This application claims priorities to, and the benefits of, Chinese Invention Patent Application No. filed on 202110923864.0 filed on 12 Aug. 2021 and Chinese Utility Model Patent Application No. 202121881831.6 filed on 12 Aug. 2021. The entire content of the foregoing applications is hereby incorporated by reference herein in its entirety.
The present disclosure relates to the field of locks, and in particular to electric locks.
Methods for unlocking existing electric door locks are implemented mostly by using a motor gear box assembly to directly drive a rotatable shaft gear to perform locking and unlocking operations, and there is a drawback to such structures of the existing electric door locks. When a user uses a knob to manually lock or unlock the door lock, the user has to turn the knob with a great force to drive the entire motor gears to rotate altogether, resulting in the user being unable to quickly and easily lock or unlock a door, and therefore people with weaker strength such as children or elderly people may not be able to successfully unlock the door and escape in case of a locked rotor or a power failure halfway during unlocking the door, which greatly reduces the safety and practicability of the door lock.
In the light of the foregoing background, in some exemplary embodiments, one of the objectives is to provide an improved electric lock to solve the safety and practicability problem of existing electric door locks.
Therefore, according to one aspect, provided is an electric lock, comprising: (a) a knob; (b) a lock body; (c) a rotatable shaft comprising a rotatable-shaft front end and an opposing rotatable-shaft rear end, wherein the rotatable-shaft rear end is fixedly connected to the lock body to control a locking and unlocking of the lock body; (d) a gear assembly comprising a gear and a movable piece with a common axis center; and (e) a motor assembly for driving the gear to rotate. The knob and the rotatable shaft are connected via the movable piece; the movable piece interacts with the gear via a mechanical barrier, such that electrically driving the gear by the motor assembly causes the movable piece to rotate; and the movable piece can pass over the mechanical barrier when a sufficient rotational force is applied to the knob, such that the movable piece is free to rotate relative to the gear, thereby allowing a user to manually control the locking and unlocking of the lock body.
In another exemplary embodiment, provided is an electric lock, comprising: (a) a knob; (b) a lock body; (c) a rotatable shaft comprising a rotatable-shaft front end and an opposing rotatable-shaft rear end, wherein the rotatable-shaft rear end is fixedly connected to the lock body to control a locking and unlocking of the lock body; (d) a gear assembly comprising a gear and an inner core with a common axis center; and (e) a motor assembly for driving the gear to rotate. The gear comprises an internal wall that defines a gear internal space for accommodating the inner core, wherein the internal wall comprises at least one protrusion extending towards the axis center; the inner core is at least partially mounted in the gear internal space, wherein the inner core comprises an inner core opening arranged on the axis center and at least one ball head spring mechanism provided in the inner core, and the at least one ball head spring mechanism comprises a ball head extending away from the axis center and adjacent to the internal wall; the electric lock further comprises a connector comprising a connector front end, an opposing connector rear end, and a connector outer periphery sized and shaped to match the inner core opening, wherein the connector front end is connected to the knob, and the connector rear end passes through the inner core opening and is connected to the rotatable-shaft front end; wherein when the motor assembly drives the gear to rotate, the at least one protrusion interacts with the at least one ball head spring mechanism to drive the inner core and the rotatable shaft to rotate together, thereby electrically controlling the locking and unlocking of the lock body; and the at least one ball head spring mechanism can be compressed, such that when a sufficient rotational force is applied to the knob, the ball head passes over the at least one protrusion, so that the inner core is free to rotate relative to the gear, thereby allowing a user to manually control the locking and unlocking of the lock body.
In a further exemplary embodiment, an electric lock is provided, comprising: (a) a knob; (b) a lock body; (c) a rotatable shaft comprising a rotatable-shaft front end and an opposing rotatable-shaft rear end, wherein the rotatable-shaft rear end is fixedly connected to the lock body to control a locking and unlocking of the lock body; (d) a gear assembly comprising a gear and an inner core with a common axis center; and (e) a motor assembly for driving the gear to rotate, wherein the gear comprises an internal wall that defines a gear internal space for accommodating the inner core, wherein the internal wall comprises two protrusions extending towards the axis center; the inner core is at least partially mounted in the gear internal space, wherein the inner core comprises (i) an inner core opening arranged on the axis center; (ii) a first frame, wherein the first frame comprises: a first ball head disposed on the first frame, wherein the first ball head extends away from the axis center and abuts the internal wall; and a first arm and a second arm; (iii) a second frame, wherein the second frame and the first frame are symmetrically arranged on the inner core, the second frame comprises: a second ball head disposed on the second frame, wherein the second ball head extends away from the axis center and abuts the internal wall; and a third arm and a fourth arm; (iv) a first spring elastically connecting the first arm of the first frame to the third arm of the second frame; and (v) a second spring elastically connecting the second arm of the first frame to the fourth arm of the second frame; the electric lock further comprises a connector comprising a connector front end, an opposing connector rear end, and a connector outer periphery sized and shaped to match the inner core opening, wherein the connector front end is connected to the knob, and the connector rear end passes through the inner core opening and is connected to the rotatable-shaft front end; wherein when the motor assembly drives the gear to rotate, the two protrusions interact with the first frame and the second frame respectively to drive the inner core and the rotatable shaft to rotate together, thereby electrically controlling the locking and unlocking of the lock body; and the first spring and the second spring can be compressed, such that when a sufficient rotational force is applied to the knob, the first frame and the second frame approach each other so that the first ball head and the second ball head pass over one of the two protrusions respectively, so that the inner core is free to rotate relative to the gear, thereby allowing a user to manually control the locking and unlocking of the lock body.
