Electronically operated lock cylinder
11655653 ยท 2023-05-23
Assignee
Inventors
Cpc classification
E05B2047/0091
FIXED CONSTRUCTIONS
E05B2047/0095
FIXED CONSTRUCTIONS
E05B9/105
FIXED CONSTRUCTIONS
E05B47/068
FIXED CONSTRUCTIONS
E05B17/047
FIXED CONSTRUCTIONS
E05B9/08
FIXED CONSTRUCTIONS
E05B2047/0026
FIXED CONSTRUCTIONS
International classification
E05B47/00
FIXED CONSTRUCTIONS
E05B17/04
FIXED CONSTRUCTIONS
Abstract
An electronic lock cylinder that may be a direct replacement for a European-style standard cylinder is disclosed. The lock cylinder may include a core, a first shaft rotatably mounted in the core, and a second shaft rotatably mounted in the core and coaxial with the first shaft. A first cam and a second cam may be each rotatably mounted in the core and coaxial with the first shaft. The first cam may include a first lug and the second cam may include a second lug, where the first lug and the second lug may each be coupled to a deadbolt. A clutch may be disposed on the first shaft and shiftable from a first position to a second position, and a motor may be disposed in the core and operatively coupled to the clutch and configured to shift the clutch from the first position to the second position. When the clutch is in the first position, the first shaft is operatively coupled to the first cam, and the second shaft is decoupled from both the first cam and the second cam, when the clutch is in the second position, both the first shaft and the second shaft are operatively coupled to the second cam. The lock includes a first shaft rotatably mounted in the core and a second shaft rotatably mounted in the core and coaxial with the first shaft. A clutch is disposed on the first shaft and rotationally fixed to the first shaft but axially shiftable. The lock also includes a slider with a finger, where the finger is engaged with the clutch, and a motor is configured to shift the slider axially between a first position and a second position. In the first position, the clutch is disengaged from the second shaft, and in the second position, the clutch is engaged with the second shaft, such that rotation of the first shaft causes rotation of the second shaft.
Claims
1. An assembly for an electronically operated lock cylinder, comprising: a core; a first shaft rotatably mounted in the core; a second shaft rotatably mounted in the core and coaxial with the first shaft; a first cam and a second cam, each rotatably mounted in the core and coaxial with the first shaft, the first cam including a first lug and the second cam including a second lug, the first lug and the second lug each operatively couplable to a deadbolt; a clutch disposed on the first shaft and shiftable from a first position to a second position; a motor disposed in the core and operatively coupled to the clutch and configured to shift the clutch from the first position to the second position; wherein when the clutch is in the first position, the first shaft is operatively coupled to the first cam, and the second shaft is decoupled from both the first cam and the second cam; and wherein when the clutch is in the second position, both the first shaft and the second shaft are operatively coupled to the second cam.
2. The assembly of claim 1, further comprising a slider operatively connected to the motor, the slider being operatively coupled to the clutch.
3. The assembly of claim 2, the slider including a finger, the finger being disposed within a recess in the clutch.
4. The assembly of claim 2, a worm gear attached the motor and a spring disposed over the worm gear, the spring including a compressed portion disposed on the teeth of the worm gear such that rotation of the worm gear causes linear motion of the spring along the worm gear.
5. The assembly of claim 4, wherein the linear motion of the spring causes linear motion of the slider and clutch to shift the clutch between the first position and the second position.
6. The assembly of claim 1, wherein the clutch is shifted linearly along the first shaft from the first position to the second position.
7. The assembly of claim 1, further including a clip disposed in the core, the clip retaining the first shaft in the core, the clip allowing rotational movement of the first shaft but preventing axial movement.
8. The assembly of claim 1, the first shaft including a recess, a ball and spring disposed in the recess, the core including a detent, the ball configured to be disposed in the detent to axially align the first shaft.
9. The assembly of claim 1, the first shaft including a spline, the clutch including a hub and recess, the spline configured to engage the recess in both the first and second position to maintain axial alignment between the first shaft and the hub.
10. The assembly of claim 1, the clutch including a clutch spline.
11. The assembly of claim 10, wherein the clutch spline is engaged with the first cam when the clutch is in the first position.
12. The assembly of claim 10, wherein the clutch spline is engaged with the second cam and the second shaft when the clutch is in the second position.
