Retractable latch bolt assemblies for upgrading locks
09822556 · 2017-11-21
Assignee
Inventors
Cpc classification
E05C2005/005
FIXED CONSTRUCTIONS
E05C5/00
FIXED CONSTRUCTIONS
International classification
E05C5/00
FIXED CONSTRUCTIONS
E05B55/00
FIXED CONSTRUCTIONS
Abstract
Spring-projected latch bolt assemblies each having a retractable latch bolt component are used to upgrade commercially available lock operating mechanisms so that closures carrying the upgraded lock operating mechanisms can lock automatically when the closures reach their fully closed positions. To permit unobstructed closing of each closure, a normally extended component of each associated spring-projected latch bolt assembly retracts during a final segment of the closing of an associated closure, and snaps back to its fully extended position as the associated closure comes to rest in its fully closed position.
Claims
1. An enhanced cam lock assembly, comprising: a) a tubular housing supporting a cam lock operating mechanism capable of turning, about a rearwardly extending central axis to and between locked and unlocked orientations, a rearwardly extending formation suited to drivingly connect with and turn a cam about the central axis; and b) a spring-projected retractable latch bolt assembly suited to connect to and to be turned by the cam lock operating mechanism about the central axis in place of the cam, the latch bolt assembly comprising: i) an elongate latch bolt component having first and second end regions that have the central axis located therebetween, with the first end region defining a slanted exterior surface that faces generally away from the central axis and away from the tubular housing for engaging a stationary component of an associated enclosure that movably supports a closure that carries the tubular housing, with the latch bolt component also having a pair of opposed, elongate sidewalls extending parallel to each other and integrally connecting the first and second end regions, with the elongate sidewalls and the end regions cooperating to define the perimeter of an elongate open interior of the elongate latch bolt component that opens toward the tubular housing; ii) a base component configured to extend into the open interior of the latch bolt component and to provide opposed side surfaces that slidably engage interior surfaces of the opposed sidewalls, and defining a matable formation configured to drivingly engage the rearwardly extending formation in place of the cam, so that when the rearwardly extending formation is turned about the central axis to and between the locked and unlocked orientations, the base component and the latch bolt component turn concurrently therewith, with the latch bolt component being movable along a linear travel path relative to the base component that parallels the opposed sidewalls of the latch bolt component; iii) a spindle component configured to cooperate with the base component in engaging the interior surfaces of the opposed sidewalls of the latch bolt component to confine the latch bolt component to a sliding movement along the linear travel path, which extends in a direction transverse to the central axis as determined by the turning of the rearwardly extending formation by the cam lock operating mechanism; and iv) a spring component interposed between the latch bolt component and the base component that biases the latch bolt component away from the central axis so the spring component will oppose any retraction of the latch bolt component toward the central axis such as may occur during closing movement of the closure on which the tubular housing is mounted when the linear travel path has been turned to the locked orientation, and when the slanted surface is pressed toward the central axis by being engaged by the stationary component of the associated enclosure during a closing movement of the closure on which the tubular housing is mounted—with the pressing of the slanted surface by the stationary component being relieved so the spring component can snap the latch bolt component to a position relative to the stationary component that locks the closure in a fully closed position promptly upon reaching the fully closed position.
2. The enhanced cam lock assembly of claim 1 wherein the operating mechanism defines a forwardly opening keyway into which a correctly configured operating key can be inserted, and that enables the inserted key to be turned about the central axis to cause the rearwardly extending formation to be turned correspondingly about the central axis between the locked and unlocked orientations.
3. The enhanced cam lock assembly of claim 1 wherein the rearwardly extending formation comprises a generally rectangular projection for being received in a matable formation of the base component which defines a substantially rectangular recess configured to snugly receive the generally rectangular projection to establish a driving connection between the rearwardly extending formation and the matable formation.
