The present invention relates to a locking core for securing and releasing a lock. The invention also relates to a smart or remotely-controlled locking core for releasing a lock. The invention is also related to a padlock comprising the locking core.
Locks of all kinds have been used for centuries for both security and safety. Typically, a lock requires a key to open the lock, where the key is matched to the internal tumblers of the lock. This solution has led to large numbers of lost keys and logistical issues with companies and individuals trying to track, locate and retrieve keys for access.
These logistical issues are sizable for utility companies, like water, electricity and telecommunications. Utility companies may have thousands of secure sites across a country. These sites can be in cities or located in remote countryside locations and may not need to be visited with any frequency. Where a service person requires access to a locked facility they will have to make arrangements to locate and retrieve the correct key for the facility or risk travelling hundreds of miles, only to find the key that they were provided with does not match the lock. Some service providers now have entire departments that deal with nothing other than the tracking and tracing of access keys.
In an attempt to address these key issues, some locks have been designed for electronic-access; however, these key-less locks now rely on power. An issue arises where the lock is only accessed sporadically, in that the power supply within the lock can diminish or run out of power entirely, again leaving a service person unable to access the lock having made the trip to the lock site.
While all locks face the issues described above, it is noted that exterior locks, such as padlocks are more exposed that locks housed within a door, a window frame or a cabinet, and are thus also susceptible to environmental impacts, like wind, rain and dust, potentially rendering these locks uncooperative or inoperative.
The following invention was conceived with these shortcomings in mind.
A first aspect of the invention provides a system for unlocking a lock comprising: an electronic locking core for insertion in a lock body, and a separate power source; wherein the locking core comprises: a casing having an accessible end and a non-accessible end, when inserted into a lock body, an electronic board housed within the casing for receiving electronic data from a remote source, a motor housed within the casing, the electronic circuit board configured to activate on receipt of data containing a unique data code and configured to drive the motor upon receipt of the unique data code, wherein the motor is configured to move a locking member located at the non-accessible end of the casing and externally thereof that transitions a latch of the lock between a locked and an unlocked configuration; and a terminal located at the accessible end of the casing in electrical contact with the internal electronic circuit board to receive power from the separate power source; wherein the separate power source is housed within a cartridge separate from and connectable to the locking core, the cartridge including a co-operating terminal configured to connect with the terminal of the locking core to allow power from the power source to activate the electronic circuit board and motor within the casing; and wherein the motor of the locking core is activated to move the locking member to unlock the lock when the separate power source is connected to the locking core and the electronic circuit board receives the unique data code from the remote source.
An advantage of providing a separate power source that is connectable to the locking core is that it allows the locking core to be powered as and when needed. For example, a service person need only connect the power source to the locking core when the locking core is required to be opened and whilst the power source is not connected to the locking core, the security of the lock is left uncompromised.
The separate power source is preferably external of the lock body when it is connected to the locking core within the lock body.
In some embodiments the power source may be a battery. The power source may be a standard battery size.
The unique data code may be transmitted wirelessly to the locking core from the remote source. The remote source is preferably a cellular device. Alternatively, the unique data code may be transmitted to the locking core via a wired connection from a remote device which is separate from the locking core and preferably separate from the power source.
The unique data code may be created and sent from the remote data source via an app. The remote data source may be triggered to transmit the unique data code by a signal from the electronic circuit board of the locking core, when the remote data source is within the predetermined operational zone and the power cartridge is connected.
The remote data source may be selected from any one of the following: a mobile phone, smart phone, laptop, Mac, PC, tablet and e-watch.
A second aspect of the invention provides an electronic locking core for use in the system of the first aspect, wherein the locking core comprises: a casing adapted for insertion into a body of a lock, an electronic circuit board housed within the casing for receiving electronic data from a remote source, a motor housed within the casing, the electronic circuit board configured to activate on receipt of data containing a unique data code and configured to drive the motor upon receipt of the unique data code; a locking member located at one end of the casing configured for engagement with a latch of the lock, wherein the motor is configured to move the locking member located at the said one end of the casing to transition the latch of the lock between a locked and an unlocked configuration; and a terminal located at the opposite end of the casing in electrical contact with the internal electronic circuit board and configured to receive power from a separate power source.
The motor may have a limiter that limits rotation of the locking member to within an angular range.
