Automatic lacing mechanism
11134753 ยท 2021-10-05
Assignee
Inventors
Cpc classification
A43D2200/10
HUMAN NECESSITIES
International classification
A43D11/00
HUMAN NECESSITIES
Abstract
An automatic lacing mechanism automatically laces between two shoe pieces, and includes a clamping module, a positioning module, a shoelace-running module, and a shoelace-arranging module. The clamping module is adapted to fixedly clamp shoe pieces. The positioning module is adapted to position the shoe pieces prior to the shoe pieces are fixedly clamped, so that the clamping module could firmly clamp the shoe pieces. The shoelace-running module is adapted to run the shoelace through the lace eyelets on the shoe pieces. The shoelace-arranging module is adapted to change the direction of the shoelace during lacing. The positioning module has two positioning pins, wherein a distance therebetween is adjustable, and therefore the positioning module is suitable for the positioning of footwear having different distances between its lace eyelets, which could make the automatic lacing process smoother.
Claims
1. An automatic lacing mechanism for automatically lacing a shoelace between two shoe pieces, comprising: a positioning module comprising a first moving unit and two positioning pins, wherein the first moving unit is adapted to move the positioning pins in and out of two lace eyelets on one of the shoe pieces, and a distance between the positioning pins is adjustable; a clamping module comprising a fixed plate and a movable plate, wherein the movable plate is operable to approach or leave the fixed plate, when the movable plate approaches the fixed plate, the clamping module is adapted to fixedly clamp one of the shoe pieces; when the movable plate is away from the fixed plate, the clamping module is adapted to release said shoe piece; furthermore, the positioning pins of the positioning module exits the lace eyelets when said shoe piece is clamped; a shoelace-running module adapted to run the shoelace through the lace eyelets of the shoe pieces; and a shoelace-arranging module adapted to change a running direction of the shoelace.
2. The automatic lacing mechanism of claim 1, further comprising a controller, which is adapted to be used to input parameters to automatically adjust the distance between the positioning pins of the positioning module.
3. The automatic lacing mechanism of claim 2, wherein the positioning module comprises a casing, a power source, and a sliding block; the casing is provided with a chute on a lateral side thereof; the power source and the controller are electrically connected; the sliding block is disposed in the casing, and is drivable by the power source to rectilinearly reciprocate; a part of the sliding block passes through the chute and protrudes outside to link one of the positioning pins.
4. The automatic lacing mechanism of claim 3, wherein the first moving unit comprises a first cylinder and a first sliding seat; the first cylinder has a first retractable rod which is movable relative to a cylinder body of the first cylinder; the first sliding seat is movably engaged to an external of the first cylinder; an end of the first retractable rod is connected to the first sliding seat; the casing is engaged onto the first sliding seat; The other one of the positioning pins of the positioning module is fixed at the casing or the first sliding seat.
5. The automatic lacing mechanism of claim 4, wherein the clamping module comprises a second moving unit, which comprises a second cylinder and a second sliding seat; the second cylinder has a second retractable rod which is movable relative to a cylinder body of the second cylinder; the second sliding seat is movably engaged to an external of the second cylinder, and an end of the second sliding seat is connected to the movable plate; an end of the second retractable rod is connected to the second sliding seat; the first cylinder is engaged onto the second sliding seat.
6. The automatic lacing mechanism of claim 1, wherein the fixed plate and the movable plate of the clamping module have a plurality of hollow portions formed on upper parts thereof, and a pressing sheet is formed beside the hollow portions; when said shoe piece is fixedly clamped between the fixed plate and the movable plate, the lace eyelets of said shoe piece are aligned with the hollow portions, and the pressing sheet pushes against said shoe piece without covering the lace eyelets thereof.
7. The automatic lacing mechanism of claim 1, wherein the shoelace-running module comprises an X-axis module, a Y-axis module, a Z-axis module, and a gripping unit; the Y-axis module is engaged to the X-axis module and is movable in an X-axis direction; the Z-axis module is engaged to the Y-axis module and is movable in a Y-axis direction; the gripping unit is engaged to the Z-axis module and is movable in a Z-axis direction; the gripping unit has a claw to grip an aglet of the shoelace.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The present invention will be best understood by referring to the following detailed description of some illustrative embodiments in conjunction with the accompanying drawings, in which
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DETAILED DESCRIPTION OF THE INVENTION
(12) An automatic lacing mechanism 100 of an embodiment of the present invention is shown in
(13) The aforementioned base 10 is provided with a sliding platform 12 on a top thereof, wherein a position of the sliding platform 12 could be adjusted in a horizontal direction. The clamping module 20 and the positioning module 30 are installed on the sliding platform 12, and therefore their position could be changed along with the sliding platform 12. The shoelace-running module 40 and the shoelace-arranging module 50 are fixedly provided on the top of the base 10. The controller 60 includes a control interface 61 and a central processing unit (not shown). The sliding platform 12 is provided with two retaining brackets 14 thereon. There is a set of a clamping module 20 and a positioning module 30 respectively provided on two sides of each of the retaining brackets 14. For ease of interpretation, we hereinafter take one set of the clamping module 20 and the positioning module 30 as an example.
