoe sole of the present invention is designed to minimize the amount of material located in the shoe below the suspension system, to maximize the amount of possible deflection of the suspension system. In another embodiment, the shoe sole includes a plurality of independent supports arrayed about the periphery of the suspension system, where the independent supports are arranged to resiliently deflect upon foot imposed forces. In one embodiment, the supports are arranged to deflect independently of an adjacent support to enhance the cushioning and response of the shoe to the foot imposed forces.
The transversely extending suspension system may resiliently support the foot and deflect downwardly in a variety of ways, as the present invention is not limited in this respect. For example, in one embodiment, the suspension system includes a deflectable grid system. The grid system may include a plurality of fibers forming a net, defining an impact absorbing member. The grid system may act like a tennis racquet, absorbing energy into the fibers upon deflection of the grid, releasing the stored energy back into the foot upon the removal of the force. Typically, during a gait cycle, the foot initially contacts the ground in the heel portion of the shoe. When the suspension system is located in the heel portion, this initially increases the foot imposed forces, causing the suspension system to deflect until the force peaks during the gait cycle. Then, as the midfoot and forefoot portions of the foot contact the ground, the foot imposed forces in the heel portion decrease, causing the suspension system to release some of the energy stored in the deflection of the system back into the foot. In one embodiment, the grid may be formed out of a plurality of spaced apart filaments extending in a crisscross pattern. In another embodiment, the grid system may be formed by a molding process, where the grid is formed into parts of the midsole of the shoe. Numerous other approaches to forming a deflectable grid system are discussed in the patents referenced above in the Background section.
In other embodiments, the suspension system may be formed into configurations other than a deflectable grid system. For example, the suspension system may include a taut resilient material acting like a trampoline upon foot imposed forces. In such a design, the resilient material absorbs energy as the material deflects, and it releases the energy back into the foot upon the removal of the force. Further embodiments may employ other resilient materials, such a springs, foams, and/or elastically deformable materials, as the present invention is not limited in this respect.
According to one aspect of the invention, an athletic shoe sole includes a plurality of supports or pillars in the heel portion of the shoe. The pillars may be spaced apart around the periphery of the shoe heel. The pillars may define individual ground engaging surfaces on the sole of the shoe. In one embodiment, the shoe sole includes at least one pillar positioned on the lateral side of the shoe, at least one pillar on the medial side of the shoe, and at least one pillar in the rear portion of the heel. Many conventional shoe soles are designed with only one heel ground engaging surface. However, in one embodiment, each pillar may define a distinct ground engaging surface. In one embodiment, the center of the heel portion is free of pillars to accommodate for the placement of the above-described energy return suspension system.
As will be described in further detail below, the shoe sole construction may be incorporated into various types of athletic shoes. For example, the shoe sole may be used for walking shoes, running shoes, basketball shoes, etc. Additional materials may be incorporated into the midsole and/or outsole to provide further cushioning, support, or stability to the wearer, as the present invention is not limited in this respect.
Turning now to the drawings, and in particular with reference to
As described in more detail below, the suspension system, such as the energy return grid system 40, is incorporated into portions of the shoe positioned above the support pillars 30. The grid system 40 may be made from a plurality of fibers 42 woven into a net, similar to a tennis racquet. In this embodiment, the ends of the fibers may be anchored into a frame as described in some of the patents referenced in the Background section above. Alternatively, the grid system 40 may be molded into a footbed or shank 80 (See
Each support pillar 30 may be formed into a variety of shapes and sizes, as the present invention is not limited in this respect. For example, in one embodiment, the lateral and medial pillars 32, 34 are substantially similar in appearance. As illustrated in
In the embodiment depicted in
As described above, the support pillars 30 may be arranged to resiliently deflect upon foot imposed forces. In one embodiment, each support pillar 30 includes a ground engaging section and a resilient section intermediate the ground engaging section and the suspension system that collectively provide support for the suspension system, while permitting the suspension system to deflect as well. Although these two sections may be formed from the same material, in some embodiments, the ground engaging material is formed from a material that is more rigid that the resilient section of the supports.
Turning to
The shoe sole of the present invention may be made from any number of materials, as the present invention is not limited in this respect. For example, the midsole 50, may be made of EVA (Ethylene Vinyl Acetate), polyurethane, or a combination of the two materials. In one embodiment, the resilient sections of the pillars 30 are also made of EVA, and the shank 80 with the molded grid system 40 is made of TPU (thermoplastic polyurethane). To provide additional cushioning, the pillars may be made of SRC (Super Rebound Compound) which is an EVA/rubber compound. Further, as illustrated in
Having thus described several aspects of at least one embodiment of this invention, it is to be appreciated various alterations, modifications, and improvements will readily occur to those skilled in the art. Such alterations, modifications, and improvements are intended to be part of this disclosure, and are intended to be within the spirit and scope of the invention. Accordingly, the foregoing description and drawings are by way of example only.