This invention relates to the field of door hardware. More particularly, this invention relates to a doorstop and door holder that incorporates magnetic components.
Doors today are often equipped with standard equipment for holding doors open, such as kick-down doorstops, hook-and-latch type mechanisms, integrated wedges and props, pneumatic door closers, and basic magnetic devices. These existing technologies are not aesthetically or functionally pleasing and are not readily adjustable to meet the variety of needs posed by a plethora of door designs, which may vary by material, weight, and style.
The aforementioned problems and more are solved by the magnetic doorstop and door holder described herein. The system provides an aesthetically pleasing, functionally simple, yet highly effective solution designed to grant everyday consumers control over their doors that is typically available only via professional installation. Moreover, the system is designed to work with most doors available on the market today, including not only traditional solid doors, but also hollow core doors, which often limit consumer options regarding existing doorstops and holders.
The system involves magnetic and/or ferromagnetic materials that are affixed to or embedded within various entryway components, including doors, door frames, door jambs, door hinges, and within walls and/or flooring adjacent to the entryway. The system is designed to be highly customizable to fit each consumer's particular needs and circumstances, and to be adjustable based not only on the type of door or entryway layout, but also based on the consumer's desired strength of hold and precise positioning.
Embodiments described herein are directed to a magnetic doorstop and door holder comprising a hinge pin doorstop body having a first end and an opposing second end. Disposed at the first end of the hinge pin doorstop body is a hinge pin receiving aperture configured to receive a hinge pin of a hinge of a door. The magnetic doorstop and door holder includes a first leg, an engagement member, and a second leg. The first and second legs both have a proximal end and a distal end. The proximal end of the first leg is connected to the second end of the hinge pin doorstop body, and the distal end of the first leg extends outward from the hinge pin doorstop body. The engagement member is disposed at the second end of the hinge pin doorstop body adjacent to the proximal end of the first leg. The proximal end of the second leg is adjustably received in the engagement member, and the distal end of the second leg extends outward from the engagement member. A first bumper is attached to the distal end of the first leg, and a second bumper is attached to the distal end of the second leg. A first magnet is attached to the first bumper, and a second magnet is attached to the second bumper. The magnetic doorstop and door holder includes first and second ferromagnetic structures. The first ferromagnetic structure is configured for attachment to the door and comprises one or more materials that are magnetically attracted to the first magnet. The second ferromagnetic structure is configured for attachment to a door frame, door jamb or wall to which the hinge is attached. The second ferromagnetic structure comprises one or more materials that are magnetically attracted to the second magnet.
In some embodiments, the second leg of the magnetic doorstop and door holder comprises a threaded shaft and the engagement member comprises a threaded aperture that receives the threaded shaft.
In some embodiments, the first and second bumpers are formed from polyurethane.
In some embodiments, the first magnet is embedded within the first bumper, and the second magnet is embedded within the second bumper.
In some embodiments, a force of magnetic attraction between the first magnet and the first ferromagnetic structure is adjustable based on selection of the thickness of the portion of the first bumper disposed between the first magnet and the first ferromagnetic structure.
In some embodiments, a force of magnetic attraction between the second magnet and the second ferromagnetic structure is adjustable based on selection of the thickness of the portion of the second bumper disposed between the second magnet and the second ferromagnetic structure.
In some embodiments, one or both of the first ferromagnetic structure and the second ferromagnetic structure comprise a ferromagnetic plate.
In some embodiments, one or both of the first ferromagnetic structure and the second ferromagnetic structure comprise a magnetic shunt assembly.
In some embodiments, the magnetic shunt assembly includes a housing containing a rotatable plate on which a plurality of magnets of various sizes are attached. A top plate on the housing has an aperture disposed in proximity to the rotatable plate. The force of magnetic attraction between the magnetic shunt assembly and the first or second magnet is adjustable based on selection of one of the plurality of magnets to be aligned with the aperture in the top plate.
In some embodiments, the magnetic shunt assembly includes a housing containing a rotatable top plate in which a plurality of apertures of various sizes are disposed. A magnet is fixedly attached to the housing in proximity to the rotatable top plate. The force of magnetic attraction between the magnetic shunt assembly and the first or second magnet is adjustable based on selection of one of the plurality of apertures to be aligned with the magnet.
