Sole structure for a sport shoe
09901137 ยท 2018-02-27
Assignee
Inventors
Cpc classification
A43B13/186
HUMAN NECESSITIES
A43B13/12
HUMAN NECESSITIES
International classification
A43B13/12
HUMAN NECESSITIES
Abstract
A sole structure for a sport shoe can increase accelerating force during activities and achieve quick movements. A sole assembly 1 for an indoor shoe includes a sole body 2 formed of a soft elastic member and a plate-like member or planar sheet member 3 that is disposed at a position under the first to fourth distal phalanx DP.sub.1-DP.sub.4 of the wearer's foot on a foot sole contact surface 2A of the sole body 2, and that has a higher hardness than that of the sole body 2. The plate-like member 3 extends arcuately substantially in the foot width direction along the toes of the wearer's foot and has a narrow part 3C of a short length in the foot length direction, or a spacing gap, at a region between the first toe and the second toe.
Claims
1. A sole structure for a sport shoe adapted to be worn on a person's foot, wherein said sole structure comprises: a sole body formed of a soft elastic member, having a top surface and a bottom surface opposite one another; an outsole that is disposed on said bottom surface of said sole body and that is adapted to come into contact with a ground surface on which the sport shoe is supported; and first and second planar sheet members that are embedded in said top surface of said sole body; wherein: said planar sheet members have a hardness greater than a hardness of said soft elastic member of said sole body; said planar sheet members are disposed forwardly away from a position corresponding to metatarsophalangeal joints of the person's foot; said first planar sheet member is configured and disposed to overlap below a position corresponding to a first distal phalanx of the person's foot; and said second planar sheet member is configured and disposed to overlap below positions corresponding to second to fourth distal phalanges of the person's foot.
2. The sole structure according to claim 1, wherein said hardness of said planar sheet members is from 45D to 75D on the Asker D hardness scale.
3. The sole structure according to claim 1, wherein a top surface of said planar sheet members is exposed upwardly from said top surface of said sole body.
4. The sole structure according to claim 3, wherein said top surface of said planar sheet members is flush with said top surface of said sole body.
5. The sole structure according to claim 1, wherein said planar sheet members are configured and disposed so as not to extend below positions corresponding to second to fourth proximal phalanges of the person's foot.
6. The sole structure according to claim 1, wherein said planar sheet members are configured and disposed so as not to extend below a position corresponding to a fifth phalanx of the person's foot.
7. The sole structure according to claim 1, wherein said planar sheet members are configured and disposed only on a forward distal side of positions corresponding to respective longitudinal Centers of first to fourth proximal phalanges of the person's foot.
8. The sole structure according to claim 1, wherein said planar sheet members are spaced inwardly away from an outer peripheral edge of said sole body.
9. The sole structure according to claim 1, wherein said first and second planar sheet members are joined together as a unitary component by a connecting portion that forms a narrowed neck with a reduced dimension in a longitudinal direction of said sole structure in comparison to adjoining portions of said first and second planar sheet members.
10. The sole structure according to claim 1, wherein said planar sheet members respectively extend to an outer peripheral edge of said sole body.
11. The sole structure according to claim 10, further comprising an upraised portion that is connected to and extends upwardly from said planar sheet members at said outer peripheral edge.
12. The sole structure according to claim 11, wherein said upraised portion is a toe guard of said sole structure.
13. The sole structure according to claim 1, wherein said first and second planar sheet members are separated and spaced apart from one another in a transverse direction of said sole structure.
14. The sole structure according to claim 1, wherein said sole body includes a midfoot region, a forefoot medial side, a forefoot lateral side, a heel medial side and a heel lateral side, wherein said midfoot region has a first rigidity between said forefoot medial side and said heel lateral side, and a second rigidity between said forefoot lateral side and said heel medial side, and wherein said first rigidity is lower than said second rigidity.
15. The sole structure according to claim 1, wherein said sole structure and the sport shoe are configured and adapted for use in an indoor sport.
Description
BRIEF DESCRIPTION OF DRAWINGS
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BEST MODE FOR CARRYING OUT THE INVENTION
(14) Embodiments of the present invention will be hereinafter described in accordance with the appended drawings.
