This invention generally relates to mechanical fastening devices and more particularly pertains to cam lock systems, used in medical cabinets, showcases, file cabinets, tool chests, mailboxes, PO boxes, and so forth, for privacy and security reasons.
Traditional cam lock systems comprise a cam lock and a metal plate and are manually operated by turning a key. Most cam locks are cylindrical and configured to receive matching keys. When a key is inserted into a matching cam lock, the cam lock and the metal plate rotates with the key, generally ±90°, to engage or disengage with a catch or slot and lock or unlock the door, cabinets, drawers, or any items that the cam lock is attached to. If a user forgets to lock the door or cabinet, he/she has to physically be there to lock it or risk losing the security and/or privacy. Therefore, it is desirable to have a remotely-controllable, power-activated cam lock system working in parallel with a physical key lock system.
The present invention is incorporated in a remotely-controllable, power-activated cam lock system. The system preferably comprises a cam lock, an actuator package coupled to the cam lock, a key, and a remote control. In an exemplary cam lock system, the cam lock is configured to receive and rotate with the key, preferably to a certain range of degrees, such as ±90°, or ±180°, when locking or unlocking. The actuator package of this exemplary cam lock system comprises a retractable geared plate or tongue, a micro gear motor, a controller, and a power system. The power system of this exemplary cam lock system is configured to provide electric power to the micro gear motor and the controller. In the exemplary cam lock system, the micro gear motor is configured to drive the plate back and forth, e.g. horizontally or vertically, radially/rotationally, or a combination thereof and the controller is configured to receive a control signal from the remote control to activate/deactivate the micro gear motor accordingly.
In operation, a user can lock a door by using the remote control of the exemplary cam lock system and unlock the door by either the remote control or manually with the key. To lock the door, a user uses the remote control to send a lock signal to the controller of the exemplary actuator package, and then the controller activates the micro gear motor to insert the plate into a catch or slot. To unlock the door, the user may use the remote control to send a unlock signal to the controller of the exemplary actuator package, and then the controller activates the micro gear motor to withdraw the plate from the catch or slot. Alternatively, the user may insert the key of the exemplary cam lock system into the cam lock and turn the whole exemplary cam lock system to a certain degree, such as 90°, to unlock the door. This way, if the power system of the exemplary cam lock system dies and the door is locked, i.e. the plate is inserted into the catch/slot, the user may still use the key to unlock and lock the door, just like with a traditional cam lock system.
The present invention utilizes a control/communication protocol with device(s) such as a home network hub, database, keypad, mobile phone, smart device, key fob, wearable, home integrated monitoring/control system, and portable wireless system. The communication protocol can implement any type of wireless devices including handheld scanners, cellphones, smartphones, tablets, key fobs, home monitoring/control interface units, etc. A communication protocol, such as Bluetooth, ISM (Industrial, Scientific, and Medical), ZigBee, Z-wave, Wifi, TinyMesh, or any other wireless communication protocol that can be utilized for data transference between the chosen device and this invention's wirelessly controlled compartment.
The transmitting and receiving of signals between the device and the compartment lock's controller/circuit board with firmware allows for unlocking or locking of aforementioned portable or stationary compartment(s). The remote device will send a secure command signal wireless to the lock controller (inside or outside of the compartment), which will in turn command the compartment lock to open. Sending the “open” command/signal can require a QR, proximity (0.1 to 30 feet), alphanumeric code, biometric entry or proximity based entry into the device in order to ensure security of the contents protected by the locked compartment.
In one configuration of this invention, the apparatus would lock its compartment automatically upon its closing. In other words, locking the compartment would not require a signal from the remote device. Only unlocking the compartment would require a signal from the remote device. Again, this is only one configuration of the invention. Requiring a signal from the device to unlock, open, close and lock the compartment is an equally viable configuration of this invention.
This invention creates the capability to secure items in a portable or stationary compartment. This invention is a lockable portable or stationary compartment that can contain features that can control the environment for the contents of said container.