4. The enhanced cam lock assembly of claim 1 wherein the latch bolt component includes a transversely extending wall that overlies the open interior of the latch bolt component and has an elongate slot formed therethrough that has parallel-extending sides that substantially parallel the linear travel path of relative movement of the latch bolt component and the base component, with the spindle component having a portion extending through the elongate slot, that drivingly connects to the base component so the base component and the spindle component move together along the linear travel path when relative movement takes place between the latch bolt component and the base component, and that slidably engages the parallel-extending sides of the elongate slot to assist the base component in confining relative movement of the base component and the latch bolt component to the linear travel path.
5. The enhanced cam lock assembly of claim 4 wherein: a) the transversely extending wall is of substantially uniform thickness at least in regions located near the slot and extending along one and the other sides of the elongate slot for at least a majority of the length of the slot; b) the base component has surface portions that slidably engage said regions extending along one side of the transversely extending wall; and c) the spindle component has surface portions that slidably engage said regions extending along the other side of the transversely extending wall.
6. The enhanced cam lock assembly of claim 1 wherein the rearwardly extending formation carries a threaded opening that extends along the central axis, and the enhanced cam lock assembly further comprises a threaded fastener that extends through aligned passages formed through the spindle and base components, and into the threaded opening to enhance security of the driving connection of the spindle and base components to the rearwardly extending formation.
7. The enhanced cam lock assembly of claim 1 additionally including a spring positioning component that engages an end region of the spring component to support the spring component inside the open interior of the latch bolt component.
8. The enhanced cam lock assembly of claim 1 wherein the base component includes a generally cylindrical projection sized and configured to extend inside an end region of the spring component.
9. The enhanced cam lock assembly of claim 8 wherein the spring component includes two compression coil springs interposed between the latch bolt component and the base component that biases the latch bolt component away from the central axis, and the base component includes two spaced formations, each of which formations extend inside an end region of a different one of the compression coil springs.
10. The enhanced cam lock assembly of claim 9 additionally including a spring positioning component that defines two spaced trough formations that support and position opposite end regions of the two compression coil springs to engage wall formations of the latch bolt component.
11. The enhanced cam lock assembly of claim 1 wherein the latch bolt component defines an engagement surface that faces toward the tubular housing and is configured to engage the stationary component in a manner that is consistent with how the cam would function to retain the closure in the fully closed position when turned by the rearwardly extending formation to the locked orientation.
12. A slam capable spring-projected latch assembly drivingly connectible to a matable drive formation of a housing-supported lock operating mechanism that extends rearwardly along a central axis about which the operating mechanism can pivot the slam-capable latch assembly to and between angularly spaced locked and unlocked orientations, comprising: a) an elongate latch bolt component having first and second end regions spaced in opposite directions from the central axis, with the first end region defining a slanted exterior surface facing away from the central axis, with a pair of opposed elongate sidewalls having elongate interior surfaces located on opposite sides of the central axis that extend between and integrally connect with interior formations of the first and second end regions, and cooperating with the interior formations to define a perimeter of an elongate open interior of the elongate latch bolt component; b) a base component configured to drivingly connect the base component to the rearwardly facing matable formation of the operating mechanism to thereby ensure that the base component pivots about the central axis concurrently with the rearwardly facing matable formation, with the base component having opposed side surfaces located on opposite sides of the central axis when the base component is drivingly connected to the rearwardly facing matable formation, and with the opposed side surfaces slidably engaging the elongate interior surfaces of the elongate latch bolt component; c) a spindle component configured to cooperate with the base component in engaging the elongate interior surfaces to confine relative movement of the base and latch bolt components to a sliding movement along a linear travel path that extends in a direction that is transverse to the central axis, wherein: i) the base component cooperates with the rearwardly extending formation to turn the direction of the linear travel path about the central axis to and between a locked orientation and an unlocked orientation; ii) the latch bolt component is biased to project the slanted face along the linear travel path away from the central axis and into engagement with a stationary component of an associated enclosure; and iii) the base component cooperates with the interior formation of the second end region to limit movement of the latch bolt component along the linear travel path away from the central axis.
