LOCKING DEVICE
20230313561 · 2023-10-05
Assignee
Inventors
Cpc classification
E05B63/20
FIXED CONSTRUCTIONS
E05C9/02
FIXED CONSTRUCTIONS
E05B17/2026
FIXED CONSTRUCTIONS
International classification
E05B17/20
FIXED CONSTRUCTIONS
E05B47/00
FIXED CONSTRUCTIONS
E05B47/06
FIXED CONSTRUCTIONS
Abstract
The present invention relates to a locking device 1 having a deadbolt 104 within a casing 102, which deadbolt 104 is movable between an advanced position wherein it protrudes from a front face of the casing 102 and a retreated position, wherein it is retracted into the casing 102. The locking device 1 comprises: a link plate 130 which moves the deadbolt 104 to the advanced position; a deadbolt blocking member 110 which is moveable between a blocking position blocking the deadbolt 104 in the advanced position and an unblocking position to allow the deadbolt 104 to move to the retreated position; an electrically driven actuator unit 120 which moves the deadbolt blocking member 110 between the blocking position and the unblocking position; and a control circuit configured to control the electrically driven actuator unit 120 so that once the deadbolt 104 is moved to the advanced position, the deadbolt blocking member 110 is moved to the blocking position by actuation of the electrically driven actuator unit 120.
Claims
1. A locking device having a deadbolt within a casing which deadbolt is movable between an advanced position wherein it protrudes from a front face of the casing and a retreated position wherein it is retracted into the casing, comprising: a link plate which moves the deadbolt to the advanced position; a deadbolt blocking member which is moveable between a blocking position blocking the deadbolt in the advanced position and an unblocking position to allow the deadbolt to move to the retreated position; an electrically driven actuator unit which moves the deadbolt blocking member between the blocking position and the unblocking position; and a control circuit configured to control the electrically driven actuator unit so that once the deadbolt is moved to the advanced position, the deadbolt blocking member is moved to the blocking position by actuation of the electrically driven actuator unit.
2. The locking device according to claim 1, further comprising a first detector which is configured to detect whether the deadbolt is in the advanced position, wherein the control circuit is configured to move the deadbolt blocking member by actuation of the electrically driven actuator unit when the first detector detects the deadbolt is in the advanced position.
3. The locking device according to claim 1, further comprising a second detector which is configured to detect whether the deadbolt blocking member is in the blocking position, wherein the control circuit is configured to stop actuation of the electrically actuator unit after moving the deadbolt blocking member from the unblocking position to the blocking position.
4. The locking device according to claim 1, further comprising a third detector which is configured to detect whether the deadbolt blocking member is in the unblocking position, wherein the control circuit is configured to stop actuation of the electrically driven actuator unit after moving the deadbolt blocking member from the blocking position to the unblocking position.
5. The locking device according to claim 4, wherein at least one of the first to third detectors is a non-contact sensor.
6. The locking device according to claim 5, wherein the non-contact sensor is a Hall effect sensor.
7. The locking device according to claim 1, further comprising a mechanical power accumulating unit which accumulates energy and releases a force to move the link plate so that the deadbolt is moved in association with the movement of the link plate.
8. The locking device according to claim 7, wherein the mechanical power accumulating unit includes a spring which directly, or indirectly, provides the force for moving the deadbolt to the advanced position.
9. The locking device according to claim 8, wherein the mechanical power accumulating unit includes a holding mechanism that releasably holds the spring in a compressed state after the spring has been compressed.
10. The locking device according to claim 9, wherein the holding mechanism includes a connecting plate that directly or indirectly connects the spring to the link plate, and a strike pin that engages the connecting plate to hold the spring in its compressed state, wherein the strike pin is movable out of engagement with the connecting plate so that the mechanical power accumulating unit directly or indirectly moves the link plate.
11. The locking device according to claim 7, wherein the link plate is configured to convert the force released from the mechanical power accumulating unit into the advancing movement of the deadbolt to the advanced position.
12. The locking device according to claim 7, further comprising an operation part that moves the link plate against the mechanical power accumulating unit to accumulate the force.
13. The locking device according to claim 1, wherein in the blocking position the deadbolt blocking member is positioned immediately behind the deadbolt but with a gap therebetween.
14. The locking device according to claim 1, wherein the deadbolt blocking member includes: a first slider moveable by actuation of the electrically driven actuator unit; a second slider slidably mounted on the first slider; a biasing member that applies a biasing force between the first slider and the second slider to move the second member to the blocking position together with the first slider during actuation of the electrically driven actuator unit; and a manual override mechanism to move the second slider with respect to the first slider to the unblocking position against the biasing force of the biasing member.
