Shoe Having an Air Pump Device with a Spring Element Clasping a Bellows
20180192734 · 2018-07-12
Assignee
Inventors
Cpc classification
A43B13/20
HUMAN NECESSITIES
A43B13/185
HUMAN NECESSITIES
International classification
Abstract
A shoe has an air pump device for blowing air into the interior of a shoe comprising a bellows formed in the sole structure and surrounding a cavity, an intake channel for transporting air from an intake opening into the bellows, an air supply device formed in the sole structure for forwarding air from the bellows into the interior of the shoe, and a V-shaped or U-shaped spring element which clasps the bellows. An upper leg of the spring element comprises an upper pressure plate arranged above the bellows and below an insole of the sole structure, and a lower leg comprises a lower pressure plate arranged under the bellows and above an outsole layer, so that a connecting section that connects the two legs is arranged beside the bellows in the sole structure. The air pump device is arranged in such manner that when the sole structure is placed under load during a walking movement, the spring element is deformed elastically by pressing the pressure plates together, wherein the deformation takes place substantially at or close to the connecting section, so that the pressure plates substantially keep their shape, and the bellows is compressed.
Claims
1. A shoe having a sole structure and at least one air pump device for blowing air into an interior of the shoe, said air pump device comprising: a bellows made from an elastic plastic material, formed in the sole structure and surrounding a cavity, an intake channel for transporting air from an intake opening into the bellows, and an air supply device formed in the sole structure for forwarding air from the bellows into the interior of the shoe for ventilating a user's foot within said interior, said air pump device comprising a V-shaped or U-shaped spring element which clasps the bellows, an upper leg of the spring element comprising an upper pressure plate arranged above the bellows and below an insole of the sole structure, and a lower leg of the spring element comprising a lower pressure plate arranged under the bellows and above an outsole layer of the sole structure, so that a connecting section of the spring element that connects to the two legs is arranged beside the bellows in the sole structure, and said air pump device being arranged in such a manner that when the sole structure is placed under load by the weight of the wearer of the shoe during a walking movement, the spring element is deformed elastically by pressing the pressure plates together, wherein the deformation takes place substantially at or close to the connecting section, so that the pressure plates above and below the bellows substantially keep their shape, and the bellows arranged between the pressure plates is compressed, wherein the bellows of the air pump device is arranged in a heel area of the shoe, and the spring element extends substantially over the entire area of the heel area, wherein the connecting section is arranged in a joint area of the shoe and/or in an peripheral area of the heel area adjacent to the joint area, wherein at least one stabilizer spring element is arranged next to the bellows on both sides of the bellows at an inner side and an outer side of the shoe, respectively, wherein each of the stabilizer spring elements is connected to lateral peripheral areas of the upper and lower pressure plates in such a manner that it can be compressed elastically when the pressure plates are pressed together, and wherein the elasticity of the stabilizer spring elements arranged on both sides of the shoe is adjusted such that they are pressed together to approximately the same degree when load on the sole structure due to the weight of the wearer of the shoe during a running motion causes them to be pressed together, which has the effect of counteracting a rotation of the upper pressure plate with respect to the lower pressure plate about an axis parallel to the lengthwise direction of the shoe.
2. (canceled)
3. The shoe according to claim 1, wherein the spring element comprises a support section formed on the connecting section in the opposite direction to the legs, so that the spring element is Y-shaped, wherein the support section protrudes into the joint area of the shoe to no more than about 10 mm before reaching a ball-of-the-foot area within a forefoot area.
4. (canceled)
5. The shoe according to claim 3, wherein each of the stabilizer spring elements is connected to lateral peripheral areas of the upper and lower pressure plate in torsion-resistant manner such that a relative movement of the upper and lower pressure plates in the lateral directions is prevented or at least impeded.
6. The shoe according to claim 5, wherein the stabilizer spring elements arranged on both sides of the bellows are connected to each other via a bridge arranged on the rear edge of the heel area.
7. The shoe according to claim 5, wherein the stabilizer spring elements each comprise at least one V-shaped or U-shaped spring section, which is arranged in such a manner that the legs thereof move closer to one another when the stabilizer spring elements are compressed.
