Closure device for connecting two parts
10893714 · 2021-01-19
Assignee
Inventors
Cpc classification
A44B99/00
HUMAN NECESSITIES
International classification
A44B18/00
HUMAN NECESSITIES
Abstract
A closure device for connecting two parts includes a first closure part which includes a first surface with an arrangement of first structure elements arranged thereon and a second closure part which includes a second surface with an arrangement of second structure elements arranged thereon. The first closure part and the second closure part are to be positioned together in such a manner that the first surface of the first closure part faces the second surface of the second closure part such that the first structure elements and the second structure elements engage in one another in such a manner that movement of the closure parts relative to one another along a load direction is blocked.
Claims
1. A closure device for connecting two parts, comprising a first closure part which comprises a first surface with an arrangement of first structure elements arranged thereon and a second closure part which comprises a second surface with an arrangement of second structure elements arranged thereon, wherein the first closure part and the second closure part are to be positioned together in such a manner that the first surface of the first closure part faces the second surface of the second closure part such that the first structure elements and the second structure elements engage in one another in such a manner that movement of the closure parts relative to one another along a load direction is blocked, wherein the first closure part comprises a first arrangement of magnets with a plurality of magnetic poles which are offset to one another along the first surface and the second closure part comprises a second arrangement of magnets with a plurality of magnetic poles which are offset to one another along the second surface, wherein at least one of the first structure elements and the second structure elements, in a top view of the respective surface, each comprise a curved form or a V-form, wherein at least one of the first closure part comprises a plurality of rows of first structure elements arranged on the first surface, the rows of first structure elements being offset to one another along the load direction and each comprising multiple first structure elements having a curved form or a V-form, and the second closure part comprises a plurality of rows of second structure elements arranged on the second surface, the rows of second structure elements being offset to one another along the load direction and each comprising multiple second structure elements having a curved form or a V-form.
2. The closure device as claimed in claim 1, wherein the first structure elements and the second structure elements are realized in an identical manner.
3. The closure device as claimed in claim 1, wherein the first structure elements protrude from the first surface and the second structure elements protrude from the second surface.
4. The closure device as claimed in claim 1, wherein the first structure elements comprise first blocking faces and the second structure elements comprise second blocking faces, wherein the first structure elements and the second structure elements move to abut against one another in a blocking manner by way of the blocking faces thereof when the closure parts are loaded in the load direction.
5. The closure device as claimed in claim 4, wherein at least one of the first blocking faces of the first structure elements are oriented perpendicularly to the first surface and the second blocking faces of the second structure elements are oriented perpendicularly to the second surface or at least one of the first blocking faces of the first structure elements are oriented at an angle for realizing an undercut with respect to the first surface and the second blocking faces of the second structure elements are oriented at an angle for realizing an undercut with respect to the second surface.
6. The closure device as claimed in claim 4, wherein the first structure elements comprise first run-on surfaces and the second structure elements comprise second run-on surfaces, wherein the first structure elements and the second structure elements run onto one another by way of the run-on surfaces thereof when the closure parts are loaded in opposition to the load direction.
7. The closure device as claimed in claim 1, wherein the first run-on surfaces and the second run-on surfaces realize ramps which extend at an angle to the surface of the assigned closure part.
8. The closure device as claimed in claim 1, wherein at least one of the first structure elements and the second structure elements comprise at least one leg each which extends along the assigned surface and is aligned at a slanted angle to the load direction.
9. The closure device as claimed in claim 1, wherein at least one of the first structure elements and the second structure elements comprise two legs each which are aligned at an angle, in particular an obtuse angle, to one another.
10. The closure device as claimed in claim 9, wherein the structure elements of adjacent rows, when viewed transversely to the load direction, are not offset to one another or are offset to one another by half the width of a structure element, measured transversely to the load direction and along the assigned surface of the assigned closure part.
11. The closure device as claimed in claim 1, wherein at least one of the first arrangement of magnets and the second arrangement of magnets is formed at least in portions by an arrangement of permanent magnetic elements or by a multi-pole permanent magnetic film.
12. The closure device as claimed in claim 1, wherein at least one of the magnetic poles of the first arrangement of magnets and the magnetic poles of the second arrangement of magnets are positioned together in rows periodically.