15. The locking device according to claim 14, wherein the manual override mechanism includes a rack, which is formed on the second slider and a pinion, which is driven with a manual operation key by a user and engages with the rack to move the second slider with respect to the first slider.
16. The locking device according to claim 1, further comprising: a rechargeable battery configured to provide electrical power the control circuit; and an inductive coil coupled to the rechargeable battery, the inductive coil being configured to wirelessly receive power from an external device that is positioned proximate to the locking device.
17. The locking device according to claim 16, wherein the inductive coil is positioned on or in a face plate of the locking device.
18. The locking device according to claim 1, further comprising an operation pad connected to the control circuit by a wireless or wired channel and including at least two separated buttons, wherein the control circuit is configured to actuate the electrically driven actuator unit to move the deadbolt blocking member to the unlocking position when the at least two buttons are pressed simultaneously.
19. The locking device according to claim 1, which is a multi-point locking device comprising one or more auxiliary locks at multiple points.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The principle of the invention will now be more fully described by way of example with reference to the accompanying drawings, in which:
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[0032]
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[0034]
[0035]
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[0037]
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[0039]
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DETAILED DESCRIPTION
[0044]
[0045] The mechanical power accumulating unit 40 and the main lock 10, the main lock 10 and the auxiliary lock 20, as well as the mechanical power accumulating unit 40 and the auxiliary lock 30 are respectively connected to each other via a connecting rod 50a, 50b, 50c. Each connecting rods 50a, 50b, 50c is movable along and with respect to a face plate 60 to which the locks 10, 20, 30 and mechanical power accumulating unit 40 are fixed by means of screws or the like. Such screws can be seen in
[0046] These locks 10, 20, 30 and mechanical power accumulating unit 40 will be placed in pockets formed in the front face of a door leaf facing a door frame, and fixed thereto via the face plate 60.
[0047] Referring to
[0048] The main lock 10 may further include an operation part 150, a manual override mechanism 160 and a latch assembly 170.
[0049] The deadbolt 104 is arranged so as to be movable between an advanced position wherein it protrudes from the front face of the casing 102 and a retreated position wherein it is retracted into the casing 102. The deadbolt 104 may engage with a cavity formed in the door frame in the advanced position to lock the door leaf with respect to the door frame. One or more guides 106 in the form of groove for guiding the deadbolt 104 may be provided in the casing 102.
[0050] The movement of the deadbolt 104 occurs in association with the movement of the link plate 130 in the direction of the long axis of the face plate 60.
[0051] A cam groove 134 for receiving a follower pin 104b of the deadbolt 104 may be provided in the link plate 130, so that the deadbolt 104 moves forward and backward in association with the movement of the link plate 130 in the direction of the long axis of the face plate 60. The cam groove 134 extends obliquely with respect to the direction of the long axis of the face plate 60. The follower pin 104b may also be received in one of the guide grooves 106 of the casing 102 that extends in the direction perpendicular to the long axis of the face plate 60. The cam groove 134 and the follower pin 104b convert the movement of the link plate 130 in the first direction into the movement of the deadbolt 104 in the second direction perpendicular to the first direction.
[0052] The link plate 130 may be driven by at least operation of the operation part 150. The operation part 150 may be configured to move in association with the movement of the door handle or the like. Preferably, the operation part 150 may be fitted to a spindle (not shown) of the door handle or the like. The operation part 150 may include a radial groove 152. The link plate 130 may include a pin 132 which is received in the radial groove 152. Accordingly, when the operation part 150 rotates by lifting or lowering the door handle, the rotation is converted into a linear movement of the link plate 130 by engagement of the radial groove 152 and the pin 132. The operation part 150 may move independently of a transmission plate 172 (
[0053] Referring to
[0054] The mechanical power accumulating unit 40 may further include a holding mechanism 406 that releasably holds the spring 402 in a compressed state after the spring 402 has been compressed to accumulate the energy generated by operation of the operation part 150. The holding mechanism 406 may include a connecting plate 408 that directly, or indirectly, connects the spring 402 to the link plate 130, and a strike pin 410 that engages the connecting plate 408 to hold the compressed state of the spring 402. More specifically, the connecting plate 408 is arranged in the casing of the mechanical power accumulating unit 40 so as to be movable in the direction of the long axis of the face plate 60. The connecting plate 408 has an opening 408a with a step 408b on its edge near the face plate 60. The strike pin 410 includes a main body 410a, a protrusion 410b located in the opening 408a, and a spring 410c for pressing the protrusion 410b against the edge of the opening 408.