8. The shoe according to claim 3, wherein the lateral peripheral areas of the upper and lower pressure plates, to which the stabilizer spring elements are connected, form bearing surfaces for respective upper and lower ends of the stabilizer spring elements.
9. A shoe having a sole structure and at least one air pump device for blowing air into an interior of the shoe, said air pump device comprising: a bellows made from an elastic plastic material, formed in the sole structure and surrounding a cavity, an intake channel for transporting air from an intake opening into the bellows, and an air supply device formed in the sole structure for forwarding air from the bellows into the interior of the shoe, said air pump device comprising a V-shaped or U-shaped spring element which clasps the bellows, an upper leg of the spring element comprising an upper pressure plate arranged above the bellows and below an insole of the sole structure, and a lower leg of the spring element comprising a lower pressure plate arranged under the bellows and above an outsole layer of the sole structure, so that a connecting section of the spring element that connects to the two legs is arranged beside the bellows in the sole structure, and said air pump device being arranged in such a manner that when the sole structure is placed under load by the weight of the wearer of the shoe during a walking movement, the spring element is deformed elastically by pressing the pressure plates together, wherein the deformation takes place substantially at or close to the connecting section, so that the pressure plates above and below the bellows substantially keep their shape, and the bellows arranged between the pressure plates is compressed, wherein the bellows of the air pump device is arranged in a heel area of the shoe, and the spring element extends substantially over the entire area of the heel area, wherein the connecting section is arranged in a joint area of the shoe and/or in an peripheral area of the heel area adjacent to the joint area, wherein at least one stabilizer spring element is arranged on both sides of the bellows, wherein each of the stabilizer spring elements is connected to lateral peripheral areas of the upper and lower pressure plates in such a manner that it can be compressed elastically when the pressure plates are pressed together, wherein a support section is formed on the connecting section in the opposite direction to the legs, so that the spring element is Y-shaped, wherein the support section protrudes into the joint area of the shoe to no more than about 10 mm before reaching a ball-of-the-foot area within a forefoot area, wherein the lateral peripheral areas of the upper and lower pressure plates, to which the stabilizer spring elements are connected, form bearing surfaces for respective upper and lower ends of the stabilizer spring elements, and wherein the elasticity of the stabilizer spring elements arranged on both sides of the shoe is adjusted such that they are pressed together to approximately the same degree when load on the sole structure due to the weight of the wearer of the shoe during a running motion causes them to be pressed together, which has the effect of counteracting a rotation of the upper pressure plate with respect to the lower pressure plate about an axis parallel to the lengthwise direction of the shoe, wherein the peripheral areas arranged on both sides of the lower pressure plate are each separated from a middle area of the lower pressure plate located below the bellows by a gap which is open towards the back side of the shoe, so that both peripheral areas of the lower pressure plate form separate spring legs, and wherein the middle area of the lower pressure plate projects downwards, so that the pressing together of the bearing surfaces and therewith of the stabilizer spring elements as well does not begin until after the middle area of the lower pressure plate and the upper pressure plate have been pressed together by a predetermined distance.
10. The shoe according to claim 3 or 9, wherein the stabilizer spring elements are fastened detachably or replaceably.
11. The shoe according to claim 3, wherein the stabilizer spring elements include a device for adjusting the spring force.
12. The shoe according to claim 3 or 9, wherein folds are formed in the side walls of the bellows on the open sides of the spring element.
13. The shoe according to claim 3, wherein the intake channel for transporting air from an intake opening to the bellows has a minimum cross sectional area of 3 mm.sup.2, for shoe sizes longer than about 25 cm, a minimum cross sectional area of 4 mm.sup.2.
14. (canceled)
15. The shoe according to claim 1, wherein each of the stabilizer spring elements is connected to lateral peripheral areas of the upper and lower pressure plate in torsion-resistant manner such that a relative movement of the upper and lower pressure plates in the lateral directions is prevented or at least impeded.
16. The shoe according to claim 1 or 15, wherein the stabilizer spring elements arranged on both sides of the bellows are connected to each other via a bridge arranged on the rear edge of the heel area.
17. The shoe according to claim 1 or 15, wherein the stabilizer spring elements each comprise at least one V-shaped or U-shaped spring section, which is arranged in such a manner that the legs thereof move closer to one another when the stabilizer spring elements are compressed.
