Closure Device Having a Rotary Element
20220386742 · 2022-12-08
Inventors
Cpc classification
B65D33/25
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
It is provided a closure device includes a first closure part and a second closure part, which can be placed against each other along a closing direction, are held against each other in a closed position, and can be detached from each other for opening the closure device. The second closure part includes a housing element with a bearing opening and a rotary element rotatably mounted in the bearing opening of the housing element. The rotary element is operatively connected to an actuator element and can be rotated with respect to the second closure part for adjusting the actuator element along a winding direction. The first closure part includes a first toothing device the second closure part includes a second toothing device, and in the closed position of the closure device the first toothing device and the second toothing device are in engagement with each other in such a way that the first closure part and the second closure part are positively held against each other along the winding direction.
Claims
1. A closure device, comprising a first closure part and a second closure part, which can be attached to each other along a closing direction, are held against each other in a closed position, and can be detached from each other for opening the closure device, wherein the second closure part includes a housing element with a bearing opening and a rotary element rotatably mounted in the bearing opening of the housing element, wherein the rotary element is operatively connected to an actuator element and can be rotated with respect to the second closure part for adjusting the actuator element along a winding direction, wherein the first closure part includes a first toothing device and the second closure part includes a second toothing device and in the closed position of the closure device the first toothing device the second toothing device are in engagement with each other in such a way that the first closure part and the second closure part are positively held with respect to each other along the winding direction.
2. The closure device according to claim 1, wherein the actuator element is formed by a flexurally slack pulling element.
3. The closure device according to claim 1, wherein the actuator element is formed by of a toothed rack with a first toothing arranged thereon.
4. The closure device according to claim 3, wherein the rotary element includes a second toothing which is in engagement with the first toothing of the actuator element formed as a toothed rack.
5. The closure device according to claim 1, wherein the second closure part includes an actuating element which is operatively connected to the rotary element and can be actuated for rotating the rotary element.
6. The closure device according to claim 5, wherein the actuating element includes a first engagement device and the rotary element a second engagement device, wherein the first engagement device and the second engagement device are in engagement with each other for non-rotatably connecting the actuating element and the rotary element to each other.
7. The closure device according to claim 5, wherein the rotary element includes an abutment portion which the rotary element can be placed against the first closure part, wherein the actuating element is arranged on a first side of the housing element and the abutment portion is arranged on a second side of the housing element facing away from the first side.
8. The closure device according to claim 1, wherein the second toothing device is arranged on the rotary element.
9. The closure device according to claim 1, wherein in the closed position the second closure part can be rotated with respect to the first closure part in the winding direction, but a rotation of the second closure part with respect to the first closure part against the winding direction is blocked.
10. The closure device according to claim 1, wherein the first closure part includes a cylinder portion which in the closed position engages into an opening of the rotary element for rotatably mounting the rotary element on the first closure part.
11. The closure device according to claim 1, wherein the first closure part and the second closure part each include at least one magnetic element for providing a force of magnetic attraction on placement of the closure parts against each other.
12. The closure device according to claim 1, wherein the housing element includes a passage opening through which the actuator element is extended.
13. The closure device according to claim 12, wherein the housing element includes a guiding device for guiding the actuator element towards the passage opening.
14. The closure device according to claim 1, further comprising a tensioning element which is elastically deformable during an adjustment of the actuator element.
15. The closure device according to claim 14, wherein the tensioning element is connected to the housing element.
16. The closure device according to claim 14, wherein the tensioning element is operatively connected to the actuator element in such a way that during an adjustment of the actuator element, the tensioning element is tensioned in a first direction and supports resetting of the actuator element in a second direction opposite to the first direction by a tensioning force.
17. The closure device according to claim 14, wherein the tensioning element encloses an interior space which the actuator element is at least sectionally extended.
18. The closure device according to claim 14, wherein the tensioning element is arranged outside the bearing opening of the housing element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0053] The idea underlying the solution will be explained in detail below with reference to the exemplary embodiments illustrated in the Figures.