According to a third aspect there is provided an electronic locking core comprising: a casing adapted for insertion into a body of a lock; an electronic circuit board housed within the casing for receiving electronic data from a remote source; a motor housed within the casing, the electronic circuit board configured to activate on receipt of data containing a unique data code and configured to drive the motor upon receipt of the unique data code; a locking member located at one end of the casing configured for engagement with a latch of the lock, wherein the motor is configured to move the locking member located at the said one end of the casing to transition the latch of the lock between a locked and an unlocked configuration; and a terminal located in electrical contact with the internal electronic circuit board and configured to receive power from a power source, wherein the motor has a limiter that limits rotation of the locking member to within an angular range.
Suitably, the angular range is between 45° and 315°. More suitably, the angular range is between about 80° and about 280°. Even more suitably, the angular range is between 80° and 100°, and more preferably about 90°.
An advantage to providing a limiter is that motor torque is only applied to the locking member during movement of the locking member, i.e. during unlocking of the lock. This increases the life span of the locking core by minimising stresses that are exerted when torque is applied to a static locking member.
In one embodiment, the limiter may comprise a limit switch that is actuatable via mechanical interaction between a spring biased striker and a surface of the locking member provided with a recess. Preferably, when the recess is rotationally aligned with the striker, the spring biases the striker to enter the recess which actuates the limit switch so as to break electrical contact at the motor, thereby stopping the motor.
In an embodiment, the recess is provided in a peripheral lip on the locking member. Preferably, the surface of the locking member enagagable by the striker is an indented cam surface.
In one embodiment, the motor is arranged to rotate at a rotation speed that is between 10,000 rpm and 20,000 rpm. Suitably, the rotation speed of the motor is no greater than about 10,000 rpm.
The motor may include a gearbox having at least five gears, and more preferably at least seven gears.
The motor may have a gear ratio of at least 380:1, and more preferably about 1000:1.
The cartridge for the power source may be configured to engage with the casing or a casing closer of the locking core.
The cartridge may be threadingly engaged with the casing or casing closer. The cartridge may be snap-fit engaged with the terminal or the casing closer. The cartridge may be push-fit engaged with the terminal or the casing closer. The cartridge may be slidingly engaged with the terminal or the casing closer.
The co-operating terminal of the power source may protrude from the cartridge to be received and engaged with the terminal of the electronic locking core.
The cartridge may have a weatherproof coating that forms a weather-tight seal between the cartridge and the casing of the core.
In some embodiments, the lock may be a padlock. Alternatively, the lock may be a different type of lock, such as a cam lock.
The casing may have a figure-8 cross-section that corresponds to a complementary shaped cavity in the lock body.
The casing is preferably be engaged within the lock body of the padlock or other type of lock to conceal the locking member within the lock body and to expose the terminal.
In some embodiments, movement of the locking member may release or secure the latch of the padlock or other type of lock to transition the latch between the locked and the unlocked configurations. The latch may be a U-shaped latch or shackle.
The casing may be located within the lock body to locate the locking member substantially centrally of the latch or shackle of the lock, in operational engagement with a bolt or bar of the lock. The locking member may comprise a boss that extends from the locking member to engage and drive a rotational bolt or bar of the lock.
In the case of a padlock, movement of the rotational bolt or bar may release a pair of locking balls from locking recesses at a heel and a toe of the shackle, respectively, of the padlock.
The system may include a padlock having a body which is fitted with the electronic locking core.
In a still further aspect, the invention is directed to a method of installing an electronic locking core in a lock comprising a lock body, a locking cylinder, a latch or a bolt, the method comprising the steps of: releasing and removing the locking cylinder from the lock body; installing the electronic locking core into the lock body; aligning a locking member of the electronic locking core with the latch or bolt of the lock; and securing the electronic locking core within the lock body. The lock may be a padlock. The lock may be a cam lock.
In a still further aspect, the invention is directed to a method of using system as previously described, the method comprising the steps of: connecting the separate power source to the locking core to activate the electronic circuit board and motor within the locking core; locating a remote data source in a predetermined operational zone of the electronic locking core; activating the remote data source to transmit a unique data code to the electronic circuit board, wherein the circuit board draws power from the power source and on accepting the unique data code activates the motor to drive the locking member of the locking core to release a latch of the lock.
