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This invention is related to latches and more particularly to apparatuses and methods for magnetically operating a latching bolt.
Latches are used for many purposes including maintaining items in a close position until those items are desired to be open. For example, a baby crib with a drop-down side protects the baby from climbing out of the crib when the crib is latched in a closed position, and can be placed in an open position with the drop-down side dropped for easy access to the baby when the latch is released. Latches, including those disclosed herein, are used in many applications, from door latches to automobile latches and have a variety of methods of use.
Existing latches can be difficult to operate, particularly over time as they wear. They can also engage the user in an uncomfortable or harmful way.
Accordingly, there is a need for a latch that is easy to use and an effective method of using such a latch. There is also a need for a latch that wears minimally. In addition, there is a need for a latch that is comfortable and not harmful to a user.
There is also a need for a latch for a drop-side on a crib that has a soft-closure to protect a young person from having a finger or other body part caught when closing the drop-side and there is a need for a latch for a crib that is difficult for a crib occupant to open.
The accompanying drawings, wherein like reference numerals are employed to designate like components, are included to provide a further understanding of latch apparatuses and methods of use, are incorporated in and constitute a part of this specification, and show embodiments of those apparatuses and methods that together with the description serve to explain those apparatuses and methods.
Various other objects, features and advantages of the invention will be readily apparent according to the following description exemplified by the drawings, which are shown by way of example only, wherein:
In an embodiment, a magnetic latch of the present invention includes a moveable actuator and a bolt. The moveable actuator has a north-pole magnet (oriented with a north pole generally facing outward toward the bolt) and a south-pole magnet (oriented with a south pole generally facing outward toward the bolt) attached thereto. The bolt is responsive to the north-pole magnet and the south-pole magnet when the bolt is adjacent the actuator. A magnetic force applied to the bolt moves the bolt toward the moveable actuator when the movable actuator is in a first position and moves the bolt away from the moveable actuator when the movable actuator is in a second position.
In another embodiment, a magnetic latch for a drop-side crib includes a moveable actuator having a north-pole magnet and a south-pole magnet, the moveable actuator attached to the crib. A strike is coupled to the crib adjacent the moveable switch. A bolt having a bolt magnet incorporated therein is attached to the drop-side of the crib such that the bolt magnetically engages the strike when the bolt is adjacent the strike and the moveable actuator is in a first position and such that the bolt disengages the strike when the moveable actuator is in a second position.
A method of operating a latch is also provided. That method includes moving an actuator that is attached to a first structure to be latched to a first position, the actuator having a north-pole magnet and a south-pole magnet. In that first position, the actuator causes a magnet associated with a bolt attached to a second structure to be latched to extend into the first structure, thereby latching the first structure to the second structure. Moving the actuator to a second position causes the magnet associated with the bolt to retract from the first structure, thereby unlatching the first structure from the second structure.
Other embodiments, which may include one or more portions of the aforementioned apparatuses and methods or other parts or elements, are also contemplated, and may have a broader or different scope than the aforementioned apparatuses and methods. Thus, the embodiments in this Summary of the Invention are mere examples, and are not intended to limit or define the scope of the invention or claims.
Reference will now be made to embodiments of apparatuses and methods of a latch, latching, and operation of a latch, examples of which are shown in the accompanying drawings. Details, features, and advantages of those latches and methods of use will become further apparent in the following detailed description of embodiments thereof.
Any reference in the specification to “one embodiment,” “a certain embodiment,” or a similar reference to an embodiment is intended to indicate that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the invention. The appearances of such terms in various places in the specification do not necessarily all refer to the same embodiment. References to “or” are furthermore intended as inclusive, so “or” may indicate one or another of the ored terms or more than one ored term.
For purposes of the description hereinafter, the terms “upper,” “lower,” “right,” “left,” “vertical,” “horizontal,” “top,” “bottom,” “lateral,” “longitudinal,” and derivatives thereof shall relate to the concept as it is oriented in the drawing figures. However, it is to be understood that the concept may assume various alternative variations, except where expressly specified to the contrary. It is also to be understood that the specific devices illustrated in the attached drawings, and described in the following specification, are simply exemplary embodiments of the concept. Hence, specific dimensions and other physical characteristics related to the embodiments disclosed herein are not to be considered as limiting.
