1. Technical Field
The present invention relates to door lock devices, and more particularly, to a manually driven electronic deadbolt assembly having a free-spinning bezel.
2. Background Art
A keyed deadbolt assembly is used to supplement the level of security provided by a simple keyed lock configured integral with a doorknob. A traditional deadbolt assembly includes an exterior keyed lock cylinder and a cylinder body that projects away from the surface of a standard door. The lock cylinder has a tail piece that is operably connected to a deadbolt actuation mechanism to facilitate retraction and extension of the deadbolt. An interior turn piece is provided on the interior side of the door, and also is operably connected to the deadbolt actuation mechanism.
Some attempts have been made to provide an electronic door latch, which may utilize motorized retraction of the latch bolt. Also, such electronic door latches may require door modification to accommodate the electronic door latch.
The present invention provides a manually driven electronic deadbolt assembly having a free-spinning exterior manually operable bezel and an associated method of operating a deadbolt mechanism.
The invention, in one form thereof, is directed to a manually driven electronic deadbolt assembly for use on a door separating an exterior space from a secured space. The manually driven electronic deadbolt assembly includes a deadbolt mechanism, a torque blade, an interior actuator assembly, and an exterior actuator assembly. The deadbolt mechanism has a spindle drive opening, and the torque blade is configured to be drivably received in the spindle drive opening of the deadbolt mechanism. The torque blade has a first end and a second end. The interior actuator assembly is configured to operate the deadbolt mechanism from the secured space, and is mechanically connected to the first end of the torque blade. The exterior actuator assembly is configured to operate the deadbolt mechanism from the exterior space.
The exterior actuator assembly has a locked condition and an unlocked condition. The exterior actuator assembly has a chassis body, a manually operable bezel, a code input mechanism, a control circuit, and an electro-mechanical coupling mechanism. The chassis body is configured to mount the exterior actuator assembly to the door. The manually operable bezel is rotatably coupled to the chassis body and is configured to selectively operate the deadbolt mechanism. The code input mechanism is coupled to the chassis body, with the code input mechanism being configured to receive an input code from a user. A control circuit is coupled in electrical communication with the code input mechanism. The control circuit is configured with control logic to discriminate between a valid input code and an invalid input code. The electro-mechanical coupling mechanism is mounted to the chassis body, and is configured to selectively couple the manually operable bezel to the torque blade. The electro-mechanical coupling mechanism is communicatively coupled to the control circuit and is mechanically connected to the second end of the torque blade. The electro-mechanical coupling mechanism is configured such that in the locked condition the manually operable bezel is drivably decoupled from the torque blade in which the manually operable bezel is free-spinning when rotated and incapable of rotating the torque blade to operate the deadbolt mechanism. Also, the electro-mechanical coupling mechanism is configured to drivably couple the manually operable bezel to the torque blade when the valid input code is input to the code input mechanism to facilitate the unlocked condition in which a rotation of the manually operable bezel effects a rotation of the torque blade to operate the deadbolt mechanism.
Advantageously, the manually driven electronic deadbolt assembly of the present invention may be incorporated as a direct replacement for a traditional keyed deadbolt assembly.
Also, the exterior manually operable bezel of the present invention is free-spinning when the manually driven electronic deadbolt assembly is in the locked condition, thus adding an additional level of security to the manually driven electronic deadbolt assembly.
The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of embodiments of the invention taken in conjunction with the accompanying drawings, wherein:
Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate embodiments of the invention, and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
Referring now to the drawings, and more particularly to
Deadbolt mechanism 18 includes a housing 26 that carries a retractable deadbolt 28, and is configured as is well known in the art. Deadbolt mechanism 18 includes a deadbolt drive mechanism 30 having a spindle drive 30-1 that has a spindle drive opening 30-2. Spindle drive opening 30-2 is non-circular, e.g., having a square or D-shaped cross-section, so as to receive a rotational driving force from torque blade 24.
Torque blade 24 extends between interior actuator assembly 120 and exterior actuator assembly 22, and is slidably received through spindle drive opening 30-2 of deadbolt drive mechanism 30. Torque blade 24 has a first end 32 that is received by a portion of interior actuator assembly 120 and has a second end 34 that is received by a portion of exterior actuator assembly 22.
