The present invention relates generally to actuator-driven locks, such as electromechanical, hydraulic or pneumatic locks, and particularly to a clutch that selectively engages or disengages an actuator from turning a lock mechanism.
Electromechanical locks (e.g., cylinder locks) are known which are operated by means of some actuator (e.g., a gear motor) and which are manually operable as well.
The drive motor is typically mounted in an escutcheon on an inner face of the door or on some internal part of the door. The drive motor has a driveshaft for transmitting rotation to the cylinder lock, typically to a shaft extending from the cylinder lock. When the drive motor is electrically energized, it causes actuation (e.g., rotation) of the cam to open or close the locking bolts. The drive motor is typically energized by a transponder in a key or other device.
If the motor were engaged at all times with the lock shaft, manual operation would require the manual turning torque to overcome the added torque load of the motor, which may be difficult for some users, especially old or invalid persons. A clutch may be connected between the motor and the lock shaft, which selectively engages or disengages the motor from the lock shaft. With the motor disengaged, the lock can be operated manually without the motor adding excessive torque.
The present invention seeks to provide an improved clutch for actuator-driven locks, such as electromechanical, hydraulic or pneumatic locks. The clutch selectively engages or disengages a non-manual actuator from turning a lock mechanism and has a simplified and inexpensive construction, as described more in detail hereinbelow. The invention is simpler and less expensive to manufacture and assemble than electromechanical clutches, solenoids and the like. The invention is more reliable than mechanical ratchet systems, which require springs for their operation.
There is thus provided in accordance with an embodiment of the present invention a lock assembly including a non-manual actuator coupled to a drive member; and a clutch member formed with a groove in which an engagement element is disposed, the engagement element being movable towards and away from a cam surface which is arranged to move a lock element, the lock element also being connected to a manual actuator, wherein in a first orientation, the engagement element does not protrude out of the groove and does not abut against the cam surface, so that the non-manual actuator is disengaged from the lock element, and in a second orientation, the drive member is movable by the non-manual actuator so that the drive member causes the engagement element to protrude out of the groove and abut against the cam surface, so that the non-manual actuator is engaged with the lock element.
In accordance with an embodiment of the present invention the non-manual actuator is operative to move the drive member back from the second orientation to the first orientation.
In accordance with an embodiment of the present invention at least one sensor is arranged to sense movement of the lock element or the non-manual actuator.
In accordance with an embodiment of the present invention the drive member has concave sides.
In accordance with an embodiment of the present invention the clutch member cooperates with a wheel that has spokes that extend from a hub with spaces between the spokes, and the clutch member includes protruding lugs that enter the spaces.
In accordance with an embodiment of the present invention the clutch member is formed with at least two diametrically opposed grooves.
In accordance with an embodiment of the present invention the cam surface is connected to a drive gear operative to move the lock element. The clutch member may be received in a recess formed in an interface hub of the drive gear. The drive gear may mesh with another gear operatively connected to the lock element.
The present invention will be understood and appreciated more fully from the following detailed description, taken in conjunction with the drawings in which:
Reference is now made to
Housing 16 has a bore 24 transverse to the drive shaft 14. A bevel gear 26 is rotatingly mounted in bore 24 by means of a bushing (bearing) 28. A circlips 30 may be mounted on the other side of bevel gear 26 to retain gear 26 from moving out of housing 16.
The drive shaft 14 enters a hole 32 (which may be keyed in a D-shape) formed in a hub 33 (
Referring again to
The assembled lock is shown in
The clutch member 38 cooperates with one or more engagement elements 62 (such as, but not limited to, balls 62 or cylinders or other shapes), received in interface hub 42 of the drive gear 44, to form a clutch mechanism that selectively engages and disengages the actuator 12 (its drive shaft 14) with drive gear 44, as will now be described with reference to
Reference is now made to
In
In
After the non-manual actuator has rotated drive gear 44 to rotate the lock shaft 56 of the assembly, a sensor 70, shown in
A biasing member 66, such as a spring rod, may be assembled on an outside groove of clutch member 38 to apply tension to clutch member 38. The biasing member 66 ensures there is sufficient friction between clutch member 38 and wheel 34 so that only wheel 34 moves and clutch member 38 does not move during the reverse movement of the non-manual actuator 12. Other methods may be used instead of the biasing member 66, such as but not limited to, friction enhancing surfaces, one-way mechanisms, etc.
Number | Date | Country | Kind |
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245947 | May 2016 | IL | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2017/052369 | 4/25/2017 | WO | 00 |