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DESCRIPTION OF THE INVENTION
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[0099] As can be taken from the exploded view of
[0100] The second closure part 3 includes an actuating element 34 in the form of a handle and a rotary element 35 in the form of a winding element, which forms a groove 353 axially delimited by an abutment portion 352 in the form of an annular collar and a bearing body 354, in which groove an actuator element 4 in the form of a flexurally slack pulling element can be received for winding onto the rotary element 35.
[0101] On the rotary element 35 a magnetic element 33 is arranged, which cooperates with the magnetic element 23 on the first closure part 2 in a magnetically attracting way.
[0102] The rotary element 35 forms a cylindrical bearing body 354, which is received in a bearing opening 321 of a hollow cylindrical bearing collar 320 of a housing element 32 of the second closure part 3 and is rotatably mounted in the bearing opening 321.
[0103] The actuator element 4 in the form of the flexurally slack pulling element extends through a passage opening 323 in the bearing collar 320 from outside into the bearing opening 321 and is guided on a guiding device 322 in the form of a groove-shaped depression on an engagement tab 324 of the housing element 32 so that the actuator element 4 is supplied to the rotary element 35 in a defined way from outside via the passage opening 323 and runs into the groove 353 of the rotary element 35.
[0104] In the illustrated exemplary embodiment, the actuator element 4 in the form of the flexurally slack pulling element is connected to the rotary element 35 with one end 40, as can be taken from
[0105] In the illustrated exemplary embodiment, the actuating element 34 is non-rotatably connected to the rotary element 35. For this purpose, the actuating element 34 includes an engagement device 341 formed on a base surface 340 in the form of a pin polygonal in cross-section, which is of non-rotational-symmetrical shape and is configured to engage into an engagement device 355 in the form of an engagement opening on the bearing body 354 of the rotary element 35 and thus produce a non-rotatable connection between the actuating element 34 and the rotary element 35. By actuating the actuating element 34, the rotary element 35 can thus be rotated in the bearing opening 321 of the housing element in order to thereby adjust the actuator element 4 in the form of the pulling element, namely to wind the actuator element 4 in the form of the pulling element on the groove 353.
[0106] On a side facing the first closure part 2, the rotary element 35 has a toothing 351. When placing the closure parts 2, 3 against each other along the closing direction X, the toothing 351 of the rotary element 35 gets in engagement with the toothing 25 on the base body 20 of the first closure part 2, as this is shown in
[0107] When the closure parts 2, 3 are placed against each other, the cylinder portion 201 on the base body 20 of the first closure part 2 engages into a central opening 350 of the rotary element 35 so that the rotary element 35 thereby is rotatably and axially movably mounted on the first closure part 2.
[0108] In the illustrated exemplary embodiment, both the toothing 351 of the rotary element 35 and the toothing 25 of the first closure part 2 have a sawtooth shape. In the closed position of the closure device 1, this provides for rotating the second closure part 3 in a winding direction V with respect to the first closure part 2 by means of the rotary element 35 and the actuating element 34, wherein the teeth of the toothings 25, 351 slide onto each other and are moved across each other, by axially deflecting the closure parts 2, 3 with respect to each other. The toothings 25, 351 thus provide a kind of freewheel, which provides for rotating the rotary element 35 in the winding direction V when the closure parts 2, 3 are placed against each other, in order to tension an actuator element 4 arranged on the rotary element 35, but blocks a movement against the winding direction V so that the actuator element 4 cannot be unwound against the winding direction V when the closure parts 2, 3 are placed against each other.
[0109] In the illustrated exemplary embodiment, the teeth of the toothings 25, 351 each form an undercut which effects that on loading of the closure parts 2, 3 with respect to each other against the winding direction V, the toothings 25, 351 are blockingly in engagement with each other, and thus a rotary movement of the rotary element 35 against the winding direction V with respect to the first closure part 2 is prevented. The engagement is non-rotatable, loadable and self-reinforcing, due to the undercut tooth flanks of the toothings 25, 351 cooperating under a load against the winding direction V.
[0110] In the illustrated exemplary embodiment, a tensioning element 5 in the form of an elastically deformable tube element is arranged on the housing element 32, which forms an interior space in which the actuator element 4 in the form of the flexurally slack pulling element is received. The tensioning element 5 is connected to the housing element 32 due to the fact that the engagement tab 324 engages into the tensioning element 5 and the tensioning element 5 for example is sewn to the engagement tab 324.
