Locking fastener assembly

Information

  • Patent Grant
  • 8011866
  • Patent Number
    8,011,866
  • Date Filed
    Thursday, April 19, 2007
    18 years ago
  • Date Issued
    Tuesday, September 6, 2011
    14 years ago
Abstract
A locking fastener assembly comprising a nut and a washer. The nut and washer each have opposed load bearing surfaces which include a series of annularly extending, slightly inclined faces forming shallow undulations around each surface. The load bearing surface on the nut is generally spherically convex and the load bearing surface on the washer is generally spherically concave. The nut rotates as it is installed while the washer is prevented from rotating so that the undulating bearing surface on the nut slides over the undulating bearing surface on the washer against ever increasing resistance until the assembly is properly seated and the nut is effectively prevented from counter-rotating by interference between opposed, inclined faces. A concave clamping surface is formed on the outer end of the washer on a radially extending flange. The flange flexes when the assembly is installed and resiliently urges the washer against the nut.
Description
FIELD OF THE INVENTION

This invention relates generally to threaded fasteners. It relates particularly to locking fasteners of the type employing a threaded nut and a locking washer.


BACKGROUND OF THE INVENTION

A locking fastener or locking fastener assembly is employed to prevent loosening of a threaded fastener element in a fastener joint. There are numerous types of joints in which locking fasteners or fastener assemblies are not only desirable but necessary to prevent a nut from loosening. One such application is in the axle and wheel nut assembly of a motor vehicle or the like.


In a typical axle and wheel nut assembly, the hub is supported on a spindle by axle bearings which permit the hub, and thus a vehicle wheel, to rotate on the spindle. An axle bearing nut is threaded onto the free end of the spindle and holds the axle bearings and bearing races together in a predetermined relationship. The axle bearing nut must be set in precisely the proper position on the spindle to apply end loading on the bearing races sufficient to avoid excessive play in the bearings but insufficient to overload them, the result of either being possible bearing failure or even loss of a wheel.


Numerous types of nuts with positive locking components are well known. One of the oldest and most common of these is the conventional castellated nut and cotter pin assembly. The disadvantages of these assemblies are numerous. They include the necessity of carefully locating a hole through the axle spindle, of using an extra component, of reduced nut strength, of relatively long installation time and of the difficulties encountered in fine tuning the preload on the bearing races.


Newer developments in locking fastener assemblies include those found in the Anderson, Jr. U.S. Pat. No. 3,762,455, the Grube U.S. Pat. No. 4,812,094, the Burdick U.S. Pat. No. 5,533,849, and the Peterkort U.S. Pat. No. 5,597,278, for example. Of these, the Grube and Peterkort patents are assigned to the same assignee as the present invention, as will be noted.


The Peterkort patent discloses a locking fastener assembly consisting of a flanged nut and a retainer washer loosely seated on the nut's flange. The retainer washer includes a radially inwardly extending tab which is designed to slide axially along a slot in a threaded spindle while preventing the washer from rotating relative to the spindle. A releasable locking clip is positioned to lock the nut to the washer. The locking clip is released by engagement of a wrench socket with a hex-head on the nut so that the nut can be threaded to a desired bearing loading position. When the wrench is removed, the clip interlocks the washer and nut to prevent the nut from rotating.


The aforedescribed Peterkort locking fastener assembly is a highly effective device for use in vehicle wheel assemblies. It is simple and relatively inexpensive. However, its design focuses on limiting end play, not maintaining a constant preload.


Other known locking fastener designs include prevailing-torque locking fasteners. Locking action is achieved with frictional resistance induced between mating threads. There is positive resistance to assembly, which maintains throughout fastener seating and tightening. A high residual resistance to loosening remains even if fastener preload is lost. Disassembly is even difficult. Complete disengagement in service is highly unlikely. Prevailing-torque fasteners are generally all-metal fasteners with modified threads or fasteners with a separate non-metallic element or one fused to the threads. The former have fewer temperature and environmental limitations than the latter, but the latter do not encounter thread galling and other problems characteristic of the former.


SUMMARY OF THE INVENTION

It is an object of the present invention to provide an improved locking fastener assembly.


It is another object to provide a locking fastener assembly comprising only two components, a nut and a washer.


It is yet another object to provide a locking fastener assembly in which secure locking is achieved between a rotatable nut and a non-rotatable washer without the use of separate locking elements.


It is still another object to provide a locking fastener assembly including a new and improved locking mechanism.


It is a further object to provide a new and improved locking mechanism for a locking fastener assembly wherein a locking relationship is established directly between nut and washer.


It is yet a further object to provide a locking mechanism for a locking fastener assembly wherein a washer and nut interlock is established and a constant bearing load resiliently maintained when the assembly is employed to mount a vehicle wheel.


The foregoing and other objects of the invention are realized in a locking fastener assembly which comprises only a nut and a washer. Each is formed from medium carbon steel.


The washer includes a generally cylindrical washer body and a flange extending radially outward from the base of the body. A clamping surface is formed on the bottom of the flange and washer body base.


The top of the washer body has an annular, generally spherically concave load bearing surface formed on it. The load bearing surface includes an annularly extending series of inclined bearing faces forming a uniform undulation around the entire surface. A series of plateau surfaces between the inclined bearing faces form the upper peaks of the undulation. A series of valley surfaces between the inclined bearing faces form the valleys of the undulation. Each of the plateau and valley surfaces are spherically concave. Each of the inclined bearing faces is also spherically concave. The height of the plateau surface above the valley surface is slightly greater than the clearance between the threads in the nut and those on a vehicle axle spindle, for example, when the locking fastener assembly is in place.


The slightly concave washer body clamping surface on the bottom of the washer forms what approximates a shallow frustum of a cone. This surface is inclined upwardly from the outer periphery of the washer flange of its bottom toward the washer body axis.


The washer flange has a plurality of slots formed inwardly from its outer edge, at regular intervals around the flange. These slots permit intervening flange sections to resiliently flex, albeit only slightly, when the washer clamping surface is forced against an outer bearing race and is under the desired load.


An ear is formed inwardly of the base of the washer body, opposite the flange. The ear is designed to slide axially through a suitably formed slot in the threaded end section of an axle spindle to prevent the washer from rotating relative to the spindle as the nut is threaded onto this end section. In the alternative, a flat may be formed on the spindle and a corresponding flat formed inwardly of the washer body.


The nut includes a generally cylindrical nut body which is internally threaded. A hexagonal surface is formed around the periphery of the nut body to permit gripping the nut with a wrench.


Depending from the nut body is a unitarily formed annular skirt. The skirt is adapted to extend axially into the generally cylindrical body of the washer and then be formed outwardly under an undercut shoulder within the washer body to loosely, but securely, hold the washer and nut together.


The bottom of the nut body, above the skirt, has an annular, generally spherically convex load bearing surface formed on it. The load bearing surface includes an annularly extending series of inclined bearing faces forming a uniform undulation around the entire surface. A series of plateau surfaces between the inclined bearing faces form the lower peaks of the undulation. These plateau surfaces are spherically convex, with the same radius as the valley surfaces on the washer's load bearing surface. Each of the inclined bearing faces is also spherically convex, with the same radius as the bearing faces on the washer's nut bearing surface.


When the nut is threaded onto the axle spindle, the washer is pushed freely in front of it without rotating, until the slightly concave, frusto-conical clamping surfaces engage on the ends of the flange sections the inner bearing race of the outer bearing assembly supporting the wheel hub. Further axial travel of the washer is then resisted by the bearing race, first relatively lightly while the bearing races move closer together and then relatively firmly as the bearing races reach their operating positions.


Meanwhile, the peaks on the opposed undulating load bearing surfaces ride over each other with greater and greater difficulty as the load increases. Finally, they can slip past each other only when the flange sections on the washer begin to resiliently flex. The nut is then securely prevented from counter-rotating and loosening by the interlocking bearing faces and the resilient pressure of the washer.