13. A kit of components assemblable to form a spring-projected, retractable and extensible latch bolt assembly that can be attached to a rearwardly facing formation of a cam lock operating mechanism in place of a usual cam that defines a forwardly-facing engagement surface that can, when attached to the rearwardly facing formation selectively extend behind, and can withdraw from extending behind, a stationary component of an associated enclosure to lock and unlock a closure that is supported by the associated enclosure for movement to and between closed and open positions, and that, while in the closed position, can be selectively locked and unlocked by turning the rearwardly facing formation to and between locked and an unlocked orientations, with the kit comprising: a) an elongate latch bolt component having first and second end regions that have a central axis located therebetween, with the first end region defining a slanted exterior surface that faces generally away from the central axis and away from a tubular housing for engaging a stationary component of an associated enclosure that movably supports a closure that carries the tubular housing, with the latch bolt component also having a pair of opposed, elongate sidewalls extending parallel to each other and integrally connecting the first and second end regions, with the elongate sidewalls and the end regions cooperating to define an engagement surface facing toward the tubular housing, and defining the perimeter of an elongate open interior of the elongate latch bolt component that opens toward the tubular housing; b) a base component configured to extend into the open interior of the latch bolt component and to provide opposed side surfaces that slidably engage interior surfaces of the opposed sidewalls, and defining a matable formation configured to drivingly engage the rearwardly facing formation in place of a cam, so that when the rearwardly facing formation is turned about the central axis to and between the locked and unlocked orientations, the base component and the latch bolt component turn concurrently therewith, with the latch bolt component being movable along a linear travel path relative to the base component that parallels the opposed side walls of the latch bolt component; c) a spindle component configured to cooperate with the base component in engaging interior surface portions of the opposed sidewalls of the latch bolt component to confine the latch bolt component to a sliding movement along the linear travel path extending in a direction transverse to the central axis as determined by the walls of the rearwardly facing formation by the cam lock operating mechanism; and, d) a spring component interposed between the latch bolt component and the base component that biases the latch bolt component away from the central axis so the spring component will oppose any retraction of the latch bolt component toward the central axis such as may occur during closing movement of a closure on which the tubular housing is mounted when the linear travel path has been turned to the locked orientation, and when the slanted surface is pressed toward the central axis by being engaged by the stationary component of the associated enclosure during a closing movement of the closure on which the tubular housing is mounted—with the pressing of the slanted surface by the stationary component being relieved when the closure reaches the fully closed position so the spring component can snap the latch bolt component to a position in relation to the stationary component that locks the closure in a fully closed position promptly upon the closure reaching the fully closed position.
14. The kit of components of claim 13 wherein the latch bolt component includes a transversely extending wall that overlies the open interior of the latch bolt component and has an elongate slot formed therethrough that has parallel-extending sides that substantially parallel the linear travel path of relative movement of the latch bolt component and the base component, with the spindle component having a portion extending through the elongate slot, that drivingly connects to the base component so the base component and the spindle component move together along the linear travel path when relative movement takes place between the latch bolt component and the base component, and that slidably engages the parallel-extending sides of the elongate slot to assist the base component in confining relative movement of the base component and the latch bolt component to the linear travel path.
15. The kit of components of claim 14 wherein: a) the transversely extending wall is of substantially uniform thickness at least in regions located near the slot and extending along one and the other sides of the elongate slot for at least a majority of the length of the slot; b) the base component has surface portions that slidably engage said regions extending along one side of the transversely extending wall; and, c) the spindle component has surface portions that slidably engage said regions extending along the other side of the transversely extending wall.
16. The kit of components of claim 13 wherein the rearwardly extending formation carries a threaded opening that extends along the central axis, and the cam lock operating mechanism further comprises a threaded fastener that extends through aligned passages formed through the spindle and base components, and into the threaded opening to enhance security of the driving connection of the spindle and base components to the rearwardly extending formation.
17. The kit of components of claim 13 additionally including a spring positioning component that engages an end region of the spring component to support the spring component inside the open interior of the latch bolt component.
18. The kit of components of claim 13 wherein the base component includes a generally cylindrical projection sized and configured to extend inside an end region of the spring component.