In the embodiment shown in
The switch 112 may be biased, for example by a spring 538 (illustrated in
In the embodiment of
The strike 106 may include a strike plate 132 that may be attached to the strut 150 or a member attached to the strut 150 or otherwise situated adjacent the strut 150. The strike may also include a strike box 134 set into the strut 150 or a member adjacent the strut 150.
In the embodiment shown in
Alternatively, in an embodiment in which there is no strike 106, the latch bolt 122 may extend into the strut 150 or otherwise engage the strut 150 or a moveable actuator body 502 (Illustrated in
When the switch 112 is actuated, the latch bolt 122 is disengaged from the strike 106 or strut 150. When the latch bolt 122 is disengaged, the moving portion 152 may be moved away from the strut 150. For example, a door on hinges may be swung away from the switch assembly 102 or a hinged drop-side may be moved away from the switch assembly.
The switch 112 illustrated in
A guide or stop 126 portion of the latch housing 124 may extend into an opening 136 in the strike 106 or strut 150 to guide the latch mechanism 104 into operable relation, proximate to the switch assembly 102. The guide or stop 126 may also prevent the latch mechanism 104 from pivoting past the strike 106 when the latch is moved to the closed position. An attachment portion 128 of the latch housing 124 may be included in the latch housing 124 to facilitate attachment of the latch housing 124 to the moving portion 152.
In one embodiment, the present invention has a soft close feature that encourages the user to close a door, drop-side, or other thing to be latched gently or quietly. In one such embodiment, one or more switches 122 must be manipulated to retract associated bolts 122 when moving the latch mechanism 104 to a latching position, for example the position of the drop-side 306 illustrated in
An advantage to applying more than one latch 100 to an apparatus (use of two latches sometimes referred to as double action), such as a crib 300 is that while a parent or guardian may be able to manipulate two switches 112 on opposite sides of the crib 300 to release those two latches 100, a child in the crib 300 may not be able to reach both switches 112 simultaneously and so could not open the drop-side 306. Further, in the crib 300 application illustrated in
In another embodiment, an auto-latching latch 100 is disclosed. In the auto-latching latch 100, the latch 100 may be closed against the strike plate 132 and the bolt 122 will engage with the strike plate 132 if sufficient force is applied to close the latch 100 against the strike plate 132. In such an auto-latching embodiment, the strike plate 132 may beneficially move the latch bolt 122 to a retracted position when the latch bolt 122 is pressed against the strike plate 132. Thus, for example, when the latch 100 is used in an application such as the crib 300 illustrated in
In one embodiment, a magnetic latch includes two parts, a moveable actuator 510 that may be in the form of a switch assembly 102, having a north-pole magnet 514 and a south-pole magnet 516 as illustrated in
The bolt 122 is responsive to the positioning of the north-pole magnet 514 and the south-pole magnet 516 in the actuator 510 and may be configured in various ways. In one embodiment, the bolt 122 is associated with a magnet and in another embodiment, the bolt 122 itself is magnetic, such that the bolt 122 is also the bolt magnet 532. In both such configurations a magnetic force is applied to the bolt magnet 532 through the north-pole magnet 514 or the south-pole magnet 516 and that force moves the bolt 122 toward the moveable actuator 510 when the movable actuator 510 is in a first position and moves the bolt 122 away from the moveable actuator when the movable actuator 510 is in a second position. The bolt magnet 532 may be oriented with its north pole facing the actuator 510 or with its south pole facing the actuator 510 as desired, such that one of the magnets 514 and 516 may attract the bolt magnet 532 when the actuator 510 is in an appropriate position and the other of magnets 514 and 516 may repel the bolt magnet 532 when the actuator 510 is in a different appropriate position.
In certain embodiments, a spring 538 may bias the bolt 122 toward the actuator 510 and the biasing force of the spring will be overcome when the appropriate actuator magnet 514 or 516 is placed in a position to push the bolt 122 away from the actuator 510 to disengage the latch 100, as is illustrated in
In other embodiments, a spring may bias the bolt 122 away from the actuator 510 and the biasing force of the spring will be overcome when the appropriate actuator 510 magnet 514 or 516 is placed in a position to pull the bolt 122 toward the actuator 510 to engage the latch 100.
In various embodiments, one or both of the actuator 510 and the bolt 122 may have housings that couple the actuator 510 or the bolt 122 to an apparatus to be latched. Furthermore, in many embodiments, a strike plate 132 is attached opposite the bolt 122 and near the actuator 510 such that the bolt 122 can engage the strike plate to latch the two portions of the apparatus when the actuator 510 is placed in a latching position.