In locked relationship, the spherically convex plateau surfaces in the load bearing surface of the nut seat flush against corresponding spherically concave valley surfaces in the load bearing surface of the washer. Also, the convex inclined leading bearing faces on the nut seat flush against the concave inclined trailing bearing faces of the washer and prevent the nut from backing off.





BRIEF DESCRIPTION OF THE DRAWINGS

The invention, including its construction and operation, is illustrated more or less diagrammatically in the drawings, in which:



FIG. 1 is an end view of a vehicle axle and wheel hub incorporating a locking fastener assembly embodying features of the present invention;



FIG. 2 is a sectional view taken along line 2-2 of FIG. 1;



FIG. 3 is an exploded perspective view of a nut and washer in position to be assembled;



FIG. 4 is a bottom plan view of a locking washer assembly, partially in section;



FIG. 5 is a top plan view of a locking washer assembly, partially in section;



FIG. 6 is a side elevational view of a locking washer assembly, partially in section;



FIG. 7 is a plan view of a quarter segment of overlying opposed bearing surfaces on a nut and washer, showing their relationship to each other circumferentially;



FIG. 8 is an enlarged sectional view of an arcuate portion (on an 18° arc in the present illustration) of the mating bearing surfaces in the assembly, the view depicting curved bearing faces and surfaces as straight because of this;



FIG. 9 is a side elevational view of the nut, showing the convex curvature of its inclined bearing faces; and



FIG. 10 is a side sectional view through the washer, showing the concave curvature of its inclined bearing faces.





DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT

Referring to the drawings, and particularly to FIGS. 1 and 2, an axle assembly for an automotive vehicle is shown generally at 10. The axle assembly 10 includes a spindle 12 which extends horizontally from a vertically oriented plate 14. The plate 14 forms the outer face of a fitting 16 which is mounted in a conventional manner on the frame (not shown) of a vehicle.


Seated for rotation on the spindle 12 is a wheel hub 20. The wheel hub 20 includes a generally cylindrical body 22 formed unitarily with a radially extending flange 24. A plurality of studs 26 extend axially from the flange 24 near its periphery. The studs 26 are employed in a conventional manner to mount a wheel (not shown) on the wheel hub 20.


The wheel hub 20 is seated on the spindle 12 on an inner roller bearing assembly 28 and an outer roller bearing assembly 29. The inner bearing assembly 28 is located on a cylindrical inner section 31 of the spindle 12 and is retained between a shoulder 33 on the spindle and an opposing shoulder 35 inside the body 22 of the wheel hub 20. The outer bearing assembly 29 is located on a cylindrical outer section 37 of the spindle 12 and is seated against a shoulder 39 inside the hub body 22 and against a frusto-conical spacer 41 encircling the tapered mid-section 43 of the spindle on the inner end of the bearing assembly.


The outer bearing assembly 29 is held in operating relationship against the shoulder 39 and spacer 41 by a locking fastener assembly 50 embodying features of the present invention. In this regard, the locking fastener assembly 50 is threaded onto the threaded outer end section 45 of the spindle 12 and seats against the inner bearing race 47 of the bearing assembly 29.


The locking fastener assembly 50 is threaded onto the end section 45 of the spindle 12 to take up undesired play in the bearing assemblies 28 and 29 and, accordingly, hold them both in proper operating position and relationship. If the fastener assembly 50 is threaded too snugly against the bearing race 47, the bearing assemblies 28 and 29 will both be over-loaded and their operating life shortened. If the fastener assembly 50 is not threaded sufficiently far onto the end section 45, the bearing assemblies 28 and 29 will have too much play and their operating life will be shortened. The locking fastener assembly 50 is designed to be turned onto the threaded end section 45 of the spindle 12 to a desired position and then held securely in that position by locking forces exerted internally of the assembly according to the invention.


Referring now to FIGS. 3-10, the locking fastener assembly 50 comprises only two components, a nut 52 and a retainer washer 54. Both are forged steel elements. In the preferred embodiment shown here, the nut 52 is formed from medium carbon steel and then heat treated to an average hardness of 33 on the Rockwell C scale. The washer is also formed from medium carbon steel and then heat treated to an average hardness of 39 on the Rockwell C scale.


The nut 52 comprises a nut body 62 which is internally threaded at 64 for receipt of the threaded end section 45 of the spindle 12. Externally, the nut body has a hexagonal shape surface 66 which is adapted to mate with a standard socket wrench for tightening and loosening the nut 52.


Extending generally axially away from the nut body 62 at the inner end of the internal threads 64 is a skirt 68. The skirt 68 extends away from the generally spherically convex load bearing surface 72 of the nut body 62 and through the retainer washer 54. The skirt 68 is formed outwardly in a manner hereinafter discussed so that it retains the washer 54 on the nut 52 in loose relationship.


According to the invention, the generally spherically convex load bearing surface 72 on the nut body 62 is, in fact, an annularly undulating surface extending entirely around the nut body, as best seen in FIG. 9. The surface 72, which will hereinafter be described in greater detail, may be formed using any desired technique but, in the present instance, is formed by cold forging using a die insert which is machined to the desired complex curvature shape using conventional ball end mill techniques.


The washer 54 comprises an annular washer body 82 having a generally spherically concave load bearing surface 84 at its inner end and a clamp surface 86 for engaging the aforedescribed inner bearing race 47 at its outer end. The clamp surface 86 is formed on the outer end face 88 of the body 82 and a washer flange 92 which encircles it.


The generally spherically concave load bearing surface 84 on the inner end of the washer body 82 is also an angularly undulating surface extending entirely around the washer body, as best seen in FIG. 10. The surface 84, which will hereinafter be described in greater detail, is also formed by cold forging using a die pin which is machined on one end to the desired complex shape using conventional ball end mill techniques.


The outer end face 88 of the body 82 and flange 92 on the washer body 82 is slightly frusto-conical in shape. The end face 88 is inclined upwardly at an angle of approximately 3″ from the outer periphery 94 of the flange to the inner periphery 96 of the body 82.


The flange 92, which is approximately 0.12 inches (3.0 mm) thick in the washer 54 illustrated, is segmented by six cut-outs 98 around its circumference so as to define six radially extending flange sections 102. The end face 88 is also interrupted by six Vee-shaped, depressions 104 extending radially inwardly from corresponding cut-outs 98. This effectively separates the annular clamp surface 86 into six arcuate clamp surface segments 106, the arcuate outer extremities of which, between cut-outs 98, are able to resiliently flex axially of the washer 54. Although the flange 92 is shown here separated into six flange sections 102, however, it should be understood that the invention contemplates using a greater or lesser number depending upon the size of the washer and thickness of the flange.


Extending radially inwardly from the end face 88 is an ear 108. The ear 108 is of a size and shape suitable to slide loosely in an axially elongated slot 49 formed on one side of the threaded end sections 45 of the spindle 12. As will hereinafter be further discussed, when the fastener assembly 50 is installed, the ear 108 and slot 49 cooperate to prevent rotation of the washer 54 relative to the spindle 12. Although the use of ear 108 and slot 49 cooperating to prevent washer 54 rotation is shown here in the context of vehicle hub 20 mounting, it should also be understood that the invention contemplates the use of other conventional means for preventing washer rotation.


Referring now in greater detail to the generally spherically convex load bearing surface 72 on the nut body 62, it comprises a series of oppositely inclined side bearing faces, 73 with peaks in the form of plateau surface segments 74 and with narrow valley bottoms at lines 75. Each pair of side bearing faces 73 with a valley floor line 75 between them forms what approximates an inverted Vee shape.


The plateau surface segments 74 are formed in the cold forging process so that they are all convex and lie on the surface of an imaginary sphere whose center is on the axis of the nut body 62. In the nut 52 which is illustrated, and which has an outside diameter between flats of the hexagon of approximately 2.125 inches (54 mm) and a nut body 62 thickness of approximately 0.50 inches (12.7 mm), the radius of that sphere is 2.00 inches (50.8 mm).


