The present invention is generally directed to locking devices and, more particularly, to locks that are electronically operable and controllable by mobile devices such as telephones, PCs, tablets and the like.
One of the disadvantages of conventional locks is that people must carry in their pockets or bags many different physical keys to accommodate the different locks or memorizing many different combination codes that can be easily forgotten and sometimes compromised.
Another disadvantage of conventional locks concerns the subject of miniature locks that are required to lock modern mobile devices such as laptops, tablets, telephones and the like which typically lock inside a 3×7 mm locking slot into which a miniature locking element is inserted. These locks must shrink beyond their present size to accommodate the shrinking thicknesses of mobile devices. These thicknesses make it very difficult to make a lock body which is thin enough and yet capable of accommodating bulky keys or locking combination wheels.
Accordingly, it is desirable to provide various locks for different applications that can be referred to as “smart locks” which can be opened and closed via mobile devices, such as telephones, cell devices, small PCs, tablets and the like.
It is an object of the present invention to provide an electronically operable and controllable locking device.
It is a further object of the present invention to provide lock configurations for different applications that can be opened and locked via mobile devices such as telephones, cellular devices, tablets and the like.
The foregoing and other aspects of the invention are realized with a locking system comprising: a lock body including a locking element, a moving mechanism coupled to and configured to operate the locking element, an electrical controller configured to control the moving mechanism, the lock body further comprising a facility for receiving electrical commands for the electrical controller. A separate mobile electronic device for providing the electrical commands to direct the electrical controller to at least control the moving mechanism to move the locking element into an open position is included. In accordance with other embodiments, the mobile device communicates through a USB port via a direct connection utilizing physical connectors. However, the connection can be wireless. Also, the mobile electronic device may be a telephone, tablet or a specially designed mobile device which is incorporated into a wristwatch or which can be clipped or otherwise attached to a watch band and worn on a person's wrist all day long for easy and ready availability.
Other features and advantages of the present invention will become apparent from the following description of the invention which refers to the accompanying drawings.
Referring to
Referring to
The general concept provides for a software program embedded in a memory of the device 20 with a program algorithm for the lock body and a data connection through the cable 40 to the lock body 50. The lock body 30 houses a receiver, a lock ID code and a controller that selectably opens and closes the locking element 60, in response to commands entered via the device 20. The mechanism for opening and closing the locking element 60 may be an electromagnet, a small motor, a solenoid, or the like. The lock body 50 may have an internal power source, such as a battery, or, if located in an immovable home door, an A/C source (not shown). In certain configurations, power can be provided to the lock body 50 from the device 20. In operation, to open or lock the locking element 60, a suitable command or power signal is transmitted via the cable 40, after the user has first entered the required unique code for the particular lock.
In an alternate embodiment, the device 20 may operate the lock body 50 wirelessly, using near field technology. For example, the mobile device 20 may have a connector or device 26 that outputs an RF field for communicating with a corresponding connector 50 to unlock the lock body. Alternatively, the connector 26 houses a primary winding which delivers A/C power that charges an internal battery or a short term storage capacitor located inside the lock body 50 in order to temporarily power the lock body to enable changing the state (open or closed) of the locking element 60, as more fully described below.
In yet another embodiment, an intense light source 28 is provided on the mobile device 20 for outputting light which can quickly charge solar cells located inside the coupling connector 52 on the lock body to power up and control the locking element 60.
Referring now to
The front face of the lock body 50 may be covered by a rotatable plate 74 which is inaccessible when the lock body is in a locked position, as when it is attached to the appliance or door with which it is used. However, when the lock body is in one's hand, the plate 74 may be moved to gain access via line 76 to an internal cavity which is accessible through the front of the lock, to rotate or press an element which resets the controller into a mode which allows programming of a new internal security code.
In the case of the familiar locking devices used with computer laptops, the body 50 has a flange 78, which holds the head of flexible cable 80 which terminates in an end loop 82. The size of the opening in the end loop allows the entire lock 50 to pass therethrough and so tether the lock body to a chair or desk or the like, so the computer laptop cannot be moved, thereby securing the laptop against theft.
Referring now to
Referring now to
Regardless, the code holding device 96 may be a non-volatile, electrically alterable device that can be programmed in a program mode as, for example, when the wire 76 (
In a typical operation, it is assumed that the lock body has been programmed with a particular code. In one embodiment, the locking element is configured to move into the locking position via a biasing spring 72, which will rotate or push the pin into the locking position. However, when the controlling device 20 receives the correct opening code, the locking device is turned or pulled to the open position until such time as one removes his or her fingers from an enabling button or icon on the mobile device 20. Alternatively, a single push of the controlling device on the mobile device opens the lock for a set period, for example, 10, 20, 30 or even 60 seconds, to allow sufficient time to open the door or remove a lock from the locking slot on a computer. The period during which the lock remains in the open mode may be programmable in a well-known manner, simply by having the right control program in the control module 58 inside the lock body and in the mobile device 20.
Referring to
For locking purposes, a pair of pins 562a, 562b are pushed into the security slot 501a, preventing separation of the lock body from the device to be protected, with lock body 510 being tethered via cable 580, which is anchored to the lock body 510 at 578 (right hand, bottom corner of
The overall locking mechanism 512 comprises a thumb slider 530, which slides in a slide channel 532, back and forth along the length of the lock body 512. The slider 530 has a slider body 534 which penetrates into the interior of the body 510 and has at its distal end, an angled cam surface 536.
The thumb slider 530 interacts with a lock actuator 550 having a jutting finger 552 at the bottom and a spring well 554 which support therein a first spring 558 which spring biases the thumb slider body 534 to the right in the figure against a stop 559 (which is physically part of the actuator 550). At the center, the actuator 550 has a trapezoidal locking space which receives a wedge 566 of a lock head 564 on which are supported the locking pins 562a, 562b, for a purpose which will become apparent further on.
Referring to
As this sliding motion proceeds, the cam 536 bears against the ball head 546 of the latch 540, which latch is pivoted at 542 (
At the same time, the counterclockwise rotation of the latch 540 about the pivot 542 causes the plunger 572 of the solenoid 570 which has a slot engaged by the pin 544 of the latch 540 to be pushed inside the solenoid. Thus, the plunger becomes magnetically locked in the solenoid as the plunger 572 moves along the arrow 583, as shown in
As the user releases the thumb pressure on the thumb slider 530, the slider 530 assumes a center position, as shown in
Referring again to
However, when the lock head 650 is pushed onto the actuating arms 666a, 666b, they become squeezed together, which produces the locked position shown in
In the foregoing description, the solenoid 570 can be the solenoid 571 shown in prior art
As shown in
With reference to
In connection with the foregoing, in accordance with one embodiment of the invention, the counter 97 in
The electrical circuit within the lock can be powered by a battery or it can be powered through power delivered from the USB port or wirelessly.
Although the present invention has been described in relation to particular embodiments thereof, many other variations and modifications and other uses will become apparent to those skilled in the art. It is preferred, therefore, that the present invention be limited not by the specific disclosure herein, but only by the appended claims.
This application claims benefit of and priority to U.S. Provisional Application Ser. No. 61/819,912 filed May 3, 2013, the contents of which are incorporated herein by reference.
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61819912 | May 2013 | US |