This invention relates to mechanical snap fasteners and magnetic snap fasteners. The fasteners are attached to sheet materials, bags, garments, and other articles and have anti-rotation surfaces for preventing unwanted rotation of the fastener components relative to each other.
Mechanical and magnetic snap fasteners are commonly used to attach one material to another in articles such as clothing, bags, purses, shoes, and the like. Mechanical snap fasteners typically consist of a male component comprising a cylindrial stud having an enlarged tip and a female component comprising a socket having a retaining feature which engages with the enlarged tip of the stud. The male and female components are attached to different materials desired to be attached to one another.
In a typical magnetic snap fastener, a female component with a magnet is attached to one material and a male component attracted to the magnet is attached to another material. The two components are magnetically attracted to each other and releasably fasten the materials together.
Conventional fasteners, however, do not provide any resistance to the rotation of one component relative to the other, or one material relative to the other, as this functionality is not always required. There are circumstances, however, in which it is desired that the fastener components or materials to be fastened are held in a particular rotational relationship to one another when fastened. Conventionally, such rotational fixation has been achieved by providing two or more fasteners spaced apart on the materials to be fastened. However, such a solution is costly because it requires more than one fastener set and is not suited to a situation in which a limited amount of space on a material is available for fastening components.
Thus, there is a need for a compact, cost effective fastener for releasably fixing materials together in a rotationally restrained manner.
In one embodiment, a mechanical snap fastener comprises a male component which has a base, an anti-rotation surface and a shaft, the shaft having an enlarged tip. The fastener also comprises a female component having a socket body, an anti-rotation surface and a retaining element for a releasably holding the enlarged tip of the shaft. The socket body has a central hole configured to receive the shaft and into which the retaining element protrudes. The male component is adapted to be attached to a first material and the female component is adapted to be attached to a second material. The anti-rotation surface on the male component and the anti-rotation surface on the female component are configured to interact to prevent rotation of the male component relative to the female component when fastened together.
In another embodiment, a magnetic snap fastener comprises a male component which has a plate, an anti-rotation surface and a shaft. The fastener also comprises a female component having a magnet and a cover with an anti-rotation surface. The shaft of the male component is received in a central hole of the female component. The male component is adapted to be attached to a first material and the female component is adapted to be attached to a second material. The anti-rotation surface of the male component and the anti-rotation surface of the female component are configured to interact with each other to prevent rotation of the male component relative to the female component, and rotation of the respective materials to which they are attached.
Various additional features may be included in the snap fasteners. For example, the edges of the anti-rotation surfaces may be curved, the anti-rotation surfaces may be configured to allow more than one indexed fastening position, and or the anti-rotation surfaces may be configured so are not to allow the snap fastener to be fastened if the shaft and socket are not in an indexed position relative to each other.
Further, a cap or ornament may be provided for one or both of the male and female components.
The features of the present application can be more readily understood from the following detailed description with reference to the accompanying drawings wherein:
Referring now to the drawings, and in particular to
The male component 12 comprises a base 24 and a cylindrical shaft 26, the shaft having the enlarged tip 14. The male component 12 also comprises at least one anti-rotation surface 28. When comprised of a formable material such as brass, the male component 12 may be formed by drawing the shaft 26 from a flat plate and deforming the tip 14 to have a greater diameter than the rest of the shaft 26. The anti-rotation surface 28 may be formed by bending a peripheral portion of the base 24 at the angle to the base 24.
The female component 16 is comprised of a socket body 30. The socket body 30 may be integrally formed with one or more anti-rotation surfaces 32. The socket body has a central hole 34. A retaining element 18 fits in a slot 36 within the central hole 34. The retaining element 18 is configured to releasably engage the enlarged tip 14 of the shaft 26 when the shaft 26 is inserted into the central hole 34 of the socket body 30. The retaining element 18 may comprise a wire formed into an S shape and oriented in the socket body 30 such that one portion of the retaining element protrudes through the slot 36. The retaining element 18 may also have two or more protruding portions which extend into the central hole 34 of the socket body 30. As the shaft 26 is inserted into the central hole 34 of the socket body 30, the enlarged tip 14 of the stem 12 compresses and deflects the retaining element 18 outwards. Once the enlarged tip 14 of the shaft 26 is pushed past the retaining element 18, the retaining element 18 springs back to engage the underside 40 of the enlarged tip 14 of the shaft 26, which underside has a lesser diameter than the tip. This secures the male component 12 to the female component 16. To release the mechanical fastener 10, the shaft 26 is pulled away from the central hole 34, again compressing and deflecting the retaining element 18 as the enlarged tip 14 of the shaft 26 slides past it. Once the enlarged tip 14 has slid past the retaining element 18, the mechanical fastener 10 is unfastened and the retaining element 18 springs back to its original position.
The male component 12 and female component 16 may fasten one or more different materials. The materials may form a component of an article of clothing, bag, purse, shoe, or the like. Examples of types of materials compatible with a mechanical fastener 10 as described herein include any type of fabric, leather, simulated leather, plastic, rubber, metal, cardboard, and any combination of such materials. The male component 12 and female component 16 may be fastened to the materials by any method known in the art. Such methods include riveting, stitching, gluing, soldering, and welding.
In the example of a mechanical fastener shown in
The male component 12 and female component 16 are each provided with at least one anti-rotation surface 28 and 32 oriented such that when an anti-rotation surface 28 of the male component 12 and an anti-rotation surface 32 of the female component 16 are engaged, relative rotation of the components is restrained or prevented. The anti-rotation surfaces 28 and 32 may be embodied in integral flanges or wings of the male component 12 or female component 16, as shown in
In the example of a female component 16 shown in
The male component 12 and female component 16 each may be provided with more than one anti-rotation surface 28 or 32. Further, the number of anti-rotation surfaces 28 included in the male component 12 need not be the same as the number of anti-rotation surfaces 32 included in the female component 16, as shown in
Many shapes of the anti-rotation surfaces 28 and 32 are possible. For example, the anti-rotation surfaces 28 and 32 may be provided with square corners or the outer edge 56 or 58 of the anti-rotation surface 28 or 32 may be curved, as shown in
The anti-rotation surfaces 28 and 32 of the male component 12 and female component 16 may have sufficient length to block the shaft of the male component 12 from entering the central opening of the female component 16 far enough for the retaining element 18 in the female component 16 to releasably retain the enlarged tip 14 of the shaft until the female component 16 and male component 12 are in an indexed position. In that configuration, fastening of the mechanical snap fastener is only possible when the male component 12 and female component 16 are in an indexed orientation relative to each other.
As shown in
The male component 12, female component 16, stem rivet 42, socket rivet 46, anti-rotation housing 52, and anti-rotation washer 66 (
An example of a magnetic snap fastener in accordance with the invention is shown in
As in the examples of the mechanical snap fasteners, the male component 12 and female component 16 of the magnetic snap fastener have anti-rotation surfaces 28 and 32, (
In addition, the anti rotation surfaces of the present invention may also be adapted to mechanical ball and socket type snap fasteners.
In describing examples and exemplary embodiments, specific terminology is employed for the sake of clarity in this disclosure. However, the disclosure of this specification is not intended to be limited to the specific terminology so selected and it is to be understood that each specific element includes all technical equivalents that operate in a similar manner.
In addition, the embodiments and examples above are illustrative, and many variations can be introduced on them without departing from the spirit of the disclosure or from the scope of the appended claims. For example, elements and/or features of different illustrative and exemplary embodiments herein may be combined with each other and/or substituted for each other within the scope of this disclosure.
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Number | Date | Country | |
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20110041295 A1 | Feb 2011 | US |