The present invention is related to mortise locks, and in particular to a hub core for a deadbolt mechanism with the ability to change between standard and classroom functions based on assembly orientation.
Conventional mortise locks employ both a latchbolt and a deadbolt. Both can be configured for different functions. A deadbolt operates by rotation of a deadbolt arm which mates securely around a hub core, which hub core is typically rotatable by a thumbturn or throw lever on the inside of the door, and a lock cylinder on the outside of the door. A “standard” function of a deadbolt is to permit the deadbolt to be operated in both directions, i.e., projected or extended to lock and retracted to unlock, by rotation of either the thumbturn inside the door or the lock cylinder (via a key) outside the door. Rotation of the thumbturn or key in one direction rotates the hub core and deadbolt arm and will cause the deadbolt to retract. Rotation of the thumbturn or key in the opposite direction rotates the hub core and deadbolt arm and will cause the deadbolt to project.
In a “classroom” function, a key in the lock cylinder outside the door will operate both to project and retract the deadbolt. However, using the thumbturn will only cause the deadbolt arm to retract, while rotation in the opposite direction will not permit the deadbolt to project.
Currently the only way to switch between standard and classroom functions is to swap between two completely different hub cores that mate in different configurations with the deadbolt arm.
Bearing in mind the problems and deficiencies of the prior art, it is therefore an object of the present invention to provide an improved hub core for a mortise lock.
It is another object of the present invention to provide a single hub core that may be used to set deadbolt operation in a mortise lock for both standard and classroom operation functions.
A further object of the invention is to provide a deadbolt arm hub core that may be alternately switched between two different orientations during assembly of the mortise lock to provide either a standard or a classroom function for operation of the deadbolt.
Still other objects and advantages of the invention will in part be obvious and will in part be apparent from the specification.
The above and other objects, which will be apparent to those skilled in the art, are achieved in the present invention which is directed to a mortise lock for locking and unlocking a door. The mortise lock comprises a mortise lock body, a deadbolt arm, and a hub core. The mortise lock body has a deadbolt operable by a first control member on the outside of the door and a second control member on the inside of the door. The deadbolt is selectably moveable between a projected position to lock the door and a retracted position to unlock the door. The deadbolt arm in the mortise lock body is rotatable to move the deadbolt between the projected and retracted positions. The hub core is disposed in the deadbolt arm and is operable by the second control member, the hub core being positionable in the deadbolt arm in two different positions. In a first position, the hub core is operable by the second control member to move the deadbolt between the projected and retracted positions. In a second position, the hub core is operable by the second control member to move the deadbolt from the projected position to the retracted position, the hub core not being operable by the second control member to move the deadbolt from the retracted position to the projected position.
In an embodiment, the mortise lock first control member may be operable to move the deadbolt between the projected and retracted positions while in either of the first or second positions. The hub core may have a plurality of projections with arc lengths that fit into a plurality of slots with arc lengths in an opening in the deadbolt arm, wherein in the first position the hub core causes movement of the deadbolt in a standard function and in the second position the hub core causes movement of the deadbolt in a classroom function. The arc lengths of the hub core projections and deadbolt arm slots may be configured to permit the deadbolt arm to rotate and move the deadbolt in both the standard and classroom functions. The arc lengths of the hub core projections and deadbolt arm slots may also allow for a loss motion connection between the hub core and deadbolt arm slots when the hub core is in the second position. The hub core may also have a pair of projections with arc lengths that fit into a pair of slots with arc lengths in an opening in the deadbolt arm, wherein one hub core projection may fit rotationally tightly into one slot in the deadbolt arm opening when the hub core is in the first position in the deadbolt arm, and wherein both hub core projections fit rotationally loosely into both slots in the deadbolt arm opening when the hub core is in the second position in the deadbolt arm. The hub core may also have a first projection having an arc length of about 90° and a second projection having an arc length of about 45°, the deadbolt arm having an opening with a first slot having an arc length of about 90° and a second slot having an arc length of 135°, wherein in the first hub core position the first projection is disposed in the first slot and the second projection is disposed in the second slot, and in the second hub core position the first projection is disposed in the second slot and the second projection is disposed in the first slot. The hub core projections may have different thicknesses in an axial direction, with the thickness of the first projection being less than the thickness of the second projection.