Other exemplary embodiments are described herein.
The present disclosure has many advantages in various embodiments. In some embodiments, the inner core (also known as the movable piece) cooperates with the gear so that the locking and unlocking of the lock body of the electric lock can be controlled either electrically or manually, thereby allowing a user to easily operate the locking and unlocking of the electric lock to achieve a better user experience. In some embodiments, a lock with a free rotation mechanism is provided, which achieves a free rotation effect after electrically driving the locking and unlocking of the lock. In some embodiments, because the ball head spring mechanism of the inner core can be compressed, when a sufficient rotational force is applied to the knob, the ball head of the ball head spring mechanism passes over the protrusion of the gear, so that the inner core is free to rotate relative to the gear, thereby allowing a user to manually perform locking and unlocking operations without having to turn the knob with a great force. The design of the electric lock structure can prevent the user from being trapped indoors due to the inability to manually unlock the lock when power failure suddenly occurs halfway during electric locking or unlocking or a locked rotor during locking occurs, and the safety of the electric lock is significantly improved. In some embodiments, the circuit board can control the orientation of the gear and the rotatable shaft, so that a reverse rotation action can be performed after electrically controlled locking and unlocking of the lock body switch is completed, to allow the inner core to have a certain range of rotation angle relative to the gear without having to pass over the protrusions of the gear, so as to facilitate manual control over the locking and unlocking of the lock body by the user.
As used herein and in the claims, “comprising” means including the following elements, but not excluding other elements.
As used herein and in the claims, “connect” or “connecting” refers to direct or indirect physical joining of one component to another component.
As used herein and in the claims, “interact” or “interaction” refers to a physical interactive relationship between one component and another component, wherein when one component abuts another component, the one component will drive the another component to move together. In some embodiments, the interaction between a protrusion and a ball head spring mechanism means that when the protrusion abuts the ball head spring mechanism, the protrusion will drive the ball head spring mechanism to move together in the same direction, thereby driving an inner core and a rotatable shaft to rotate together.
As used herein and in the claims, the terms “substantial”, “substantially”, “general”, “generally”, “approximately”, and “about” mean that the recited characteristic, angle, shape, state, structure or value needs not be precisely achieved, but that deviations or variations, including for example, tolerances, measurement error, measurement accuracy limitations and other factors known to those of skill in the art, may occur in amounts that do not preclude the effect the characteristic was intended to provide. For example, an object “substantially” perpendicular to an axis, line or surface would mean that the object is either exactly perpendicular to the axis, line or surface or nearly exactly perpendicular to the axis, line or surface, for example, having a deviation of 5%.
As used herein and in the claims, “electric lock” refers to a lock bolt device which can rely on a motor for locking and unlocking. In some embodiments, the locking and unlocking of the electric lock may be electrically controlled by a motor, or may be manually controlled by a user. In some embodiments, the electric lock can be installed on a door as a door lock for locking and unlocking the door.
As used herein and in the claims, “mechanical barrier” refers to any physical structure capable of limiting or obstructing the passage of a component thereover, such as a stopper, a protrusion, a ridge, a bump, a bulge, or an obstacle in any other form.
As used herein and in the claims, “ball head spring mechanism” or “rounded head spring mechanism” refers to an element with an elastic force that has a ball head at one end. In an embodiment, the ball head spring mechanism or rounded head spring mechanism is composed of a spring and a bead. In some other embodiments, the ball head spring mechanism or rounded head spring mechanism may be composed of multiple different components, or composed of an integral component. For example, the ball head spring mechanism or rounded head spring mechanism may comprise any element with an elastic force other than a spring, including but not limited to an elastic band, a rubber band, and elastic glue. For example, the ball head spring mechanism or rounded head spring mechanism may comprise any element with a ball head other than a bead, including but not limited to a bullet head, a round head cylinder, or a round head screw.
As used herein and in the claims, “ball head” or “rounded head” refers to a component in a ball head spring mechanism, a rounded head spring mechanism, or a frame, and the component comprises an end face, wherein the end face has a radian. In some embodiments, the “ball head” or “rounded head” may be a bead. In some other embodiments, the “ball head” or “rounded head” may be a protruding member, which has a radian only on the end face, while other parts may have other shapes.