13. The closure device as claimed in claim 12, wherein at least one of: at least one of the first structure elements and the second structure elements comprise a first periodicity and at least one of the magnetic poles of the first arrangement of magnets and the magnetic poles of the second arrangement of magnets comprise a second periodicity, wherein the first periodicity corresponds to the second periodicity or to a whole number multiple of the second periodicity, and at least one of the first structure elements and the second structure elements are arranged in such a manner on the closure parts that the closure parts are displaceable relative to one another by a release travel in opposition to the load direction, and in the case of displacement by the release travel, like magnetic poles of the arrangements of magnets move to face one another in a magnetically repelling manner.
14. The closure device as claimed in claim 12, wherein the first arrangement of magnets and the second arrangement of magnets are arranged in such a manner with respect to the respectively assigned structure elements that once the closure parts have been positioned together, the closure parts are displaceable with respect to one another transversely to the load direction in a non-loaded state.
15. The closure device as claimed in claim 1, wherein at least one of the magnetic poles of the first arrangement of magnets and the magnetic poles of the second arrangement of magnets are positioned together in rows along the load direction.
16. The closure device as claimed in claim 1, wherein at least one of the magnetic poles of the first arrangement of magnets and the magnetic poles of the second arrangement of magnets are arranged in rows together along a transverse direction which extends transversely to the load direction.
17. A textile closure for connecting textile parts, comprising a closure device as claimed in claim 1.
18. A closure device, comprising a first closure part which comprises a first surface with an arrangement of first structure elements arranged thereon and a second closure part which comprises a second surface with an arrangement of second structure elements arranged thereon, wherein the first closure part and the second closure part are to be positioned together in such a manner that the first surface of the first closure part faces the second surface of the second closure part such that the first structure elements and the second structure elements engage in one another in such a manner that movement of the closure parts in relation to one another along a load direction is blocked, wherein the first closure part comprises a first arrangement of magnets and the second closure part comprises a second arrangement of magnets, wherein at least one of the first arrangement of magnets is formed at least in portions by a permanent magnetic film having a plurality of magnetic poles which are offset to one another and have an alternating polarity along the first surface and the second arrangement of magnets is formed at least in portions by a permanent magnetic film having a plurality of magnetic poles which are offset to one another and have an alternating polarity along the second surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The concept on which the solution is based is to be explained in more detail below by way of the exemplary embodiments shown in the figures, in which:
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DESCRIPTION OF THE INVENTION
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(53) Each closure part 2, 3 comprises a body 20, 30 with a circumferential edge 200, 300 and a raised portion 201, 301 which protrudes in relation to the edge 200, 300. A surface 203, 303, on which structure elements 22, 32 of identical form are arranged, is formed on the raised portion 201, 301.
(54) The closure parts 2, 3 can be positioned together by way of the surfaces 203, 303 thereof and as a result move into engagement with one another by way of the structure elements 22, 32. An arrangement of magnets 21, 31, which causes the closure parts 2, 3, when positioned together, to be pulled magnetically toward one another and to be held magnetically on one another in a position positioned together, is received, in this connection, on each closure part 2, 3 in an indentation 202, 302 formed on the rear of the raised portion 201, 301.
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(56) The structure elements 22, 32 on the surfaces 203, 303 of the closure parts 2, 3 each comprise a V-shaped design, with legs 222, 322 which are aligned with respect to one another at an obtuse angle, as is shown schematically in
(57) With the closure device 1 in the closed position in which the closure parts 2, 3 are positioned together, the structure elements 22, 32 of the closure parts 2, 3 are opposite one another in such a manner that the blocking faces 220, 320 of the structure elements 22, 32 face one another, as can be seen in
(58) The engagement between the structure elements 22, 32 is brought about and held, in this connection, on the one hand on account of the undercuts of the blocking faces 220, 320 and is additionally secured by means of the magnetic attraction between the arrangements of magnets 21, 31.
(59) As can be seen in
(60) For opening the closure device 1, the closure parts 2, 3 are moved away from one another. This can be effected by raising the one closure part 2, 3 from the other closure part 3, 2. However, opening can also be effected as a result of pulling the closure parts 2, 3 in opposition to the load direction B1, B2, namely in a release direction L1, L2, as is shown in
(61) By moving the closure parts 2, 3 in the release direction L1, L2 relative to one another, the structure elements 22, 32 run onto one another by way of the run-on surfaces 221, 321, and on account of the ramp form of the run-on surfaces 221, 321, the closure parts 2, 3 are lifted at least a little way apart from one another. As a result, the magnetic attraction between the arrangements of magnets 21, 31 of the closure parts 2, 3 is weakened such that the closure parts 2, 3 are able to be removed from one another in a simple manner.
