The present invention relates to a lock assembly.
The invention has been developed primarily for use with an electrically controllable and electrically powered mortice lock and will be described hereinafter with reference to this application. However, it will be appreciated that the invention is not limited to this particular use and is also suitable for use in other types of locks, such as surface mounted locks.
Electrically controllable and/or electrically powered locks are known. Such locks must be set to operate as either fail safe or fail secure. A fail safe lock automatically reverts to an unlocked state when its power supply is interrupted, for example during a power failure. A fail secure lock automatically reverts to a locked state when its power supply is interrupted.
Australian patent No. 657349 discloses an example of a known type of electrically controllable and powered mortice lock which can be set as fail safe or fail secure by adjusting components through openings in the side panels of the lock or after disassembly of the lock. The disadvantage of this arrangement is that the lock must be removed from the door in order to change the lock from fail safe to fail secure.
It is the object of the present invention to substantially overcome or at least ameliorate the above disadvantage, and/or to provide an alternative.
Accordingly, in a first aspect, the present invention provides a lock assembly, the lock assembly including:
a first hub adapted to move the lock bolt in response to movement of a first handle; and
wherein the first hub locker allows movement of the lock bolt in response to torque being applied to the first handle when in two of the at least three positions and prevents movement of the lock bolt in response to torque being applied to the first handle when in another of the at least three positions or the first hub locker prevents movement of the lock bolt in response to torque being applied to the first handle when in two of the at least three positions and allows movement of the lock bolt in response to torque being applied to the first handle when in another of the at least three positions.
The first hub locker preferably allows movement of the lock bolt in response to torque being applied to the first handle when in two of the at least three positions and prevents movement of the lock bolt in response to torque being applied to the first handle when in another of the at least three positions or the first hub locker prevents movement of the lock bolt in response to torque being applied to the first handle when in said two of the at least three positions and allows movement of the lock bolt in response to torque being applied to the first handle when in said another of the at least three positions.
The first hub locker is preferably positionable in at least three positions and the first hub locker allows movement of the lock bolt in response to torque being applied to the first handle when in two of the three positions and prevents movement of the lock bolt in response to torque being applied to the first handle when in another of the three positions or the first hub locker prevents movement of the lock bolt in response to torque being applied to the first handle when in said two of the three positions and allows movement of the lock bolt in response to torque being applied to the first handle when in said another of the three positions.
In one form, the first hub locker allows movement of the lock bolt in response to torque being applied to the first handle when in two of the three positions and prevents movement of the lock bolt in response to torque being applied to the first handle when in another of the three positions. In another form, the first hub locker prevents movement of the lock bolt in response to torque being applied to the first handle when in said two of the three positions and allows movement of the lock bolt in response to torque being applied to the first handle when in said another of the three positions.
The first hub locker is preferably movable in a first direction from one of said two positions to said another position and from said another position to the other of said two positions. The first hub locker is preferably movable in a second direction, opposite to the first direction, from said other of said two positions to said another position and from said another position to said one of said two positions.
The lock assembly preferably includes a first driver, having an extended configuration and a retracted configuration, and a first adjustable mechanism, having an extended configuration and a retracted configuration, wherein:
In one form, the lock assembly preferably includes a first driver, drivable to a retracted configuration and biased to an extended configuration, and a first adjustable mechanism, settable in an extended configuration or a retracted configuration. In another form, the lock assembly preferably includes a first driver, drivable to an extended configuration and biased to a retracted configuration, and a first adjustable mechanism, settable in an extended configuration or a retracted configuration.
The first adjustable mechanism is preferably a first length adjustable mechanism, having a relatively longer length in the extended configuration and a relatively shorter length in the retracted configuration.
The lock assembly preferably also includes:
wherein the second hub locker allows movement of the lock bolt in response to torque being applied to the second handle when in two of the at least three positions and prevents movement of the lock bolt in response to torque being applied to the second handle when in another of the at least three positions or the second hub locker prevents movement of the lock bolt in response to torque being applied to the second handle when in two of the at least three positions and allows movement of the lock bolt in response to torque being applied to the second handle when in another of the at least three positions.
The second hub locker preferably allows movement of the lock bolt in response to torque being applied to the second handle when in two of the at least three positions and prevents movement of the lock bolt in response to torque being applied to the second handle when in another of the at least three positions or the second hub locker prevents movement of the lock bolt in response to torque being applied to the second handle when in said two of the at least three positions and allows movement of the lock bolt in response to torque being applied to the second handle when in said another of the at least three positions.