It shall be understood by one of skill in the art that structures such as protrusions, recesses, protruding portions, openings and housings may have various shapes and sizes.
It will be understood that although the terms such as “first”, “second” and “third” may be used herein to describe various limitations, elements, components, areas, portions, and/or sections, these limitations, elements, components, areas, portions and/or sections should not be limited by these terms. These terms are used merely to distinguish one limitation, element, component, area, portion or section from another limitation, element, component, area, portion or section. Thus, a first limitation, element, component, area, portion or section discussed below may be referred to as a second limitation, element, component, area, portion or section without departing from the teachings of the present disclosure.
It will be further understood that, terms such as “front”, “rear”, “front face”, “rear face”, “top”, “bottom”, “left”, “right”, “side face”, “length”, “width”, “inner”, “outer”, “internal”, “external”, “transverse”, “vertical”, “horizontal” and the like as may be used herein, are merely used to describe reference points for ease of description, and therefore, the exemplary embodiments will not be limited to any particular orientation or configuration.
An embodiment of the present disclosure provides an electric lock, comprising: (a) a knob; (b) a lock body; (c) a rotatable shaft comprising a rotatable-shaft front end and an opposing rotatable-shaft rear end, wherein the rotatable-shaft rear end is fixedly connected to the lock body to control a locking and unlocking of the lock body; (d) a gear assembly comprising a gear and a movable piece with a common axis center; and (e) a motor assembly for driving the gear to rotate. The knob and the rotatable shaft are connected via the movable piece; the movable piece interacts with the gear via a mechanical barrier, such that electrically driving the gear by the motor assembly causes the movable piece to rotate; and the movable piece can pass over the mechanical barrier when a sufficient rotational force is applied to the knob, such that the movable piece is free to rotate relative to the gear, thereby allowing a user to manually control the locking and unlocking of the lock body.
In an embodiment, the gear comprises an internal wall that defines a gear internal space for accommodating the movable piece, wherein the mechanical barrier comprises at least one protrusion extending from the internal wall towards the axis center; the movable piece comprises at least one ball head spring mechanism, and the at least one ball head spring mechanism comprises a ball head extending away from the axis center and adjacent to the internal wall; and the at least one ball head spring mechanism can be compressed, such that when a sufficient rotational force is applied to the knob, the ball head passes over the at least one protrusion.
In an embodiment, the movable piece comprises at least one recess arranged on the movable piece and configured to accommodate one of the at least one ball head spring mechanism.
In an embodiment, the at least one protrusion is two protrusions symmetrically arranged on two opposite sides of the internal wall and extending towards the axis center; and the at least one ball head spring mechanism is two ball head spring mechanisms.
In an embodiment, the gear comprises an internal wall that defines a gear internal space for accommodating the movable piece, wherein the mechanical barrier comprises at least one protrusion extending from the internal wall towards the axis center; and the movable piece is at least partially mounted in the gear internal space, wherein the movable piece comprises at least two frames disposed therein, and each of the at least two frames comprises a ball head disposed thereon; wherein the ball head extends away from the axis center, and each of the at least two frames is elastically connected to an adjacent frame, such that the ball head abuts the internal wall, and when a sufficient rotational force is applied to the knob, the at least two frames approach each other, such that the ball head passes over the at least one protrusion.
In an embodiment, the ball head and the axis center define a radial axis therebetween; and the electric lock further comprises at least one restricting member, and the restricting member is configured to hold the frame and restrict the ball head to move along the radial axis.
In an embodiment, each of the at least two frames comprises at least one guide rail, which is configured to be placed juxtapose with the restricting member and restrict the frame to move along the guide rail.
In an embodiment, the at least two frames comprise: (i) a first frame, wherein the first frame comprises: a first ball head disposed on the first frame, wherein the first ball head extends away from the axis center and abuts the internal wall; and a first arm and a second arm; (ii) a second frame, wherein the second frame and the first frame are symmetrically arranged on the movable piece, the second frame comprises: a second ball head disposed on the second frame, wherein the second ball head extends away from the axis center and abuts the internal wall; and a third arm and a fourth arm; the movable piece further comprises: a first spring elastically connecting the first arm of the first frame to the third arm of the second frame; and a second spring elastically connecting the second arm of the first frame to the fourth arm of the second frame.
In an embodiment, the movable piece comprises a movable piece opening arranged on the axis center, wherein the gear comprises a gear opening arranged on the axis center, wherein a size of the gear opening is larger than that of the movable piece opening, so that when the knob is manually rotated, the knob drives the movable piece and the rotatable shaft to rotate independently of the gear.
In an embodiment, the motor assembly comprises a main gear meshing with the gear to drive the gear to rotate.
In an embodiment, the ball head is a bead, a bullet head, a round head cylinder, or a round head screw.