Each inclined side bearing face 73 is also formed so that it is convex and is curved both radially and circumferentially of the nut body 62. As will hereinafter be described, these convex surfaces 73 are formed so as to be complementary with corresponding concave side bearing faces in the generally spherically concave load bearing surface 84 on the washer body 82.


In the nut body 62 illustrated, the height of each plateau surface segment 74 formed by adjacent side bearing faces 73, i.e., the vertical height from the valley floor lines 75, is 0.015 inches (0.38 mm). According to the invention, and for reasons hereinafter discussed, this height is slightly greater than the clearance between the threads on the end section 45 of the spindle 12 and the threads 64 in the nut body 62 when they are assembled.


Referring now in greater detail to the generally spherically concave load bearing surface 84 on the washer body 82, the surface comprises a uniform series of inclined side bearing faces 116 with peaks in the form of plateau surfaces 118 and with wider valley floors in the form of valley surfaces 122. Each pair of inclined bearing faces 116 with a valley surface 122 forms what approximates a Vee shape.


The valley floor surfaces 122 are formed in the forging process so that they are all concave and lie on the surface of an imaginary sphere whose center is on the axis of the washer body 82. The radius of that sphere is 2.00 inches (50.8 mm). As such, it will be seen that the plateau surface segments 74 on the nut body 62 are perfectly complementary in shape to the valley floors 122 on the washer body 82.


In the washer body 82 illustrated, the height of each plateau surface segment 118, i.e., the vertical height from the valley floor 122, is slightly less than 0.015 inches (0.38 mm). As a result, when nut 52 and washer 54 are seated against each other in nested relationship, each plateau surface segment 74 will seat uniformly on a corresponding valley floor 122 while opposed inclined bearing faces 73 and 116 will be slightly separated.


When the opposed bearing surfaces, surface 72 on the nut body 62 and surface 84 on the washer body 82, are nested in locking relationship, however, the trailing inclined bearing faces 116 of the washer body 82 seat against the leading inclined bearing faces 73 on the nut body 62. Because these opposed inclined bearing faces 73 and 116 are formed so as to be complementarily convex and concave, respectively, and all their radii of curvature axially of the assembly 50 and from its axis equal those of the aforementioned valley floor surfaces 122, locking surface contact is maintained between them even if the nut 52 and washer 54 are not precisely parallel to each other because the nut does not thread perfectly squarely onto the spindle.


The nut 52 and washer 54 are assembled to create the locking fastener assembly 50 by inserting the skirt 68 of the nut through the washer in the manner best seen in FIG. 6. The skirt 69 is then dimpled outwardly by forming at six evenly spaced locations 69 around its periphery so as to underlie an annular inward projection 83 in the washer body and, accordingly, loosely but securely connect the nut 52 and washer 54 while permitting the nut to rotate freely relative to the washer.


In use for securing a wheel hub 20 on the spindle 12 in an axle assembly 10 for a truck or some other vehicle, for example, after a wheel hub 20 has been seated on its supporting bearing assemblies 28 and 29, a fastener assembly 50 is slipped over the threaded end section 45 of the spindle 12 so that the ear 108 in the washer 54 slides along the slot 49 in the spindle until the internal threads 64 in the nut body 62 engage the external threads on the spindle. The nut 52 is then threaded onto the spindle 12 by hand until the clamp surface 86 on the washer body 82 engages the inner bearing race 47. As the nut 52 rotates while being threaded onto the spindle 12 in this way, the washer 54 moves axially with it but is prevented from rotating because its ear 108 is axially slidable in, but rotationally fixed by, the slot 49 in the spindle.


As the nut 52 rotates, its undulating bearing surface 72 slips easily over the opposed undulating bearing surface 84 on the washer 54 as the nut pushes the washer before it. When the clamp surface 86 engages the inner bearing race 47, however, further rotation of the nut is resisted with greater and greater effect by the interlocking effect of the opposed inclined side bearing faces on the nut 52 and washer 54, respectively, as the nut turns and axial pressure builds up in the bearing assemblies 28 and 29. As this pressure builds up, the flange sections 102 begin to flex, creating a resilient force tending to keep the inclined bearing faces of opposed side bearing surfaces 72 and 84 in interlocked relationship.


The flange sections 102 are designed to resiliently flex through an axial distance which is slightly greater than the clearance between the spindle 12 threads and nut body 62 threads. Because the flange sections 102 are able to flex slightly more than this clearance, the washer 54 can move axially under load to some degree without degradation of the lock between washer 54 and nut 52. At the same time, because the height of the plateau surface 118 above the valley surface 122 in the washer body 82 is slightly greater than the clearance also, once a locking relationship is established with the proper preload the nut 52 and washer 54 can move slightly relative to each other without loosening the fastener assembly 50.


When a predetermined torque setting is reached in turning the nut 52 of the locking assembly 50 onto the spindle 12, the bearing assemblies 28 and 29 are properly preloaded. The locking assembly 50 can then be relied upon to resist all axial forces tending to cause the nut 52 to back off. Increased axial load from the wheel hub 20 merely causes the nut 52 and washer 54 to become more securely locked together against relatively rotation. Only by applying loosening torque to the nut 52 again, as with a hex wrench, can the locking assembly 50 be removed.


Although the invention in a locking fastener assembly has been described in the context of a vehicle wheel hub mounting arrangement, it should be understood that it might be otherwise employed. Its two-part simplicity, rugged construction, virtually fail-proof action and low manufacturing cost may make it very attractive in many applications.


While a preferred embodiment of the invention has been described, it should be understood that the invention is not so limited, and modifications may be made without departing from the invention. The scope of the invention is defined by the appended claims, and all devices that come within the meaning of the claims, either literally or by equivalence, are intended to be embraced therein.