Embodiments of the invention are illustrated by way of example, and not by way of limitation, with reference to the accompanying drawings, of which:
Embodiments will now be described more fully hereinafter with reference to the accompanying drawings, in which various embodiments, although not the only possible embodiments, of the invention are shown.
The invention may be embodied in many different forms and should not be construed as being limited to the embodiments described below. While this description refers primarily to a lock in the form of a padlock, it is understood that the invention can also be applied to other forms of lock where the locking core is substituted for a locking cylinder and as such, can be applied to door locks, window locks, cam locks and the like.
In this specification like features of different embodiments have been identified with like reference numerals. The description includes reference numerals that identify the features described in the figures. However, to maintain clarity of the figures, all of the reference numerals have not been included in each of the figures.
The term lock “cylinder” is understood herein to refer to a cylinder that contains pin tumbler locks. The cylinder can typically be unscrewed by a locksmith to facilitate rekeying, as such the cylinder can be changed without altering the bolt or other hardware of the lock.
In general terms, the invention as illustrated in the
Within the battery housing cavity (55) are two opposed electrical terminals, a positive terminal (58) and a negative terminal (59) for engaging with opposing ends of the battery (40) and supplying electrical power to a cooperating terminal (63) of the power cartridge (42). The co-operating terminal (63) is brought into contact with a terminal, illustrated in
There is no power source within the locking core (1) and as such, the locking core (1) is only activated when the power cartridge (42) is connected to the locking core (1). The power cartridge (42) is a common design that can be engaged to power and one of the locking core (1) as installed in the field. As such, an operator can travel to a lock site with only a single power cartridge (42) in anticipation of engaging with and powering any number of discrete locking cores (1). All unique parts of the locking core (1) are container therein and are configured to operate from any power cartridge (42).
An electronic circuit board (20) is installed within the casing (13) of the locking core (1) and once powered, will respond by exchanging (receiving and transmitting) data signals with a remote data source (22). The remote data source (22) can be a mobile phone, smart phone, computer, laptop, pc, tablet, mac or the like, illustrated schematically in
A software package is installed onto the remote data source in the form or an application or “app” that generates a unique data code (24) that is recognised by the electronic circuit board (20) to activate the motor and locking member (28) of the core (1). The remote data source (22) can be configured to have a proximity sensor (or GPS), to transmit the unique data code (24) only when within a predetermined radius of the locking core (1). Even once the locking core (1) is brought into proximity with the remote data source (22), the lock will not be activated unless the power cartridge (42) has been engaged.
The 570-oval cylinder (70) is widely used across Australia among other countries and is mounted in many doors, windows and cabinets. By releasing the manufacturers pin and tumbler set from the cavity (4) of the lock, the 570-oval lock cylinder (70) can be retrofitted with the locking core (1) to provide remote-access capabilities to the associated lock. The locking member (28) of the locking core (1) is located and secured within the cavity (4) such that the locking member (28) is concealed and inaccessible. Similarly, the terminal (56) is located at the unconcealed, accessible end (16) of the casing (12) and remains accessible to a user to engage the power cartridge (42) permanently or temporarily.
The locking core (1) can also be used with a padlock (2) as illustrated in
The padlock (2) of
To be contrasted with
The locking core (1) of the padlock (2) can be released and removed from the lock body (18) of the padlock (2) as illustrated in
A lock core receiving cavity (4) is configured as a figure-eight shaped recess, having two cylindrical cavities sharing a common chord, the first cavity being larger than the second cavity. The casing (12) of the locking core (1) is shaped to snugly fit within the receiving cavity (4) also having a corresponding figure-eight shape such that the locking core (1) can only be inserted in the correct orientation within the cavity (4) and thus ensure engagement between the locking member (28) and the rotational bolt (10) of the padlock (2).
Locking core retaining screw (6) is illustrated as a countersunk screw for inserting into the bore (3) of the lock body (18) and threadingly engaging and securing the locking core (1) within the lock body (18) of the padlock (2).