18. The shoe according to claim 1, wherein the lateral peripheral areas of the upper and lower pressure plates, to which the stabilizer spring elements are connected, form bearing surfaces for respective upper and lower ends of the stabilizer spring elements.
19. A shoe having a sole structure and at least one air pump device for blowing air into an interior of the shoe, said air pump device comprising: a bellows made from an elastic plastic material, formed in the sole structure and surrounding a cavity, an intake channel for transporting air from an intake opening into the bellows, and an air supply device formed in the sole structure for forwarding air from the bellows into the interior of the shoe, said air pump device comprising a V-shaped or U-shaped spring element which clasps the bellows, an upper leg of the spring element comprising an upper pressure plate arranged above the bellows and below an insole of the sole structure, and a lower leg of the spring element comprising a lower pressure plate arranged under the bellows and above an outsole layer of the sole structure, so that a connecting section of the spring element that connects to the two legs is arranged beside the bellows in the sole structure, and said air pump device being arranged in such a manner that when the sole structure is placed under load by the weight of the wearer of the shoe during a walking movement, the spring element is deformed elastically by pressing the pressure plates together, wherein the deformation takes place substantially at or close to the connecting section, so that the pressure plates above and below the bellows substantially keep their shape, and the bellows arranged between the pressure plates is compressed, wherein the bellows of the air pump device is arranged in a heel area of the shoe, and the spring element extends substantially over the entire area of the heel area, wherein the connecting section is arranged in a joint area of the shoe and/or in an peripheral area of the heel area adjacent to the joint area, wherein at least one stabilizer spring element is arranged on both sides of the bellows, wherein each of the stabilizer spring elements is connected to lateral peripheral areas of the upper and lower pressure plates in such a manner that it can be compressed elastically when the pressure plates are pressed together, and wherein the elasticity of the stabilizer spring elements arranged on both sides of the shoe is adjusted such that they are pressed together to approximately the same degree when load on the sole structure due to the weight of the wearer of the shoe during a running motion causes them to be pressed together, which has the effect of counteracting a rotation of the upper pressure plate with respect to the lower pressure plate about an axis parallel to the lengthwise direction of the shoe, wherein the lateral peripheral areas of the upper and lower pressure plates, to which the stabilizer spring elements are connected, form bearing surfaces for respective upper and lower ends of the stabilizer spring elements, and wherein the peripheral areas arranged on both sides of the lower pressure plate are each separated from a middle area of the lower pressure plate located below the bellows by a gap which is open towards the back side of the shoe, so that both peripheral areas of the lower pressure plate form separate spring legs, and wherein the middle area of the lower pressure plate projects downwards, so that the pressing together of the bearing surfaces and therewith of the stabilizer spring elements as well does not begin until after the middle area of the lower pressure plate and the upper pressure plate have been pressed together by a predetermined distance.
20. The shoe according to claim 1 or 19, wherein the stabilizer spring elements are fastened detachably or replaceably.
21. The shoe according to claim 1, wherein the stabilizer spring elements include a device for adjusting the spring force.
22. The shoe according to claim 1 or 19, wherein folds are formed in the side walls of the bellows on the open sides of the spring element.
23. The shoe according to claim 1, wherein the intake channel for transporting air from an intake opening to the bellows has a minimum cross sectional area of 3 mm.sup.2, for shoe sizes longer than about 25 cm, a minimum cross sectional area of 4 mm.sup.2.
24. The shoe according to claim 1, wherein folds are formed in the side walls of the bellows on the open sides of the spring element.
25. The shoe according to claim 24, wherein the spring element comprises a support section formed on the connecting section in the opposite direction to the legs, so that the spring element is Y-shaped, wherein the support section protrudes into the joint area of the shoe to no more than about 10 mm before reaching a ball-of-the-foot area within a forefoot area.