In an embodiment, the rotatable-shaft front end and the rotatable-shaft rear end define a longitudinal axis therebetween, and the rotatable-shaft front end comprises a protruding portion extending substantially perpendicular to the longitudinal axis and away from the rotatable shaft, the protruding portion comprises a magnet disposed thereon; and the electric lock further comprises a circuit board electrically connected to the motor assembly, the circuit board is arranged substantially perpendicular to the longitudinal axis and comprises a circuit board opening to allow the rotatable-shaft rear end to pass through the circuit board opening so as to be fixedly connected to the lock body, and the circuit board further comprises a first sensor, a second sensor, and a third sensor for detecting the position of the magnet, such that the circuit board can determine and control the orientation of the rotatable shaft through the detected position of the magnet, thereby electrically controlling the locking and unlocking of the lock body.
In an embodiment, the gear further comprises a gear front face facing the knob and an opposing gear rear face, and a first baffle and a second baffle symmetrically arranged on the gear rear face; and the circuit board further comprises a fourth sensor for detecting the first baffle and the second baffle, such that the circuit board can determine and control the orientation of the gear through detected positions of the first baffle and the second baffle, thereby electrically controlling the rotation of the gear.
In an embodiment, the first sensor and the second sensor are symmetrically arranged on the circuit board with the circuit board opening as a center, wherein a line connecting the first sensor and the second sensor defines a first circuit board centerline; and the third sensor and the fourth sensor are symmetrically arranged on the circuit board with the circuit board opening as a center and aligned along a second circuit board centerline perpendicular to the first circuit board centerline.
In an embodiment, the electric lock further comprises a front cover and a rear cover, wherein the front cover is connected to the rear cover to form a housing and define a housing internal space therein, wherein the gear assembly, the motor assembly, the circuit board and at least part of the rotatable shaft are arranged within the housing internal space, and the knob and the lock body are arranged outside the housing internal space.
In an embodiment, the knob is mounted on the front cover and fixed by a circlip, and the circuit board is mounted on the rear cover and faces the housing internal space.
In an embodiment, the movable piece is free to rotate by 360° relative to the gear.
In another exemplary embodiment, an electric lock is provided, comprising: (a) a knob; (b) a lock body; (c) a rotatable shaft comprising a rotatable-shaft front end and an opposing rotatable-shaft rear end, wherein the rotatable-shaft rear end is fixedly connected to the lock body to control a locking and unlocking of the lock body; (d) a gear assembly comprising a gear and an inner core with a common axis center; and (e) a motor assembly for driving the gear to rotate. The gear comprises an internal wall that defines a gear internal space for accommodating the inner core, wherein the internal wall comprises at least one protrusion extending towards the axis center; the inner core is at least partially mounted in the gear internal space, wherein the inner core comprises an inner core opening arranged on the axis center and at least one ball head spring mechanism provided in the inner core, and the at least one ball head spring mechanism comprises a ball head extending away from the axis center and adjacent to the internal wall; the electric lock further comprises a connector comprising a connector front end, an opposing connector rear end, and a connector outer periphery sized and shaped to match the inner core opening, wherein the connector front end is connected to the knob, and the connector rear end passes through the inner core opening and is connected to the rotatable-shaft front end; wherein when the motor assembly drives the gear to rotate, the at least one protrusion interacts with the at least one ball head spring mechanism to drive the inner core and the rotatable shaft to rotate together, thereby electrically controlling the locking and unlocking of the lock body; and the at least one ball head spring mechanism can be compressed, such that when a sufficient rotational force is applied to the knob, the ball head passes over the at least one protrusion, so that the inner core is free to rotate relative to the gear, thereby allowing a user to manually control the locking and unlocking of the lock body.
In an embodiment, the inner core comprises at least one recess arranged on the inner core and configured to accommodate one of the at least one ball head spring mechanism.
In an embodiment, the gear comprises a gear opening arranged on the axis center, wherein a size of the gear opening is larger than that of the inner core opening, so that when the knob is manually rotated, the knob drives the inner core and the rotatable shaft to rotate independently of the gear.
In an embodiment, the motor assembly comprises a main gear meshing with the gear to drive the gear to rotate.
In an embodiment, the at least one protrusion is two protrusions symmetrically arranged on two opposite sides of the internal wall and extending towards the axis center; and the at least one ball head spring mechanism is two ball head spring mechanisms.
In an embodiment, each of the ball heads of the ball head spring mechanisms is a bead, a bullet head, a round head cylinder, or a round head screw.
In an embodiment, the rotatable-shaft front end and the rotatable-shaft rear end define a longitudinal axis therebetween, and the rotatable-shaft front end comprises a protruding portion extending substantially perpendicular to the longitudinal axis and away from the rotatable shaft, the protruding portion comprises a magnet disposed thereon; and the electric lock further comprises a circuit board electrically connected to the motor assembly, the circuit board is arranged substantially perpendicular to the longitudinal axis and comprises a circuit board opening to allow the rotatable-shaft rear end to pass through the circuit board opening so as to be fixedly connected to the lock body, and the circuit board further comprises a first sensor, a second sensor, and a third sensor for detecting the position of the magnet, such that the circuit board can determine and control the orientation of the rotatable shaft through the detected position of the magnet, thereby electrically controlling the locking and unlocking of the lock body.
