The present invention relates generally to lock accessories, and more specifically to adapters for supporting mortise locks.
Mortise locks are widely used for commercial and residential applications. A mortise lock, unlike a cylinder lock, is installed in a cavity cut or defined within the door stile (a cylinder lock is installed in a hole cut through the door). After installation, the mortise lock body is contained completely in the cavity. Since the body size of a mortise lock is not standardized, the pre-cut or previously used cavity may not be properly sized to match a particular mortise lock. This is particularly true when locks are modernized or updated thus complicating lock installation.
In addition, in some installations, a user may desire to eliminate the mortise lock altogether and replace the mortise lock with a faceplate. In general, a faceplate must present a smooth surface along the door stile. Unfortunately, doors that previously included a mortise lock may lack a surface to which to attach the faceplate. In those instances, expensive replacement doors may be necessary.
As such bridge adapters are presented herein.
The following presents a simplified summary of some embodiments of the invention in order to provide a basic understanding of the invention. This summary is not an extensive overview of the invention. It is not intended to identify key/critical elements of the invention or to delineate the scope of the invention. Its sole purpose is to present some embodiments of the invention in a simplified form as a prelude to the more detailed description that is presented below.
As such, bridge adapters configured for insertion into a cavity within a door stile are presented, the bridge adapter including: a planar body including, a top plate disposed along a distal end of the planar body, where the top plate includes a top plate front edge disposed along the distal end and a top plate back edge located opposite the top plate front edge, where the top plate further includes at least one raised feature along a top surface of the top plate, and where the top plate front edge includes a locking indent sized to couple with the raised locking feature, a first side plate including a first side plate front edge and a first side plate back edge located opposite the first side plate front edge, where the first side plate is mechanically coupled along the first side plate front edge and the top plate back edge by a first hinge, a bottom plate including a bottom plate front edge and a bottom plate back edge located opposite a bottom plate front edge, where the bottom plate front edge is mechanically coupled along the first side plate back edge and the bottom plate front edge by a second hinge, where the bottom plate includes at least one through hole sized to receive the at least one raised feature, and a second side plate including a second side plate front edge and a second side plate back edge located opposite the second side plate front edge, where the second side plate front edge is mechanically coupled along the bottom plate back edge and the second side plate front edge by a third hinge; and a tail including a first end and a second end, where the tail is mechanically and removably coupled along the second side plate back edge and the first end, where the tail further includes a raised locking feature, the locking feature disposed along the first end. In some embodiments, the planar body and the tail are made of a polymeric material and where the first hinge, second hinge, and third hinge are living hinges. In some embodiments, at least one plate includes at least one support rib disposed along an inner surface of the at least one plate. In some embodiments, the tail further includes a handle disposed along the second end. In some embodiments, the handle is curved. In some embodiments, the tail is flexible. In some embodiments, the tail is connected to the second side back edge by a perforated feature for detaching the tail. In some embodiments, the first hinge and second hinge have a range of motion of more than approximately 90 degrees and where the third hinge has a range of motion of at least approximately 120 degrees. In some embodiments, the third hinge has a range of motion of at least approximately 130 degrees. In some embodiments, the bottom plate is substantially the same width as the cavity, where at least one of the first side plate and the second side plate includes a friction-enhancing feature for engaging a wall of the cavity, and where the friction enhancing feature is raised and disposed along an outer surface of the bottom plate. In some embodiments, the second side plate includes a cutout sized to enable a tail to pass around the bridge adapter, where the cutout is disposed along an outer surface of the second side plate. In some embodiments, the top plate further includes a through hole centered with the top plate.
