Shoe, in particular athletic shoe
10349703 ยท 2019-07-16
Assignee
Inventors
Cpc classification
International classification
Abstract
An athletic shoe, having a shoe upper and a rotary closure for lacing the shoe on the foot of the wearer by at least one tensioning element. The rotary closure is arranged on the instep of the shoe. The rotary closure has a rotatably arranged tension roller and is driven by an electric motor via a transmission. The transmission includes a first spur gear of the first spur gear stage that meshes with a drive pinion of the electric motor, a pinion, connected to the first spur gear in a rotationally fixed manner, that meshes with a second spur gear of a second spur gear stage, wherein the second spur gear is connected to a worm of a worm gear, and the worm meshes with a worm wheel.
Claims
1. A shoe, having a shoe upper, tensioning elements including a first tensioning element and a second tensioning element, and a rotary closure for lacing the shoe on the foot of the wearer by the tensioning elements, wherein the rotary closure has a rotatably arranged tension roller, wherein the rotary closure is driven by an electric motor, and wherein the transfer of the rotational motion of the electric motor to the tension roller occurs via a transmission, wherein the transmission comprises: a first spur gear stage, wherein a spur gear of the first spur gear stage meshes with a drive pinion of the electric motor and wherein a pinion is connected to the spur gear of the first spur gear stage in a rotationally fixed manner, a second spur gear stage with a spur gear, wherein the spur gear of the second spur gear stage meshes with the pinion of the first spur gear stage, a worm gear with a worm connected to the spur gear of the second spur gear stage in a rotationally fixed manner, wherein the worm meshes with a worm wheel, wherein the tension roller is connected to the worm wheel in a rotationally fixed manner, wherein the rotary closure is arranged at an instep region of the shoe, wherein the first tensioning element runs on the lateral side of the shoe upper and wherein the second tensioning element runs on the medial side of the shoe upper, wherein each of the tensioning elements has two ends fixed at the tension roller, wherein the first tensioning element forms a closed curve at the lateral side of the shoe upper and wherein the second tensioning element forms a closed curve at the medial side of the shoe upper, and wherein each of the tensioning elements runs from the tension roller to a first deflection element, which deflects the tensioning element in the bottom region of the shoe upper as well as at a location which is arranged in the region between 30% and 42% of a longitudinal extension, measured from the tip of the shoe.
2. The shoe according to claim 1, wherein the axis of rotation of the tension roller is perpendicular to a surface of the shoe in the instep region.
3. The shoe according to claim 1, wherein the axis of rotation of the electric motor is arranged horizontally and transversal to the longitudinal extension of the shoe.
4. The shoe according to claim 1, wherein the first spur gear stage has a low geared ratio between 1:4 and 1:6.
5. The shoe according to claim 1, wherein the second spur gear stage has a low geared ratio between 1:3 and 1:5.
6. The shoe according to claim 1, wherein the electric motor is connected with a battery, wherein a limiting element is arranged between battery and electric motor by which the supply current for the electric motor can be limited to a maximum value.
7. The shoe according to claim 6, wherein the battery being rechargeable can be supplied with a charge current via an induction coil.
8. The shoe according to claim 1, wherein both curves of both tensioning elements at the lateral side and at the medial side of the shoe upper are designed substantially symmetrically to a center plane of the shoe, wherein the center plane is arranged vertical and along the longitudinal extension of the shoe.
9. The shoe according to claim 1, wherein the each of the tensioning elements runs from the first deflection element to a second deflection element which deflects the tensioning element in the bottom region of the shoe upper as well as at a location which is arranged in the region between 50% and 60% of the longitudinal extension, measured from the tip of the shoe.
10. The shoe according to claim 9, wherein the each of the tensioning elements runs from the second deflection element to a third deflection element, wherein the third deflection element is arranged in the upper region of the shoe upper adjacent to the rotary closure.
11. The shoe according to claim 10, wherein the each of the tensioning elements runs from the third deflection element to a fourth deflection element, which deflects the tensioning element in the bottom region of the shoe upper as well as at a location which is arranged in the region between 55% and 70% of the longitudinal extension, measured from the tip of the shoe.
12. The shoe according to claim 11, wherein the each of the tensioning elements runs from the fourth deflection element to a fifth deflection element, which deflects the tensioning element in a region between 33% and 66% of the total height of the shoe as well as at a location which is arranged in the region between 75% and 90% of the longitudinal extension, measured from the tip of the shoe, wherein the each of the tensioning elements runs from the fifth deflection element to the tension roller.
13. A shoe according to claim 1, wherein the shoe is an athletic shoe.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) In the drawing an embodiment of the invention is shown.
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE INVENTION
(5) In
(6) The lacing of the shoe 1 occurs by means of a rotary closure 3 (i. e. with a central closure), wherein two tensioning elements 4 and 5 are winded by rotating of a tension roller 7 on the tension roller and so the shoe upper 2 is tied at the foot of the wearer of the shoe 1.
(7) The rotary closure 3 is arranged on the instep 6 of the shoe 1. Accordingly, a convenient accessibility to the rotary closure 3 is ensured for the user of the shoe, who must only actuate respective (not depicted) switches for opening and closing of the rotary closure because the rotary closure 3 is operated by an electric motor.