The present invention further provides a method of assembling a mortise lock for locking and unlocking a door. The method provides a mortise lock body, a deadbolt arm, and a hub core. The mortise lock body has a deadbolt operable by a first control member on the outside of the door and a second control member on the inside of the door. The deadbolt is selectably moveable between a projected position to lock the door and a retracted position to unlock the door. The deadbolt arm in the mortise lock body is rotatable to move the deadbolt between the projected and retracted positions. The hub core is operable by the second control member, the hub core being positionable in the deadbolt arm in two different positions. In a first position, the hub core is operable by the second control member to move the deadbolt between the projected and retracted positions. In a second position, the hub core is operable by the second control member to move the deadbolt from the projected position to the retracted position, the hub core not being operable by the second control member to move the deadbolt from the retracted position to the projected position.
In an embodiment of the method, the first control member is operable to move the deadbolt between the projected and retracted positions while in either of the first or second positions. The hub core may have a plurality of projections with arc lengths that fit into a plurality of slots with arc lengths in an opening in the deadbolt arm, wherein in the first position the hub core causes movement of the deadbolt in a standard function and in the second position the hub core causes movement of the deadbolt in a classroom function. The arc lengths of the hub core projections and deadbolt arm slots may be configured to permit the deadbolt arm to rotate and move the deadbolt in both the standard and classroom functions. The arc lengths of the hub core projections and deadbolt arm slots may also allow for a loss motion connection between the hub core and deadbolt arm slots when the hub core is in the second position. The hub core may also have a pair of projections with arc lengths that fit into a pair of slots with arc lengths in an opening in the deadbolt arm, wherein one hub core projection may fit rotationally tightly into one slot in the deadbolt arm opening when the hub core is in the first position in the deadbolt arm, and wherein both hub core projections fit rotationally loosely into both slots in the deadbolt arm opening when the hub core is in the second position in the deadbolt arm. The hub core may also have a first projection having an arc length of about 90° and a second projection having an arc length of about 45°, the deadbolt arm having an opening with a first slot having an arc length of about 90° and a second slot having an arc length of 135°, wherein in the first hub core position the first projection is disposed in the first slot and the second projection is disposed in the second slot, and in the second hub core position the first projection is disposed in the second slot and the second projection is disposed in the first slot. The hub core projections may have different thicknesses in an axial direction, with the thickness of the first projection being less than the thickness of the second projection.
The present invention may still further provide a method of changing function of operation of a deadbolt in a mortise lock. The method provides a mortise lock body having a deadbolt operable by a first control member on the outside of the door and a second control member on the inside of the door. The deadbolt is selectably moveable between a projected position to lock the door and a retracted position to unlock the door. the mortise lock has a deadbolt arm rotatable to move the deadbolt between the projected and retracted positions, and a hub core disposed in the deadbolt arm that is operable by the second control member. The hub core is positionable in the deadbolt arm in one of a first or second position. In a first position, the hub core is operable by the second control member to move the deadbolt between the projected and retracted positions. In a second position, the hub core is operable by the second control member to move the deadbolt from the projected position to the retracted position, the hub core not being operable by the second control member to move the deadbolt from the retracted position to the projected position. The method includes removing the hub core from the deadbolt arm, then reinserting the hub core into the deadbolt arm in the other of the first and second position to change operation of the hub core by the second control member.
In an embodiment, the method further includes the mortise lock body comprising sidewalls, and removing one sidewall from the mortise lock body prior to removing the hub core from the deadbolt arm. The method may also include the hub core and deadbolt arm being rotatable about an axis, and rotating the hub core after removing the hub core from the deadbolt arm prior to reinserting the hub core into the deadbolt arm. More specifically, the hub core may be rotated 180° after removal from the deadbolt arm and prior to reinsertion into the deadbolt arm.
The features of the invention believed to be novel and the elements characteristic of the invention are set forth with particularity in the appended claims. The figures are for illustration purposes only and are not drawn to scale. The invention itself, however, both as to organization and method of operation, may best be understood by reference to the detailed description which follows taken in conjunction with the accompanying drawings in which:
In describing the embodiment(s) of the present invention, reference will be made herein to
In
The lock cylinder 13 extends through an opening in the door and lock cylinder opening 11 in mortise lock sidewall 16a. The lock cylinder 13 acts as a control member to operate deadbolt 26 in the manner of the prior art. Rotation of key 17 turns the cylinder plug in lock cylinder 13 which operates a tail cam or arm 15 that engages fingers of a deadbolt arm within the mortise lock 10. Rotation of the key 17 in one direction causes the deadbolt 76 to be extended and locks the mortise lock 10. Rotation in the opposite direction retracts deadbolt 26 and unlocks the mortise lock mechanism.
