Magnetic fastener
11587706 · 2023-02-21
Inventors
Cpc classification
H01F7/0263
ELECTRICITY
International classification
Abstract
A novel magnetic fastener is realized that utilizes a pair of multipole magnets rotatable relative to each other, allowing the holding force to be selected for ease of operation, namely closing and opening. Each multipole magnet includes a striped pattern of alternating polarity (north and south poles), with the striped patterns having the same pole spacing or pitch. When the stripes of alternating north and south poles are oriented lengthwise, the stripes of the south poles can judiciously align with the stripes of the north poles from the other magnet, creating a strong magnetic force between them to form a fastener. However, when the striped pattern of alternating north and south poles are oriented substantially orthogonal, the stripes are mutually being alternating attracted and repelled, allowing the magnets to be easily separated to effect opening.
Claims
1. A magnetic fastener comprising: first and second unitary, single multipole magnets with opposing surfaces, each magnet having a striped pattern of long, parallel, narrow bands of alternating north and south poles, each pole running in a lengthwise direction along entire said opposing surfaces, with the north and south poles alternating in a widthwise direction, said first unitary, single multipole magnet attachable to a first material, and said second unitary, single multipole magnet rotatably attachable to a second material, wherein mutually orienting the striped pattern of alternating north and south poles of said first and second unitary, single multipole magnets along the lengthwise direction places said magnetic fastener in a latch configuration, whereby a strong magnetic force between said first and second single, unitary multipole magnets provides magnetic fastening between said first and second materials, and wherein rotating said second unitary, single multipole magnet with respect to said first single, unitary multipole magnet, such that the striped patterns of alternating north and south poles of said first and second single, unitary multipole magnets are oriented orthogonal such that the lengthwise direction of one of said multipole magnets runs along the widthwise direction of the other multipole magnet, thereby placing said magnetic fastener in an unlatch configuration, substantially reducing the magnetic force between said first and second unitary, single, multipole magnets, allowing said first and second materials to be easily separated.
2. The magnetic fastener of claim 1, wherein the striped patterns of alternating north and south poles of said first and second single, unitary multipole magnets are in a Halbach array.
3. The magnetic fastener of claim 1, wherein the striped patterns of alternating north and south poles of said first and second single, unitary multipole, magnets have about the same pole spacing or pitch, λ.
4. The magnetic fastener of claim 1 wherein said first and second single, unitary multipole magnets are disk in shape, each with a center hole aligned axially with said first and second single, multipole magnets.
5. The magnetic fastener of claim 1 wherein said first and second single, unitary multipole magnets are made from a flexible Neodymium magnet sheet.
6. The magnetic fastener of claim 1 further comprising a tubular pin extending through the center hole of said second single, multipole magnet with a portion extending therethrough, wherein in said latch configuration, the magnetic force between said first and second single, unitary multipole magnets forces said tubular pin into the center hole of said second single, unitary multipole magnet.
7. The magnetic fastener of claim 1 further comprising first and second housings, each having a recessed region, said first and second single, unitary multipole magnets disposed within the recessed regions of said first and second housings, respectively.
8. The magnetic fastener of claim 1 further comprising a knob attached to an end of said second housing for rotating said second single, unitary multipole magnet with respect to said first single, unitary multipole magnet, so as to place said magnetic fastener into the latch or unlatch configuration of said magnetic fastener.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The features and advantages of the present invention will become more readily apparent from the detailed description of the invention in which like elements are labeled similarly, and in which:
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DETAILED DESCRIPTION
(11) Referring to
(12) The present invention is based on the realization that when striped patterns of alternating polarity with about the same pitch, A, are mutually oriented lengthwise—along the Z-axis as depicted in
(13) It should be understood that the striped pattern of alternating north and south poles may have a Halbach array configuration, wherein the alternating polarity has a spatially rotating pattern such that the magnetic field on one side is “strong” and “weak” on the opposing side. A Halbach array employs a special arrangement so that the magnetic field on one side of the array is augmented while on the opposing side the field is near zero. A simple example of a Halbach array is a so-called “refrigerator” magnet. Advantageously, by having the weak magnetic flux distribution of the magnets face externally, electronics outside the fasteners are magnetically shielded. To better understand this aspect of the present invention, it would be beneficial to examine briefly how a Halbach array works.
(14) A Halbach array employs a spatially rotating pattern of magnetism as depicted in
(15) It is to be understood that the figures and description below have been simplified to illustrate elements that are relevant for a clear understanding of the present invention, while eliminating, for purposes of clarity, other elements. However, because such elements do not facilitate a better understanding of the present invention, a discussion of such elements is not provided herein. However, the disclosure herein is directed to all such variations and modifications known to those skilled in the art.