Torque blade 24 is configured to drive deadbolt drive mechanism 30 of deadbolt mechanism 18 by a rotation of torque blade 24. Thus, torque blade 24 is configured to be drivably received in spindle drive opening 30-2 of deadbolt mechanism 18, and in this regard torque blade 24 has a cross-section shape, e.g., square or D-shaped, that corresponds to the shape of spindle drive opening 30 so as to convey a rotational force to deadbolt drive mechanism 30 of deadbolt mechanism 18.
Referring also to
Base 122 is configured to mount interior actuator assembly 120 to door 12. Interior actuator assembly 120 is configured to operate deadbolt mechanism 18 from the secured space 16 via interior turn piece 128. More particularly, interior actuator assembly 120 is configured in a fail-safe manner to provide a continuous drive via interior turn piece 128 through torque blade 24 to selectively retract and extend retractable deadbolt 28 of deadbolt mechanism 18 by a rotation of interior turn piece 128. In other words, interior turn piece 128 is always drivably connected to deadbolt mechanism 18 to operate retractable deadbolt 18.
Referring also to
Referring to
Chassis body 38 is a non-rotatable chassis that is used to mount exterior actuator assembly 22 to an exterior of door 12.
Manually operable bezel 48, which may be a component of manually operable bezel assembly 40, is rotatably coupled to chassis body 38 and is configured to selectively operate deadbolt mechanism 18.
Code input mechanism 42, which may include segmented touch pad 50, is coupled to chassis body 38, and is configured to receive an input code from a user. For example, segmented touch pad 50 has six input pad segments which correspond to the six input buttons 90 arranged in a circular pattern on button cover 52, which in turn provide input signals to printed circuit board 54 of control circuit 44.
Control circuit 44 may be configured, for example, as a programmable microprocessor unit having associated memory and input/output components. Control circuit 44 is coupled in electrical communication with code input mechanism 42. Control circuit 44 is configured with control logic to discriminate between a valid input code and an invalid input code entered by a user via code input mechanism 42. Such discrimination may be performed, for example, by comparison logic in control circuit 44 that compares the current input code entered by a user to a set of valid input codes that may be stored in a lookup table in electronic memory (RAM, ROM EPROM, EEPROM, etc) of control circuit 44.
If, for example, the manually driven electronic deadbolt assembly 10 is locked and a valid input code is entered by a user, the exterior actuator assembly 22 will attain the unlocked condition and the user will have a predetermined period of time in which to rotate manually operable bezel 48 to operate deadbolt mechanism 18 to retract retractable deadbolt 28. If deadbolt mechanism 18 has not been unlocked by retracting retractable deadbolt 28 (detectable by a switch or sensor communicatively coupled to control circuit 44) within the predetermined time period, control circuit 44 will cause exterior actuator assembly 22 to revert to the locked condition.
However, when manually driven electronic deadbolt assembly 10 is unlocked, by operation of either of operation exterior actuator assembly 22 or interior actuator assembly 120, manually driven electronic deadbolt assembly 10 will remain unlocked until manually locked by a user by operation of either of manually operable bezel 48 of exterior actuator assembly 22 or interior turn piece 128 of interior actuator assembly 120.
Electro-mechanical coupling mechanism 46 is mounted to chassis body 38, and is configured to selectively couple manually operable bezel 48 to torque blade 24. Electro-mechanical coupling mechanism 46 is communicatively coupled to control circuit 44 via an electrical connection and is mechanically connected to second end 34 of torque blade 24.
The electro-mechanical coupling mechanism 46 of exterior actuator assembly 22 is configured such that in the locked condition the manually operable bezel 48 is drivably decoupled from torque blade 24, such that the manually operable bezel 48 is free-spinning when rotated so as to be rendered incapable of rotating torque blade 24 to operate deadbolt mechanism 18.
Also, electro-mechanical coupling mechanism 46 is configured to drivably couple the manually operable bezel 48 to torque blade 24 when a valid code is input to code input mechanism 42 to facilitate the unlocked condition, such that a rotation of the manually operable bezel 48 effects a rotation of torque blade 24 to operate deadbolt mechanism 18 to selectively extend or retract the retractable deadbolt 28.
Referring again to
Referring to
Torque blade driver 82 has a driver body 82-1 having a driver end 82-2 configured to drivably engage second end 34 of torque blade 24. Driver body 82-1 has a proximal cavity 98 defined by a first proximal bore 98-1 and a second proximal bore 98-2. Driver body 82-1 of torque blade driver 82 further includes at least one recess 100, which in the present embodiment includes recess 100-1 and recess 100-2 arranged to be diametrically opposed. Each of recess 100-1 and recess 100-2 extends radially outwardly from proximal cavity 98 into driver body 82-1 of torque blade driver 82, and in the present embodiment extends extend radially outwardly from first proximal bore 98-1 through driver body 82-1.