In some embodiments, the magnetic shunt assembly includes a housing containing a top plate in which an adjustable size aperture, such as an iris aperture, is centrally disposed. A magnet is fixedly attached to the housing in proximity to the top plate and in alignment with the adjustable size aperture. The force of magnetic attraction between the magnetic shunt assembly and the first or second magnet is adjustable based on adjusting the size of the adjustable size aperture.
In another aspect, embodiments of the invention are directed to various configurations of a magnetic shunt assembly for adjusting a force of magnetic attraction between the magnetic shunt assembly and an adjacent ferromagnetic structure.
In a first embodiment, the magnetic shunt assembly comprises a housing containing a rotatable plate on which a plurality of magnets of various sizes are attached, and a top plate on the housing having an aperture disposed in proximity to the rotatable plate. The force of magnetic attraction between the magnetic shunt assembly and the adjacent ferromagnetic structure is adjustable based on selection of one of the plurality of magnets to be aligned with the aperture in the top plate.
In a second embodiment, the magnetic shunt assembly comprises a housing containing a rotatable top plate in which a plurality of apertures of various sizes are disposed, and a magnet fixedly attached to the housing in proximity to the rotatable top plate. The force of magnetic attraction between the magnetic shunt assembly and the adjacent ferromagnetic structure is adjustable based on selection of one of the plurality of apertures to be aligned with the magnet.
In a third embodiment, the magnetic shunt assembly comprises a housing containing a top plate in which an adjustable size aperture is centrally disposed, and a magnet fixedly attached to the housing in proximity to the top plate and in alignment with the adjustable size aperture. The force of magnetic attraction between the magnetic shunt assembly and the adjacent ferromagnetic structure is adjustable based on adjusting the size of the adjustable size aperture.
In some embodiments of the magnetic shunt assembly, the adjacent ferromagnetic structure comprises a magnet associated with a magnetic doorstop or a magnetic door holder.
Further advantages of the invention are apparent by reference to the detailed description in conjunction with the figures, wherein elements are not to scale so as to more clearly show the details, wherein like reference numbers indicate like elements throughout the several views, and wherein:
Embodiments described herein are directed to a small, low profile magnetic system 10 that combines a doorstop and door holder, as depicted in
As shown in
As the term is used herein, a ferromagnetic structure is a structure that contains or consists of a ferrous material or other material that is attracted to a magnet by magnetic force. As will be appreciated by one of ordinary skill in the art, a ferromagnetic material is a material having the same kind of magnetism as iron, such as a material that has high magnetic permeability and appreciable residual magnetism and hysteresis, or that possesses magnetization in the absence of an external magnetic field.
In a second embodiment, the combination doorstop and door holder 10 is configured on the wall or floor and includes one or more magnets or ferromagnetic materials embedded into the frame of a doorway. In a corresponding location on a door that is mounted to the door frame, or on a wall or floor adjacent to the door, one or more magnets or ferromagnetic materials are embedded so as to prevent full closure of the door. The magnets or ferromagnetic materials may incorporate a male and female connector design. Because this embodiment involves no mechanical or moving parts, noise, friction, and wear and tear on components are virtually eliminated.
In a variation of the second embodiment, the magnets or ferromagnetic materials are shrouded in a material allowing for a tight, quiet fit. Such shrouding materials might include, but are not limited to, relatively soft materials, such as polyurethane or other materials with such desirable properties. The magnets or ferromagnetic materials may incorporate a male and female connector design.
In another variation of the second embodiment, the magnetic strength of the magnets or ferromagnetic materials may be adjusted by varying the proximity of the magnets using a worm gear or other device, by use of a magnetic shunt alone or in combination with a worm gear or other device, or by other means. A magnetic shunt might include materials such as, but not limited to, iron-based materials or other materials with such desirable properties that affect the amount of flux passing through the area between the magnet and ferromagnetic material.
As shown in
The foregoing description of preferred embodiments for this invention have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the invention to the precise form disclosed. Obvious modifications or variations are possible in light of the above teachings. The embodiments are chosen and described in an effort to provide the best illustrations of the principles of the invention and its practical application, and to thereby enable one of ordinary skill in the art to utilize the invention in various embodiments and with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the invention.
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Espacnet machine translation JP2002271052A Sep. 20, 2002 description and claims (Year: 2023). |
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Epacenet machine translation WO2006094491A1 Sep. 14, 2006 description and claims (Year: 2023). |
Espacenet machine translation JP2002271052A Sep. 20, 2002 description and claims (Year:2023). |
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