(14) As shown in
(15) In addition, the fixed plate 22 of the clamping module 20 is engaged to a lateral side of the corresponding retaining bracket 14, and the movable plate 23 is engaged to an outside of the second front end portion 212a of the second sliding seat 212. Furthermore, the fixed plate 22 and the movable plate 23 respectively have a plurality of corresponding hollow portions 22a, 23a formed on upper parts thereof. A pressing sheet 22b, 23b is formed beside a hollow portion or between two adjacent hollow portions. When the second sliding seat 212 is driven by the second retractable rod 211a to move back and forth, the movable plate 23 consequently approaches or leaves from the fixed plate 22.
(16) The positioning module 30 is engaged onto the second sliding seat 212 of the second moving unit 21, and is located on a side of the movable plate 23 other than the side that the fixed plate 22 is located. The positioning module 30 includes a first moving unit 31 and two positioning pins, wherein said two positioning pins include a first positioning pin 32 and a second positioning pin 33. The first moving unit 31 includes a first cylinder 311 and a first sliding seat 312, wherein the first cylinder 311 is fixedly engaged to a top of the second sliding seat 212 through an engaging board 34. The first cylinder 311 has a first retractable rod 311a which is movable relative to a cylinder body 311b of the first cylinder 311. The first sliding seat 312 is engaged to an external top surface of the first cylinder 311, and match the first cylinder 311 in a manner of forming a sliding pair. In other words, one of the first cylinder 311 and the first sliding seat 312 has a chute, while the other one has a sliding block matching the chute. The first sliding seat 312 has a first front end portion 312a to be linked to an end of the first retractable rod 311a. When the first retractable rod 311a is driven by a pressure source to move back and forth, the first sliding seat 312 is also synchronously moved. The aforementioned pressure source could be pneumatic or hydraulic.
(17) The positioning module 30 of the current embodiment further includes a casing 35, a power source, which is a motor 36 as an example, and a sliding block 37. The casing 35 is fixedly engaged onto the first sliding seat 312 through an engaging board 38. The casing 35 has a chute 35a provided on a lateral side thereof. The first positioning pin 32 is optional to be fixed on the casing 35, the engaging board 38, or the first sliding seat 312. In the current embodiment, the first positioning pin 32 is fixed on the engaging board 38. The motor 36 is provided on a side of the casing 35, and is electrically connected to the controller 60. The sliding block 37 is provided in the casing 35, and is drivable by the motor 36 to rectilinearly reciprocate. A part of the sliding block 37 passes through the chute 35a to protrude outside, and is connected to the second positioning pin 33, so that the second positioning pin 33 is movable along with the sliding block 37, and therefore changes a distance between it and the first positioning pin 32.
(18) As shown in
(19) As shown in
(20) The components of the automatic lacing mechanism 100 of the current embodiment are explained above, and the procedure on how the shoelace is automatically run through the lace eyelets 201 of the shoe pieces 200 is going to be described below. We need to explain first that, since one shoe has two shoe pieces 200, and in order to successfully run the shoelace between the shoe pieces 20, the automatic lacing mechanism 100 of the current embodiment provides a set of clamping module 20 respectively provided on two sides of each of the retaining brackets 14 to fixedly clamp the shoe pieces 200, and the shoe pieces 200 are set in a manner that a proper spacing is maintained therebetween. The controller 60 is adapted to control the clamping module 20, the positioning module 30, the shoelace-running module 40, and the shoelace-arranging module 50 to sequentially perform the lacing based on the arrangement of a program.
(21) The illustration shown in
(22) As shown in
(23) As shown in
(24) In the aforementioned embodiment, the fixed plate 22 and the movable plate 23 improve the stability of the shoe piece 200 by pressing the pressing sheets 22b, 23b against the shoe piece 200 in opposite directions. Therefore, the hollow portions of the fixed plate and the movable plate could be made as various specifications with different spacing to adapt the change on the distance between the first positioning pin 32 and the second positioning pin 33. In view of this, it would be preferred to make the fixed plate and the movable plate replaceable. However, since the shoe piece has certain toughness to maintain a standing position, the fixed plate and the movable plate in other embodiments could also have no structures of hollow portions and pressing sheets, as long as the lace eyelets on the upper part of the shoe piece could be ensured uncovered when the shoe piece is fixedly clamped.
(25) It must be pointed out that the embodiments described above are only some preferred embodiments of the present invention. All equivalent structures which employ the concepts disclosed in this specification and the appended claims should fall within the scope of the present invention.