(16) As depicted in
(17) Multipole magnets 505,510 may be made of ferromagnetic material such as Neodymium, and disk in shape, each with a central hole 540. Tubular pin 545 is disposed through collar 550 into central hole 540, allowing multipole magnet 510 to rotate within a collar 550 relative to the other multipole magnet 505. For materials made of fabric, collar 550 may be unnecessary if tubular pin 545 rotates freely without binding in the material. Applying a torque on a handle or knob 555 that is connected to tubular pin 545 rotates multipole magnet 510, while still being held to material 525. Alternatively, handle or knob 555 may include a slot disposed within its head to receive a tool for rotating housing 535, and thereby also rotating multipole magnet 510. Such a slot may be configured as either a Phillips, Hex, Roberston, or Torx. Tubular pin 545 as well as handle 555 can be stamped or formed from metal so as to be integrally formed with housing 535, further confining the magnetic flux.
(18) In operation, handle or knob 555 may be configured so as to effect a strong latch by turning the knob such that the striped patterns of alternating polarity of multipole magnets 505,510 are mutually oriented lengthwise. With about the same pole spacing or pitch, λ, the stripes of the south poles can judiciously align with the stripes of the north poles from the magnet (and vice-a-versa), thereby creating a strong magnetic force and fastening materials 520, 525 together. This is their so-called “latch” or “close” position. In rotating multipole magnets 510, a tactile feedback is noticed as the stripes of magnets 505, 510 align their poles—north to south and south to north. Attempting to unfasten multipole magnets 505, 510 in the “latch” position requires a force of more magnitude.
(19) Although multipole magnets 505, 510 will somewhat slide along the lengthwise directions of the poles, it is much more difficult to do so in the orthogonal direction while in the “latch” position. Forcing them to slide across one another in the “latch” position produces a chattering sound. To unlatch, handle 555 must be rotated about 90 degrees such that the striped patterns of alternating polarity in multipole magnets 505, 510 are oriented orthogonal. In the “unlatch” or “open” position, the stripes are being alternating attracted and repelled, substantially reducing, if not cancelling the magnetic force between them. As such, the fastener is more easily pulled apart. Multipole magnets 505,510 also side more easily across each other in either directions in the “unlatch” position. In operation, selectively positioning magnets 505, 510 between the two orientations, one lengthwise and the other orthogonal, is used to fasten and unfasten materials 520, 525, respectively.
(20) A marker positioned on handle 555 may be used to indicate the “latch” and “unlatch” configurations. Again, the magnitude of the magnetic attraction between the multipole magnets is relatively weak in the “unlatch” or “open” position and substantially stronger in the “latch” or “close” position. Such an indicator is particularly advantageous for commercial applications which may require larger dimension fasteners where it is important to visually know that the fastener is in the “latch” position.
(21) It may be preferable to use the stripes of alternating poles in a Halbach array to shield any external electronics. Also, legs 560 may be used to attach magnet 505 to material 520, or can be affixed thereto by glue, screw, or even Velcro®, among other means. Various shapes may be used, and magnets 505, 510 need not be circular.
(22) Multipole magnets 505, 510 can be fabricated from a flexible Neodymium magnet sheet having stripes of poles that alternate between north and south with about the same pole spacing or pitch, λ. For example, micro-crystalline NdFeB ground powder may be mixed in a polymer matrix. When passed through strong cylindrical magnets or a rotating field, the striped pattern of alternating polarity is formed in the magnet sheet. Of course, the stripes of alternating polarity can use a Halbach array, commonly used in “refrigerator” magnets, as shown in
(23) To gain a better understanding of the present invention, it is noteworthy to examine how the characteristics of the striped patterns affect the magnetic pull force. The magnetic pull force is related to the surface area as well as the thickness of the multipole magnets, and accordingly can be judiciously chosen for its intended purpose and application. The holding force that results from the interaction of the alternating poles is proportional to the total length of the stripes formed by the poles. Closely spaced poles typically have a greater holding force since there are more stripes per inch. In a design for a particular application, it should be understood that while the closer pole spacing produces a strong holding force, more widely spaced poles have a greater throw, and hence attract more strongly from a distance. That is, the magnetic field is stronger at larger distances, and is a design choice for the desired application. Flexible Neodymium magnet sheets are available in various thicknesses, up to about 3 mm, with pole spacing or pitch, λ, ranging from one to several millimeters apart, and sometimes referred to as poles per inch (PPI). Various shapes can be custom fabricated, including circular disks, or washers.
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(25) In another embodiment of a magnetic fastener 900, shown in
(26) It should be understood that the embodiments herein are merely illustrative of the principles of the invention. Various modifications may be made by those skilled in the art which will embody the principles of the invention and fall within the spirit and scope thereof.