[0055] Referring to
[0056] The right-hand figure shows the state of the mechanical power accumulating unit 40 after the door is closed from the open state in the left figure. When the door leaf is closed, the strike pin 410 is pushed by the door frame against the spring 410c (see arrow in the left-hand figure). The engagement of the protrusion 410b with the step 408b is released. The connecting plate 408 is thus pushed down while releasing the force accumulated within the spring 402. The force of the spring 402 is further transmitted to the link plate 130 via the connecting rod 50a, and the link plate 130 is moved. The movement of the link plate 130 advances the deadbolt 104 as described with reference to
[0057]
[0058]
[0059] The electrically driven actuator unit 120 is provided for displacing the deadbolt blocking member 110 in an electromotive manner to block and unblock the deadbolt 104. The electrically driven actuator unit 120 has an actuator 121 such as an electric motor, a solenoid, or the like. The exemplary actuator uses a DC motor. The actuation of the actuator 121 is controlled by the control circuit as described later.
[0060] The electrically driven actuator unit 120 further includes a pinion 122 rotationally driven by the actuator 121. The pinion 122 interacts with a rack 111 formed on the deadbolt blocking member 110. When the pinion 122 is rotated in one direction, the deadbolt blocking member 110 is moved toward a location immediately behind the deadbolt 104. When the pinion 122 is rotated in the reverse direction, the deadbolt blocking member 110 is moved away from the deadbolt 104.
[0061] Preferably, the electrically driven actuator unit 120 further includes a reduction gearbox 123 between the output shaft of the motor 121 and the pinon 122. The ratio of the reduction gearbox 123 is designed to be high enough so that, once the deadbolt blocking member 110 is displaced between the blocking position and the unblocking position by actuation of the motor 121 and then the motor 121 is switched off, the deadbolt blocking member 110 remains in the same place against gravity or other forces. The gearbox 123 can also amplify the motor torque by conversion of speed into torque.
[0062] The deadbolt blocking member 110 in a preferred embodiment includes a first slider 112 movable by actuation of the electrically driven actuator unit 120 and a second slider 113 slidably attached to the first slider 112. The deadbolt blocking member 110 may further include a biasing member 114, such as a spring, that applies a biasing force between the first slider 112 and the second slider 113 so that the second slider 113 moves to the blocking position together with the first slider 112 when actuated by the electrically driven actuator unit 120. This operation is shown in relation to
[0063] In connection with the deadbolt blocking member 110, the locking device 1 may further include a manual override mechanism 160 for manually moving the second slider 113 with respect to, i.e., independently of, the first slider 112 to the unblocking position against the biasing force of the biasing member 114. This is particularly in the event of an emergency, or when the electrically driven actuator unit 120 cannot be activated due to a power loss, failure, or the like.
[0064] As shown in
[0065] In the operation of the manual override mechanism 160, the second slider 113 therefore can move with respect to the first slider 112 in an isolated manner, allowing a means of activating the manual override mechanism 160 without transmitting torque to the electrically driven actuator unit 120. This ensures that the manual override mechanism 160 can be easily operated with less human power.
[0066] With reference to
[0067] Preferably, the locking device 1 further includes a second detector 141b which is configured to detect whether the deadbolt blocking member 110 is in the blocking position. In such a case, the control circuit is configured to stop actuation of the electrically driven actuator unit 120 after moving the deadbolt blocking member 110 from the unblocking position to the blocking position. According to this configuration, overload of the electrically driven actuator unit 120 after moving the deadbolt blocking member 110 from the unblocking position to the blocking position is prevented by the control circuit associated with the second detector 141b.
[0068] Preferably, the locking device 1 further includes a third detector 141a which is configured to detect whether the deadbolt blocking member 110 is in the unblocking position. In such a case, the control circuit is configured to stop actuation of the electrically driven actuator unit 120 after moving the deadbolt blocking member 110 from the blocking position to the unblocking position. According to this configuration, overload of the electrically driven actuator unit 120 after moving the deadbolt blocking member 110 from the blocking position to the unblocking position is prevented by the control circuit associated with the third detector 141a.
[0069] It is more preferable that at least one of these detectors 141a to 141c is a non-contact sensor. Examples of the non-contact sensor include a proximity sensor such as a Hall effect sensor or an electrostatic capacitance sensor, and a photoelectric sensor. A Hall effect sensor is preferred, as it does not deteriorate with dust, oil, lock shavings, etc. Also, Hall effect sensors are accurate, sensitive and function with accurate position measurement over a long period of time. A Hall effect sensor is therefore the most suitable for use within the locking device 1, among other non-contact sensors. The detector is not however limited to the non-contact sensor. The detector may be a mechanical sensor such as a limit switch or a microswitch.