The second hub locker is preferably positionable in three positions and the second hub locker allows movement of the lock bolt in response to torque being applied to the second handle when in two of the three positions and prevents movement of the lock bolt in response to torque being applied to the second handle when in another of the three positions or the second hub locker prevents movement of the lock bolt in response to torque being applied to the second handle when in said two of the three positions and allows movement of the lock bolt in response to torque being applied to the second handle when in said another of the three positions.
In one form, the second hub locker allows movement of the lock bolt in response to torque being applied to the second handle when in two of the three positions and prevents movement of the lock bolt in response to torque being applied to the second handle when in another of the three positions. In another form, the second hub locker prevents movement of the lock bolt in response to torque being applied to the second handle when in said two of the three positions and allows movement of the lock bolt in response to torque being applied to the second handle when in said another of the three positions.
The second hub locker is preferably movable in a first direction from one of said two positions to said another position and from said another position to the other of said two positions. The second hub locker is preferably movable in a second direction, opposite to the first direction, from said other of said two positions to said another position and from s said another position to said one of said two positions.
The lock assembly preferably includes a second driver, having an extended configuration and a retracted configuration, and a second adjustable mechanism, having an extended configuration and a retracted configuration, wherein:
In one form, the lock assembly preferably includes a second driver, drivable to a refracted configuration and biased to an extended configuration, and a second adjustable mechanism, settable in an extended configuration or a retracted configuration. In another form, the lock assembly preferably includes a second driver, drivable to an extended configuration and biased to a retracted configuration, and a second adjustable mechanism, settable in an extended configuration or a retracted configuration.
The second adjustable mechanism is preferably a second length adjustable mechanism, having a relatively longer length in the extended configuration and a relatively shorter length in the retracted configuration.
In a second aspect, the present invention provides a lock assembly, the lock assembly including:
In a third aspect, the present invention provides a lock assembly, the lock assembly including:
The housing preferably includes a front face, installed substantially adjacent the free edge of the door, and the first hub locker assembly is settable for fail safe operation or fail secure operation via access means in the front face of the housing.
The first hub locker assembly preferably includes a first driver, having an extended configuration and a retracted configuration, and a first length adjustable mechanism, settable in an extended configuration or a retracted configuration via the access means.
The first hub locker is preferably positionable in at least three positions, wherein the first hub locker allows movement of the lock bolt in response to torque being applied to the first handle when in two of the at least three positions and prevents movement of the lock bolt in response to torque being applied to the first handle when in another of the at least three positions or the first hub locker prevents movement of the lock bolt in response to torque being applied to the first handle when in two of the at least three positions and allows movement of the lock bolt in response to torque being applied to the first handle when in another of the at least three positions.
The lock assembly preferably includes:
The lock assembly preferably includes:
The housing preferably includes a front face, installed substantially adjacent the free edge of the door, and the second hub locker assembly is settable for fail safe operation or fail secure operation via access means in the front face of the housing.
The first hub locker assembly preferably includes a second driver, having an extended configuration and a retracted configuration, and a second length adjustable mechanism, settable in an extended configuration or a retracted configuration via the access means.
The second hub locker is preferably positionable in at least three positions, wherein the second hub locker allows movement of the lock bolt in response to torque being applied to the second handle when in two of the at least three positions and prevents movement of the lock bolt in response to torque being applied to the second handle when in another of the at least three positions or the second hub locker prevents movement of the lock bolt in response to torque being applied to the second handle when in two of the at least three positions and allows movement of the lock bolt in response to torque being applied to the second handle when in another of the at least three positions.
Preferred embodiments of the present invention will now be described, by way of examples only, with reference to the accompanying drawings wherein:
a is a perspective view of the lock assembly shown in
b is an exploded perspective view of the lock assembly shown in
a is a perspective view of an length adjustable mechanism in a retracted configuration;
b is an exploded perspective view of the adjuster shown in
c is a cross sectional side view of the adjuster shown in
a is a perspective view of the adjuster shown in
b is a cross sectional side view of the adjuster shown in 14a;
The lock assembly 20 also includes an opening 32 that receives a key cylinder assembly (not shown) therein. The key cylinder assembly is retained within the opening 32 with a key cylinder retaining pin 34 (see
The lock assembly 20 also includes a first hub 36 with a square cross section opening 38 therein, which is adapted to engage with a square cross section drive shaft (not shown) of a first external knob, lever or other handle (not shown).