In an embodiment, the gear further comprises a gear front face facing the knob and an opposing gear rear face, and a first baffle and a second baffle symmetrically arranged on the gear rear face; and the circuit board further comprises a fourth sensor for detecting the first baffle and the second baffle, such that the circuit board can determine and control the orientation of the gear through detected positions of the first baffle and the second baffle, thereby electrically controlling the rotation of the gear.
In an embodiment, the first sensor and the second sensor are symmetrically arranged on the circuit board with the circuit board opening as a center, wherein a line connecting the first sensor and the second sensor defines a first circuit board centerline; and the third sensor and the fourth sensor are symmetrically arranged on the circuit board with the circuit board opening as a center and aligned along a second circuit board centerline perpendicular to the first circuit board centerline.
In an embodiment, the electric lock further comprises a front cover and a rear cover, wherein the front cover is connected to the rear cover to form a housing and define a housing internal space therein, wherein the gear assembly, the motor assembly, the circuit board and at least part of the rotatable shaft are arranged within the housing internal space, and the knob and the lock body are arranged outside the housing internal space.
In an embodiment, the knob is mounted on the front cover and fixed by a circlip, and the circuit board is mounted on the rear cover and faces the housing internal space.
In an embodiment, the inner core is free to rotate by 360° relative to the gear.
In an exemplary embodiment, an electric lock is provided, comprising: (a) a knob; (b) a lock body; (c) a rotatable shaft comprising a rotatable-shaft front end and an opposing rotatable-shaft rear end, wherein the rotatable-shaft rear end is fixedly connected to the lock body to control a locking and unlocking of the lock body; (d) a gear assembly comprising a gear and an inner core with a common axis center; and (e) a motor assembly for driving the gear to rotate, wherein the gear comprises an internal wall that defines a gear internal space for accommodating the inner core, wherein the internal wall comprises two protrusions extending towards the axis center; the inner core is at least partially mounted in the gear internal space, wherein the inner core comprises (i) an inner core opening arranged on the axis center; (ii) a first frame, wherein the first frame comprises: a first ball head disposed on the first frame, wherein the first ball head extends away from the axis center and abuts the internal wall; and a first arm and a second arm; (iii) a second frame, wherein the second frame and the first frame are symmetrically arranged on the inner core, the second frame comprises: a second ball head disposed on the second frame, wherein the second ball head extends away from the axis center and abuts the internal wall; and a third arm and a fourth arm; (iv) a first spring elastically connecting the first arm of the first frame to the third arm of the second frame; and (v) a second spring elastically connecting the second arm of the first frame to the fourth arm of the second frame; the electric lock further comprises a connector comprising a connector front end, an opposing connector rear end, and a connector outer periphery sized and shaped to match the inner core opening, wherein the connector front end is connected to the knob, and the connector rear end passes through the inner core opening and is connected to the rotatable-shaft front end; wherein when the motor assembly drives the gear to rotate, the two protrusions interact with the first frame and the second frame respectively to drive the inner core and the rotatable shaft to rotate together, thereby electrically controlling the locking and unlocking of the lock body; and the first spring and the second spring can be compressed, such that when a sufficient rotational force is applied to the knob, the first frame and the second frame approach each other so that the first ball head and the second ball head pass over one of the two protrusions respectively, so that the inner core is free to rotate relative to the gear, thereby allowing a user to manually control the locking and unlocking of the lock body.
In an embodiment, the first ball head and the axis center define a first radial axis therebetween, and the second ball head and the axis center define a second radial axis therebetween; and the electric lock further comprises: a first restricting member and a second restricting member, configured to hold the first frame and restrict the first ball head to move along the first radial axis; and a third restricting member and a fourth restricting member, configured to hold the second frame and restrict the second ball head to move along the second radial axis.
In an embodiment, the first arm of the first frame comprises a first guide rail; the second arm of the first frame comprises a second guide rail; the third arm of the second frame comprises a third guide rail; the fourth arm of the second frame comprises a fourth guide rail; wherein the first restricting member and the second restricting member are placed juxtapose with the first guide rail and the second guide rail respectively and restrict the first frame to move along the first guide rail and the second guide rail respectively; and the third restricting member and the fourth restricting member are placed juxtapose with the third guide rail and the fourth guide rail respectively and restrict the second frame to move along the third guide rail and the fourth guide rail respectively.
The various aspects of the present invention are further described below with reference to the accompanying figures. In the following description, the same reference numerals are used to describe the same components in different accompanying figures.