First Embodiment
(15)
(16) As shown in
(17) On the foot sole contact surface or top surface 2A of the sole body 2, there is formed an upraised portion 2B that rises upwardly (i.e. out of the pages of
(18) The sole body 2 is formed of a soft elastic material, more specifically, thermoplastic resin such as ethylene-vinyl acetate copolymer (EVA) and the like, foamed thermoplastic resin, thermosetting resin such as polyurethane (PU) and the like, foamed thermosetting resin, rubber materials such as butadiene rubber, chloroprene rubber and the like, or foamed rubber materials. A hardness of the sole body 2 is set at, for example 45-75 C (in the Asker C scale). In this embodiment, formed EVA is used for the sole body 2 and its hardness is set at 55 C (?4 C for a tolerance).
(19) Additionally, a planar sheet member or plate-like member 3 is provided at a position corresponding to toes of the foot on the foot sole contact surface or top surface 2A of the sole body 2. The planar sheet member or plate-like member 3 is preferably embedded into the foot sole contact surface 2A and a top surface of the plate-like member 3 is preferably flush with the foot sole contact surface 2A. As shown in
(20) More specifically, as shown in
(21) The plate-like member 3 is formed of a hard elastic material which has a higher hardness than that of the sole body 2, more specifically, thermoplastic resin such as ethylene-vinyl acetate copolymer (EVA) and the like, thermosetting resin such as polyurethane (PU) and the like, rubber materials such as butadiene rubber, chloroprene rubber and the like. A hardness of the plate-like member 3 is set at 45-75 D (in the Asker D scale) in the case of the resin material for the plate-like member 3, or 60-80 A (in the Asker A scale) in the case of the rubber material for the plate-like member 3. In this embodiment, a hard EVA sheet is used for the plate-like member 3 and its hardness is set at 80 A (?3 A for a tolerance), which is higher than the hardness 55 C of the sole body 2.
(22) As shown in
(23) As shown in
(24) The wavy corrugated sheet 6 is preferably formed of a hard elastic material, more specifically, thermoplastic resin such as thermo plastic polyurethane (TPU), polyamide elastomer (PAE), acrylonitrile-butadiene-styrene (ABS) resin and the like, or thermosetting resin such as epoxy resin, unsaturated polyester resin and the like. In addition, the wavy corrugated sheet 6 may be formed of fiber reinforced prastics (FRP) formed of reinforcing fibers such as carbon fibers, aramid fibers, glass fibers or the like and matrix resin such as thermosetting resin or thermoplastic resin.
(25) As shown in
(26) By forming the rib 60 in the wavy corrugated sheet 6, with regard to a rigidity of the midfoot region M of the sole body 2, the midfoot rigidity between the forefoot medial side and the heel lateral side of the sole body 2 is made lower than the midfoot rigidity between the forefoot lateral side and the heel medial side of the sole body 2, thus allowing for ease of pronation of the midfoot region M of the sole body 2. Moreover, with regard to the rigidity of the midfoot region M of the sole body 2, the midfoot rigidity between the forefoot medial side and the heel medial side of the sole body 2 is made lower than the midfoot rigidity between the forefoot lateral side and the heel lateral side of the sole body 2, thus further allowing for ease of pronation of the midfoot region M of the sole body 2.
(27) There is provided a toe guard 7 on the foot sole contact surface or top surface 2A at a toe portion of the sole body 2. The toe guard 7 extends upwardly and arcuately along the toe. The toe guard 7 includes protruded portions 7A and 7B each having a bonding part that is bonded to the top of the sole contact surface or top surface 2A. The protruded portions 7A, 7B are disposed on the medial and lateral sides of the sole body 2, respectively.
(28) The toe guard 7 is formed of a hard material including thermoplastic resin such as thermoplastic polyurethane, nylon and the like. As shown in
(29) Next, in order to verify effects of the present embodiment, volleyball shoes employing the sole structure according to the present embodiment were prepared. Professional volleyball players wore the shoes and actually spiked a ball with their shoes on. Then, a foot pressure distribution and load (thus, center of foot pressure) transfer path were measured. Prior to measurement, a sock liner (or insole) with sensors for foot pressure measurement attached was inserted into each of the shoes. For comparison, the players wore the conventional volleyball shoes as well, spiked a ball similarly with their shoes on, and then the foot pressure distribution and load (i.e. center of foot pressure) transfer path were also measured.