Torque blade driver 82 is drivably engaged with torque blade 24, and torque blade 24 is configured for driving engagement with latch deadbolt mechanism 18. Torque blade driver 82 is axially retained in second axial bore 94-2 of chassis body 38 by back cover 84. Each of recess 100-1 and recess 100-2 of torque blade driver 82 forms a nest for permanently carrying coupling members, e.g., ball bearings, 72, with the nests being configured to facilitate movement of ball bearings 72 in a radial direction relative to rotational axis 96 while torque blade driver 82 is radially restrained by chassis body 38.
Gear sleeve 70 is configured to be rotatable around rotational axis 96. Gear sleeve 70 has a sleeve body 70-1 with a distal sleeve portion 70-2 configured to be rotatably received in proximal cavity 98 of torque blade driver 82. Sleeve body 70-1 of gear sleeve 70 has a proximal sleeve portion 70-3 with a circumferential gear 102 having external gear teeth extending outwardly from sleeve body 70-1. Sleeve body 70-1 has an internal cavity 104. Sleeve body 70-1 has at least one recess 106 located in distal sleeve portion 70-2, which in the present embodiment includes recess 106-1 and recess 106-2 arranged to be diametrically opposed. Each of recess 106-1 and recess 106-2 extends radially inwardly from an exterior surface of distal sleeve portion 70-2 toward internal cavity 104, and through sleeve body 70-1.
Each of recess 106-1 and recess 106-2 of gear sleeve 70 forms a nest which selectively receives a coupling member, e.g., ball bearing, 72 in a radial direction relative to rotational axis 96. The nests of gear sleeve 70 permit radial movement of ball bearings 72 while gear sleeve 70 is radially restrained by chassis body 38.
When ball bearings 72 are at least one-half received (as measured by the ball bearing diameter) in recess 106-1 and recess 106-2 (nests) of gear sleeve 70, ball bearings 72 rotatably fix gear sleeve 70 to torque blade driver 82, such that gear sleeve 70 and torque blade driver 82 rotate in unison. When ball bearings 72 are less than one-half received (as measured by the ball bearing diameter) in recess 106-1 and recess 106-2 (nests) of gear sleeve 70, ball bearings 72 do not rotatably fix gear sleeve 70 to torque blade driver 82.
Actuator mechanism 92 is configured to selectively position the coupling members, e.g., ball bearings, 72 relative to the recesses 100-1, 100-2 of torque blade driver 82 and recesses 106-1, 106-2 of gear sleeve 70 to selectively select the locked condition and the unlocked condition. In the present embodiment the ball bearings made of ferromagnetic material, and the positioning of ball bearings 72 is dependent on the axial position of shifter 62 and magnet 66.
Shifter 62 has a proximal portion 62-1 having a first diameter and a distal portion 62-2 having a second diameter less than the first diameter. An annular bevel 62-3 of shifter 62 transitions between proximal portion 62-1 and distal portion 62-2.
The internal cavity 104 of gear sleeve 70 is formed as a longitudinal bore. The proximal portion 62-1 of shifter 62 is axially slidably received in the longitudinal bore of internal cavity 104 of gear sleeve 70. Magnet 66 is mounted to an end portion, i.e., at distal portion 62-2, of shifter 62. Shifter 62 has an axial bore defining an inner circumferential portion of shifter 62, and pin 64 radially projects inwardly from the inner circumferential portion of shifter 62 toward rotational axis 96.
Drive spring 58 is mounted to the rotatable shaft of motor 56 for rotation therewith. A distal portion of pin 64 is drivably received between the coils of drive spring 58, such that rotation of drive spring 58 by motor 56 in a first rotational direction results in an axial displacement of shifter 62 in a first longitudinal direction, and rotation of drive spring 58 in a second rotational direction opposite the first rotational direction results in an axial displacement of shifter 62 in a second longitudinal direction opposite the first longitudinal direction.