The casing closer (13) comprises a retainer (50) that is tensioned by a tensioner (52) illustrated as a spring in
The operation of the locking core (1) will now be described in relation to the padlock (2) as illustrated in
Within the heel (33) and the toe (34) of the shackle (32) is a pair of locking recesses (7), respectively. The locking recesses (7) are aligned with a pair of spring loaded locking balls (5) which restrict motion of the shackle (32). The balls (5) are forced inwardly towards the centre of the lock body (18) under spring tension and into abutment with the rotational bolt (10) thereby holding the shackle (32) in place.
The rotational bolt (10) includes a pair of corresponding recesses (8) for receiving the locking balls (5) as the rotational bolt (10) is turned by a locking member (28) of the locking core (1). When the balls (5) are aligned and received within the corresponding recesses (8) of the rotational bolt (10), the engagements between the balls (5) and the locking recesses (7) are broken allowing the shackle (32) to move and the shackle toe (34) to be withdrawn from the lock body (18) of the padlock (2).
Going back to
The terminal (56) is illustrated in
The terminal (56) passes electrical power from the battery (40) within the cartridge (42) to a motor printed circuit board (25) which once powered, activates a motor (26) within the casing (12).
The motor (26) is held in place by at least one retaining screw (54) such that the spindle (27) of the motor is rotated by the motor. An “O”-ring seal 35 is provided between an end of the motor housing and the casing (12) where the spindle (27) extends through an aperture in the end of the casing. The spindle (27) is received by the locking member (28) which sits externally of the casing (12). The locking member (28) includes a drive lug in the form of a protruding boss (30). The boss (30) has a central body (65) and two opposing elongate arms (66).
As shown in
The locking member (28) is disc-shaped with the boss (30) on a first surface (23) facing away from the core (1) and has a peripheral lip (29) extending from the first surface (23) towards the core (1). The peripheral lip (29) has a recess (31) therein, as is best shown in
The electrical circuit board (20) is mounted to the casing by at least one retaining screw (21) that extends through the core (1) and holds the electrical circuit board therein.
The motor (26) further includes a limiter for limiting rotation of the locking member (28) and boss (30).
The limiter is an electromechanical device that comprises a limit switch (44), and an actuator in the form of spring-loaded striker pin (46) mechanically linked to a set of contacts of the limit switch (44). The striker pin (46) is biased by a limit switch spring (48) in a direction towards the locking member (28). When the lip (29) of the locking member (28) comes into contact with the striker pin (46), the striker pin (46) engages the contacts of the limit switch (44) contacts to make the electrical connection that drives movement of the locking member (28). The limit switch spring (48) holds tension on the striker pin (46) urging the striker pin (46) to protrude from the concealed end (16) of the casing (12) to await contact with the recess (31) of the lip (29) of the locking member (28).
When the motor (26) rotates the spindle (27) the locking member (28) is rotated. As the locking member (28) rotates, the boss (30) rotates the rotational bolt (10) to release the shackle (32). Also, as the locking member (28) is rotated, the recess (31) in the peripheral lip (29) is brought into alignment with the striker (46). The limit switch spring (48) pushes the striker into the recess (31) when aligned, breaking the contact with the limit switch arm (47) and thereby the electrical contact and stopping the motor (26) and rotation of the spindle (27). The limit switch (44) thereby limits the rotation of the locking member (28) and thus the rotational bolt (10) of the locking means of the padlock (2). The limit switch limits rotation of the locking member to within an angular range defined by the arc of the recess (31). When the arc of the recess is approximately 90°, the angular range is about 270°.
The limiter and the indented cam surface on the locking member (28) provided by the peripheral lip (29), the recess (31) and the sloping surfaces (71) at the transition points between the lip (29) and the recess (31) assist in providing a smoother transition for starting and stopping the motor, helping to prolong the lifetime of the motor.
The casing closer (13) seals the casing (12) leaving only the access opening (15) accessible from accessible end (14) to allow for electrical contact between the terminal (56) and the cooperating terminal (63). Shown in
Shown in more detail in
The casing (12) includes a release hole (11) for allow tool access to release the casing closer (13) from the casing (12).