A hinge 330 connects the drop side 306 to the fixed front side 310 of the crib 300 in the embodiment illustrated in
As may be seen in the method of operating the drop-side 306 of the crib 300 in
When the switch 102 is unactuated, the switch places a magnet 514 or 516 in a position to act upon the latch bolt 122 so as to move the latch bolt 122 toward the switch assembly 102. Actuation of the first switch 102 moves the left side magnet assembly 512 such that a magnet that repulses the latch bolt 122 is moved into a position proximate to the latch bolt 122, thereby moving the latch bolt 122 out of engagement with the strike 106 or strut 150. At 404, the second latch 322 is actuated by moving the second latch switch 102, thereby repulsing the latch bolt 122 of the second latch 322. At 406, the drop-side 306 may be released from the left and right struts 150 by fingers or thumbs of hands that are actuating the left and right side switches 302 and 304. Once released, the drop-side 306 may be lowered to rest alongside the fixed front-side 310, as depicted in
One method of latching a first apparatus to a second apparatus, includes moving an actuator 510 that is attached to the first apparatus and has a north-pole magnet 514 and a south-pole magnet 516 attached to it to a first position, which causes a magnet associated with a bolt 122 attached to the second apparatus to extend into the first apparatus, thereby latching the first apparatus to the second apparatus. When the actuator 510 is moved to a second position, the actuator 510 causes the magnet associated with the bolt 122 to retract from the first apparatus, thereby unlatching the first apparatus from the second apparatus. The method of latching a first apparatus to a second apparatus may include biasing the actuator 510 to the engaging position such that the bolt 122 will be engaged with the first apparatus when the bolt 122 is proximate to the actuator 510. That method may also include latching the second apparatus to the first apparatus by moving the second apparatus into proximity to the first apparatus.
The moveable actuator body 502 provides actuation for the latch 500, particularly the latch body 504. The actuator 510, here a sliding button, and the magnet assembly 512 may be coupled such that the magnet assembly 512 moves with the actuator 510 sliding button. For example, the actuator 510 sliding button may be attached to the magnet assembly 512 by interference fit, snap-coupling prongs extending from the actuator 510 to couple to the magnet assembly 512 when pressed together, or snap-coupling prongs extending from the magnet assembly 512 to couple to the actuator 510 when pressed together, or by one or more screws extending from one part 510, 512 of the moveable actuator body 502 to the other part 510, 512 of the moveable actuator body 502.
The actuator 510 and the magnet assembly 512 may furthermore connect to one another through the switch body housing 508 or a portion of the housing 508, such as a first switch body housing portion 524 as illustrated in
Other actuating devices may be used alternatively to the sliding button actuator 510 illustrated in
The latch body 504 housing may also have multiple portions as desired, such as latch body attachment portion 528 and latch body cap 526.
In one embodiment of a magnetic latch 500, a bolt facing north-pole magnet 514 and a bolt facing south-pole magnet 516 are attached to a moveable actuator 510 that is coupled to a first portion of an apparatus that is to be latched. A strike plate 530 is also coupled to the first portion of the apparatus to latch with the bolt 122. The strike plate 530 may be located near, but not necessarily in contact with, the moveable actuator 510. A bolt 122 responsive to the bolt facing north-pole magnet 514 and the bolt facing south-pole magnet 516 and adjacent the actuator 510 is coupled to the second portion of the apparatus. The bolt 122 is moveable in relation to the first portion of the apparatus to engage the strike plate 530 when the moveable actuator 510 is in a first position and to disengage the strike plate 530 when the moveable actuator 510 is in a second position.
A crib 300 having a drop-side 306 moveably attached to the crib 300 by one or more hinges may include a moveable actuator 510 having a bolt facing north-pole magnet 514 and a bolt facing south-pole magnet 516. A strike 530 may also be coupled to the crib 300 adjacent the moveable actuator 510 on an opposite side of a crib strut 150 from the moveable actuator 510, as may be seen in
While specific embodiments of the invention have been described in detail, it should be appreciated by those skilled in the art that various modifications and alternations and applications could be developed in light of the overall teachings of the disclosure. Accordingly, the particular arrangements, apparatuses, and methods disclosed are meant to be illustrative only and not limiting as to the scope of the invention.