In the present embodiment, manually operable bezel 48, segmented touch pad 50, button cover 52, printed circuit board 54 and gear driver 78 form a freely rotatable bezel unit, the manually operable bezel assembly 40, which is rotatable relative to chassis body 38. Gear driver 78 is drivably coupled to gear sleeve 70, which may be an indirect coupling via at least one intermediate gear (
In the configuration depicted in
Printed circuit board 54 is electrically connected to motor 56. Printed circuit board 54 of control circuit 44 includes memory, control logic, and an electrical actuator buttons corresponding to the various buttons 90 of button cover 52.
Bezel screws 80 fixedly mount gear driver 78 to manually operable bezel 48, with axially spaced flanges of chassis body 38 being interposed between body plate 60 and gear driver 78, such that manually operable bezel assembly 40 is rotatably mounted to chassis body 38. In the locked condition, the manually operable bezel assembly 40 is freely rotatable as a unit about rotational axis 96.
As shown for example in
Referring also to
Accordingly, in the present embodiment, manually operable bezel 48 always is drivably engaged with gear sleeve 70 via the rotatable gear driver 78, idler gear 74a, idler gear 74b, and drive gear 74c. However, gear sleeve 70 is selectively engageable with torque blade driver 82 via the coupling members, e.g., ball bearings, 72.
Shifter 62 is drivably engaged by drive spring 58 via pin 64 (see
The locked position (
Referring to
Also, as shown in
Referring to
In operation, the user will enter a valid access code on the keypad of segmented touch pad 50 of code input mechanism 42 associated with the exterior manually operable bezel 48, which in turn will actuate motor 56 to position shifter 62 to the unlocked position to attain the unlocked condition, thus permitting the operation, e.g., unlocking, of deadbolt mechanism 18 by retraction of retractable deadbolt 28. When the valid access code is entered, the user has a period of time, e.g., 5 to 10 seconds, in which to rotate the exterior manually operable bezel 48 to retract (unlock) the retractable deadbolt 28 of deadbolt mechanism 18. After the period of time, motor 56 is driven by control circuit 44 to return shifter 62 back to the locked position to attain the locked condition.
In the present embodiment, motor 56 does not drive or in any way move the retractable deadbolt 28 of deadbolt mechanism 18. In the present embodiment, motor 56 is used to aid in coupling the manually operable bezel 48 to torque blade driver 82 via the shifter 62/magnet 66/ball bearing(s) 72/gear sleeve 70 arrangement. The magnet 66 provides selective biasing of the ball bearing(s) 72 towards rotational axis 96. Exterior actuator assembly 22 is configured such that rotational axis 96 is common to, for example, motor 56, drive spring 58, gear sleeve 70, gear driver 78, torque blade driver 82 and torque blade 24.
Referring again to
Exterior actuator assembly 200 is similar in design and function to that of exterior actuator assembly 22, and thus unless stated otherwise, the components and function of the components in exterior actuator assembly 200 will be presumed to be the same as that described above with respect to exterior actuator assembly 22, and thus for brevity such description will not be repeated in its entirety here.
Referring to
Code input mechanism 206, which may include segmented touch pad 210, is coupled to chassis body 202, and is configured to receive an input code from a user. For example, segmented touch pad 210 has six input pad segments which correspond to the six input buttons 90 arranged in a circular pattern on button cover 52 (see
Referring also to
The electro-mechanical coupling mechanism 212 of exterior actuator assembly 22 is configured such that in the locked condition the manually operable bezel 208 is drivably decoupled from torque blade 24, in which the manually operable bezel 208 is free-spinning when rotated so as to be rendered incapable of rotating torque blade 24 to operate deadbolt mechanism 18.
Also, electro-mechanical coupling mechanism 212 is configured to drivably couple the manually operable bezel 208 to torque blade 24 when a valid code is input to code input mechanism 206 to facilitate the unlocked condition, such that a rotation of the manually operable bezel 208 effects a rotation of torque blade 24 to operate deadbolt mechanism 18 to selectively extend or retract the retractable deadbolt 28 (see
Electro-mechanical coupling mechanism 212 includes gear sleeve 70, a single coupling member, e.g., ferromagnetic (steel) ball bearing, 72, an intermediate gear 214, torque blade driver 82, and an actuator mechanism 216. Actuator mechanism 216 includes motor 56, a shifter 218, and a rotational-to-linear translator mechanism that in the present embodiment is formed by a threaded drive 220 (in the form of a worm gear or screw) and an internal axial threaded bore 222 of shifter 218. Threaded drive 220 is mounted to the rotatable shaft of motor 56 for rotation with the rotatable shaft. The external threads of threaded drive 220 threadably engage axial threaded bore 222 of shifter 218 to provide a linear translation of shifter 218.