In other embodiments, methods of installing a first bridge adapter in a cavity are presented including: providing the first bridge adapter, where the first bridge adapter includes: a planar body including, a top plate disposed along a distal end of the planar body, where the top plate includes a top plate front edge disposed along the distal end and a top plate back edge located opposite the top plate front edge, where the top plate further includes at least one raised feature along a top surface of the top plate, and where the top plate front edge includes a locking indent, a first side plate including a first side plate front edge and a first side plate back edge located opposite the first side plate front edge, where the first side plate is mechanically coupled along the first side plate front edge and the top plate back edge by a first hinge, a bottom plate including a bottom plate front edge and a bottom plate back edge located opposite a bottom plate front edge, where the bottom plate front edge is mechanically coupled along the first side plate back edge and the bottom plate front edge by a second hinge, where the bottom plate includes at least one through hole sized to receive the at least one raised feature, and a second side plate including a second side plate front edge and a second side plate back edge located opposite the second side plate front edge, where the second side plate front edge is mechanically coupled along the bottom plate back edge and the second side plate front edge by a third hinge; and a tail including a first end and a second end, where the tail is mechanically and removably coupled along the second side plate back edge and the first end, where the tail further includes a raised locking feature sized to couple with the locking indent, the locking feature disposed along the first end; inserting the first bridge adapter into the cavity through the opening; bending the second hinge and third hinge of the first bridge adapter in such a way that the first side plate is in contact with a first wall of the cavity, the bottom plate is in contact with the bottom of the cavity, and the second side plate is in contact with a second wall of the cavity; and bending the first hinge of the first bridge adapter such that the locking indent engages with the raised locking feature.
The present invention is illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings and in which like reference numerals refer to similar elements and in which:
The present invention will now be described in detail with reference to a few embodiments thereof as illustrated in the accompanying drawings. In the following description, numerous specific details are set forth in order to provide a thorough understanding of the present invention. It will be apparent, however, to one skilled in the art, that the present invention may be practiced without some or all of these specific details. In other instances, well known process steps and/or structures have not been described in detail in order to not unnecessarily obscure the present invention.
For purposes of the present disclosure, a “bridge adapter” is a spacer that can support a snap-in bridge that, in turn, may support a mortise lock or a faceplate. A “cavity” is a hollow space within a door stile. An “opening” is the opening to the cavity located on the surface of the door stile.
An object of the present invention is to provide a bridge adapter that can support a bridge which supports the body of a mortise lock or faceplate in a cavity that is too deep for the body of the mortise lock.
Another object of the present invention is to provide a bridge adapter that can be inserted into a cavity within the door stile, even when the opening of the cavity is smaller than the cavity itself.
One embodiment of the bridge adapter of the present invention is a body that, when folded, becomes a rectangular tube-shaped spacer that is strong enough to support the body of a mortise lock or faceplate. In embodiments, a tail coupled with the body may be used for insertion of the body into a door stile cavity. The body folds into the desired rectangular tube shape as it is pushed into the cavity.
Planar body 102 may additionally include first side plate 120, located proximally to top plate 110. First side plate 120 may be defined by the first side plate front edge as indicated by dashed line 124 disposed along a distal end and the first side plate back edge as indicated by 134 disposed opposite the first side plate front edge. The first side plate front edge may be connected with the top plate back edge by first hinge 152. In embodiments, first hinge 152 may have a range of motion of more than approximately 90 degrees. In one embodiment, a range of motion of the first hinge is approximately 93 degrees. First hinge 152 is preferably strong and capable of flexing without damage. In one embodiment, the first hinge is a living hinge. As known in the art, a living hinge is a thin flexible hinge (flexure bearing) made from the same material as the two rigid pieces it connects, rather than cloth, leather, or some other flexible substance. A living hinge is typically thinned, cut, or formed to allow the rigid pieces to bend along the line of the hinge. First side plate 120 may also include friction-enhancing features 122 which may assist in retaining the bridge adapter in the cavity by engaging with the walls of the cavity. In an embodiment, as illustrated in