Claims
  • 1. A locking fastener assembly, comprising: a) a fastener nut and a fastener washer rotatable relative to each other about a common axis;b) a washer contacting surface on said fastener nut and a nut contacting surface on said fastener washer, both the washer contacting surface and the nut contacting surface being configured to resist rotating relative to each other;c) both the washer contacting surface and the nut contacting surface include a plurality of inclined faces oriented about the common axis;d) said fastener nut includes a nut body that is provided with a skirt extending from one end of said nut body;e) said fastener washer including a washer body with an aperture extending through the washer body;f) said skirt extending into said aperture when said fastener nut and fastener washer are assembled;g) at least some portion of said skirt being deformed outwardly after said fastener nut and fastener washer are assembled so as to loosely hold said fastener washer on said fastener nut;h) said nut body is internally threaded so that the nut body can be turned onto an externally threaded member; andi) said washer body including an element formed in said aperture for preventing said fastener washer from rotating when said fastener nut is turned onto said threaded member.
  • 2. The locking fastener assembly of claim 1 further comprising: e) said fastener washer includes a washer body and a flange extending radially outwardly from said washer body; andf) at least a portion of a clamping surface being formed on the flange.
  • 3. The locking fastener assembly of claim 2 further comprising: g) said flange comprises a series of flange segments extending annularly around said washer body; andh) said flange segments being slightly flexible axially of said fastener washer.
  • 4. The locking fastener assembly of claim 1 further comprising: g) an axially resilient element.
  • 5. The locking fastener assembly of claim 1 further comprising: e) said plurality of inclined faces that opposed to each other on respective the fastener nut and the fastener washer are complementary to each other.
  • 6. The locking fastener assembly of claim 1 wherein: e) said inclined bearing faces seat in locking relationship against each other.
  • 7. The locking fastener assembly of claim 1 further comprising: e) said plurality of inclined faces that oppose each other on respective the fastener nut and the fastener washer are curved both radially and circumferentially of said locking fastener assembly and are complementary to each other.
  • 8. The locking fastener assembly of claim 1 wherein: i) the plurality of inclined faces on the washer contacting surface of the fastener nut and the nut contacting surface of the fastener washer form a series of peaks and valleys.
  • 9. A locking fastener assembly, comprising: a) an internally threaded fastener nut, including a nut body with an annular skirt depending from the nut body;b) a fastener washer including an annular washer body with an aperture and a flange extending radially outwardly from the annular washer body;c) said annular skirt extending loosely into said fastener washer whereby said internally threaded fastener nut is freely rotatable relative to said fastener washer before said locking fastener assembly is mounted;d) a washer contacting surface on said nut body and a nut contacting surface on said annular washer body;e) said washer contacting surface on said nut body including a series of peaks and valleys extending around said nut body so as to create a plurality of inclined bearing faces;f) said nut contacting surface on said annular washer body includes a series of peaks and valleys extending around said annular washer body so as to create a plurality of inclined bearing faces;g) said annular inclined bearing faces seat in locking relationship against each other;h) said nut body is internally threaded so that the nut body can be turned onto an externally threaded member; andi) said washer body including an element formed in said aperture for preventing said fastener washer from rotating when said fastener nut is turned onto said threaded member.
  • 10. The locking fastener assembly of claim 9 further comprising: i) said annular inclined bearing faces are complementarily shaped to seat in locking relationship against each other.
  • 11. The locking fastener assembly of claim 9 further comprising: h) the shallow peaks include a height, the height of the shallow peaks in one of said washer contacting surface and said nut contacting surface is greater than the height of the shallow peaks in another of said washer contacting surface and said nut contacting surface.
  • 12. A locking fastener assembly, comprising: a) a fastener nut and a fastener washer connected to each other in such a manner that the fastener nut and the fastener washer can be rotate relative to each other about a common axis;b) the fastener nut including a nut body and an annular skirt depending from the nut body;c) the fastener washer including an annular washer body with an aperture;d) said annular skirt extending loosely into said aperture whereby said fastener nut is freely rotatable to said fastener washer before said locking fastener assembly is mounted;e) a washer contacting surface on said fastener nut and a nut contacting surface on said fastener washer, said washer contacting surface being positioned opposite the nut contacting surface;f) each of said washer contacting surface and the nut contacting surface includes a plurality of inclined faces arranged about the common axis of the fastener assembly; andg) said washer body including an element formed in said aperture for preventing said fastener washer from rotating when said fastener nut is turned onto said threaded member.
  • 13. The locking assembly of claim 12 further comprising: d) an axially resilient element.
  • 14. The locking fastener assembly of claim 13 further comprising: e) said axially resilient element is capable of flexing through a predetermined distance axially of said locking fastener assembly.
  • 15. The locking assembly of claim 14 further comprising: g) one of the washer contacting surface and nut contacting surface is concave and another of the washer contacting surface and nut contacting surface is convex.
  • 16. The locking assembly of claim 13 further comprising: a) one of said washer contacting surface and the nut contacting surface is convex and another of said washer contacting surface and the nut contacting surface is concave relative to a plane perpendicular to said common axis.
  • 17. The locking fastener assembly of claim 12 further comprising: d) one of said washer contacting surface and the nut contacting surface includes a plateau between alternating pairs of adjacent inclined bearing faces;e) another of said washer contacting surface and the nut contacting surface includes a valley floor between alternating pairs of adjacent inclined bearing faces; andf) said plateau and valley floor being segmentally spherical about a common center when said locking assembly is in locking relationship.
Parent Case Info

This application is a continuation of application Ser. No. 10/688,173, filed on Oct. 17, 2003 now U.S. Pat. No. 7,226,259, which is a continuation of application Ser. No. 09/933,312, filed on Aug. 20, 2001 now U.S. Pat. No. 6,749,386. The disclosures of application Ser. Nos. 10/688,173 and 09/933,312 are hereby incorporated herein by reference.

