The present invention generally relates to locks, and more particularly, but not exclusively, to cylinder locks.
Lock cylinders, particularly those of the interchangeable core variety, have complex part tolerances and pinning to allow the cylinder to function properly. The complexities can also make the pinning process difficult and laborious. If pinning is off, the entire assembly must be reset and emptied, and the user must start over. Furthermore, many traditional interchangeable core assemblies suffer from a tendency to “explode” when the plug is removed from the shell. That is to say, the springs eject the internal components out of the assembly, thereby losing the pinning placement and running the risk of damaging, destroying, or losing one or more components. Therefore, a need remains for further improvements in lock cylinder assemblies.
One embodiment of the present invention is a unique locking plug formed of modular cartridges. Further embodiments, forms, features, and aspects of the present application shall become apparent from the description and figures provided herewith.
For the purposes of promoting an understanding of the principles of the invention, reference will now be made to the embodiments illustrated in the drawings and specific language will be used to describe the same. It will nevertheless be understood that no limitation on the scope of the invention is hereby intended. Any alterations and further modifications in the described embodiments, and any further applications of the principles of the invention as described herein are contemplated as would normally occur to one skilled in the art to which the invention relates.
With reference to
The plug 120 is disposed within the chamber 112, extends along the axis 119 (
The mounting device 130 includes a faceplate 133 having formed therein a keyway 134. The keyway 134 is aligned with the key passage 124, and may include a ward (not shown) configured to prevent insertion of a key which does not have a correspondingly-shaped groove. In the illustrated form, the mounting device 130 includes at least one rod 132 extending in the axial direction of the plug 120, the function of which is described in detail below.
With additional reference to
The housing 210 is generally cylindrical and includes protrusions 212, each of which is configured to be received in a corresponding groove 113 formed in the inner surface 115 of the shell 110 (
The fixed plate 220 is disposed within the housing 210 such that the fixed plate 220 is rotatable with respect to the housing 210, but is not movable in the axial direction of the housing 210. In other words, the fixed plate 220 has a variable angular position and a fixed axial position within the housing 210. The fixed plate 220 includes through-holes 222, each of which is configured to receive one of the rods 132. The fixed plate 220 also includes an elongated channel 224 configured to receive the sliding member 230.
The sliding member 230 is slidingly coupled to the fixed plate 220 and is disposed partially within the channel 224. The sliding member 230 includes legs 232 and an engagement surface 233. The legs 232 are horizontally separated from one another by a distance corresponding to the width of a corresponding key such that a passage 234 is formed therebetween. While the illustrated sliding member 230 includes two legs 232, in other forms the sliding member 230 may include only one leg 232. The sliding member 230 is urged downward (with reference to the illustrated orientation) via the biasing member 202. When no key is inserted, the legs 232 may be urged into contact with a surface of the cartridge 200 opposite the biasing member 202. The passage 234 is configured to receive the shank of a corresponding key, and the engagement surface 233 is configured to travel along the teeth of the key as the shank is inserted. The engagement surface 233 may be tapered or curved to facilitate such travel. The opposing forces provided by the biasing member 202 and the shank ensure that the vertical position of the sliding member 230 corresponds to the root depth of the shank at the point of contact.
In the illustrated embodiment, the engagement surface 233 is configured to engage teeth defined by an uppermost surface of a corresponding (e.g. top-cut) key. In other embodiments, one or more engagement surfaces 233 may be configured to engage another type of key bitting such as dimple pinning, side-milling, or side notching. For example, one of the legs 232 may include a protrusion extending into the passage 234 and configured to interact with a cut on the side of the key. In certain embodiments, the plug 120 may include a first set of cartridges configured to engage top-cut bittings, and a second set of cartridges configured to engage side-millings.
The movable plate 240 is disposed within the housing 210 such that the movable plate 240 is rotatable with respect to the housing 210 and is movable in the axial direction of the housing 210. In other words, the movable plate 240 has variable axial and angular positions relative to the housing 210. In the illustrated embodiment, each fixed plate 220 is positioned between the faceplate 133 and the corresponding movable plate 240. It is also contemplated that the orientation of one or more of the cartridges 200 may be reversed such that the fixed plate 220 is positioned between the faceplate 133 and the corresponding movable plate 240. The movable plate 240 includes a passage 244 which is substantially aligned with the passages 224, 234, the combination of which defines a section of the key passage 124. When multiple cartridges 200 are combined to form the plug 120, the passages 224, 234, 244 of each cartridge 200 are substantially aligned with the keyway 134 such that when the shank of a key is inserted into the keyway 134, the shank is free to travel through the key passage 124. In some embodiments, the sliding member 230 may be partially disposed within the passage 244. The movable plate 240 also includes through-holes 242 which are aligned with the through-holes 222 and are each configured to receive one of the rods 132.
To form the plug 120, the cartridges 200 are mounted on the mounting device 130 by inserting the rods 132 into the through-holes 222, 242 such that the mounting device 130 is rotationally coupled to the cartridge 200. When the selected number of the cartridges 200 have been mounted, the plug 120 is inserted into the chamber 112. The plug 120 may further include a cap (not illustrated) configured to prevent the cartridges 200 from sliding off the rods 132. The plug 120 may further comprise a rear plate (not illustrated) configured to interact with a throwing device operable to move a latch, bolt, or other locking element between a locked position and an unlocked position. In other embodiments, the throwing device may connect to the rods 132 or a plate 220, 240. It is also contemplated that the plug 120 may throw the latch, bolt, or other locking element in another manner.