[0111] At an end located away from the housing element 32, the tensioning element 5 is connected to a for example textile object 6, which is to be adjusted via the closure device 1, in that the tensioning element 5 is sewn to the object 6 via a connecting seam 50 or is connected to the object 6 in some other way. The actuator element 4 in the form of the pulling element here is connected to the object 6 with an end 41 located away from the end 40 in such a way that by adjusting the actuator element 4, the object 6 can be adjusted relative to the closure device 1.
[0112] When placing the closure parts 2, 3 against each other, the toothing 351 on the inside of the opening 350 of the rotary element 35 gets in engagement with the toothing 25 around the cylinder portion 201 due to the magnetically attracting interaction of the magnetic elements 23, 33, which cylinder portion also gets in engagement with the opening 350 of the rotary element 35, as this is shown in
[0113] Due to the non-rotatable connection between the actuating element 34 and the rotary element 35, the rotary element 35 is moved together with the actuating element 34 in the closed position during a rotation of the actuating element 34 in the winding direction V, and thus is rotated about the closing direction X. The toothings 25, 351 slide over each other, so that the rotary element 35 is rotated with respect to the first closure part 2, and the actuator element 4 in the form of the flexurally slack pulling element thus is wound onto the rotary element 35.
[0114] Due to the sawtooth-shaped, undercut configuration of the toothings 25, 351, a load introduced via the actuator element 4 against the winding direction V cannot lead to the rotary element 35 being rotated back. This is prevented by the engagement of the toothings 25, 351 into each other.
[0115] By rotating the rotary element 35 in the winding direction V, the actuator element 4 in the form of the flexurally slack pulling element can be wound onto the rotary element 35, as this is shown at the transition of
[0116] In the position shown in
[0117] When the closure parts 2, 3 are to be detached from each other, the second closure part 3 can simply be withdrawn from the first closure part 2 against the closing direction X in a release direction L, as this is shown in
[0118] When the closure device 1 is opened by removing the closure parts 2, 3 from each other against the closing direction X, the actuator element 4 automatically is reset in a resetting direction R into an extended starting position due to the pretension of the tensioning element 5, in which starting position the object 6 in turn is away from the closure device 1 and the tensioning element 5 is relaxed. This is effected by rotating the rotary element 35 and the actuating element 34 connected thereto back against the winding direction V, which is easily possible in a smooth way, because the engagement between the toothings 25, 351 is eliminated in the open position.
[0119] The tensioning element 5 for example can be formed by an elastically deformable tube or a grommet. The tensioning element 5 for example can be formed from a rubber material or an elastomeric plastic material or a foam material.
[0120] The tensioning element 5 can be formed by a spring element, for example a metal spring, in particular a compression spring or a tension spring.
[0121] In an exemplary embodiment shown in
[0122] While the first closure part 2 substantially is formed identical in construction to the closure part 2 of the exemplary embodiment described above and includes a base body 20 with a cylinder portion 201 formed thereon and a toothing device 25 and a magnetic element 23, the second closure part 3 is configured for adjusting the actuator element 4 in the form of the rigid toothed rack 4.
[0123] In the illustrated exemplary embodiment, the second closure part 3 includes a rotary element 35 which with a bearing body 354 is rotatably received in a bearing opening 321 of a bearing collar 320 of a housing element 32. Via engagement devices 341, 355, the rotary element 35 is non-rotatably connected to an actuating element 34 in the form of a hand knob in such a way that by rotating the actuating element 34, the rotary element 35 can be rotated.