US Referenced Citations (768)
Number Name Date Kind
24572 Nicolas et al. Jun 1859 A
RE24678 Tyng Aug 1859 E
33487 Marsh Oct 1861 A
33827 Davis Dec 1861 A
45133 Bonwill Nov 1864 A
80031 Thompson Jul 1868 A
142112 Ooming et al. Aug 1873 A
154255 Ives Aug 1874 A
185936 Landfaar Jan 1877 A
197467 Harvey Nov 1877 A
205990 Armstrong Jul 1878 A
218425 Bradley Aug 1879 A
243493 Bloom Jun 1881 A
272589 Searls Feb 1883 A
292063 Shailer Jan 1884 A
229287 Stevens May 1884 A
324487 Rice Aug 1885 A
367196 Deblieux Jul 1887 A
369362 Plank Sep 1887 A
388000 Ridar Aug 1888 A
429851 Ericson Jun 1890 A
443799 Searls Dec 1890 A
449887 Harvey Apr 1891 A
453563 Nicholson Jun 1891 A
464301 Harvey Dec 1891 A
497510 Adler May 1893 A
551043 Otlo Dec 1895 A
553780 Dickason Jan 1896 A
586232 English Jul 1897 A
594330 Cox, Jr. Nov 1897 A
613776 Plain Nov 1898 A
638326 Farr Dec 1899 A
684673 Clark Oct 1901 A
712905 Cannon Nov 1902 A
716891 Somerby Dec 1902 A
720580 Greenfield Feb 1903 A
738217 Love Sep 1903 A
752628 Miner Feb 1904 A
793824 Culliney Jul 1905 A
794127 Stayton et al. Jul 1905 A
819158 Nelder May 1906 A
827562 Pollock et al. Jul 1906 A
843720 Waddell Feb 1907 A
853005 Kesler Apr 1908 A
887962 Reisner May 1908 A
889593 Fleischmann Jun 1908 A
891574 Swain Jun 1908 A
909033 Smith Jan 1909 A
910712 McCoy Jan 1909 A
920947 Gilmore May 1909 A
948326 Hesse Feb 1910 A
949741 Loehr Feb 1910 A
988510 Scott Mar 1911 A
1000280 Messenger Aug 1911 A
1011398 Andregg Dec 1911 A
1015059 Morgan Jan 1912 A
1016897 Ryan Feb 1912 A
1036825 Garchey Aug 1912 A
1040215 Krtner Oct 1912 A
1048590 Russell Dec 1912 A
1049590 Mosher Jan 1913 A
1059280 Barrett Apr 1913 A
1064792 Vance Jun 1913 A
1070247 Haines Aug 1913 A
1075310 Ulrich Oct 1913 A
1081631 Siever Dec 1913 A
1088892 Foreman Mar 1914 A
1112525 Darling Oct 1914 A
1140974 Formby May 1915 A
1143091 Simpson Jun 1915 A
1146078 Moore Jul 1915 A
1150362 Hascall Aug 1915 A
1158454 De Cump Nov 1915 A
1201944 Dodds Oct 1916 A
1210310 Hickiing et al. Dec 1916 A
1229911 Dodds Jun 1917 A
1235626 Woodward Aug 1917 A
1238636 Christofferson Aug 1917 A
1250748 Woodward Dec 1917 A
1254514 Lehmann Jan 1918 A
1288893 Holmes Dec 1918 A
1294268 Holmes Feb 1919 A
1297845 Hawrylasz Mar 1919 A
1300801 Woodward Apr 1919 A
1320259 Martens Oct 1919 A
1363710 Best Dec 1920 A
1374106 Perlman Apr 1921 A
1381437 Smith Jun 1921 A
1406315 Whittaker Feb 1922 A
1411184 Rosenberg Mar 1922 A
1451484 Woodward Apr 1923 A
1465148 Heyrnan Aug 1923 A
1495687 Grosclaude May 1924 A
1543282 De Los Jun 1925 A
1554249 Wolf Sep 1925 A
1556699 Harbecka Oct 1925 A
1581559 Williams Apr 1926 A
1592627 Egleston Jul 1926 A
1611408 Bowers Dec 1926 A
1622581 Gunkel Mar 1927 A
1626863 Nacey May 1927 A
1362082 Hullgreen et al. Jul 1927 A
1651187 Cole Nov 1927 A
1660455 Plumb Feb 1928 A
1668025 Olson May 1928 A
1676482 De Lapotterie Jul 1928 A
1697118 Hoke Jan 1929 A
1708793 Jones Jan 1929 A
1727590 Ferry Sep 1929 A
1741279 Bowman Dec 1929 A
1749903 Cannon Mar 1930 A
1759339 Anderson May 1930 A
1761681 Northey et al. Jun 1930 A
1796610 Modler Mar 1931 A
1798604 Hoke Mar 1931 A
1799941 Wulle Apr 1931 A
1802668 Newton Apr 1931 A
1807494 Proctor May 1931 A
1821312 Lillig Sep 1931 A
1825419 Plym Sep 1931 A
1828866 Bridges Oct 1931 A
1887616 Berg Nov 1931 A
1834871 Resenbeig Dec 1931 A
1862486 Trotter Jun 1932 A
1868083 Wheelwright Jul 1932 A
1871819 Rossman Aug 1932 A
1874657 Trotter Aug 1932 A
1909477 Trotter May 1933 A
1923647 Verg Aug 1933 A
1929808 Cataline Oct 1933 A
1938399 Olson Dec 1933 A
1940675 Crowther Dec 1933 A
1952115 Borst, Jr. Mar 1934 A
1952305 Beck Mar 1934 A
1953305 MacLean Apr 1934 A
1957095 Cole May 1934 A
1963542 Bergstrom Jun 1934 A
1969796 Hoke Aug 1934 A
1971676 Borst, Jr. Aug 1934 A
1971917 Newton Aug 1934 A
2012032 Zinntauer Aug 1935 A
2034494 Stoll Mar 1936 A
2037066 Cook et al. Apr 1936 A
2037586 Olson Apr 1936 A
2041568 Olson May 1936 A
2054187 Almdale Sep 1936 A
2060593 Schaurte el al. Nov 1936 A
2076041 Payne Apr 1937 A
2093026 Bernhard Sep 1937 A
2095397 Overmyer Oct 1937 A
2102494 Connell Dec 1937 A
2109778 Meersteiner Mar 1938 A
2112494 Olson Mar 1938 A
2128757 Olson Aug 1938 A
2133555 Mayfield Oct 1938 A
2147209 Olson Feb 1939 A
2147211 Olson Feb 1939 A
2160706 Olson May 1939 A
2165011 Rosenberg Jul 1939 A
2165149 Olson Jul 1939 A
2074578 Graham Oct 1939 A
2177003 Purtell Oct 1939 A
2177004 Purtell Oct 1939 A
2177005 Purtell Oct 1939 A
2191101 Stellin Feb 1940 A
2200227 Olson May 1940 A
2210455 Hosking Aug 1940 A
2217951 Hosking Oct 1940 A
2223202 Bergan Nov 1940 A
2226491 Gustafson Dec 1940 A
2228217 Olson Jan 1941 A
2229892 Hosking Jan 1941 A
2232336 Meersteiner Feb 1941 A
2232337 Meirstelner Feb 1941 A
2234677 Larsen Mar 1941 A
2247981 Washer Jul 1941 A
2251201 Purtell Jul 1941 A
2253241 MacDonald Aug 1941 A
2254503 Thomas et al. Sep 1941 A
2263137 Oestereicher Nov 1941 A
2266555 Jordan Dec 1941 A
2266758 Holtz Dec 1941 A
2269476 Pouplich Jan 1942 A
2271732 Chapplus Feb 1942 A
2278062 De Koharovich Mar 1942 A
2278411 Braendel Apr 1942 A
2284659 Hosking Jun 1942 A
2289066 Olson Jul 1942 A
2293930 Brazzendal Aug 1942 A
2297957 Hanneman Oct 1942 A
2301181 Ifsemann Nov 1942 A
2302675 Cherry Nov 1942 A
2308967 Kuss Jan 1943 A
2314896 Purinton Mar 1943 A
2314897 Purinton Mar 1943 A
2330869 Cherry Oct 1943 A
2333388 Pouplch Nov 1943 A
2342170 Tinnerman Feb 1944 A
2846835 Green Apr 1944 A
2349592 Hosking May 1944 A
2350756 Helnold Jun 1944 A
2352265 Kapple et al. Jun 1944 A
2352540 Hannernan Jun 1944 A
2352982 Tomalls Jul 1944 A
2356098 Steinle et al. Aug 1944 A
2367213 Harding Jan 1945 A
2393323 Hungerford et al. Jan 1945 A
2371365 Tomalls et al. Mar 1945 A
2377405 Davies Jun 1945 A
2382019 Miller Aug 1945 A