Description
[0021] In the following, the invention will be explained in greater detail with reference to preferred exemplary embodiments represented in the drawings. In the drawings:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] A first preferred exemplary embodiment of the shoe 1 according to the invention is shown in
[0032] The air pump device of the shoe 1 shown in
[0033] Bellows 4 is clasped by a V-shaped spring element 9, which in the embodiment shown here is Y-shaped (see
[0034] As is particularly evident in
[0035] As is shown in
[0036] As is shown in
[0037] The V-shaped spring element 9 has a connecting section 14 which connects upper leg 10 and lower leg 11 to each other. The V-shaped spring element 9 is deformed by pressing together pressure plates 13 and 12, this deformation taking place essentially at connecting section 14 or in those areas of legs 10 and 11 that are located close to connecting section 14. In this process, the pressure plates substantially retain their shape, so that pressure plates 12 and 13 press against the upper side and the underside of the bellows over the largest area possible. Pressure plates 12 and 13 should not be deformed in those areas where they act on the upper side or underside of bellows 4 in such a manner that bellows 4 can no longer be pressed together over the entire horizontal extension thereof. In particular, a pointwise pressing-in of pressure plates 12 and 13 should be avoided. The V-shaped spring element 9 also has a support section 19 which serves to brace and stabilize the position of the V-shaped spring element 9 inside a sole structure, particularly inside a soft intermediate layer of the sole structure. As may be seen in
[0038] The V-shaped spring element 9 is produced from an elastically resilient material, an elastic plastic material, for example, particularly a thermoplastic elastic material such as a fiber-reinforced polyamide (e.g., nylon) or a polyether block amide (e.g., VESTAMID or PEBAX). In a preferred embodiment, the V-shaped spring element is made from a carbon fiber reinforced composite material. The plastic bladder that surrounds the cavity of bellows 4 is manufactured from a polypropylene or a polyurethane for example. The air pump device with bellows, V-shaped spring element 9, air supply device and intake channel is preferably embedded in a supple elastic (compressible) plastic material of an intermediate layer of the sole structure (intermediate sole 38). The outsole layer 16 attached to the underside of the shoe is made from an abrasion-resistant plastic material. The materials of bellows 4, V-shaped spring element 9 and the intermediate layer of the sole structure and outsole layer 16 are matched to each other and connected to each other in such manner that the materials are hardly detached at all at the boundary surfaces thereof, even under heavy, continuous load. The distribution of forces produced in this process, particularly at spring element 9 is assured by the aforesaid support section 19.
[0039] Besides the bellows 4, the air pump device comprises an intake channel for transporting air from an intake opening 6 into bellows 4 and an air supply device formed in the sole structure for forwarding air from bellows 4 into the interior of shoe 1. These channels are not shown in
[0040] To manufacture the sole structure with air pump device, first for example a plastic bladder of bellows 4 (also called lung) is produced, and this is then inserted between upper leg 10 and lower leg 11 of spring element 9, whereby the stabilizer spring elements are also fastened. Then the entire assembly is overmolded with a soft elastic plastic material (thereby forming an intermediate sole 38), after which the further components of the sole (e.g., outsole layer) may also be overmolded and the upper may be attached adhesively to the insole. Alternatively, a prefabricated air pump device assembled from bellows, intake channel, air supply device, V- or U-shaped spring element and stabilizer spring elements may also be glued together or joined in some other way with a prefabricated intermediate sole or a plurality of prefabricated intermediate sole parts, which may then be followed by attaching the outsole layer and the upper to the insole.
[0041]
[0042] The air pumping function in the shoe 1 according to the invention is explained in greater detail with reference to
[0043]
[0044]
[0045] When the load is then removed from the heel area, the state according to
[0046] During normal running movements, the states shown in
[0047]
[0048] First,
[0049] After the shoe wearer places his weight on the foot, first the middle area 33 of lower pressure plate 13 is moved upward, causing bellows 4 to be compressed, with the result thatas explained with reference to
[0050] Preferred embodiments of the shoe according to the invention have been described with reference to
[0051] Many alternative embodiments are conceivable within the scope of the inventive idea. For example, the division of the lower pressure plate 13 of the V- or U-shaped spring elements 9 into a middle area 33 acting on bellows 4 and two peripheral areas 24 and 25 acting on the stabilizer spring elements may also be omitted, in which case stabilizer spring elements 22, 23 may be constructed in such a manner that they initially counteract a compression with a relatively low force in a first portion of the compression path, and this force increases steadily as the compression proceeds. The V- or U-shaped spring element 9 may comprise multiple different material layers. In other exemplary embodiments, spring element 9 and stabilizer spring elements 22 and 23 may also be constructed as a single part.
[0052] Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the scope and spirit of the invention as defined in the following claims.