Chassis body 202 includes an opening 94 defining a rotational axis 96. Opening 94 is configured with a first axial bore 94-1 for receiving gear sleeve 70 to facilitate rotation of gear sleeve 70 about rotational axis 96, and opening 94 has a second axial bore 94-2 for receiving torque blade driver 82 to facilitate selectable rotation about rotational axis 96.
Torque blade driver 82 is configured with driver body 82-1, driver end 82-2, and recess 100 as described above with respect to the previous embodiment. Torque blade driver 82 is axially retained in the second axial bore 94-2 of chassis body 202 by back cover 84. Recess 100 of torque blade driver 82 forms a nest for permanently carrying a coupling member, e.g., ball bearing, 72, with the nest being configured to facilitate movement of ball bearing 72 in a radial direction relative to rotational axis 96 while torque blade driver 82 is radially restrained by chassis body 202.
Gear sleeve 70 is configured to be rotatable around rotational axis 96, and is configured as described above with respect to the previous embodiment, and includes circumferential gear 102 having external gear teeth extending outwardly, and recess 106 (see
When ball bearing 72 is at least one-half received (as measured by the ball bearing diameter) in recess 106 of gear sleeve 70, ball bearing 72 rotatably fixes gear sleeve 70 to torque blade driver 82, such that gear sleeve 70 and torque blade driver 82 rotate in unison. When ball bearing 72 is less than one-half received (as measured by the ball bearing diameter) in recess 106 of gear sleeve 70, ball bearing 72 does not rotatably fix gear sleeve 70 to torque blade driver 82.
Actuator mechanism 216 is configured to selectively position the coupling member, e.g., ball bearing, 72 relative to recess 100 of torque blade driver 82 and recess 106 (see
Shifter 218 has a proximal portion 62-1 having a first diameter and a distal portion 62-2 having a second diameter less than the first diameter. An annular bevel 62-3 of shifter 218 transitions between proximal portion 62-1 and distal portion 62-2. Magnet 66 is mounted to an end portion, i.e., at distal portion 62-2, of shifter 218.
Rotation of threaded drive 220 by motor 56 in a first rotational direction results in an axial displacement of shifter 218 in a first longitudinal direction, and rotation of threaded drive 220 in a second rotational direction opposite the first rotational direction results in an axial displacement of shifter 218 in a second longitudinal direction opposite the first longitudinal direction.
In the present embodiment, manually operable bezel 208, segmented touch pad 210, button cover 52, printed circuit board 54 and gear driver 78 form a freely rotatable bezel unit, the manually operable bezel assembly 204, which is rotatable relative to chassis body 202. Gear driver 78 has internal teeth which engage intermediate gear 214 and thus is rotatably coupled to circumferential gear 102 of gear sleeve 70.
Bezel screws 80 fixedly mount gear driver 78 to bezel 208.
Intermediate gear 214 in combination with the gearing of gear driver 78 and the gearing of gear sleeve 70, form a gear train wherein manually operable bezel 208 is always rotationally coupled to gear sleeve 70. Intermediate gear 214 is rotatably mounted by gear axle screw 86. Accordingly, in the assembly described above, a rotation of manually operable bezel 208 results in a rotation of gear sleeve 70.
Thus, in the present embodiment, manually operable bezel 208 is always drivably engaged with gear sleeve 70 via the rotatable gear driver 78 and intermediate gear 214. However, gear sleeve 70 is selectively engageable with torque blade driver 82 via the coupling member, e.g., ball bearing, 72.
Shifter 218 is drivably engaged by threaded drive 220, with threaded drive 220 being driven by motor 56, thus shifter 218 is configured for linear movement along rotational axis 96 to move magnet 66 to define a locked position (shifter 62 distally extended) corresponding to the locked condition and an unlocked position (shifter 62 proximally retracted) corresponding to the unlocked condition.