2407160 Kohn Sep 1946 A
2409638 Lyon Oct 1946 A
2414870 Harding Jan 1947 A
RE22926 Tinnermann Oct 1947 E
2428783 Cole Oct 1947 A
2432531 Lyon Dec 1947 A
2437638 Evans Mar 1948 A
2444276 Aldrich Jun 1948 A
2467548 Bradley Apr 1949 A
2484644 Poupitch Oct 1949 A
2484645 Baumle Oct 1949 A
2486769 Watson, Jr. Nov 1949 A
2498221 Poupitch Feb 1950 A
2510203 Andreasson Jun 1950 A
2557288 Hosking Jun 1951 A
2562516 Williams Jul 1951 A
2569989 Harding et al. Oct 1951 A
2588372 Erb Mar 1952 A
2597835 Eksergtan May 1952 A
2619146 Pouplich Nov 1952 A
2637361 Nagel May 1953 A
2661969 Thiry Dec 1953 A
2672659 Becker Mar 1954 A
2675844 Knohl Apr 1954 A
2679774 MacDonald Jun 1954 A
2681678 Hage Jun 1954 A
2685812 Dmitroff Aug 1954 A
2708844 Cincel May 1955 A
2735470 Poupltch Feb 1956 A
2778399 Mroz Jan 1957 A
2779376 Poupltch Jan 1957 A
2779379 Willis Jan 1957 A
2783810 Wrigley Mar 1957 A
2788046 Rosan Apr 1957 A
2794476 Hanneman Jun 1957 A
2819105 Behnke Jan 1958 A
2740650 Holton Apr 1958 A
2741289 Grow Apr 1958 A
2833326 Knohl May 1958 A
2844409 Eksergtan Jul 1958 A
2846744 Dix Aug 1958 A
2856617 Widmann Oct 1958 A
2135637 Gade Nov 1958 A
2859074 Easton Nov 1958 A
2873641 Evans Feb 1959 A
2884038 Oventon Apr 1959 A
2886088 Brancato May 1959 A
2901019 Schweppe Aug 1959 A
2913031 McKay et al. Nov 1959 A
2914149 Walker Nov 1959 A
2937040 Hutton May 1960 A
2937060 Lachance May 1960 A
2939160 Mitchell Jun 1960 A
2954304 Kroyer Sep 1960 A
2959086 Gerlach et al. Nov 1960 A
2959204 Rigot Nov 1960 A
3010503 Beuter Nov 1961 A
3020570 Wallace et al. Feb 1962 A
3056443 Knocke Oct 1962 A
3076208 Moore Feb 1963 A
3077218 Ziegler Feb 1963 A
3078899 MacLean, III et al. Feb 1963 A
3078900 Walker Feb 1963 A
3079830 Faroni et al. Mar 1963 A
3083796 Ball, Jr. Apr 1963 A
3102746 Kerr Sep 1963 A
3120254 Waltermire et al. Feb 1964 A
3122386 Pearson Feb 1964 A
3124188 Muenchinger Mar 1964 A
3124408 Oestereicher Mar 1964 A
3127919 Swanstrom Apr 1964 A
3133579 Grimm et al. May 1964 A
3134115 Moore et al. May 1964 A
3138407 Duggan Jun 1964 A
3139786 Ardell Jul 1964 A
3144695 Budwig Aug 1964 A
3158390 Woodling Nov 1964 A
3164055 Duffy Jan 1965 A
3165136 Horton Jan 1965 A
3177755 Kahn Apr 1965 A
3180126 Carlson Apr 1965 A
3180202 Kahn Apr 1965 A
3182703 Smyth May 1965 A
3186464 Baumle Jun 1965 A
3190334 Wigman Jun 1965 A
3194292 Borowsky Jul 1965 A
3196918 Hampton Jul 1965 A
3199186 Simpson Aug 1965 A
3200691 Neuschotz Aug 1965 A
3204679 Walsh Sep 1965 A
3208326 Myers Sep 1965 A
3208493 Holmes Sep 1965 A
3213742 Kahn Oct 1965 A
3213914 Baumie et al. Oct 1965 A
3221792 Poupitch Dec 1965 A
3237665 Bass Mar 1966 A
3241589 Enders Mar 1966 A
3246556 Phipard, Jr. Apr 1966 A
3248747 Scott May 1966 A
3249142 Phipard, Jr. May 1966 A
3253631 Rouser May 1966 A
3253727 Hart May 1966 A
3263727 Herpolshelmer Aug 1966 A
3274752 Greenleaf et al. Sep 1966 A
3275055 Gutshall Sep 1966 A
3279519 Neuschotz Oct 1966 A
3286579 Lovisek Nov 1966 A
3295580 Waltermire Jan 1967 A
3301299 Stanwick Jan 1967 A
3305987 Weaver Feb 1967 A
3307893 Williams Mar 1967 A
3308669 Schultze et al. Mar 1967 A
3322019 Lovisok May 1967 A
3329190 Oldenkott Jul 1967 A
3332464 Castel Jul 1967 A
3339389 Moscow Sep 1967 A
3342234 Evans Sep 1967 A
3343580 Cotdren Sep 1967 A
3346278 Yocum Oct 1967 A
3352344 Lanius, Jr. Nov 1967 A
3356421 Trevarrow, Jr. Dec 1967 A
3366421 Bradley Jan 1968 A
3370631 James Feb 1968 A
3381733 Stanwick May 1968 A
3384394 O'Connor May 1968 A
3385340 Evans May 1968 A
3385341 Garstkiewicz May 1968 A
3386771 Verdler Jun 1968 A
3389734 Gutshall Jun 1968 A
3389735 Katz Jun 1968 A
3391721 Rosen Jul 1968 A
3398625 Ansingh Aug 1968 A
3398775 Morin Aug 1968 A
3399589 Breed Sep 1968 A
3399705 Breed et al. Sep 1968 A
3417802 Oldankott Dec 1968 A
3418012 La Torre Dec 1968 A
3426820 Phigard, Jr. Feb 1969 A
3428377 Christian et al. Feb 1969 A
3430673 Rapta Mar 1969 A
3438416 Thurston Apr 1969 A
3451080 McIntyre et al. Jun 1969 A
3454070 Phipard, Jr. Jul 1969 A
3459250 Tabor Aug 1969 A
3472119 Peterson, Jr. Oct 1969 A
3476010 Markey Nov 1969 A
3481178 Wilkins Dec 1969 A
3481380 Breed Dec 1969 A
3485134 Ott Dec 1969 A
3492906 Hauser Feb 1970 A
3492908 Thurston Feb 1970 A
3500888 Dvorak Mar 1970 A
3504722 Breed Apr 1970 A
3517717 Orlonoski Jun 1970 A
3520342 Scheiter Jul 1970 A
3520343 Evens Jul 1970 A
3527136 Wilson Sep 1970 A
3530760 Undetand Sep 1970 A
3530920 Podell Sep 1970 A
3540509 Gutshall Nov 1970 A
3543826 Fogaard Dec 1970 A
3549204 Splsak Dec 1970 A
3561820 Chalvra Feb 1971 A
3584667 Reiland Jun 1971 A
3585900 Chaivre Jun 1971 A
3588792 Kindell Jun 1971 A
3595506 Saunders Jul 1971 A
3605545 Junker Sep 1971 A
3633455 Larson Jan 1972 A
3640326 Brown Feb 1972 A
3643543 Gutshall Feb 1972 A
3649079 English Mar 1972 A
3653241 Orlomoski Apr 1972 A
3659491 Duffy et al. May 1972 A
3661046 Waud May 1972 A
3662643 Scheffer May 1972 A
3687184 Wagner Aug 1972 A
3693685 Onufer Sep 1972 A
3704739 Holton Dec 1972 A
3721283 Evans Mar 1973 A
3731725 Brophy May 1973 A
3734483 Adams May 1973 A
3742808 Trembley Jul 1973 A
3750525 Waters et al. Aug 1973 A
3752203 Hill, Jr. Aug 1973 A
3762455 Anderson, Jr. Oct 1973 A
3782436 Steiner Jan 1974 A
3789644 Orlomoski Feb 1974 A
3794092 Carlson et al. Feb 1974 A
3800396 Puchner Apr 1974 A
3812639 Sygnator May 1974 A
3813179 Priest May 1974 A
3816701 Stromer Jun 1974 A
3822902 Maurer et al. Jul 1974 A
3823526 Rose Jul 1974 A
3825051 Sigmund Jul 1974 A
3828515 Galgoczy et al. Aug 1974 A
3830271 Soubitez Aug 1974 A
3850215 Orlomoski Nov 1974 A
3851690 Wing et al. Dec 1974 A
3856065 Gehring Dec 1974 A
3857611 Pansky et al. Dec 1974 A
3867871 Shore Feb 1975 A
3875780 Cochrum et al. Apr 1975 A
3877339 Muenchinger Apr 1975 A
3877502 Hunckler Apr 1975 A