(8) Thereby, the axis of rotation a of the tension roller 7 is perpendicular on the region of the instep 6 of the shoe.
(9) For opening and closing of the rotary closure 3 an electric motor 8 is provided which axis of rotation is directed horizontally and transverse to the longitudinal extension of the shoe. The rotational movement of the electric motor 8 is transmitted via a transmission 9 onto the tension roller 7. The substantial components of the transmission are shown in
(10) Accordingly, the transmission 9 comprises at first a first spur gear stage 10, wherein a spur gear 11 of the first spur gear stage 10 meshes with a drive pinion 12 of the electric motor 8. A pinion 13 which is connected with the spur gear 11 of the first spur gear stage 10 in a rotational fixed manner meshes with a spur gear 14 of a second spur gear stage 15.
(11) The second spur gear stage 15 comprises the spur gear 14 which is connected with a worm 16 of a worm gear 16, 17 in a rotational fixed manner.
(12) The worm 16 of the worm gear 16, 17 meshes with a worm wheel 17, wherein the tension roller 7 is connected with the worm wheel 17 in a rotational fixed manner.
(13) The pinions 12 and 13 respectively have preferably between 10 and 14 teeth. The spur gears 11 and 14 of the first and of the second spur gear stage 10 and 15 respectively have preferably between 50 and 70 teeth.
(14) With regard to
(15) An induction coil 20 is provided for charging of the battery 18 by which energy can be transferred into the battery in a wireless manner.
(16) A first tensioning element 4 is provided for the lateral side L of the shoe upper 2 and a second tensioning element 5 for the medial side M of the shoe upper 2.
(17) As can be seen from the schematic depiction according to
(18) Thus, the closed curve 25 (see
(19) As can be seen from
(20) The first deflection element 26 is thereby arranged in the front region of the shoe, namely at a longitudinal position of the shoe which correlates between 30% and 42% of the total longitudinal extension GL of the shoe, measured from the tip 27 of the shoe. Thereby, the deflection element 26 which is designed as a loop joins substantially in the transition region between the sole 32 and shoe upper 2.
(21) The second deflection element 28 is positioned in such a manner that the tensioning element 4 is guided substantially horizontally from the first deflection element 26 to the rear end (directed to the heel). The longitudinal position of the second deflection element 28 is located at a marking between 50% and 60% of the longitudinal extension GL, again measured from the tip 27 of the shoe.
(22) The tensioning element 4 is guided from the second deflection element 28 upwards in the direction of the rotary closure 3. Below the rotary closure 3 a third deflection element 29 is arranged which deflects the tensioning element 4 substantially by 180 and guides again downwards, namely to a fourth deflection element 30 which is located at a marking between 55% and 70% of the longitudinal extension GL of the shoe.
(23) Finally, the tensioning element 4 is guided from the fourth deflection element 30 to a fifth deflection element 31 which is arranged with respect to its height position at a level between 33% and 66% of the total height of the shoe. With respect to the longitudinal position the fifth deflection element 31 is arranged at a location which lies in a region between 75% and 90% of the longitudinal extension GL, measured from the tip 27 of the shoe. The tensioning element 4 runs then back from the fifth deflection element 31 to the rotary closure 3.
(24) All deflection elements 26, 28, 29, 30 and 31 are designed in the embodiment as bands which are formed to a loop and are fixed at the shoe upper. With respect to the fifth deflection element 31 it can be seen that this runs around the heel region 33 of the shoe 1 and joins at the same respectively.
(25) The two right end regions of the fifth deflection element 31 which can be seen in
(26) The closed curves 25 are designed substantially symmetrical at both sides of the shoe upper 2, namely to a centre plane which is arranged centrally in the shoe 1, which is oriented vertically and which runs in longitudinal direction of the shoe.
(27) By the proposed design the shoe can not only be laced very easy by electromotive rotating of the tension roller 7 by the wearer of the shoe, also the pressure of the tensioning element 4 and 5 is distributed very equally and leads to a homogeneous fit of the shoe 1 at the foot of the wearer.
(28) Thereby, it can be provided that the outermost layer of the shoe upper 2 covers the tensioning element 4 and 5 so that the same are not visible.
LIST OF REFERENCES
(29) 1 Shoe 2 Shoe upper 3 Rotary closure 4 First tensioning element 5 Second tensioning element 6 Instep 7 Tension roller 8 Electric motor 9 Transmission 10 First spur gear stage 11 Spur gear of the first spur gear stage 12 Drive pinion of the electric motor 13 Pinion 14 Spur gear of the second spur gear stage 15 Second spur gear stage 16, 17 Worm gear 16 Worm 17 Worm wheel 18 Battery 19 Limiting element 20 Induction coil 21 End of first tensioning element 22 End of first tensioning element 23 End of second tensioning element 24 End of second tensioning element 25 Curve 26 First deflection element 27 Tip of shoe 28 Second deflection element 29 Third deflection element 30 Fourth deflection element 31 Fifth deflection element 32 Sole 33 Heel region M Medial side of the shoe upper L Lateral side of the shoe upper a Axis of rotation of the tension roller GL Longitudinal extension of the shoe