Various embodiments may adopt various implementations or designs. The retractable plate of an alternate embodiment may work with a different type of motor, or mechanism, known in the art to drive the plate forward or backward, e.g. solenoid, stepper motor, thermal bimetallic actuator, piezoelectric actuator, heated gas piston actuator etc. Examples of the remote control may include a PC/cellphone APP that communicates with the controller of the exemplary actuator package by WIFI or Bluetooth signals, a simple device, like a garage door remote or a TV remote control, that communicates with the controller of the exemplary actuator package by radio or infrared signals, or any other suitable devices known in the art Additionally, the key of an embodiment and the matching cam can be any types of suitable “key-cam combinations,” such as standard one-on-one keyed cam, a master-keyed cam, a keyless-slotted cam, a keyless-dial-combination cam, a combination-with-key-override cam, and so forth. Similarly, the cam lock of an embodiment can be of various shapes, including a knob cam, a T-handle cam, an L-handle cam, a wing-handle cam, and so on. Furthermore, an exemplary power system comprises three (3) AA batteries and a chamber housing the batteries.
It is an object of this invention to provide a remotely-controllable, power-activated cam lock system.
The features, functions, and advantages may be achieved independently in various embodiments of the disclosure or may be combined in yet other embodiments.
Embodiments of the disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
The figures illustrate exemplary embodiments of a power-activated cam lock incorporating aspects of the invention. The aspects of the invention disclosed may be may scaled or modified for any and all cam lock types. It is contemplated that one application of the disclosed embodiment is to create a smart cam lock that is capable of being operated by remote control, while retaining the ability to be actuated manually by a key. The cam lock embodiment described herein is preferably selected, designed, retrofitted, configured, or assembled to augment a typical, existing cam lock. Accordingly, the features of the disclosed embodiment should not be construed as limiting any aspect of the invention.
In general, the present invention is incorporated in a cam lock 100 that is securable relative to a drawer or door. Coupled to the cam lock wo is actuator package 200. The actuator package of this exemplary cam lock system preferably includes a retractable geared plate or tongue, a micro gear motor, a controller, and a power system.
The actuator package 200 uses mechanical motion to move the tongue 210 out of place while still allowing the key cam to work as normal. While linear motion is presently preferred other means of mechanical motion (e.g., rotational or transitive mechanical motion) can also work. The tongue 210 of the cam lock is the part that is latched down to hold the door closed, this method provides a way to transpose the tongue 210 out of place with mechanical motion to allow a door to be unlocked while still allowing the cam lock to function manually.
Actuator package 200 preferably includes a circular drive gear 220 driven by a motor 230 and power source 242 within a drive gear housing 241, and an arm/catch (or “tongue”) 210 having an outer linear gear edge 250 and a longitudinal interior aperture 260. The outer linear gear edge 250 interfaces with the drive gear 220 and operation of the drive gear causes the tongue 210 to move laterally relative to the cam lock 100. The longitudinal interior aperture 260 is dimensioned to receive a guide nut 282 as shown in
In operation, the drive gear/pinion 220 causes lateral displacement of tongue 210 towards or away from a latch in order to lock or unlock the item. As such, a medicine cabinet (or similar), can be remotely locked or unlocked. Alternatively, rotation of a physical key within the cam lock housing 285 rotates the cam cylinder 290, guide nut 282 and the tongue 210 towards or away from a latch so that the cam lock can be operated manually. It is preferred that the actuator package 200 rotate with the tongue 210. For example, the cam cylinder 290 can be configured to receive and rotate with the key, preferably to a certain range of degrees, such as ±90°, or ±180°, when locking or unlocking. In this way, and as shown in
The power system of this exemplary cam lock system is configured to provide electric power to the micro gear motor and the controller. In the exemplary cam lock system, the micro gear motor 230 is configured to drive the plate back and forth, e.g. horizontally or vertically, and the controller 270 is configured to receive a control signal from the remote control and activate/deactivate the micro gear motor 230 accordingly.
The preferred embodiment includes a self-contained power supply to power the container and accessories. This power supply can be charged through wired in, wireless, or natural power source. This power supply can be charged through a wall plug, solar panel, or wireless charging system. Likewise, the charging system can be coupled to recharge the battery. This can be supplied from a main power source from the electrical grid (wall plug) or a secondary source, solar panel or wireless charger.
The lock can be activated by one or a combination of electronic signals or manual activation, these activations can be wireless, biometric, key or code based. In addition to the locking system shown the drawings, there can also be a secondary lock added for overlock protection that can be a conventional lock, or electronic lock.