(62) The ramp form of the structure elements 22, 32 on the rear of the blocking faces 220, 320 additionally enables a type of mechanical freewheeling when the closure parts 2, 3 are pulled in opposition to the load direction B1, B2 (in the release direction L1, L2). Thus, a structure element 22 of the first closure part 2, when the first closure part 2 is pulled in the release direction L1, is removed with the blocking face 220 thereof from an assigned blocking face 320 of a structure element 32 of the second closure part 3 and slides with the run-on surface 221 thereof onto a run-on surface 321 of an adjacent structure element 32 of the second closure part 3 following in the release direction L1. Once the structure element 22 of the first closure part 2 has passed said adjacent structure element 32 of the second closure part 3, the blocking face 22 of said structure element 22 is then situated facing the blocking face 320 of the adjacent structure element 32 just passed such that the closure parts 2, 3 are offset to one another by precisely one structure element 22, 32 along the load direction B1, B2.
(63) As a result of relative movement of the closure parts 2, 3 in the release direction L1, L2, the position of the closure parts 2, 3 can consequently be adapted in relation to one another as a result of tangential movement of the closure parts 2, 3. Ratchet-like sliding of the closure parts 2,3 in relation to one another is produced.
(64) In the case of the exemplary embodiment according to
(65) Other pole configurations of the arrangement of magnets 21, 31 are conceivable and possible, as is shown in various exemplary embodiments in
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(67) In the case of the exemplary embodiment according to
(68) In the case of the exemplary embodiment according to
(69) With the magnetic poles N, S offset to one another along the load direction B1, B2 in the case of the exemplary embodiments according to
(70) Where the magnetic poles N, S of each arrangement of magnets 21, 31 are distributed in two-dimensions according to the exemplary embodiment according to
(71) The arrangements of magnets 21, 31 can be formed by means of discrete permanent magnetic elements, for example by means of neodymium magnets. Each arrangement of magnets 21, 31 can be received in the indentation 202, 302 in the body 20, 30 of the assigned closure part 2, 3 and can be glued to or cast with the body 20, 30 of the closure part 2, 3. The indentation 202, 302 can be closed, in this case, toward the outside, for example by a cover, for example a film or the like.
(72) As an alternative to this, each arrangement of magnets 21, 31 can be formed by a magnetic film, for example a plastics material film which, for example, includes a magnetic powder with a proportion of neodymium. Such a magnetic film can be received in the indentation 202, 302 of the respectively assigned closure part 2, 3 and glued to the body 20, 30 or connected in another manner. However, it is also conceivable and possible to produce the body 20, 30 of the closure parts 2, 3 entirely from such a magnetic film such that, in this case, the body 20, 30 and where applicable also the structure elements 22, 32 arranged thereon are magnetic.
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(74) In the case of the exemplary embodiment according to
(75) In the closed position, shown in
(76) As can also be seen in
(77) When the closure parts 2, 3 are loaded in the load direction B1, B2 relative to one another, the blocking faces 220, 320 of the structure elements 22, 32 move into abutment with one another, undercuts being formed on said blocking faces 220, 320 such that the engagement between the structure elements 22, 32 under load is not able to be easily released and is also consequently capable of absorbing large load forces.
(78) The structure elements 22, 32 are dimensioned and arranged in relation to one another such that the closure parts 2, 3 are displaceable in relation to one another in the release direction L1, L2 by a release travel LW which corresponds to half the periodicity of the magnetic poles N, S of the arrangements of magnets 21, 31 without the structure elements 22, 32 adjoining one another in the release direction L1, L2.