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(32) In either case of
(33) As mentioned above, in the sole structure 1 of the present embodiment, foot pressures at the time of activities are smoothly concentrated on the forefoot region and transfer of the foot pressures to the forefoot region is promptly conducted. It is considered that this is because formation of the rib 60 in the wavy corrugated sheet 6 allows for ease of pronation of the midfoot region M of the sole body 2. Also, the ground reaction force against the toes (especially, the first and second toes) is increased. It is considered that this is due to provision of the plate-like member 3 of high hardness on the foot contact surface 2A of the sole body 2. In this manner, as the ground reaction force increases, accelerating force during activities can be increased. Thereby, one can quickly move onto for example, a dash, sidestep, jumping and the like that require a push-off motion of the toes, and quick movements can thus be achieved.
(34) Then, we conducted an experiment by computer simulation in order to verify the effects of the sole structure 1 of the present embodiment, especially the plate-like member only.
(35) As shown in
(36) As can be seen from
(37) Since the plate-like member 3 is located at the position corresponding to the toes of the foot on the foot sole contact surface 2A of the sole body 2, when the load is applied to the sole body 2 from the toes at the time of activities, a greater repulsion or rebound force can be obtained compared with the case in which the load from the toes is applied directly to the sole body 2 without the plate-like member 3. Thereby, accelerating force can be increased during activities, and as a result, one can quickly move onto for example, a dash, sidestep, jumping and the like that require a push-off motion of the toes. Quick movements can thus be attained. On the other hand, because the plate-like member 3 does not overlap with the metatarsophalangeal joints MP (see
(38) Moreover, according to the present embodiment, since the plate-like member 3 is located right under the first distal phalanx DP.sub.1 to the fourth distal phalanx DP.sub.4, the load at the time of push-off motion of the foot can be effectively transmitted to the plate-like member 3.
(39) According to the present embodiment, as the plate-like member 3 has the narrow part 3C between the first plate-like portion 3A and the second plate-like portion 3B (that is, at the region between the first toe and the second to fourth toes), the region on the first toe side and the region on the second toe side, which are respectively disposed on opposite sides of the region between the first toe and the second toe, are easy to bend respectively in the foot width direction. Thereby, in either case of push-off motion on the first toe side or push-off motion on the fourth toe side, a smooth load (thus, COP: center of foot pressure) transfer can be attained. As a result, quick movements due to an increase of accelerating force at the time of activities can be achieved and at the same time a smooth COP transfer can be attained in either case of push-off motion on the first toe side or on the fourth toe side.
(40) According to the present embodiment, as the toe guard 7 is provided, shifting of the foot at the time of push-off motion can be prevented by the toe guard 7.
Second Embodiment
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(42) The second embodiment differs from the above-mentioned first embodiment in that respective protruding portions 7A, 7B of the toe guard 7 protrude further inwardly than the respective protruding portions 7A, 7B of the toe guard 7 in the first embodiment and the plate-like member 3 in the first embodiment is not provided. In this case, the protruding portion 7A corresponds to the first plate-like portion 3A in the first embodiment and the protruding portion 7B corresponds to the second plate-like portion 3B in the first embodiment. Also, in this case, a member corresponding to the narrow part 3C in the first embodiment is not provided and there is formed a gap between the protruding portions 7A and 7B.
(43) In other words, in this second embodiment, first and second plate-like portions 7A, 7B extend up to the outer circumferential edge portion of the sole body 2 and have the upraised portion 7 extending upwardly around the outer circumferential edge portion. The upraised portion 7 functions as a toe guard.