More particularly,
Also, as shown in
In the unlocked condition wherein the shifter 218/magnet 66 are in the retracted proximal position, ball bearing 72 is positioned in recess 100 in torque blade driver 82, but proximal portion 62-1 (shoulder) of shifter 218 is no longer in a position to force ball bearing 72 outwardly, such that when recess (nest) 106 in gear sleeve 70 is rotated into alignment with ball bearing 72 in recess 100 of torque blade driver 82, the ferromagnetic (e.g., steel) ball bearing 72 is attracted (lifted in the orientation as shown) by magnet 66 into recess 106 in gear sleeve 70 to achieve the unlocked unobstructed position depicted in
In the unlocked unobstructed position depicted in
In operation, the user will enter a valid access code on the keypad of segmented touch pad 210 of code input mechanism 206 associated with the exterior manually operable bezel 208, which in turn will actuate motor 56 to position shifter 218 to the unlocked position to attain the unlocked condition, thus permitting the operation, e.g., unlocking, of deadbolt mechanism 18 by retraction of retractable deadbolt 28 (see
In the present embodiment, as in the previous embodiment, motor 56 does not drive or in any way move the retractable deadbolt 28 of deadbolt mechanism 18. In the present embodiment, motor 56 is used to aid in coupling manually operable bezel 208 to torque blade driver 82 via the shifter 218/magnet 66/ball bearing 72/gear sleeve 70 arrangement. The magnet 66 provides selective biasing of ball bearing 72 towards rotational axis 96. Exterior actuator assembly 200 is configured such that rotational axis 96 is common to, for example, motor 56, gear sleeve 70, gear driver 78, threaded drive 220, torque blade driver 82 and torque blade 24.
Due to the structural and operational similarities of exterior actuator assembly 22-1 to that of exterior actuator assembly 22, an abbreviated description of the current embodiment follows below. For more structural detail of individual components, the reader should refer to the description of components provided above in relation to
In the embodiment of exterior actuator assembly 22-1 depicted in
As shown in
In
If the gear sleeve 70 is rotated by the manually operable bezel 48, the side surface of recess (channel) 106 of gear sleeve 70 strikes the ball bearing 72 below the ball centerline, thus forcing ball bearing 72 further upwardly into recess (channel) 100 of torque blade driver 82 as shown in
In
In operation, the user will enter a valid access code on the keypad of segmented touch pad 50 of code input mechanism 42 associated with the exterior manually operable bezel 48, which in turn will actuate motor 56 to position shifter 62 to the unlocked position to attain the unlocked condition, thus permitting the operation, e.g., unlocking, of deadbolt mechanism 18 by retraction of retractable deadbolt 28. When the valid access code is entered, the user has a predetermined period of time, e.g., 5 to 10 seconds, in which to rotate the exterior manually operable bezel 48 to retract (unlock) the retractable deadbolt 28 of deadbolt mechanism 18. After the period of time, motor 56 is driven to return shifter 62 back to the locked position to attain the locked condition.
In the present embodiment, as in previous embodiments, motor 56 does not drive or in any way move the retractable deadbolt 28 of deadbolt mechanism 18. In the present embodiment, motor 56 is used to aid in coupling manually operable bezel 48 to torque blade driver 82 via the shifter 62/ball bearing 72/gear sleeve 70 arrangement. Gravity provides biasing of ball bearing 72 towards rotational axis 96. Exterior actuator assembly 22-1 is configured such that rotational axis 96 is common to, for example, motor 56, drive spring 58, gear sleeve 70, gear driver 78, torque blade driver 82 and torque blade 24.
Exterior actuator assembly 300 is configured to selectively operate deadbolt mechanism 18 from the exterior space 14 (see
Exterior actuator assembly 300 includes many components common to that of exterior actuator assemblies 22 and 200, and thus unless stated otherwise, the components and function of the components of exterior actuator assembly 300 having the same element numerals as that of exterior actuator assemblies 22 and/or 200 will be presumed to be the same as that described above unless stated otherwise below, and thus for brevity such description will not be repeated in its entirety here.
Exterior actuator assembly 300 includes a chassis body 302, manually operable bezel assembly 204, and code input mechanism 206. Chassis body 302 is a non-rotatable chassis that is used to mount exterior actuator assembly 300 to the exterior of door 12. Manually operable bezel assembly 204 includes manually operable bezel 208 that is rotatably coupled to chassis body 302 and is configured to selectively operate deadbolt mechanism 18. Chassis body 302 includes opening 94 defining rotational axis 96.
Code input mechanism 206, which may include segmented touch pad 210, is coupled to chassis body 302, and is configured to receive an input code from a user. For example, segmented touch pad 210 has six input pad segments which correspond to the six input buttons 90 arranged in a circular pattern on button cover 52 (see
Exterior actuator assembly 300 includes an electro-mechanical coupling mechanism 312 mounted to chassis body 302, and is configured to selectively couple the manually operable bezel 208 to torque blade 24. Electro-mechanical coupling mechanism 312 is communicatively coupled to control circuit 44 and is mechanically connected to the second end 34 of torque blade 24.