The power cartridge (42) also comprises a blade (45) shown in
Illustrated from two views in
The central slot portion (68) receives the blade (45) of the cartridge (42), while the keyed end portions (69) provide engagement to a mounting lip (51) and a locking lip (49) of the cartridge (42). The cross-sectional view of
Finally, as the terminal (56) and cooperating terminal (63) are aligned, the blade (45) surrounded by the locking lip (49) is pushed towards the casing closer (13) to snap-fit the locking lip (49) thereto (
The power cartridge (142) has a cartridge cap (160) threadingly engaged to the cartridge (142). The cap (160) is unscrewed to release and replace the battery (40) which is a standard battery type, shown in
A first terminal (158) is mounted in the cap (160) and as the cap (160) is screwed via thread (162) onto the cartridge (142) the battery (40) is tensioned against the second terminal (159) of the cartridge (142).
The cartridge (142) has a bespoke knuckle thread (164) that cooperates with the casing closer (113) to engage the cartridge (142). Even once the locking core (1) is brought into proximity with the remote data source (22), the lock will not be activated unless the power cartridge (142) has been engaged.
In the system of the present invention, the shackle is automatically released and as such provides a contactless entry application.
In some embodiments, the locking core (1) is configured to auto-release. Such that when the power cartridge (42, 142) is connected to locking core (1), a signal is sent from the electronic circuit board (20) to the remote data source (22). When the remote data source (22) is within a predetermined range of the locking core (1) the unique data code (24) is then automatically sent to the powered locking core (1), releasing the shackle (32) automatically without any further contact with the mobile phone or padlock. Users can thus leave the remote data source (22) in a bag or pocket avoiding the need to handle the remote data source (22) once within the predetermined range (see
The knuckle thread (164) is a wide-pitched-and rounded-tip-thread, selected to avoid dirt and grit interfering with the screw in battery connection. Once connected the power cartridge (142) powers-up the motor (26) to drive the boss (30) and auto-release the toe (34) of the shackle (32) from the lock body (18) via the rotational bolt (10).
The casing closer (113) comprises a circular, threaded recess (117) for receiving the knuckle thread (164) of the cartridge (142). The threaded engagement reduces wear and tear on both the casing closer (113) and the knuckle thread (164) as the cartridge (142) is repeatedly connected and disconnected with the core (1).
Once the cartridge (142) is connected to the casing closer (113) an electrical connection is formed between the terminal (56) and the cooperating terminal (163) to power the electronic circuit board (20) and drive the motor (26) to unlock the latch (32).
The locking core (1) of
The motor (26) in the embodiment of
In contrast, the drive motor (26) in the embodiment of
The use of a seven-stage gearbox enables the gear ratio to be increased by about 2½ times from 380:1 ratio to about 1000:1 ratio. This can further improve the open and close cycle rates. The applicant has found that the increased gear ratio results in the first gear having almost no loading (i.e. torque) from the drive motor (26) upon start-up. If a full load of the motor is applied instantly upon start-up, it can lead to damage of the locking core (1).
All the improvements described above can result in an improvement of cycle rates up to 120,000 open and close cycles.
In use, the locking core (1) in the embodiment of
The locking core (1) has no interconnecting wiring requirements. All electrical componentry is located on the electronic circuit board (20) and the motor PC board (25) which are electrically connected.
The electronic circuit board (20) may include a real-time clock (RTC) that includes a miniature battery. This prevents users from compromising the validity period of their unique data code by endeavouring to alter the time on their mobile phone to match the validity period of their unique data code.
The locking core (1) may include a potting compound within the locking core itself to improve its weather resistance and waterproofing.
It will be appreciated by persons skilled in the art that numerous variations and modifications may be made to the above-described embodiments, without departing from the scope of the following claims. The present embodiments are, therefore, to be considered in all respects as illustrative of the scope of protection, and not restrictively.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although any methods and materials similar or equivalent to those described herein can also be used in the practice or testing of the present invention, a limited number of the example methods and materials are described herein.
It is to be understood that, if any prior art publication is referred to herein, such reference does not constitute an admission that the publication forms a part of the common general knowledge in the art, in Australia or any other country.
In the claims which follow and in the preceding description of the invention, except where the context requires otherwise due to express language or necessary implication, the word “comprise” or variations such as “comprises” or “comprising” is used in an inclusive sense, i.e. to specify the presence of the stated features but not to preclude the presence or addition of further features in various embodiments of the invention.
Number | Date | Country | Kind |
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2020902893 | Aug 2020 | AU | national |
Filing Document | Filing Date | Country | Kind |
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PCT/AU2021/050897 | 8/13/2021 | WO |