There are many ways the controller circuit 270 can receive a remote signal. A cam lock with integrated radio (e.g. Bluetooth®) to communicate with phone application for locking and unlocking the cam lock is one way. Other examples of the remote control include a PC/cellphone application that communicates with the controller of the exemplary actuator package by WIFI or Bluetooth signals. Or it could be a simple device, like a garage door remote or a TV remote control, that communicates with the controller of the exemplary actuator package by radio or infrared signals, or any other suitable devices known in the art. The lock-unlock command can be sent wirelessly from various remote devices including battery-less bluetooth key fobs.
Referring to
In a retrofit situation, an existing cam lock can be modified to accept the actuator package 200. The actuator package 200 can simply replace the regular (i.e., existing) tongue of the existing cam lock. One way to accomplish this is to remove the cam lock fastener 280 (king bolt), removing the existing cam lock tongue 210. Next, replace the existing cam lock tongue 210 with the actuator package 200 and use that same fastener 280 to connect the cam lock wo to the actuator package 200. An example of this connection is shown in
In operation, a user can lock and unlock a door by using the remote control of the exemplary cam lock system or a manual key. To lock the door, a user uses the remote control to send a lock signal to the controller 270 of the exemplary actuator package 200, and then the controller activates the micro gear motor 23o to extend the plate 210 into a catch or slot. To unlock the door, the user may use the remote control to send an unlock signal to the controller 270 of the exemplary actuator package 200, and then the controller activates the micro gear motor 230 to withdraw the plate 210 from the catch or slot. Alternatively, the user may insert the key of the exemplary cam lock system into the cam lock 100 and turn the cam cylinder 290, which preferably turns the whole actuator package 200 via guide nut 282 to a certain degree, such as 90°, to unlock the door. This way, if the power system of the exemplary cam lock system dies and the door is locked, i.e. the plate is inserted into the catch/slot, the user may still use the key to unlock and lock the door, just like with a traditional cam lock system.
The preferred actuator package 200 has a controller 270 which interfaces with a software application installed on a remote device. An authorized individual, not necessarily the remote device user, may access this database to see when and where the lock was opened/closed/locked/unlocked. This invention could be used in a lock box, which may only be opened when the courier, equipped with the locking compartment, has the recipient enter the correct code, biometric or otherwise. The GPS location of the device along with the time would be uploaded to an internet accessible database, where it could be monitored by a supervisor or concerned party.
In yet another embodiment, a wireless and battery-free key fob or tag could be included on or in packaging to activate the lock. This could be advantageous in package delivery situation. A wireless sensor in the actuator package 200 could be configured to sense when a package having the key fob is close and allow for unlocking and locking events to be triggered. Alternatively, the wireless key fob could also be recognized when it is inside a container using an actuator package 200. In this way, the key fob could update information stored in the actuator package 200 and transmit that information (such as “package delivered”) remotely using wi-fi or other communication protocol previously described.
Wireless Signal Protocol
Many communication protocols are already in existence and any of these may be used provided the device and the locking compartment share this protocol. A short list of possible protocols includes WIFI, Bluetooth, ISM (Industrial, Scientific, and Medical), ZigBee, Z-wave, TinyMesh, NBIoT, NFC, etc. A typical software and firmware architecture is illustrated below using Bluetooth.
Device Interface with User (the App)
It is assumed that the remote control device has one or more of the following interfaces:
For the purposes of this specification an “app” or application refers to a prepackaged software subroutine designed specifically for the said device's operating system. This app could interface with the user through voice, or a keypad combination on the device's touch screen. This interface could also receive status from the lock. Status may then be communicated to the user via the app. The device's speakers are utilized by the app to provide alerts. Audible alerts are presented for scheduled alarm notifications, loss of signal connection with the locking compartment and for low battery and dead battery notification.
Device Initial Pairing with Compartment Lock
Preventing a foreign or alien device from operating the compartment lock requires that an initial, one time pairing of the device to the lock's controller board be made. A code specific to the lock's controller must be entered into the device during this initial paring process.
Security Access
The use of the device to provide the unlocking signal allows for utilization of the devices integral hardware. Typical devices have a keyboard, a touch screen, speakers, microphones, and cameras. Typing a user defined alphanumeric code into the app's prompt using either the keyboard or touch pad or virtual keyboard will allow for opening of the compartment. Additionally, tracing a user defined pattern into the touch screen may also serve as the unlocking trigger.