Electric Lock
Referring now to
The front cover 1610 comprises a front cover front surface 1617 and an opposing front cover rear surface 1618 (shown in
The gear assembly 1400 comprises a gear 1410 and an inner core 1420 (in some embodiments, the inner core is also referred to as a movable piece). In this embodiment, the gear 1410 and the inner core 1420 are arranged to have a common axis center. The gear 1410 comprises a gear internal space 1411 for accommodating the inner core 1420 and a gear opening 1413 arranged on the axis center. In this embodiment, the gear 1410 has a gear front face facing the front cover 1610 and an opposing gear rear face, and the gear internal space 1411 is provided on the gear front face of the gear 1410. The inner core 1420 is at least partially mounted in the gear internal space 1411 to be engaged with the gear 1410 to form the gear assembly 1400 as a whole. The inner core 1420 comprises an inner core opening 1421 arranged on the axis center and two symmetrical ball head spring mechanisms 1430A and 1430B disposed in the inner core 1420. The structure of the gear assembly 1400 will be described in detail in later examples.
Referring to
In some embodiments, the electric lock 1000 may further comprise a connector for connecting the knob 1100 to the rotatable shaft 1300. In this embodiment, the connector is a rotatable shaft connector 1316 (shown in
The motor assembly 1500 and the gear assembly 1400 are adjacently arranged in the housing internal space (shown in
As mentioned above, the front cover 1610 is connected to the rear cover 1620 to form the housing of the electric lock 1000. The rear cover 1620 (only shown in
In some embodiments, the electric lock 1000 further comprises a circuit board 1700 electrically connected to the motor assembly 1500. The circuit board 1700 may be mounted on the rear cover front surface 1621, and has a circuit board front face 1710 and an opposing circuit board rear face (not shown). In this embodiment, the circuit board 1700 is arranged substantially perpendicular to the longitudinal axis 1303 of the rotatable shaft 1300 and comprises a circuit board opening 1720. The circuit board opening 1720 and the rear cover opening 1622 are substantially aligned with each other after being assembled, to allow the rotatable-shaft rear end 1302 to pass through the two openings to be fixedly connected to the lock body 1200. The circuit board 1700 may also comprise a plurality of sensors arranged thereon for detecting positions of different components. In this embodiment, the circuit board 1700 has a first sensor 1711, a second sensor 1712, a third sensor 1713, and a fourth sensor 1714 that are arranged on the circuit board front face 1710 and around the circuit board opening 1720. The structure of the circuit board 1700 will be described in detail in later examples.
Now continue to refer to
In an embodiment, at least a part of the lock body 1200 can be mounted or embedded in a side face of a door (not shown) to lock or unlock the door. In an embodiment, the housing can be mounted on the door and faces the inside of a room (not shown), so that a user can manually unlock the lock from the inside of the room when necessary, thereby preventing the situation that the user is trapped indoors.
Referring to
In this embodiment, the knob 1100′ comprises a knob rear surface 1103′ (
Still referring to
Optionally, the electric lock 1000′ may further comprise a motor fixing plate 1530′ for fixedly mounting the motor assembly 1500′ on the front cover 1610′ (as shown in
Gear Assembly
Referring to
As described above, the gear assembly 1400 comprises a gear 1410 and an inner core 1420 with a common axis center 1402. The gear 1410 comprises an internal wall 1414 and a gear opening 1413 arranged on the axis center 1402. The internal wall 1414 defines a gear internal space 1411 for accommodating the inner core 1420. The gear 1410 has a gear front face 1404 (shown in
The inner core 1420 may be at least partially mounted in the gear internal space 1411 to be engaged with the gear 1410. The inner core 1420 has an inner core front face 1424 (shown in
In this embodiment, the size of the gear opening 1413 is larger than that of the inner core opening 1421, so that when a user manually rotates the knob (not shown), the knob can drive the inner core 1420 and the rotatable shaft (not shown) to rotate independently of the gear 1410.
As shown in
Referring to
As shown in
On the other hand, when the gear 1410 is immobilized (for example, when the motor assembly 1500 stops operation, or power failure suddenly occurs halfway during electric lock locking or unlocking or a locked rotor occurs during locking), a user can manually rotate the knob (not shown) to drive the inner core 1420 to rotate in the opposite clockwise direction. In the situation of the initial position where the bead 1431A abuts the first protrusion 1412A, when a sufficient rotational force is applied to the knob to offset the mutual thrust between the first protrusion 1412A and the bead 1431A, the spring 1432A can be compressed, the length T1 of the first ball head spring mechanism 1430A is correspondingly reduced, so that the bead 1431A leaves the initial position and passes over the first protrusion 1412A, such that the inner core 1420 can be free to rotate in a clockwise direction relative to the gear 1410. Specific operations of the electric lock will be described in more detail below.