[0070] In the case where each detector 141a, 141b, 141c is the Hall effect sensor, a respective magnet 116, 104c to be detected by the Hall effect sensor is arranged in the deadbolt blocking member 110 and the deadbolt 104 so as to face the Hall effect sensor in the respected position to be detected.
[0071] The control circuit in the PCB 140 may include a suitable controller or microprocessor to control the actuation of the electrically driven actuator unit 120 upon operation of an operation pad (not shown) which may be mounted on the door leaf to be operated by a user, and/or upon operation of one or more user's devices such as remote controllers and smart phones. The control circuit may further include a communication unit to communicate with the user's device or the like via a suitable communication interface.
[0072] The control circuit may further include one or more memory units, such as RAM, for storing the controller's instructions or the like.
[0073] The “user's device” means a device owned by any person who is authorised to access a room or place secured by a locking device according to the invention. Therefore, not only a user or a resident of the secured place, but also one or more persons, e.g., laundry and cleaning services, authorised by the user or the residence of the secured place or by administrative authority, or the like, may have one or more user's device.
[0074] Examples of such a user's device are a mobile phone, smart phone, tablet, fob or remote control, or other smart home devices such as Amazon Alexa® or Google Assistant®. Any secured wireless communication technology, such as Bluetooth®, Wi-Fi, Z-wave, Radio Frequency Identification (RFID), or cellular broadband service may be used to communicate between the communication interface and the one or more user's devices.
[0075] The control circuit may be fed with power from a battery. The battery may be a rechargeable battery and arranged inside the casing 102 of the main lock 10. The battery may be charged in a contactless manner by means of electromagnetic induction. To this end, a primary or transmitting induction coil may be arranged in or on the door frame, and a secondary or receiving induction coil connected to the rechargeable battery via the control circuit may be arranged in or on the front plate 60 of the locking device 1, so as to face the primary coil, so that the battery is charged while the door is closed. The control circuit may be configured to detect the residual capacity of the battery and send the information thereof to one or more user's device or the like if needed.
[0076] Hereinafter, a particular example of the locking and unlocking operations of the locking device 1 will be described. In
[0077] A user now operates a user device or the operation pad on the door leaf or the lock housing to unlock the door. To this end, the user may push the two separated buttons on the operation pad, to have the control circuit actuate the electrically driven actuator unit 120 to move the deadbolt blocking member 110 to the unlocking position (
[0078] Once the door has been unlocked and opened as above, the locking device 1 will be in the unlocked state, such that the dead bolts 104, 204, 304 are each held within the door body. From this configuration, when the user closes the door, the strike pin 410 of the mechanical power accumulating unit 40 is pushed by the door frame against the spring 410c, releasing the accumulated energy to power a downward movement of the link plate 30. The downward movement of the link plate 30 generates forward movement of the deadbolt 104 via the engagement of the cam groove 134 in the link plate 30 and the follower pin 104b of the deadbolt 104 (
[0079] In the event of an emergency, or when the electrically driven actuator unit 120 cannot be activated due to a power loss, failure, or the like, the user can manually unlock the door by operation of the manual override mechanism 160. When the locking device 1 is in the locked state above and as shown in
[0080] Whilst the present invention has been illustrated by the description of example locking device, the Applicant does not intend to restrict or in any way limit the scope of the appended claims to such detail. Additional modification will also readily appear to those skilled in the art. The Applicant does not intend to restrict or in any way limit the scope of the appended claims to that the locking device is supplied with a door and thus all electronics are well hidden. The locking device of the present invention may be an after-sales lock—and the electronics are prepared for the user/door or lock fitter to integrate.
[0081] Further although the above-description describes the locking device being used in a door, it is conceivable that the locking device may be used in other types of closures, such as windows, gates, shutters, or the like.
LIST OF REFERENCE NUMERALS
[0082] 1 Locking device [0083] 10 Main lock [0084] 20, 30 Auxiliary lock [0085] 40 Mechanical power accumulating unit [0086] 50a-50c Connecting rod [0087] 60 Face plate [0088] 104 Deadbolt [0089] 104b Follower pin [0090] 104c Magnet [0091] 110 Deadbolt blocking member [0092] 111 Rack [0093] 112 First slider [0094] 113 Second slider [0095] 120 Electrically driven actuator unit [0096] 121 Actuator (electric motor) [0097] 122 Pinion [0098] 123 Gearbox [0099] 130 Link plate [0100] 132 Pin [0101] 134 Cam groove [0102] 140 Printed circuit board [0103] 141a-141c Hall effect sensor [0104] 150 Operation part [0105] 152 Radial groove [0106] 160 Manual override mechanism [0107] 161 Rack [0108] 162 Pinion [0109] 170 Latch assembly