a shows the lock assembly 20 with the side cover 24 of the housing 22 removed. The latch bolt 28 is connected to a latch bolt shaft 46 which is in turn connected to a latch bolt carriage 48. The auxiliary bolt 30 is connected to an auxiliary bolt shaft 50 which is in turn connected to an auxiliary bolt carriage 52. The latch bolt 28 and the auxiliary bolt 30 are biased toward a latching position, as shown in
A carriage retraction arm 58 is pivotally mounted to the housing 22 by a shaft 60 and biased toward the position shown in
a also shows a first electrically powered hub locker assembly comprising a first electrically powered solenoid 64 which is connected to a first length adjustable mechanism 66 which is in turn connected to a first link 68 which is in turn connected to a first lever 70 which is in turn connected to a first hub locking part 72. The first lever 70 pivots about a first boss 74. The first solenoid 64 is of the pull type and also includes a first biasing spring 76.
As best shown in
a also shows a first hub locking sensor 78 which is able to provide a signal indicative of the position of the first electrically powered hub locker assembly to allow remote signalling of the lock status of the first hub 36 to a remotely located controller or other internal control.
b also shows that the first hub 36 has a flange 80 carrying a protruding part 82. An identical flange 80′ and protruding part 82′ are present on the second hub 36′. The first hub locking part 72 also includes a protruding part 84. An identical protruding part 84′ is provided on the second hub locking part 72′.
a to 14b show the first length adjustable mechanism 66. The second length adjustable mechanism 66′ is identical to the first.
When the mechanism 66 is in the retracted configuration shown in
In summary, applying force in the direction and position of the arrow B changes the mechanism 66 from the retracted configuration to the extended configuration and applying force in the direction and position of the arrow C changes the mechanism 66 from the extended configuration to the refracted configuration.
Returning to
The operation of the lock assembly 20 shall now be described.
In summary, when the first length adjustable mechanism 66 is in the extended configuration the first side of the lock assembly 20 is set as fail safe and de-energising the first solenoid 64 drives the first locking part 72 to the first position, unlocking the first side of the lock assembly 20, and energising the first solenoid 64 drives the first locking part 72 to the second position, locking the first side of the lock assembly 20.
In summary, when the first length adjustable mechanism 66 is in the retracted configuration the first side of the lock assembly 20 is set as fail secure and de-energising the first solenoid 64 drives the first locking part 72 to the second position, locking the first side of the lock assembly 20, and energising the first solenoid 64 drives the first locking part 72 to the third position, unlocking the first side of the lock assembly 20.
With reference to
The second side of the lock assembly 20 operates in the same manner as described in relation to the first side. The setting of the second side as fail safe or fail secure is performed using the key cylinder pin 34 in the second fail secure adjuster setting hole 106 or the second fail safe adjuster setting hole 108, and is independent of the setting of the first side and vice versa.
The lock assembly 20 can be set as fail safe or fail secure before installation in a door. The lock assembly 20 can also be set as fail safe or fail secure after installation in a door by removal of the face plate 26 only and, advantageously, without having to disassemble the entire lock assembly 20. This greatly reduces the effort and expense of changing the lock's setting after installation if: the initial setting was incorrectly made at installation; or a change in the door's function is required due to a subsequent building or security requirement change.
As shown in
With reference to
The lock assembly 120 can only be set as fail safe or fail secure before installation in a door or after removal of the lock assembly 120 from a door. The lock assembly 120 may be suited to more secure applications as the settings can not be tampered with without removing the lock assembly from the door.
The operation of the lock assembly 140 is similar but reversed to that previously described in relation to the lock assembly 20. As shown in
As shown in
By way of a comparison, the lock assembly 20 allows rotation of the hub when the hub locking part is in the first and third positions and prevents it when in the second position. The lock assembly 140 prevents rotation of the hub when the hub locking part is in the first and third positions and allows it when in the second position.
The lock assembly 140 can be set as fail safe or fail secure before installation in a door. The lock assembly 140 can also be set as fail safe or fail secure after installation in a door by removal of the face plate 26 only and, advantageously, without having to disassemble the entire lock assembly 140.
Although the invention has been described with reference to preferred embodiments, it will be appreciated by persons skilled in the art that the invention can be embodied in many other forms. For example, in the embodiments shown, the change in length of the length adjustable mechanisms between their retracted and extended configurations is approximately the same as the change in length of the solenoids between their retracted and extended configurations. However, in other embodiments (not shown) these two length changes are not the same. Also, the described embodiments show the hub locking parts moving between only three positions. However, in other embodiments (not shown) more than three positions are utilised.
Number | Date | Country | Kind |
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2011900885 | Mar 2011 | AU | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/AU2012/000172 | 2/22/2012 | WO | 00 | 9/26/2013 |