In the illustrated embodiment, each of the plates 220, 240 includes two through-holes corresponding to the two rods 132 of the mounting device 130. It is also contemplated that more or fewer rods 132 may be utilized, and that the fixed plate 220 and the movable plate 240 may include a corresponding number of through-holes. It is further contemplated that the cartridges 200 may be coupled to the mounting device 130 in another manner, or that the cartridges 200 may be coupled only to the shell 110.
With additional reference to
In the illustrated embodiment, the cam surfaces on the housing 210 are configured as the tapered protrusions 213, and the cam surfaces on the movable plate 240 are configured as the tapered recesses 243. However, in other embodiments, the movable plate 240 may include one or more tapered protrusions, and the housing 210 may include correspondingly-shaped recesses. Furthermore, while the illustrated cam surfaces are both tapered in a substantially rectilinear manner, it is also contemplated that one or more of the cam surfaces may be of a different geometry so long as the interaction of the cam surfaces urges the movable plate 240 toward the fixed plate 220 upon rotation of the movable plate 240. By way of non-limiting example, one or more of the cam surfaces may include a curvilinear geometry. It is also contemplated that the cam surfaces may be formed on the retaining ring 204 in addition to or in lieu of cam surfaces formed on the housing 210. In such embodiments, the retaining ring 204 would be positioned on the same side of the cartridge 200 as the movable plate 240.
In the illustrated form, the cartridge 200 includes one fixed plate 220 and one movable plate 240. However, in other embodiments, a cartridge 200 may include two movable plates 240, and both the retaining ring 204 and the housing 210 may include cam surfaces such as the tapered protrusions 213. In such embodiments, the cam surfaces incorporated into the retaining ring 204 interact with the first movable plate, and the cam surfaces incorporated into the housing 210 interact with the second movable plate, and the movable plates cam axially inward toward one another when rotated.
The sliding member 230 includes an interference protrusion 235, and the movable plate 240 includes a correspondingly-shaped recess 245 configured to receive the interference protrusion 235. When the sliding member 230 is not in the proper position, the movable plate 240 comes into contact with the protrusion 235 upon rotation of the plates 220, 240. In such a blocked position, the fixed plate 220 and the sliding member 230 provide a stationary plane which resists further axial movement of the movable plate 240. In other words, the protrusion 235 interferes with the axial movement of the movable plate 240, and further rotation of the movable plate 240 with respect to the housing 210 is prevented. When the sliding member 230 is in the proper position, the protrusion 235 is aligned with the recess 245. In such an unblocked state, the movable plate 240 is free to move toward the fixed plate 220, and rotation of the movable plate 240 with respect to the housing 210 may continue.
In the cartridge 200 depicted in
In the illustrated cartridge 200, the protrusion 235 is formed on the sliding member 230, and the recess 245 is formed on the movable plate 240. However, in other embodiments, the movable plate 240 may include the protrusion, and the sliding member 230 may include the correspondingly-shaped recess. Furthermore, while the sliding member 230 is slidingly coupled to the fixed plate 220, it is also contemplated that the sliding member 230 may be slidingly coupled to the movable plate 240. In such embodiments, the interference protrusion can be provided on one of the sliding member and the fixed plate, and the correspondingly-shaped recess can be provided on the other of the sliding member and the fixed plate.
With additional reference to
In the illustrated embodiment, the plug 120 has been master-keyed by providing the movable plate 240 of one cartridge with the two recesses 245. In other embodiments, two or more of the cartridges 200 may include the multiple recesses 245 such that multiple levels of master-keying are possible. It is also contemplated that the movable plate 240 of each cartridge 200 may include only a single recess 245 such that the plug is operable by only a single key formation. Furthermore, while the exemplary plug 120 includes seven cartridges 200, it is to be appreciated that the modular nature of the cartridges 200 allows for the plug 120 to be created along any desired length by selecting the appropriate number of cartridges 200. Because the cartridges 200 are interchangeable and essentially self-contained, they may be used across a variety of formats simply by selecting an appropriate configuration of the shell 110. Furthermore, the fact that each of the modular cartridges 200 corresponds to a single bitting position of the key enables the user to create a lock cylinder with pinning options and cylinder length according to his or her particular needs.
The modular nature of the cartridges 200 also facilitates manufacture and maintenance. During manufacture, pinning the plug 120 can be handled in subassemblies prior to cylinder production. The plug 120 can also be easily re-pinned by replacing one or more of the cartridges 200, or by simply altering the order of the cartridges 200 within the plug 120. This reduces time and complexity from the pinning process, thereby enabling simplified re-pinning of the cylinder 100 whether in a manufacturing setting or in the field. In certain forms, the cartridges 200 may be labeled with a code corresponding to the root depth (or depths if the cartridge includes the multiple recesses 245) of a key which will cause the protrusion 235 to align with a recess 245. Given the bitting code of a particular key, a user can easily select and install the cartridges 200 which will enable the cylinder 100 to be operated by the key.
While the invention has been illustrated and described in detail in the drawings and foregoing description, the same is to be considered as illustrative and not restrictive in character, it being understood that only the preferred embodiments have been shown and described and that all changes and modifications that come within the spirit of the inventions are desired to be protected.
It should be understood that while the use of words such as preferable, preferably, preferred or more preferred utilized in the description above indicate that the feature so described may be more desirable, it nonetheless may not be necessary and embodiments lacking the same may be contemplated as within the scope of the invention, the scope being defined by the claims that follow. In reading the claims, it is intended that when words such as “a,” “an,” “at least one,” or “at least one portion” are used there is no intention to limit the claim to only one item unless specifically stated to the contrary in the claim. When the language “at least a portion” and/or “a portion” is used the item can include a portion and/or the entire item unless specifically stated to the contrary.
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Number | Date | Country | |
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20150354246 A1 | Dec 2015 | US |