The electro-mechanical coupling mechanism 312 of exterior actuator assembly 22 is configured such that in the locked condition the manually operable bezel 208 is drivably decoupled from torque blade 24, in which the manually operable bezel 208 is free-spinning when rotated so as to be rendered incapable of rotating torque blade 24 to operate deadbolt mechanism 18.
Also, electro-mechanical coupling mechanism 312 is configured to drivably couple the manually operable bezel 208 to torque blade 24 when a valid code is input to code input mechanism 206 to facilitate the unlocked condition, such that a rotation of the manually operable bezel 208 effects a rotation of torque blade 24 to operate deadbolt mechanism 18 to selectively extend or retract the retractable deadbolt 28 (see
Electro-mechanical coupling mechanism 312 includes gear sleeve 70, a single coupling member, e.g., a ball bearing, 72, a coupling member biasing assembly 314, intermediate gear 214, torque blade driver 82, and an actuator mechanism 316. Coupling member biasing assembly 314 may be formed as a spring loaded pin positioned in an aperture in chassis body 302 located vertically above coupling member, e.g., a ball bearing, 72.
Actuator mechanism 316 includes motor 56, a shifter 318, a biasing spring 320, and a rotational-to-linear translator mechanism that in the present embodiment is formed by threaded drive 220 (in the form of a worm gear or screw) and an internal axial threaded bore 322 of shifter 318, and an annular locking wedge 324. Threaded drive 220 is mounted to the rotatable shaft of motor 56 for rotation with the rotatable shaft. The external threads of threaded drive 220 threadably engage axial threaded bore 322 of shifter 318 to provide a linear translation of shifter 318. Locking wedge 324 is positioned at least in part in internal cavity 104 of gear sleeve 70. Biasing spring 320 is configured to continually bias annular locking wedge 324 toward shifter 318 along rotational axis 96.
Torque blade driver 82 is configured with a driver body 82-1, driver end 82-2, and recess 100 (see
Gear sleeve 70 is configured to be rotatable around rotational axis 96, and is configured as described above with respect to the previous embodiment, and includes circumferential gear 102 having external gear teeth extending outwardly, and recess 106 (see
Actuator mechanism 316 is configured to selectively position the coupling member, e.g., ball bearing, 72 relative to recess 100 of torque blade driver 82 and recess 106 of gear sleeve 70 to select one of the locked condition and the unlocked condition. Thus, the positioning of ball bearing 72 is achieved by actuator mechanism 316, which in the present embodiment is dependent on the axial position of shifter 318 and annular locking wedge 324.
Annular locking wedge 324 has a distal portion 324-1 having a first diameter and a proximal portion 324-2 having a second diameter less than the first diameter. A proximally-facing wedge surface, such as an annular bevel 324-3 of annular locking wedge 324, transitions between distal portion 324-1 and proximal portion 324-2.
Rotation of threaded drive 220 by motor 56 in a first rotational direction results in an axial displacement of shifter 318 in a first longitudinal direction along axis 96, and rotation of threaded drive 220 in a second rotational direction opposite the first rotational direction results in an axial displacement of shifter 318 in a second longitudinal direction along rotational axis 96 opposite the first longitudinal direction. Due to the biasing effect provided by biasing spring 320, which is located between the distal end of annular locking wedge 324 and the second end 34 of torque blade 24, annular locking wedge 324 will tend to follow the longitudinal movement of shifter 318 unless longitudinal travel of annular locking wedge 324 toward shifter 318 is obstructed by the vertical position of coupling member, e.g., ball bearing, 72 (see
In the present embodiment, the manually operable bezel 208, segmented touch pad 210, button cover 52, printed circuit board 54 and gear driver 78 form a freely rotatable bezel unit, the manually operable bezel assembly 204, which is rotatable relative to chassis body 302. Gear driver 78 has internal teeth which engage intermediate gear 214 and thus is rotatably coupled to circumferential gear 102 of gear sleeve 70.
Intermediate gear 214 in combination with the gearing of gear driver 78 and the gearing of gear sleeve 70 form a gear train wherein the manually operable bezel 208 is always rotationally coupled to gear sleeve 70. Intermediate gear 214 is rotatably mounted by gear axle screw 86. Accordingly, in the assembly described above, a rotation of manually operable bezel 208 results in a rotation of gear sleeve 70.