On the inside of the door, thumbturn throw lever 88 operates as a control member to rotate and turn thumbturn blade shaft 64 which extends into a slot 34 in a hub core 36 controlling rotation and operation of the deadbolt arm. When the deadbolt thumbturn on the inside is turned in one direction, it retracts deadbolt 26. When turned in the opposite direction, the thumbturn 88 may or may not extend the deadbolt 26, depending on whether the lock is set to the standard or classroom function.
Referring to
Deadbolt arm 30 pivots around hub core 36, whose opposite ends extend through and are rotatably captured in circular openings in opposing sidewalls 16a and 16b. Deadbolt arm 30 comprises elongate portion 38 and hub portion 39, from which extends a finger 46. Elongated portion 38 has a tab 40 attached at the distal end thereof and is slideable within slot 52 of deadbolt bracket 28. Slot 52 has an angle approximately midway between vertical and horizontal, so that when tab 40 is moved up and down by rotation of elongated portion 38, it bears upon the walls of slot 52 to move deadbolt bracket 28 and consequently deadbolt 26 inward into lock 10 in a retracted position, to unlock the deadbolt, and outward from the lock 10 to a projected or extended position, to lock the deadbolt.
Referring to
Identification of the remaining features in
The deadbolt arm 30 and switchable hub core 36 of the present invention are shown in more detail in
Hub core 36 has a generally cylindrical body with a central slot 34, and is disposed in and extends through central opening 41 in hub portion 39 of deadbolt arm 30. In the embodiment shown, the thickness of hub core 36 in the axial direction is greater than that of deadbolt arm hub portion 39 (
Hub core 36 employs a selective “keying” feature within deadbolt arm opening 41 to determine function of operation of the deadbolt 26. Hub core 36 has a pair of arcuate segments or projections 35a, 35b extending radially outward around its periphery, the segments or projections 35a, 35b which extend into arcuate indentations or slots 47a, 47b formed in the inner wall of deadbolt arm hub portion 39. As shown in
Hub core projections 35a, 35b may also differ in their thickness and location on the hub core 36, in an axial direction along the thickness of the hub core 36. As shown in
The arc lengths and thicknesses of the hub core projections in the deadbolt arm slots are configured to permit the deadbolt arm to rotate in a manner of the standard function when the hub core is disposed in the deadbolt arm in one position, and to permit the deadbolt arm to rotate in a manner of the classroom function when the hub core is disposed in the deadbolt arm in another position.
In the example shown in
To provide the classroom function of operation of the deadbolt, hub core 36 is placed in a second position in the opposite manner of
As shown in
The hub core and deadbolt arm of the present invention are shown in connection with an auxiliary mortise lock 110 in
The operation of the hub core 36 within the opening of the deadbolt arm 30 for the standard function of operation of the deadbolt 26 is shown in
The operation of the hub core 36 within the opening of the deadbolt arm 30 for the classroom function of operation of the deadbolt is shown in
To change the lock from one function to the other, hub core 36 is removed from deadbolt arm 30 by withdrawing it in the direction of axis 50, rotating it 180° about the axis 50, and then reinserting the hub core into the deadbolt arm opening 41. Consequently, during assembly the huh core of the present invention can be oriented in one position before insertion in the deadbolt arm opening to operate as a standard function, or rotated or flipped to the opposite position and inserted to operate as a classroom function. Alternatively, after assembly, mortise lock sidewall 16a or 16b can be removed, and the hub core 36 which has been positioned to operate as one function can be removed and then rotated or flipped, and then reinserted to operate as the other function. These different configurations use the aforedescribed keying feature in the mating parts which changes the function depending on the orientation.
One advantage of the present invention is that both functions can be created by use of a single hub core piece, rather than having a separate standard function hub core and a classroom function hub core, as in the prior art. The ability to switch between functions can easily be completed during assembly, while the side of the lock is open. If the function is needed to be switched at a later time, the lock can be opened, and the hub core flipped 180°. One needs to create and stock only one hub core component, rather than two individual pieces. There is also the ability to easily switch between functions if necessary during assembly.
While the present invention has been particularly described, in conjunction with a specific preferred embodiment, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art in light of the foregoing description. It is therefore contemplated that the appended claims will embrace any such alternatives, modifications and variations as falling within the true scope and spirit of the present invention.
Number | Date | Country | |
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62411098 | Oct 2016 | US |
Number | Date | Country | |
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Parent | 15787872 | Oct 2017 | US |
Child | 17488037 | US |