19. The kit of components of claim 13 wherein the latch bolt component defines an engagement surface that faces toward the tubular housing and is configured to engage the stationary component in a manner that is consistent with how the cam would function to retain the closure in the fully closed position when turned to the locked orientation.
20. A kit of components attachable as a slam-capable, spring-projected, retractable and extensible latch bolt assembly to a rearwardly facing matable formation of an operating mechanism of a cam lock instead of an elongate cam, with the components comprising: a) an elongate latch bolt component having first and second end regions spaced in opposite directions from a central axis, with the first end region defining a slanted exterior surface facing away from the central axis, with a pair of opposed elongate sidewalls having elongate interior surfaces located on opposite sides of the central axis that extend between and integrally connect with interior formations of the first and second end regions, and cooperating with the interior formations to define a perimeter of an elongate open interior of the elongate latch bolt component; b) a base component configured to drivingly connect to the rearwardly facing matable formation of the operating mechanism to thereby ensure that the base component pivots about the central axis concurrently with the rearwardly facing matable formation, with the base component having opposed side surfaces located on opposite sides of the central axis when the base component is drivingly connected to the rearwardly facing matable formation, and with the opposed side surfaces slidably engaging the elongate interior surfaces of the elongate latch bolt component; c) a spindle component configured to cooperate with the base component in engaging the elongate interior surfaces to confine relative movement of the base and latch bolt components to a sliding movement along a linear travel path that extends in a direction that is transverse to the central axis, wherein: i) the base component cooperates with the rearwardly facing matable formation to turn the direction of the linear travel path about the central axis to and between a locked orientation and an unlocked orientation; ii) the latch bolt component is biased to project the slanted exterior surface along the linear travel path away from the central axis and into engagement with a stationary component of an associated enclosure; and iii) the base component cooperates with the interior formation of the second end region to limit movement of the latch bolt component along the linear travel path away from the central axis.
Description
DESCRIPTION OF THE DRAWINGS
(1) These and other features, and a fuller understanding of the invention may be had by referring to the following description and claims, taken in conjunction with the accompanying drawings, wherein:
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DETAILED DESCRIPTION
(23) As has been explained, one aspect of the present invention resides in providing a method of, and a means for, upgrading the lock operating mechanisms of several types of locks—to give closures (on which the upgraded lock operating mechanisms are mounted) a new capability to lock automatically in response to the arrival of these closures in their fully closed positions.
(24) As also has been explained, another feature of the present invention resides in the provision of spring-projected, retractable latch bolt assemblies for directly replacing the traditional rear-mounted elongate cams of cam locks—so that closures (which carry and rely on the enhanced cam lock operating mechanisms) are given the new ability to lock promptly when these closures reach their fully closed positions.
(25) Yet another previously mentioned feature of the present invention resides in the provision of spring-projected, retractable latch bolt assemblies formed from kits of component parts that (when assembled and connected to lock operating mechanisms of cam locks, and the like, that are mounted on closures which) each have a latch bolt component that retracts during a final segment of closing movements of the closures, and that then snap back to extended positions to lock the closures closed upon assuming fully closed positions.
(26) Overview of the Drawings
(27) In overview, the entire first sheet of the accompanying drawings presents seven views (namely
(28) The second and third sheets of the accompanying drawings presents seven additional views (namely
(29) The fourth sheet of the accompanying drawings presents
(30) The fifth sheet of the accompanying drawings presents
(31) Lastly, a sixth and a seventh sheet of the accompanying drawings present
(32) The Prior Art Depictions of
(33) The typical PRIOR ART cam lock 30 shown in
(34) All of the various tubular housings 32 that are shown in various views of the accompanying drawings have threaded exterior surface portions 31 that permit a hex nut 35 to be tightened along the exteriors of the tubular housings 32 to engage rear surfaces of the door-type closures 10 that carry the tubular housings 32. When the depicted hex nuts 35 are tightened against rear surfaces of the depicted door-type closures 10, this draws bezels (that have diameters slightly larger than the tubular housings 32) against a front surface of the door-type closures 10.