[0124] On the bearing body 354 of the rotary element 35 a circumferentially extending toothing 356 is formed, via which the rotary element 35 is in meshing engagement with the actuator element 4 in the form of the toothed rack. On the housing element 32, a guiding device 322 for receiving the actuator element 4 is formed, in which the actuator element 4 is adjustable, wherein the actuator element 4 is in meshing engagement with the rotary element 35 received in the bearing collar 320 via an opening 325 formed on the hollow cylindrical bearing collar 320, as this can be taken for example from
[0125] On a side facing away from the actuating element 34, an abutment portion 352 in the form of an annular collar is formed on the rotary element 35, which in the closed position of the closure device 1 supportingly is in contact with the base body 20 of the first closure part 2, as this can be taken for example from
[0126] For closing, the closure parts 2, 3 can be placed against each other along the closing direction X, wherein the attachment is magnetically supported by the magnetic action of the magnetic elements 23, 33. In the closed position, shown in
[0127] By actuating the actuating element 34, the rotary element 35 can be rotated on the housing element 32 so that the actuator element 4 in the form of the toothed rack thereby is linearly adjusted relative to the housing element 32, as this is shown at the transition from
[0128] By rotating the rotary element 35, the actuator element 4 thus can be adjusted between two end positions. In a first end position, shown in
[0129] An object 6 is connected to the actuator element 4 so that the object 6 can be adjusted by adjusting the actuator element 4.
[0130] By detaching the closure parts 2, 3 from each other, the meshing engagement of the toothings 25, 351 is eliminated so that the actuator element 4 can be freely adjusted (without much force), by entraining the rotary element 35 and the actuating element 34.
[0131] In the exemplary embodiments described above, the toothing devices 25, 351 on the side of the first closure part 2 and of the second closure part 3 can be configured quite differently in principle so that in the closed position a positive hold (loadable at least up to a certain limit torque) is produced between the closure parts 2, 3.
[0132] In the described exemplary embodiments, the toothing devices 25, 351 are configured with undercuts in such a way that a movement of the rotary element 35 against the winding direction V is blocked in the closed position. However, this is to be understood only by way of example and can also be configured differently in principle.
[0133] In particular, the toothings can be configured such that the toothing devices 25, 351 provide for a rotation of the rotary element 35 with respect to the first closure part 2 in the winding direction V, but block an opposite rotary movement, wherein on exceedance of a limit torque opposite to the winding direction V a rotation becomes possible, for example by rounding or a suitable oblique position of the blocking tooth flanks. Alternatively, what is also conceivable is an embodiment in which the toothing devices 25, 351 block a rotation both in the winding direction V and against the winding direction V.
[0134] In the exemplary embodiments described above, the actuating element 34 and the rotary element 35 can be placed against the housing element 32 from different sides. By inserting the rotary element 35 into the bearing collar 320 of the housing element 32 and by placing the actuating element 34 against the rotary element 35, the second closure part 3 can be mounted, wherein in the mounted position the actuating element 34 and the abutment portion 352 of the rotary element 35 come to lie on different sides of the housing element 32. This results in an easy assembly of the closure part 3, in which the parts 32, 34, 35 can placed against each other and thus be connected to each other in a simple way.
[0135] The idea underlying the invention is not limited to the exemplary embodiments described above, but can also be realized in principle in an entirely different way.
[0136] For example, even in the configuration of the actuator element by a flexurally rigid pushing element, for example in the form of a toothed rack, a tensioning element in the form of an elastically deformable tube or the like can be present.
[0137] The tensioning element can also be formed by a spring element, for example a metal spring, in particular a compression spring or tension spring.
LIST OF REFERENCE NUMERALS
[0138] 1 closure device
[0139] 2 closure part
[0140] 20 base body
[0141] 201 cylinder portion
[0142] 23 magnetic element
[0143] 25 toothing device
[0144] 3 closure part
[0145] 32 housing element
[0146] 320 bearing collar
[0147] 321 bearing opening
[0148] 322 guiding device
[0149] 323 passage opening
[0150] 324 engagement tab
[0151] 325 opening
[0152] 326 guide channel
[0153] 33 magnetic element
[0154] 34 actuating element
[0155] 340 base surface
[0156] 341 engagement device
[0157] 35 rotary element
[0158] 350 opening
[0159] 351 toothing device
[0160] 352 abutment portion (annular collar)
[0161] 353 groove
[0162] 354 bearing body
[0163] 355 engagement device
[0164] 356 toothing
[0165] 4 actuator element
[0166] 40, 41 end
[0167] 42 toothing
[0168] 5 tensioning element
[0169] 50 connecting seam
[0170] 51 interior space
[0171] 6 object
[0172] R resetting device
[0173] V winding direction
[0174] X closing direction
[0175] Z pulling direction