Thus, in the present embodiment, the manually operable bezel 208 is always drivably engaged with gear sleeve 70 via the rotatable gear driver 78 and intermediate gear 214. However, gear sleeve 70 is selectively engageable with torque blade driver 82 via the coupling member, e.g., ball bearing, 72.
Shifter 318 is drivably engaged by threaded drive 220, with threaded drive 220 being driven by motor 56, thus shifter 318 is configured for linear movement along rotational axis 96 to facilitate movement of annular locking wedge 324 to define a locked position as depicted in
In
To effect an unlocked condition of exterior actuator assembly 300, the user will enter a code on the segmented touch pad 210 of code input mechanism 206 associated with manually operable bezel assembly 204, which in turn will actuate motor 56 to retract shifter 318, which in turn annular locking wedge 324 to be pushed (to the left in the orientation as shown) by biasing spring 320 (see
When the valid access code is entered, the user has a predetermined period of time, e.g., 5 to 10 seconds, in which to rotate the exterior manually operable bezel 208 to retract (unlock) retractable deadbolt 28 of deadbolt mechanism 18. After the period of time, motor 56 is driven to return shifter 218 back to the locked position to attain the locked condition.
In the present embodiment, as in the previous embodiments, motor 56 does not drive or in any way move the retractable deadbolt 28 of deadbolt mechanism 18. In the present embodiment, motor 56 is used to aid in coupling the manually operable bezel 208 to torque blade driver 82 via the shifter 318/annular locking wedge 324/ball bearing 72/gear sleeve 70 arrangement. Coupling member biasing assembly 314 provides biasing of ball bearing 72 towards rotational axis 96. Exterior actuator assembly 300 is configured such that rotational axis 96 is common to, for example, motor 56, gear sleeve 70, gear driver 78, threaded drive 220, torque blade driver 82 and torque blade 24.
Referring now to
Interior actuator assembly 120 includes base 122 to which is attached a battery holder 130 and cover 124. Cover 124 has an opening 132 for mounting interior turn piece 128 via a ring retainer 134. Interior torque blade driver 126 is drivably attached to interior turn piece 128. Interior torque blade driver 126 has a shaped opening 126-1 for drivably receiving the first end 32 of torque blade 24 (see
Battery holder 130 mounts an interior chassis 136, which may be in the form of a printed circuit board 136. Battery holder 130 is configured to accommodate two AAA batteries 138 which provide electrical power to all electrical components of both interior actuator assembly 120 and the respective exterior actuator assembly 22, 22-1, 200 and 300. Battery holder 130 is snapped into position on interior base 122. Interior chassis 136 includes a switch 140 having a protruding actuator 142, a wiring connector 144, and a programming button 146. Actuator 142 of switch 140 is positioned to be selectively actuated by a camming action caused by a rotation of interior torque blade driver 126. Interior base 122 has a wiring channel 148 for receiving a wiring harness from an exterior actuator assembly, e.g., one of the exterior actuator assemblies 22, 22-1, 200 and 300 described above, which in turn is electrically coupled to wiring connector 144. Interior base 122 has a single post 150 for mounting cover 124 via a screw.
In
Programming button 146 of interior actuator assembly 120 is provided to allow the programming of the memory of printed circuit board 54 of control circuit 44 of the exterior actuator assembly with a plurality of unique user access codes. During operation, a valid access code is entered on the segmented touch pad 50, 210 associated with the exterior manually operable bezel 48, 208 to permit the unlocking of deadbolt mechanism 18. When the access code is entered, the user has a predetermined period of time, e.g., 5 to 10 seconds, in which to rotate the exterior manually operable bezel 48, 208 to unlock deadbolt mechanism 18. After the period of time, the motor/shifter is returned back to the locked condition.
While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.
This patent application is a U.S. Nationalization of international patent application no. PCT/US2012/043102, filed Jun. 19, 2012, which claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 61/498,893, filed Jun. 20, 2011. The disclosures set forth in the referenced applications are incorporated herein by reference in their entireties
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2012/043102 | 6/19/2012 | WO | 00 | 12/29/2013 |
Publishing Document | Publishing Date | Country | Kind |
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WO2012/177609 | 12/27/2012 | WO | A |
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Number | Date | Country | |
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20140109633 A1 | Apr 2014 | US |
Number | Date | Country | |
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61498893 | Jun 2011 | US |