(35) In
(36) Referring once again to
(37) Left and right boundaries 28, 29 defined by the leftwardly extending and rightwardly extending cabinet portions 20 and 21, respectively, indicate the left and right portions of a cabinet opening that can be selectively closed and opened by pivoting the door-type closure 10 between the closed position shown in
(38) When the door-type closure 10 is fully closed (i.e., is in the closed position shown in
(39) When the door-type closure 10 is open (or opened), the edge region 11 is pivoted away from the L-shaped cabinet portion 20. If the door-type closure 10 is opened much farther than is shown in
(40) Depending on how vigorously the door-type closure 10 is moved toward the fully closed position of the door-type closure 10, the distal end region 51 of the elongate cam 50 may simply come into contact with the right angle corner region 22, or may strike or impact the corner region 22 quite forcefully. Especially if the cabinet portion 20 is made of wood (as is shown in
(41) Referring to
(42) A projection 49 that is integrally formed with other portions of the tubular housing 32 extends into close proximity with the reduced radius portion 47 of the circumference of the stop-defining member 41 so that, when the operating mechanism 33 (and the washer-like stop-defining member 41 that turn about the central axis 40 concurrently with the elongate cam 50 and the headed, threaded fastener 38) pivot about the central axis 40 relative to the tubular housing 32 (and the projection 49), the stop-defining member 41 and the projection 49 cooperate to limit the range of relative angular movement of the cam 50 relative to the tubular housing 32 to approximately a quarter turn about the central axis 40.
(43) Due to the stops 48 of the stop-defining member 41 that cooperate with the projection 49 of the tubular housing 32, the cam 50 has a limited range of angular movement about the central axis 40 when a correctly-configured operating key (such as the key 70 shown in
(44) Direct Replacement of the Elongate Cam 50
(45) When the components of the PRIOR ART cam lock 30 are positioned as shown in
(46) Later in this document, bottom surfaces 599 and 699 of spring positioning components 500, 600 are mentioned. When the components 500 or 600 are extended into the latch bolt component 200 as shown in
(47) In
(48) The reader will recall that, when working with the cam lock 30, the cam 50 had to be pivoted to the unlocked orientation shown in
(49) What
(50) To state the obvious one more time, replacing the cam 50 (which has a flat surface 99 that does all of the latching/locking work of the cam 50) with the retractable and extensible latch bolt assembly 150 does not, in any way, diminish the functionality that was provided by the cam 50. Replacing the cam 50 with the assembly 150 does not take away any of the functionality of the cam 50, but rather adds new functionality to the functionality provided by the cam 50—by permitting the closure 10 to fully close under circumstances that would have caused the cam 150 to create the IMPACT PROBLEM illustrated bu
(51) Accordingly, the reader will understand that this invention is almost entirely concerned with closing of the closure 10 in a new way that could not have been accomplished with use of the non-retractable cam 50.
(52) Inasmuch as the example shown in
(53) One small difference is that the threaded fastener 38 (which is a short machine screw, as this component is shown in
(54) In the description and the claims that follows, what is meant by the words “cam lock operating mechanism” is what is left of a conventional cam lock (such as the previously described cam lock 30, as well as in the patents referenced previously that disclose typical cam locks) at a time after a cam (such as the cam 50) is removed from a cam lock (such as the cam lock 30). Thus, because the cam lock 30 includes a “cam lock operating mechanism” to which is attached a cam 50, removing the cam 50 leaves what is meant by the expression “cam lock operating mechanism).