13. The assembly of claim 1, further comprising an access housing having an access knob, the access knob being operatively coupled to the second shaft.
14. The assembly of claim 13, the access housing containing an input for receiving an electronic credential.
15. The assembly of claim 14, the input is one or more wireless antennas.
16. The assembly of claim 15, wherein the one or more wireless antennas includes at least one of an RFID, Bluetooth, BLE, NFC, or Mobile ID antenna.
17. The assembly of claim 14, the input including a biometric sensor.
18. The assembly of claim 14, the input including a keypad.
19. The assembly of claim 14, the core including a wiring channel and a wire disposed in the wiring channel, the wire in communication with the input.
20. The assembly of claim 19, further comprising a control housing operatively coupled to the first shaft, at least one battery disposed in the control housing.
21. The assembly of claim 1, further comprising an antenna configured to operatively couple the assembly to the internet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(16) Referring to
(17) The lock cylinder assembly 10 can be mounted to standard mortise lock housing 12 disposed in a door 14, the lock housing 12 including a bolt 16 and a faceplate 18. The lock housing 12 is secured to the door 14 in standard fashion via screws 20. The lock cylinder assembly 10 includes an access housing 22 having an access knob 24 disposed on an outside of the door 14, and a control housing 26 having a control knob 28 disposed on an inside of the door 14. As will be described in more detail below, the lock cylinder assembly 10 secures the door 14 in a closed position in known manner by extending the deadbolt 16 into a strike in the door jamb to secure a room or other space, and a user may provide a credential to the access housing 22 which will allow the user to rotate the access knob 24, retract the bolt 16 from the strike, which will allow the user to open the door 14 and enter into the space.
(18) Referring specifically to
(19) Referring now to
(20) Referring specifically to
(21) The control shaft 36 likewise is disposed in a control channel 66 within the core 32. Similarly, the control shaft 36 is maintained within the control channel 66 by a second clip 68 disposed within a second slot 70 in the core 32 that engages a circumferential recess 72 in the control shaft 36. The second clip 68 also maintains the control shaft 36 longitudinally but allows for rotation. The control shaft 36 also includes a cylindrical recess 74 that houses a second spring 76 and a second ball 78 which can engage a detent on an inner surface of the control channel 66 to maintain the control shaft 36 in a predetermined rotational orientation.
(22) The control shaft 36 includes a second spline 80 and a control rod 82. Disposed on the control rod 82 is a clutch 84 having a hub 86 and a clutch spline 88. The hub 86 includes recesses (not seen in
(23) The motor cover 46 is detachably connected to the core 32 via two screws 92. The motor cover 46 and the core 32 define a seat 94 that houses the motor 48 and a worm gear 96 connected to the motor 48. A slider 98 is also disposed in the seat 94, the slider 98 having a spring 100 disposed therein. The spring 100 includes a narrowed portion 102 which is disposed on the worm gear 96 and engages the teeth of the worm gear 96 such that rotation of the worm gear 96 pushes the spring 100 in directions U and L, and therefore the slider 98, forward and backward. The slider 98 has a finger 104 extending upwardly into a circumferential recess 106 in the clutch 84.
(24) Referring now to
(25) Referring now to
(26) Referring now to
(27) Referring specifically to
(28) As shown in
(29) Referring now to
(30) Also in connection with the circuit board 144 is a battery pack 148 for powering the lock 10. As shown in
(31) In use, a user provides an electronic credential to the access housing 22. The sensor 31 disposed within the access housing 22 reads the credential and passes it on to the connector 136 via wiring 134. The processor on the circuit board 144 then receives the credential and determines if it meets predetermined conditions. If so, it sends a signal to the motor 48, which then rotates the worm gear 96, thereby either pulling or pushing the clutch 84 in direction U or L. The spring 100 allows for misalignment of the clutch spline 88 and the hub recesses 90 of the access shaft 34. Thus, if the clutch spline 88 is not aligned with the hub recesses 90 of the access shaft when the clutch 84 is pushed in direction U, the user can rotate the access shaft 34 until they are aligned, and he or she will feel the spring 100 push the spline 88 into the hub recesses 90 once the two are aligned. At this point, the user can then rotate the access knob 24 and operate the lock 10. Other applications of the lock cylinder assembly 10 described herein will be within the scope and spirit of this disclosure.