Planar body 102 may also include bottom plate 130, located proximally to first side plate 120. Bottom plate 130 may be defined by bottom plate front edge as indicated by dashed line 134 disposed along a distal end and bottom plate back edge as indicated by dashed line 144 disposed opposite the bottom plate front edge. In an embodiment, a length from the bottom plate front edge to the bottom plate back edge may be substantially the same as a length from the top plate front edge to the top plate back edge. The bottom plate front edge may be connected with the first side plate back edge by second hinge 154. Second hinge 154 may have a range of motion of more than approximately 90 degrees. In one embodiment, the range of motion is approximately 93 degrees. Second hinge 154 is preferably strong and capable of flexing without damage. In an embodiment, the second hinge is a living hinge. Bottom plate 130 preferably also includes through holes 132A and 132B. The through holes may be arranged to engage with raised features 116A and 116B when two bridge adapter embodiments are stacked on top of each other within a cavity. Stacking is further elucidated below with respect to
Planar body 102 may further include second side plate 140, located proximally to bottom plate 130. Second side plate 140 may be defined by second side plate front edge as indicated by dashed line 144 disposed along a distal end and second side plate back edge as indicated by dashed line 154 disposed opposite the second side plate front edge. The length from the second side plate front edge to the second side plate back edge is preferably the same as the length from the first side plate front edge to the first side plate back edge. The second side plate front edge may be mechanically coupled with the bottom plate back edge by third hinge 156. Third hinge 156 may be different from the first and second hinges in having a wider range of motion. In embodiments, third hinge may have a range of motion of at least approximately 120 degrees. In some embodiments, third hinge may have a range of motion of at least approximately 130 degrees. This wider range of motion may enable planar body 102 to flex in such a way as to clear the walls of the cavity during insertion. The third hinge is preferably strong and capable of repeated flexing without damage. In an embodiment, the third hinge is a living hinge. Second side plate 140 may also include friction-enhancing feature 142 which may assist in retaining the bridge adapter in the cavity by engaging with the walls of the cavity. In an embodiment, as illustrated in
Additionally, as illustrated in
In an embodiment, one or more of the plates may include one or more support ribs 162 disposed along inner surfaces of the one or more plates. Support ribs 162 may be separately located along each plate as illustrated and may strengthen the plates in order for the bridge adapter to avoid flexing during use. In an embodiment, support ribs may extend from the front edge to the back edge of each plate and may have at least one thickness of the plate in width and thickness. Each plate may include any number of ribs.
As illustrated in
Since the bridge adapter is a rectangular tube shape when folded, it will be understood that the first side plate and the second side plate are preferably the same width and that the top plate and bottom plate are preferably the same width (not necessarily the same as that of the first and second side plates). Different sizes of the bridge adapter may be available for differently sized locks and differently sized cavities. While the bridge adapter may be made of any material as long as it is sufficiently rigid to bear the weight of the bridge and the lock, in an embodiment, the bridge adapter is made of a polymeric material such as ABS, HDPE, or a similar rigid polymeric material. The first hinge, second hinge, and third hinge are preferably living hinges.
As illustrated in
As illustrated in
It may be appreciated that in some examples, a cavity may be encountered that is deeper than one bridge adapter can accommodate. In such examples, a second bridge adapter may be needed. In an embodiment, a second bridge adapter may be installed on top of a first bridge adapter, as shown in
As shown in
As can be seen in
The terms “certain embodiments”, “an embodiment”, “embodiment”, “embodiments”, “the embodiment”, “the embodiments”, “one or more embodiments”, “some embodiments”, and “one embodiment” mean one or more (but not all) embodiments unless expressly specified otherwise. The terms “including”, “comprising”, “having” and variations thereof mean “including but not limited to”, unless expressly specified otherwise. The enumerated listing of items does not imply that any or all of the items are mutually exclusive, unless expressly specified otherwise. The terms “a”, “an” and “the” mean “one or more”, unless expressly specified otherwise.
While this invention has been described in terms of several embodiments, there are alterations, permutations, and equivalents, which fall within the scope of this invention. It should also be noted that there are many alternative ways of implementing the methods and apparatuses of the present invention. Furthermore, unless explicitly stated, any method embodiments described herein are not constrained to a particular order or sequence. Further, the Abstract is provided herein for convenience and should not be employed to construe or limit the overall invention, which is expressed in the claims. It is therefore intended that the following appended claims be interpreted as including all such alterations, permutations, and equivalents as fall within the true spirit and scope of the present invention.