(55) As is shown in
(56) The best way to understand how the spring-projected retractable latch bolt assembly 150 can directly replace the traditional elongate cam 50 of the cam lock 30 is to compare what is shown in
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(59) Also, for purposes of comparison, the unlocked orientation of the elongate cam 50 is shown in
(60) The retractable latch bolt assembly 150 shown in
(61) Major Components of the Retractable Latch Bolt Assembly
(62) The spring-projected, retractable latch bolt assemblies 150 of the present invention are preferably formed from the four manufactured components 200, 300, 400, 500 that are shown in perspective in
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(64) The components 500, 600 can be held in place within the open front end region of the retractable latch bolt component 200 using the flat head screw 399 that is best shown in
(65) Depending on the length of the tubular barrel 32 of a lock mechanism 30 that is to be installed, and depending on the thicknesses of the door-type closure 10 and the cabinet component 20 of a particular installation, either the short or the long spring-positioning components 500 or 600 may be chosen for use with the other manufactured components 200, 300, 400. The relatively long spring positioning component 600 may be needed when a lock having a relatively long tubular barrel 32 is to be used—as is shown in
(66) In
(67) Referring variously to
(68) One of the prominent features of the component 200 to which the reader's attention is directed is the tapered, inclined or slanted front end surface indicated by the numeral 210. The other prominent and particularly important feature of the component 200 is its vastly open interior 215, which is best seen in
(69) The inclined front surface 210 is of particular importance because, when this inclined surface 210 is engaged by a stationary portion, region or component of a stationary cabinet or enclosure (portions of which are indicated by the numeral 20 in
(70) The importance of the latch bolt component's lengthy open interior 215 is also to be noted—for it not only permits the base component 300 to bring its top wall 310 up into supporting engagement with the bottom surface 271 of the latch bolt component 200, but also provides an open interior that extends for the majority of the length of the latch bolt component 200—which permits the base component 300 to reside underlie and support the bottom surface 271 of the transversely extending wall 270 when the latch bolt component 200 retracts as is shown in
(71) Several other formations of the latch bolt component 200 merit mention. The upstanding sidewalls 230, 240 have interior, parallel-extending surfaces 231, 241, respectively. Moreover, the sidewalls 230, 240 are connected by an integrally formed, transversely extending wall that has a top surface 270 and a bottom surface 271. An elongate slot 290 is formed centrally through the transversely extending wall which has the top and bottom surfaces 270, 271, respectively; and this same wall which has the top and bottom surfaces 270, 271 is set down a short distance from the topmost surface 250, and is positioned upwardly from the bottom most surface 260 of the component 200.
(72) Inside the downwardly-opening interior 215 of the latch bolt component 200 (and at a location behind the slanted surface 210 is a U-shaped formation that has a bottom wall 265, two short, spaced-apart legs 285 of the “U” and a central portion 287 that extends between the legs 285. When the short spring-positioning component 500 is installed inside the front end region of the open interior 215, the two spring-end-supporting troughs 579 support the end regions of the compression springs 379 that are not supported by the cylindrical projections 345. The fact that the two troughs 579 are not as long as a block of material 586 that extends between the two troughs 579 is best shown in
(73) One additional feature of the component 200 is the countersunk hole 299 that is provided quite near to the inclined front surface 210. As can be seen in
(74) The complex configuration of the manufactured base component 300 can be seen variously in
(75) Although
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(77) The longer and larger spring positioning component 600 is configured exactly as is the smaller spring positioning component 500—except that the larger and longer component 600 has a rather large foot 601 on it, for use, as is shown in
(78) The various features of the longer spring positioning component 600 do not require further explanation, for the reference numerals that indicate various features of the component 600 are the same numerals that have been used to designate features of the shorter component 500—except that the numerals used with the longer and larger component 600 have magnitudes that are increased by one hundred in comparison with the reference numerals used with the shorter componet 500.
(79) When what has been referred to as the small spring positioning component 500 is pressed upwardly into the front end region of the large, downwardly opening region 215 of the latch bolt component 200, portions of the bottom wall 260 of the latch bolt component 200 that extend around the front end region of the latch bolt component 200 cooperate with a bottom surface 599 of the smaller component 500 to provide an engagement surface for being pressed against cabinet or enclosure formations—such as the rearwardly turned short leg 24 shown in
(80) Having described many of the features of the manufactured components 200, 300, 400, 500 and 600—and having described the machine screw 38, the flat headed screw 399, and the springs 375, what now needs to be explained is how these various components fit together in an advantageous manner.