Referring now to
Referring now to
Referring now to
In this embodiment, the first spring 2432A is positioned between the first arm 2433A of the first frame 2430A and the third arm 2433B of the second frame 2430B, where one end of the first spring 2432A is received by the first arm 2433A and abuts the first arm 2433A, and the other opposing end is received by the third arm 2433B and abuts the third arm 2433B, so as to elastically connect the two (i.e., the first arm 2433A of the first frame 2430A and the third arm 2433B of the second frame 2430B). The second spring 2432B is positioned between the second arm 2434A of the first frame 2430A and the fourth arm 2434B of the second frame 2430B, where one end of the second spring 2432B is received by the second arm 2434A and abuts the second arm 2434A, and the other opposing end is received by the fourth arm 2434B and abuts the fourth arm 2434B, so as to elastically connect the two (i.e., the second arm 2434A of the first frame 2430A and the fourth arm 2434B of the second frame 2430B). Optionally, the inner core 2420 may further comprise a first recess 2423A and a second recess 2423B (shown in
In some embodiments, the electric lock may further comprise a first restricting member 2440A, a second restricting member 2440B, a third restricting member 2440C, and a fourth restricting member 2440D that are disposed on the inner core rear face 2425. In this embodiment, the restricting members 2440A to 2440D have a structure of a clip. Optionally, the first arm 2433A of the first frame 2430A is provided with a first guide rail 24331A on a side away from the first radial axis 2450A, and the second arm 2434A is provided with a second guide rail 24341A on a side away from the first radial axis 2450A. The third arm 2433B of the second frame 2430B is provided with a third guide rail 24331B on a side away from the second radial axis 2450B; and the fourth arm 2434B of the second frame 2430B is provided with a fourth guide rail 24341B on a side away from the second radial axis 2450B. In this embodiment, the first restricting member 2440A and the second restricting member 2440B are placed juxtapose with the first guide rail 24331A and the second guide rail 24341A respectively and restrict the first frame 2430A to move along the first guide rail 24331A and the second guide rail 24341A respectively, so as to hold the first frame 2430A and restrict the first ball head 2431A to move along the first radial axis 2450A. The third restricting member 2440C and the fourth restricting member 2440D are placed juxtapose with the third guide rail 24331B and the fourth guide rail 24341B respectively and restrict the second frame 2430B to move along the third guide rail 24331B and the fourth guide rail 24341B respectively, so as to hold the second frame 2430B and restrict the second ball head 2431B to move along the second radial axis 2450B.
In this embodiment, as shown in
Referring now to
As shown in
On the other hand, when the gear 2410 is immobilized (for example, when the motor assembly 1500 stops operation, or power failure suddenly occurs halfway during electric lock locking or unlocking or a locked rotor occurs during locking), a user can manually rotate the knob (not shown) to drive the inner core 2420 to rotate in the opposite counterclockwise direction. In the situation of an initial position where the first ball head 2431A and the second ball head 2431B abut the first protrusion 2412A and the second protrusion 2412B respectively, when a sufficient rotational force is applied to the knob to offset the mutual thrust between the first ball head 2431A and the second ball head 2431B and the respective first protrusion 2412A and the second protrusion 2412B, the first spring 2432A and the second spring 2432B can be compressed, so that the first frame 2430A and the second frame 2430B approach each other and a relative distance between the two is correspondingly reduced, such that the first ball head 2431A and the second ball head 2431B leave the initial positions respectively and pass over the first protrusion 2412A and the second protrusion 2412B, such that the inner core 2420 can be free to rotate in a counterclockwise direction relative to the gear 2410. Specific operations of the electric lock will be described in more detail below.
Rotatable Shaft
Referring now to
Circuit Board
Referring now to
In this embodiment, the first sensor 1711, the second sensor 1712, and the third sensor 1713 are configured to detect the position of the magnet 1314 (as shown in
In some embodiments, the circuit board 1700 may further comprise a processor (such as a microprocessor) to control and monitor all operations on the electric lock, for example, to send a lock or unlock instruction to a motor assembly. In some embodiments, the circuit board 1700 may further comprise a data memory and/or a transmission medium, etc.
Specific Process of Operating an Electric Lock with a Free Rotation Mechanism
Electric Control Over Locking and Unlocking of an Electric Lock
The specific operation of electric control over locking and unlocking of the above-mentioned electric lock will now be described in detail. For ease of description, the gear assembly 1400, the motor assembly 1500, the rotatable shaft 1300, and the circuit board 1700 are collectively referred to as a free rotation mechanism 7000.
Now referring to
In some embodiments, the electric lock has two locking directions at the same time, namely clockwise locking (as described in Example 8) and counterclockwise locking (as described in Example 9), which improves the practicability of the electric lock.
In some embodiments, a process opposite to the locking process of Example 8 or Example 9 is an unlocking process. For example, after the locking process of Example 8 is completed, the lock body is in a locked state (as shown in
In some other embodiments, a process opposite to the process of Example 8 or Example 9 may also be used as an unlocking process of the electric lock.