3878759 Carlson Apr 1975 A
3881391 Dereszynski May 1975 A
3895663 Bashline et al. Jul 1975 A
3901066 Orlomoski Aug 1975 A
3907017 Stanwick Sep 1975 A
3910331 Randall Oct 1975 A
3926237 Enders Dec 1975 A
3935785 Lathom Feb 1976 A
3942406 Egner Mar 1976 A
3942570 Bochman, Jr. et al. Mar 1976 A
3960047 Liffick Jun 1976 A
3967083 Bould et al. Jun 1976 A
3967669 Egner Jul 1976 A
3971289 Chaivre Jul 1976 A
3972360 Cadwallader Aug 1976 A
3975992 Cagle Aug 1976 A
3978760 Muenchinger Sep 1976 A
3982575 Ollis, Jr. et al. Sep 1976 A
3999583 Nelson Dec 1976 A
4015503 Romano Apr 1977 A
4018133 Chaivre et al. Apr 1977 A
4019550 DeHaitre Apr 1977 A
4034788 Melone Jul 1977 A
4040327 Otaki Aug 1977 A
4066278 Takagi Jan 1978 A
4071067 Goldby Jan 1978 A
4076064 Holmes Feb 1978 A
4094352 Hlinsky Jun 1978 A
4100368 Thomsen Jul 1978 A
4103725 Abe Aug 1978 A
4113278 Rissberger Sep 1978 A
4123961 Chaivre et al. Nov 1978 A
4134438 Frieberg et al. Jan 1979 A
4150702 Holmes Apr 1979 A
4169630 Wagner Oct 1979 A
4171012 Holmes Oct 1979 A
4201110 Hanai et al. May 1980 A
4210372 McGee et al. Jul 1980 A
4218954 Morel Aug 1980 A
4220188 McMurray Sep 1980 A
4223711 Tabor Sep 1980 A
4231281 Reinwall, Jr. Nov 1980 A
4252168 Capuano Feb 1981 A
4258607 Mckewan Mar 1981 A
4260055 Slaybaugh Apr 1981 A
4269248 MacLean et al. May 1981 A
4275285 Jadach Jun 1981 A
4281699 Grube Aug 1981 A
4283091 Enders Aug 1981 A
4286642 Keatley Sep 1981 A
4289181 Capuano Sep 1981 A
4293256 Pamer Oct 1981 A
4294300 Bouwman Oct 1981 A
4310272 Rich et al. Jan 1982 A
4331414 Wheatley, Jr. May 1982 A
4339179 Dany Jul 1982 A
4341497 Downey et al. Jul 1982 A
4350465 Lovisek Sep 1982 A
4351626 Holmes Sep 1982 A
4362449 Hiinsky Dec 1982 A
4373842 Bettini et al. Feb 1983 A
4376605 Thomsen Mar 1983 A
4377361 Frieberg Mar 1983 A
4380414 Capuano Apr 1983 A
4382635 Brown et al. May 1983 A
4420848 Becker Dec 1983 A
4427326 Hobson et al. Jan 1984 A
4431353 Capuano Feb 1984 A
4457560 Rowe et al. Jul 1984 A
4460300 Bettini et al. Jul 1984 A
4478387 Postema Oct 1984 A
4482278 Dom Nov 1984 A
4484833 Gallagher, Jr. Nov 1984 A
4488843 Achille Dec 1984 A
4490082 Barth Dec 1984 A
4490920 Griset Jan 1985 A
4498825 Pamer et al. Feb 1985 A
4516893 Barth May 1985 A
4518294 Barth May 1985 A
4521146 Wharton Jun 1985 A
4538313 Frieberg Sep 1985 A
4543023 Capuano Sep 1985 A
4544312 Stencel Oct 1985 A
4544313 Grossberndt Oct 1985 A
4552379 Foster Nov 1985 A
4557654 Masuda et al. Dec 1985 A
4576533 Chartier Mar 1986 A
4582462 Thiel Apr 1986 A
4583897 Briles Apr 1986 A
4595315 Gallagher, Jr. Jun 1986 A
4599172 Gardes Jul 1986 A
4611379 Heitzman Sep 1986 A
4621230 Crouch et al. Nov 1986 A
4621831 Takadera et al. Nov 1986 A
4627776 Pamer et al. Dec 1986 A
4637766 Milliser Jan 1987 A
4652194 Tajima et al. Mar 1987 A
4657459 Landt Apr 1987 A
4659273 Dudley Apr 1987 A
4665803 Mathauser May 1987 A
4669937 Feldman Jun 1987 A
4673323 Russo Jun 1987 A
4674931 Schwind et al. Jun 1987 A
4697969 Sparkes Oct 1987 A
4704058 Crunwell Nov 1987 A
4708555 Terry Nov 1987 A
4712957 Edwards et al. Dec 1987 A
4717299 Underwood Jan 1988 A
4718802 Rockenfeller et al. Jan 1988 A
4730966 Schiefer Mar 1988 A
4744119 Omori May 1988 A
4749321 Knohl et al. Jun 1988 A
4761860 Krauss Aug 1988 A
4764070 Baltzell et al. Aug 1988 A
4770560 Ott Sep 1988 A
4775272 Toth Oct 1988 A
4784555 Cantrell Nov 1988 A
4790703 Wing Dec 1988 A
4793752 Frieberg Dec 1988 A
4798507 Olak Jan 1989 A
4808050 Landt Feb 1989 A
4810106 Ohike Mar 1989 A
4812094 Grube Mar 1989 A
4812095 Piacenti et al. Mar 1989 A
4813835 Toth Mar 1989 A
4815920 Morooka Mar 1989 A
4824305 McCauley Apr 1989 A
4842339 Roulinson Jun 1989 A
4850776 Toth Jul 1989 A
4867625 Dixon Sep 1989 A
4869633 Hayashi Sep 1989 A
4883399 MacLean Nov 1989 A
4887950 Sakayori et al. Dec 1989 A
4897005 Peterson et al. Jan 1990 A
4898429 Pumer Feb 1990 A
4900206 Kazino et al. Feb 1990 A
4907824 Smirnoff Mar 1990 A
4934491 Yamaoka et al. Jun 1990 A
4941787 Shaffer Jul 1990 A
4944523 Hardy, Jr. et al. Jul 1990 A
4944644 Bell Jul 1990 A
4948319 Day et al. Aug 1990 A
4955772 Reck Sep 1990 A
4955773 Toth Sep 1990 A
4968202 Lanham Nov 1990 A
4969788 Goiny Nov 1990 A
4971498 Goforthe Nov 1990 A
4973209 Essom et al. Nov 1990 A
4976576 Mahaney, Jr. et al. Dec 1990 A
4978350 Wagenknecht Dec 1990 A
4984938 Scott, Jr. et al. Jan 1991 A
4986712 Fultz Jan 1991 A
4993902 Hellon Feb 1991 A
4998780 Eshler et al. Mar 1991 A
4999899 Sawyer Mar 1991 A
5000638 Essom et al. Mar 1991 A
5003341 Ohtorii Mar 1991 A
5011192 Campo Apr 1991 A
5026961 Watanabe et al. Jun 1991 A
5028093 Nason Jul 1991 A
5048898 Russell Sep 1991 A
5054988 Shiraiwa Oct 1991 A
5061132 Cosenza Oct 1991 A
5071301 Engelhardt et al. Dec 1991 A
5074728 Hsu Dec 1991 A
5080545 McKinlay Jan 1992 A
5082409 Bias Jan 1992 A
5088869 Greenslade Feb 1992 A
5090855 Terry Feb 1992 A
5094143 Anderson, Jr. Mar 1992 A
5094698 Gallagher, Jr. Mar 1992 A
5110245 Hiroyuki May 1992 A
5112176 McCauley May 1992 A
5141374 Olofsson Aug 1992 A
5145273 Hellon et al. Sep 1992 A
5163739 Stanlake Nov 1992 A
5163797 Patti Nov 1992 A
5180266 Nolan Jan 1993 A
5181767 Hudgins et al. Jan 1993 A
5183359 Barth Feb 1993 A
5186501 Mano Feb 1993 A
5190423 Ewing Mar 1993 A
5193884 Sheu et al. Mar 1993 A
5203656 McKinlay Apr 1993 A
5211551 Uppal et al. May 1993 A
5219255 Hussain et al. Jun 1993 A
5228725 Aoyagi et al. Jul 1993 A
5234291 Swemmer Aug 1993 A
5236520 Gallagher, Jr. Aug 1993 A
5242253 Fulmer Sep 1993 A
H1258 Hindle, Jr. Dec 1993 H
5273384 Dunbar Dec 1993 A
5297854 Nielson et al. Mar 1994 A
5302069 Toth et al. Apr 1994 A
5306091 Zaydel et al. Apr 1994 A
5320461 Stanesic Jun 1994 A
5324148 Notaro Jun 1994 A
5330594 Gallagher, Jr. Jul 1994 A
5333976 Dobbrunz Aug 1994 A