(81) Referring to the cross-sectional views provided by
(82) It is important that the retractable latch bolt assembly 150 be securely drivingly connected to the rearwardly extending mating formation 34 of the operating mechanism 33 of the cam lock 30—because, if the latch bolt assembly 150 is not securely drivingly connected to the rearwardly extending matable formation 34, the latch bolt assembly 150 will not be able to turn betweem the locked and unlocked orientations shown in
(83) As important as it is for the retractable latch bolt assembly 150 to be able to perform the locking and unlocking functions that were performed by the elongate cam 50 shown in
(84) Consequently, the reader will understand that the present invention is intended to be used with locks that have a capability to pivot the retractable latch bolt assembly from the locked position shown in
(85) Having said all of the above about the base and spindle components 300, 400, respectively, these pressed-together components cooperate to perform yet another function—and this additional function is every bit as important as the other multi-functional responsibilities of the components 300, 400. As can best be seen in the assembly view of
(86) Without this sandwiching of the top and bottom surfaces 270, 271 by the base and spindle components 300, 400, the retractable-extensible latch bolt component 200 could tilt and wobble up and down if an when a stationary component (such as the L-shaped cabinet or enclosure portion 20, or the wooden cabinet or enclosure portion 20 shown in
(87) What has just been explained points to an equally important feature that is put to significant use by this invention. Not only do the base and spindle components 300, 400 provide surfaces 310, 485 that sandwich the transversely extending wall by engaging the top and bottom surfaces of the transversely exteding wall 270, the pairs of engaging surfaces 310, 271 and 485, 270 engage and cooperate to ensure that the latch bolt component 200 is confined to the desired travel path 275 as the latch bolt component 200 extends and retracts relative to the central axis 40.
(88) Likewise, the inside surfaces 231, 241 of the latch bolt component 200 sandwich the sides 330, 340 of the base component 300—so, once again, pairs of engaging surfaces 231, 330 and 241, 340 are at work confining the latch bolt component 200 to its desired travel path 275.
(89) Still further, the upper inside surfaces 232, 242 (
(90) Clearly the spring-projected, retractable latch bolt component 200 (which does not have any bulky surrounding housing as do prior art proposals) is far better supported, and far better confined to its linear travel path 275 than are any of the prior art proposals for spring-projected, retractable, latch bolt assemblies which often use a loosely-fitting housing from which their latch bolts of minimal size project loosely outward from the ports of housings.
(91) Providing spring-projected latch bolt components 200 that are closely confined to a specific linier travel path is not merely window dressing—for, relatively movable components that are properly supported by having a variety of surfaces in three-dimensional planes, as is explained above, results in far less wear and far longer service lives—for such components work with precision and do not dig into each other as they move relative to each other. Making such use of the vast open interior 215 of the latch bolt component 200 increases the service life and reliability of these described components of the latch bolt assemblies.
(92) Referring still to
(93) During assembly of the components shown in
(94) The example described above illustrates how a kit of componets that includes the manufactured components 200, 300, 400, 500, 600 together with the springs 379 and the fasteners 38 and 399 can be provided that permits existing cam locks 30 to be upgraded or enhanced simply by removing the cams 50 from their cam locks 30, and replace it with a kit of components such as are illustrated in
(95) As those who are skilled in the art will readily observe, the fastener 38 can be replaced by a larger diameter fastener (not shown) if a larger diameter fastener is required for a particular installation.
(96) Although those skilled in the art will know the latest and best plastic materials to use, some have recommended that the manufactured components 200, 300, 400, 500 and 600 can be formed as by molding using such plastic materials as are often designated by the following codes or abbreviations Polyphenylene PE; Polycarbonate PC-GF15; Polypropylene PP; and Polyphenylene PE; POM-GF15, and PA66-PTFE. If molded from metal, zinc would, of course, be a candidate.
(97) Although the invention has been described in its preferred form with a certain degree of particularity, it is understood that the present disclosure of the preferred form has been made only by way of example, and that numerous changes in the details of construction and the combination and arrangement of parts may be resorted to without departing from the spirit and scope of the invention as hereinafter claimed. It is intended that the patent shall cover, by suitable expression in the appended claims whatever features of patentable novelty exist in the invention disclosed.