Biometric Identification
Just as entering a code via a keyboard or tracing a pattern onto a touch screen may unlock the compartment, scanning the user's retina or a finger print, via a camera, or using voice recognition, may unlock in the case.
Power Management/Status Functions
The invention will be capable of providing the power level of the lock's battery via the device. If the battery is drained or disconnected, the device will alert the user that the lock's signal connection to the device is lost.
In the event power is lost while the mobile locking compartment is connected to the device, a lost connection alert/notification will be displayed by the app, visually via the device's screen and/or audibly via the device's speakers.
Proximity Functions
The ability for the device to locate the actuator package 200 (or “locking compartment”) if they are separated is possible with various communication protocols. This would be a desired feature if the compartment was lost or stolen. Activating the “Lost” module of the app installed in the device, would display a directional indication and distance to the compartment on the device's screen.
The ability of the compartment to alert the user of its location would require a speaker, or vibrator module. The ability of the device to alert the user of the compartment's location would require using the device's existing speaker and screen. The distance (detected signal strength of compartment's Bluetooth board) and direction would be displayed on the screen of the device and would change/update as the location of the device moved in relation to the lost/stolen compartment. A speaker could accompany the directional guidance offered by the device's screen. Another invention feature is the ability of the device to alert the user when the signal connection with the compartment is lost.
Various embodiments may adopt various implementations or designs. The retractable plate of an alternate embodiment may work with a different type of motor known in the art to drive the plate forward or backward. Additionally, the key of an embodiment and the matching cam can be any types of suitable “key-cam combinations,” such as standard one-on-one keyed cam, a master-keyed cam, a keyless-slotted cam, a keyless-dial-combination cam, a combination-with-key-override cam, and so forth. Similarly, the cam lock of an embodiment can be of various shapes, including a knob cam, a T-handle cam, an L-handle cam, a wing-handle cam, and so on. Furthermore, an exemplary power system comprises three (3) AA batteries and a chamber housing the batteries.
While embodiments of the disclosure have been described in terms of various specific embodiments, those skilled in the art will recognize that the embodiments of the disclosure may be practiced with modifications within the spirit and scope of the claims.
Number | Name | Date | Kind |
---|---|---|---|
2044622 | Michauka | Jun 1936 | A |
3733861 | Lester | May 1973 | A |
3947060 | Zimmer | Mar 1976 | A |
5170431 | Dawson et al. | Feb 1992 | A |
5265452 | Dawson | Nov 1993 | A |
5531086 | Bryant | Jul 1996 | A |
5626039 | Solari | May 1997 | A |
5693987 | Krucoff | Dec 1997 | A |
5790034 | Khoury | Aug 1998 | A |
5931430 | Palmer | Aug 1999 | A |
5943888 | Lawson | Aug 1999 | A |
6112563 | Ramos | Sep 2000 | A |
6282931 | Padiak | Sep 2001 | B1 |
6318138 | Mathews | Nov 2001 | B1 |
7017379 | Hsieh | Mar 2006 | B1 |
7096697 | Keightly | Aug 2006 | B2 |
7165428 | Isaacs et al. | Jan 2007 | B2 |
7240524 | White | Jul 2007 | B1 |
7647797 | Visa Cabrera | Jan 2010 | B1 |
8468743 | Ting et al. | Jun 2013 | B2 |
8833118 | McLane | Sep 2014 | B1 |
9702168 | Jadallah et al. | Jul 2017 | B2 |
9790716 | Hagemeyer et al. | Oct 2017 | B2 |
20070257773 | Hill | Nov 2007 | A1 |
20080307837 | Greiner | Dec 2008 | A1 |
20090217718 | Porter | Sep 2009 | A1 |
20110084506 | Roatis | Apr 2011 | A1 |
20110225433 | Wan | Sep 2011 | A1 |
20130285393 | Roatis | Oct 2013 | A1 |
20160312504 | Marsh | Oct 2016 | A1 |
20160340943 | Sharp | Nov 2016 | A1 |
20170268258 | Jadallah et al. | Sep 2017 | A1 |
Number | Date | Country |
---|---|---|
2960409 | Dec 2016 | EP |
2009151382 | Dec 2009 | WO |
2015189391 | Dec 2015 | WO |
Number | Date | Country | |
---|---|---|---|
62585738 | Nov 2017 | US |
Number | Date | Country | |
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Parent | 16189977 | Nov 2018 | US |
Child | 17335445 | US |