The present invention relates to a lock with an extended bolt throw with a single turn of the key. Specifically, it relates to a lock compatible with a lock cylinder and an extended bolt throw with a single turn of the key. More specifically, the present invention relates to a lock compatible with a lock cylinder with a cam, the lock having an extended bolt throw with a single turn of the key and the lock cylinder requiring no modifications.
Long bolt throw locks are hugely useful in any situation where the lock body and the securing section for the lock bolt are not in close proximity. One specific use among others is for gate locks.
Simple long bolt throw locks, especially for simple garden gates, have the bolt throw manually operated, in a bolt slide or the like. But where additional security is required, it is preferable for the lock to be key actuated. Key actuated long throw locks have the technical issue of actuating the full extended throw of the bolt with just the motion of turning the key, as common lock cylinders with cams only have the ability to drive the lock for about 170 degrees of the cam's rotation.
One of the main forms of key lock mechanisms used in long throw locks, along with most lock types, is the euro cylinder lock (originally known as the pin tumbler lock). Long bolt throw locks that are currently available require a modified euro cylinder lock 800 to actuate the extended bolt throw, typically fixed gears 850 as shown in
It is all object of the present, invention to provide a key operated long throw bolt lock which is compatible with a lock cylinder and cam. Therefore, it also provides a long throw lock which is easier and cheaper to manufacture, and easier to repair if damaged.
According to a first aspect of the invention, there is provided a lock with an extended bolt throw comprising a back plate, a locking bolt having a rack gear profile on at least a portion of one side, slidably mounted to the back plate movable between a first position and a second position. An accelerator gear mounted to the back plate is movable along an arcuate path between a first and second position. The accelerator gear comprises a curved edge having teeth which engage the rack gear profile of the locking bolt. An opposing edge has a centrally located notch for engagement of a cam of a lock cylinder, wherein as the cam rotates about the lock cylinder it engages the notch and urges the accelerator gear from the first position to the second position, which urges the locking bolt from the first position to the second position.
In an embodiment of the first aspect, the arcuate path followed by the accelerator gear is defined by a groove or slot in the back plate. The accelerator gear further comprises at least one protrusion on at least one side which slidably engages with the slot or groove of the back plate.
In an embodiment of the first aspect, the accelerator gear comprises two plates secured to either longitudinal side of the curved edge of the accelerator gear which takes the form of a curved gear track, the edges of the plates distal to the curved gear track both comprising the centrally located notch. At least one protrusion may be located on an outer surface of one of the plates.
In an embodiment of the first aspect, the accelerator gear further comprises two symmetrically opposed pivotally mounted locking arms movable between a primary and secondary position, each locking arm comprising elongate body, a first end of the body which when in the primary position is to situated in the area defined by the centrally located notch, a pivot point located substantially in the centre of the body, and the second end defining a hook, the second end extending away from respective longitudinal ends of the accelerator gear.
The back plate may further comprise two securing means located proximal each end respectively of the arcuate path defined by the groove or slot, each securing means engageable with the respective locking arm when the accelerator gear is in the first or second position respectively; in use, when a hook is in the primary position and engaged with securing means, the accelerator gear is held in that respective position until the locking lever is moved to the secondary position.
When the cam of the lock cylinder is engaged with the centrally located notch, it may further engage the first end of both locking levers and move them from the primary position to the secondary position.
The two locking levers may be biased towards the primary position.
In an embodiment of the first aspect, the lock comprises a second plate comprising an aperture for a lock cylinder and cam and a groove or slot defining the same arcuate path as the back plate, symmetrically opposed to the back plate sandwiching the locking bolt, securing means and gear accelerator therebetween.
An embodiment of the first aspect further comprises a casing which encompasses the whole lock, the casing having apertures for bolt movement therefrom and at least one further aperture allowing key access to the lock cylinder.
An embodiment of the first aspect wherein the lock cylinder is a standard euro cylinder with a cam. Alternatively the lock cylinder could be a round lock cylinder with a tang (such as a mortice lock cylinder) with an adaptor cam attached to the tang).
The invention will be described in more detail, by way of example, with reference to the following drawings:
A preferred embodiment of the invention will now be described in relation to the figures.
With reference to
Gear accelerator 200 comprises a body on which the teeth 250 are placed; this body houses lever arms 210 and 220, which are independently pivotably connected thereto via pivot points 216 and 226 respectively, and will be discussed in further detail below. On an underside of the body of gear accelerator 200 there is a cammed surface 203 with a central notch 204. Notch 204 engages with cam 24 as it rotates about the longitudinal axis of the euro cylinder body. While cam 24 is engaged with notch 204, as it rotates it urges the gear accelerator along its actuate path, which in turn throws the locking bolt 100.
Internal plate(s) 13 comprise an arcuate groove/slot 205; this groove/slot 205 defines the actuate path taken by gear accelerator 200. Each side of gear accelerator 200 has an arcuate projection 201 protruding therefrom. Arcuate projections 201 slidably engage with groove/slots 205 and guide the motion of gear accelerator 200 as it is actuated by euro cylinder cam 24.
As key 26 is turned, cam 24 starts to rotate (in relation to the orientation of the figures) in a clockwise direction from the 6 o'clock position. As cam 24 moves, it engages locking lever 210 and moves along cammed surface 203 of gear accelerator 200 and reaches notch 204 where it urges locking lever 210 into the second position via engaging protrusion 214, causing lever 210 to pivot about pivot point 216, which moves hook 212 to the second position and releasing hook 212 from protrusion 231. At the same time, cam 24 via notch 204 starts to urge gear accelerator 200 along the arcuate path 205 via projections 201 of the gear accelerator 200. This also they via teeth 250 engaging with gear rack 150 of locking bolt 100, starts to actuate locking bolt 100 laterally.
As shown in
As shown in
As would be clear to a person skilled in her art, the unlocking/locking cycle can work in either direction and the invention would not be limited to the left and right directions used to describe the workings of the embodiment.
The above-described embodiment has been made in respect to use with a standard euro cylinder, however the invention does not need to be limited to just euro cylinder locks. The aperture(s) 14 could alternatively be shaped to hold any type of lock cylinder. For example as shown in
The invention has been described with reference to a preferred embodiment. The description is intended to enable a skilled person to make the invention, not to limit the scope of the invention. The scope of the invention is determined by the claims.
Number | Date | Country | Kind |
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2114-4159 | Oct 2021 | GB | national |