Manual Operation on Locking and Unlocking of an Electric Lock
The preferred embodiments of the present invention are described above with reference to the accompanying figures, and the scope of the present invention is not limited thereby. Those skilled in the art can implement the present invention in many variation solutions without departing from the scope and essence of the present invention. For example, features of one embodiment can be used in another embodiment to obtain a further embodiment. Any modifications, equivalent replacements and improvements made within the technical conception of the present invention shall fall within the scope of the present invention.
For example, the rotatable shaft described in Example 1 is composed of two separate components (the rotatable shaft sleeve and the shaft body). In other embodiments, the rotatable shaft may not have a rotatable shaft sleeve, and be composed of only an integral component. In still some other embodiments, the rotatable shaft may be composed of more than two or more components.
For example, in Example 1, the shaft body is substantially rectangular, but it can also be in other shapes, such as cylindrical, polygonal, irregular shape etc.
For example, in Example 1, the knob has a substantially circular outer periphery, but it can also be in other shapes, such as square, rhombus, ellipse, polygon, irregular shape etc.
For example, in Example 1, the outer periphery of the gear internal space and the gear opening are substantially circular, but they can also be in other shapes, such as square, rhombus, ellipse, polygon, irregular shape etc.
For example, in Example 2, the inner core opening and the outer periphery of the connecting column may have a shape of a square with substantially the same size and shape, but they may also be in other shapes with substantially the same size and shape, such as circle, rhombus, ellipse, polygon, irregular shape etc.
For example, in the examples above, the inner core comprises two ball head spring mechanisms disposed on the inner core and the internal wall of the gear comprises two corresponding protrusions. However, in some other embodiments, the inner core may have only one ball head spring mechanism, and the internal wall of the gear comprises one corresponding protrusion. In some other embodiments, the inner core may have three, four or more ball head spring mechanisms, and the internal wall of the gear comprises a corresponding number of protrusions. In some other embodiments, the three, four or more ball head spring mechanisms and the corresponding number of protrusions may be equidistantly arranged on the inner core and the internal wall of the gear respectively.
For example, in some embodiments, the number of the ball head spring mechanisms of the inner core may be the same as the number of protrusions on the internal wall of the gear. In some other embodiments, the number of the ball head spring mechanisms of the inner core may be different from the number of protrusions on the internal wall of the gear. For example, in an embodiment, the inner core may have one ball head spring mechanism, and the internal wall of the gear may have two protrusions. In another embodiment, the inner core may have two ball head spring mechanisms, and the internal wall of the gear may have one protrusion.
For example, in the examples above, a mechanical barrier is a protrusion disposed on the internal wall of the gear. However, in some other embodiments, the mechanical barrier may be an obstacle in any other form that can restrict or hinder the passage of the movable piece therefrom, including but not limited to a stopper, a ridge, a bump, and a bulge.
For example, in the examples above, the spring may be helical, but it can also be of any other shape, size, material, or form that can provide an elastic force.
For example, in the examples above, the ball head spring mechanism is composed of a spring and a bead. However, in some other embodiments, the ball head spring mechanism may be composed of multiple other components, or composed of only one integral component. For example, the ball head spring mechanism may comprise any element with an elastic force other than a spring, including but not limited to an elastic band, a rubber band, and an elastic glue. For example, the ball head spring mechanism may comprise any element with a round head other than a bead, including but not limited to a bullet head, a round head cylinder, or a round head screw.
For example, in the examples above, the first frame and the second frame are elastically connected to each other by a spring. However, in some other embodiments, the first frame and the second frame may be elastically connected to each other in other ways. For example, the first frame and the second frame may be elastically connected to each other via any element with an elastic force other than a spring, including but not limited to an elastic band, a rubber band, and elastic glue.
For example, in some embodiments, the sensor may be a magnetic sensor. However, in some other embodiments, the sensor may be another type of sensors, including but not limited to a photoelectric sensor, a photocoupler, a Hall sensor, a detection switch and a touch switch. In some embodiments, the first sensor, the second sensor, the third sensor, and the fourth sensor are all sensors of the same type. In some other embodiments, at least one of the first sensor, the second sensor, the third sensor, and the fourth sensor may be a sensor of a different type from the remaining sensors. For example, the first sensor, the second sensor and the third sensor may be photocouplers, and the fourth sensor may be a Hall sensor.
Number | Date | Country | Kind |
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202110923864.0 | Aug 2021 | CN | national |
202121881831.6 | Aug 2021 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
20040207214 | Lin | Oct 2004 | A1 |
20100212381 | Huang | Aug 2010 | A1 |
20100257906 | Sorensen | Oct 2010 | A1 |
20130167671 | Huang | Jul 2013 | A1 |
20220162883 | Chen | May 2022 | A1 |
20230203844 | Xiong | Jun 2023 | A1 |
Number | Date | Country |
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106761011 | May 2017 | CN |
206522018 | Sep 2017 | CN |
108798277 | Nov 2018 | CN |
Number | Date | Country | |
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20230051877 A1 | Feb 2023 | US |