(44) According to the second embodiment, the region on the first toe side and the region on the second to fourth toe sides are easy to bend respectively in the foot width direction on opposite sides of the gap between the protruding portions 7A and 7B. Thereby, in either case of push-off motion on the first toe side or push-off motion on the fourth toe side, a smooth load (thus, COP: center of foot pressure) transfer can be attained. As a result, quick movements due to an increase of accelerating force at the time of activities can be achieved and at the same time a smooth COP transfer can be attained in either case of push-off motion on the first toe side or on the fourth toe side.
(45) Also, according to the second embodiment, since the protruding portions 7A, 7B, which respectively correspond to the first and second plate-like members 3A, 3B in the first embodiment, are located at the position corresponding to the toes of the foot on the foot sole contact surface 2A of the sole body 2, as with the first embodiment, when the load is applied to the sole body 2 from the toes at the time of activities, a greater repulsion or rebound force can be obtained compared with the case in which the load from the toes is applied directly to the sole body 2. Thereby, accelerating force can be increased during activities, and as a result, one can quickly move onto, for example, a dash, sidestep, jumping and the like that require a push-off motion of the toes. Quick movements can thus be attained.
(46) According to the second embodiment, since the protruding portions 7A, 7B that function as the plate-like member 3 in the first embodiment are located right under the first distal phalanx DP.sub.1 to the fourth distal phalanx DP.sub.4, the load at the time of push-off motion of the foot can be effectively transmitted to the protruding portions 7A, 7B.
(47) According to the second embodiment, in the same manner as the first embodiment, as the toe guard 7 is provided, shifting of the foot at the time of push-off motion can be prevented by the toe guard 7.
(48) As above-mentioned, preferred embodiments of the present invention have been discussed, but application of the present invention is not limited to these embodiments. The present invention includes various variants or alternative embodiments. Some of the alternative embodiments will be mentioned below.
First Alternative Embodiment
(49) In the first embodiment, as the plate-like member 3, a deformed M-shaped member in a planar shape was taken for an example (see
Second Alternative Embodiment
(50) In the first embodiment, an example in which the plate-like member 3 has the narrow part 3C was shown, but the present invention also has application to the plate-like member 3 without the narrow part 3C. In this case, the plate-like member 3 may be formed of an arcuate or band-shaped member that overlaps at least partially with the first to fourth toes (preferably, the first to fourth distal phalanges) and that extends substantially in the foot width direction. Alternatively, the plate-like member 3 may be composed of the first plate-like member 3A and the second plate-like member 3B that is spaced away and separated from the first plate-like member 3A and that overlaps at least partially with the second to fourth toes (preferably, the second to fourth distal phalanges).
Third Alternative Embodiment
(51) In the first embodiment, an example in which the sole body 2 has the toe guard 7 at the front end portion thereof was shown, but the toe guard 7 may be omitted.
Fourth Alternative Embodiment
(52) In the first embodiment, an example was shown in which there is provided the wavy corrugated sheet 6 and formed the rib 60 at the midfoot region of the wavy corrugated sheet 6 and with regard to rigidity of the midfoot region M of the sole body 2 the midfoot rigidity between the forefoot medial side and the heel lateral side of the sole body 2 is made lower than the midfoot rigidity between the forefoot lateral side and the heel medial side of the sole body 2 and also the midfoot rigidity between the forefoot medial side and the heel medial side of the sole body 2 is made lower than the midfoot rigidity between the forefoot lateral side and the heel lateral side of the sole body 2. However, a flat sheet may be substituted for the wavy corrugated sheet 6 and a rib may be formed in the flat sheet. In the alternative, a shank member may be provided at a position corresponding to the rib 60 in the midfoot region M of the sole body 2 in the first embodiment.
Fifth Alternative Embodiment
(53) In the second embodiment, an example was shown in which there is formed the gap between the protruding portion 7A and 7B, but these protruding portions 7A, 7B may be integral with each other without forming the gap. In this case, a narrow part may be formed between the protruding portion 7A and 7B. Alternatively, the protruding portions 7A, 7B may be coupled with each other in an arcuate shape or a band-shape without the narrow part.
INDUSTRIAL APPLICABILITY
(54) As mentioned above, the present invention is of use to a sole structure for a sport shoe, and it is especially suitable for a sport shoe preferred for indoor sports (in particular, ball-game sports) that requires accelerating force during activities and quick movements.