(79) If the closure parts 2, 3 are to be released from one another, the closure parts 2, 3 can be moved relative to one another in opposition to the load direction B1, B2, that is to say in a release direction L1, L2, by a release travel LW such that the structure elements 22, 32 move out of engagement with one another with the blocking faces 220, 320 thereof and additionally the arrangements of magnets 21, 31 are moved in relation to one another in such a manner that like poles N, S of the arrangement of magnets 21, 31 are moved closer together, as is shown in particular in
(80) By pulling the closure parts 2, 3 in the release direction L1, L2, it is also possible, however, in the manner of magnetic freewheelingto adapt the position of the closure parts 2, 3 in opposition to the load direction B1, B2, that is to say in the release direction L1, L2. Thus, when the first closure part 2 is pulled in the release direction L1 (and resultant displacement by the release travel LW) on account of the magnetic repulsion between the closure parts 2, 3, the structure elements 22 of the one closure part 2 jump over the respectively following structure element 32 of the other second closure part 3, as is shown in
(81) By the structure elements 22, 32 initially coming to rest at a distance from one another (viewed along the load direction, B1, B2) when the closure parts 2, 3 are positioned together (see FIGS. 10A to 10D), transverse displacement of the closure parts 2, 3 along the transverse direction Y is possible in the non-loaded state. This is not prevented because the blocking faces 220, 320 of the structure elements 22, 32 are not in abutment and engagement with one another. Such transverse displacement can enable simple opening of the closure device 1 by pushing the closure parts 2, 3 apart from one another.
(82) Different arrangements and designs of structure elements 22, 32 on the closure parts 2, 3 are conceivable and possible.
(83) In the case of the exemplary embodiment shown in
(84) In the case of the exemplary embodiment according to
(85) In contrast, the structure elements 22, 32 of adjacent rows A, B in the case of the exemplary embodiment according to
(86) In the case of the exemplary embodiment according to
(87) In the case of the exemplary embodiment according to
(88) In the case of the exemplary embodiment according to
(89) If the magnetic poles N, S of the arrangements of magnets 21, 31 are positioned in rows together in an alternating manner along the load direction B1, B2, the arrangements of magnets 21, 31 can be aligned with respect to one another precisely in such a manner as is shown by way of an exemplary embodiment in
(90) This is shown analogously in
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(92) Thus, in the case of the exemplary embodiment according to
(93) In the case of the exemplary embodiment according to
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(96) The closure device 1 with the closure parts 2, 3 thereof can be flexible at least to a certain degree in order, for example, to be used on a garment or on a receptacle. In this connection, however, it must be ensured that torsion on the structure elements 22, 32 does not result, once the structure elements 2, 3 have been positioned together, in the structure elements 22, 32 moving out of engagement with one another and consequently the connection between the closure parts 2, 3 being released.
(97) For this purpose, the extension of the structure elements 22, 32 at an angle to the load direction B1, B2 can be advantageous, as is to be explained below by way of
(98) In the case of a structure element 22 which extends in a straight line and is aligned transversely to the load direction B1, B2, as is shown as an example in
(99) One single structure element 22 (see for example
(100) This is different in the case of structure elements 22 which extend at an angle, as shown as an example in
(101) The structure elements 22 which extend at an angle additionally act for self-reinforcement of the connection between the closure parts 2, 3, as can be seen in
(102) Thus, in the case of a structure element 22 which extends in a straight line and is aligned transversely to the load direction B1, B2 as shown in
(103) In the case of structure elements 22 which extend at an angle, as shown in
(104) The concept underlying the solution is not restricted to the exemplary embodiments depicted above but can also be realized in principle in a completely different manner.
(105) Thus, entirely different structure forms of the structure elements on the surfaces of the closure parts are conceivable and possible. For example, a roughening with (microscopically) small structure elements, which can protrude regularly or irregularly from the surface and consequently realize mountains and valleys which are arranged with respect to one another in a regular or irregular manner, can be provided on the surfaces.
(106) The closure parts can comprise an arrangement of magnets produced from discrete permanent magnetic elements, for example neodymium magnets.
(107) However, it is also conceivable and possible for the closure parts to comprise one or multiple magnetic films which are glued or welded to the bodies of the closure parts. It is also conceivable and possible in this connection for the bodies of the closure parts themselves to be realized by a permanent-magnetic (film) material, for example by incorporating a magnetic powder.
LIST OF REFERENCES
(108) 1 Closure device 2, 3 Closure part 20, 30 Body 200, 300 Edge 201, 301 Raised portion 202, 302 Indentation 203, 303 Surface 21, 31 Arrangement of magnets 22, 32 Structure element 220, 320 Blocking face (undercut) 221, 321 Run-on surface (ramp) 222, 322 Leg 223, 323 Rear surface A, B Row B1, B2 Load direction F Force L1, L2 Release direction N, S Magnetic pole P1-P3 Periodicity X1, X2 Length X Longitudinal direction Y Transverse direction