5340254 Hertel et al. Aug 1994 A
5350266 Espey et al. Sep 1994 A
5353211 Merko Oct 1994 A
5360304 Notaro et al. Nov 1994 A
5370486 Plummer Dec 1994 A
5380070 FitzGerald Jan 1995 A
5395195 Fulmer Mar 1995 A
5407312 Terrizzi Apr 1995 A
5409338 McKinlay Apr 1995 A
5412874 Madden May 1995 A
5423646 Gagnon Jun 1995 A
5449193 Rivard et al. Sep 1995 A
5449216 Gierman et al. Sep 1995 A
5452977 Terrizzi Sep 1995 A
5453139 Gallagher, Jr. Sep 1995 A
5454888 Gallagher, Jr. Oct 1995 A
5492019 Madden Feb 1996 A
5496425 Gallagher, Jr. Mar 1996 A
5499193 Sugawara et al. Mar 1996 A
5507517 Krawczak Apr 1996 A
5520445 Toth May 1996 A
5533849 Burdick Jul 1996 A
5538566 Gallagher, Jr. Jul 1996 A
5551722 Schwartz et al. Sep 1996 A
5555628 Madden Sep 1996 A
5584628 Bernoni Dec 1996 A
5590992 Russell Jan 1997 A
5597279 Thomas et al. Jan 1997 A
5599148 Hirose Feb 1997 A
5622074 Cushman Apr 1997 A
5623584 Kurumida Apr 1997 A
5626449 McKinlay May 1997 A
5634377 Kimura et al. Jun 1997 A
5649587 Plant Jul 1997 A
5667347 Matthews Sep 1997 A
5667348 Chen et al. Sep 1997 A
5672037 Iwata Sep 1997 A
5674035 Hettich et al. Oct 1997 A
5688091 McKinlay Nov 1997 A
5697278 Shun-Yi Dec 1997 A
5702443 Branemark Dec 1997 A
5702445 Branemark Dec 1997 A
5704631 Sparks et al. Jan 1998 A
5704998 Gallagher, Jr. Jan 1998 A
5711581 Plumer Jan 1998 A
5713707 Gagnon Feb 1998 A
5730568 Lanham et al. Mar 1998 A
5746560 Barth et al. May 1998 A
5752794 Krawczak May 1998 A
5772377 Bydalek Jun 1998 A
5779411 Vasseur et al. Jul 1998 A
5779709 Harris, Jr. et al. Jul 1998 A
5807010 Parker et al. Sep 1998 A
5810532 Huang Sep 1998 A
5810670 Yamamuro et al. Sep 1998 A
5820322 Hermann et al. Oct 1998 A
5842749 DiMarco Dec 1998 A
5857818 Bias, Sr. Jan 1999 A
5890859 Hasnik Apr 1999 A
5893694 Wilusz et al. Apr 1999 A
5918946 DiMarco Jul 1999 A
5921520 Wisniewski Jul 1999 A
5947668 Thommes Sep 1999 A
5961264 Postadan Oct 1999 A
5967721 Giachinta et al. Oct 1999 A
5980177 Schiess et al. Nov 1999 A
5984602 Park Nov 1999 A
5987721 Morris Nov 1999 A
6006414 Corporon et al. Dec 1999 A
6007079 Kincaid et al. Dec 1999 A
6007109 Schoetz Dec 1999 A
6010169 Cox et al. Jan 2000 A
6023833 Jacobsmeier Feb 2000 A
6036420 Somers et al. Mar 2000 A
6039408 Alvarez Mar 2000 A
6039524 McKinlay Mar 2000 A
6053682 Krauter et al. Apr 2000 A
6062786 Garver et al. May 2000 A
6074148 Wilson Jun 2000 A
6102488 Wilson Aug 2000 A
6106077 Kluge et al. Aug 2000 A
6106208 Lin Aug 2000 A
6135689 Matsunami Oct 2000 A
6135691 Nadarajah et al. Oct 2000 A
6137080 Borchardt et al. Oct 2000 A
6142579 Thiel Nov 2000 A
6149363 March Nov 2000 A
6152412 Basickes et al. Nov 2000 A
6155167 Meyer Dec 2000 A
6155761 Donovan Dec 2000 A
6183180 Copple et al. Feb 2001 B1
6193283 Pickett, Jr. et al. Feb 2001 B1
6206606 Mita et al. Mar 2001 B1
6220806 Chapman et al. Apr 2001 B1
6225566 Dienst May 2001 B1
6227782 Bowling et al. May 2001 B1
6263562 Gosis et al. Jul 2001 B1
6273658 Patterson et al. Aug 2001 B1
6287064 Jhumra et al. Sep 2001 B1
6290445 Duran et al. Sep 2001 B1
6305627 Stiner et al. Oct 2001 B1
6305890 Okamura Oct 2001 B1
6308997 Haseley et al. Oct 2001 B1
6318942 Wiecoorek Nov 2001 B1
6325874 Wheeler, Jr. Dec 2001 B1
6336779 Jakob et al. Jan 2002 B1
6337456 Taniguchi et al. Jan 2002 B1
6347915 Balzano Feb 2002 B1
6357953 Ballantyne Mar 2002 B1
6402171 Nickerson et al. Jun 2002 B1
6418772 Talbott et al. Jul 2002 B1
6435791 Bydalek Aug 2002 B1
6450747 Fischer Sep 2002 B1
6499925 Duran et al. Dec 2002 B2
6503038 McGough Jan 2003 B2
6511132 Wright Jan 2003 B1
6517222 Orlov Feb 2003 B1
6554552 McKinlay Apr 2003 B2
6572127 Pazdirek Jun 2003 B2
6588999 Kubler et al. Jul 2003 B2
6592314 Wilson Jul 2003 B1
6655745 Fohrenkamm et al. Dec 2003 B2
6711809 Fischer et al. Mar 2004 B1
6749386 Harris Jun 2004 B2
6776565 Chang Aug 2004 B2
6808350 Tooman et al. Oct 2004 B1
6810309 Sadler et al. Oct 2004 B2
6814400 Henderson et al. Nov 2004 B2
6827539 Somers et al. Dec 2004 B2
6843631 Winker Jan 2005 B2
6852181 Wheeler, Jr. Feb 2005 B2
6860689 Attanasio Mar 2005 B1
6860692 Van Ingen et al. Mar 2005 B2
6866457 Wilson Mar 2005 B2
6878069 Swim, Jr. Apr 2005 B2
6891829 Bergantino et al. May 2005 B1
6896465 Andersson May 2005 B2
6899503 Anderson et al. May 2005 B2
6916144 Lees Jul 2005 B2
6935825 Winker Aug 2005 B2
6957939 Wilson Oct 2005 B2
7004700 Wilson Feb 2006 B2
7261506 Smolarek Aug 2007 B2
20020039522 Hartmann et al. Apr 2002 A1
20020098033 Cardoso Jul 2002 A1
20030005786 Stuart Jan 2003 A1
20030040795 Elson et al. Feb 2003 A1
20030108403 Scoyoc Jun 2003 A1
20030194294 Wilson Oct 2003 A1
20040167001 Hagihara et al. Aug 2004 A1
20040174015 Deremiah Sep 2004 A1
20050008457 Winker Jan 2005 A1
20050095085 Winker May 2005 A1
Foreign Referenced Citations (51)
Number Date Country
B-1 785 270 Jan 1972 AU
374 858 Jan 1964 CH
593 758 Mar 1934 DE
79 16 057 Sep 1979 DE
33 35 723 Apr 1985 DE
87 15 472 Feb 1988 DE
41 05 741 Sep 1992 DE
41 05 741 Sep 1992 DE
44 39 567 Aug 1995 DE
298 15 492 Oct 1996 DE
199 56 287 May 2001 DE
0 153 487 Apr 1985 EP
0 265 132 Apr 1988 EP
291412 Nov 1988 EP
0 939 236 Jan 1999 EP
0930 175 Jul 1999 EP
1 248 004 Oct 2002 EP
575 341 Jul 1924 FR
633 186 Jan 1928 FR
646 842 Nov 1928 FR
1 261 528 May 1961 FR
2 121 270 Aug 1972 FR
2 457 406 Dec 1980 FR
A-7 781 Mar 1912 GB
A-213 188 Mar 1924 GB
507 104 Jul 1939 GB
547 634 Sep 1942 GB
567 862 Mar 1945 GB
618388 Apr 1949 GB
662 298 Dec 1951 GB
739495 Oct 1955 GB
830 722 Mar 1960 GB
2051285 Jan 1981 GB
2 166 516 May 1986 GB
2 176 859 Jan 1987 GB
2 179 416 Mar 1987 GB
2201216 Aug 1988 GB
26739 Dec 2004 GB
61-286606 Dec 1961 JP
46-012-091 Apr 1971 JP
51-026263 Feb 1976 JP
54-14351 Feb 1979 JP
A-54-147349 Nov 1979 JP
61-149606 Jul 1986 JP
A-61-192915 Aug 1986 JP
62-010101 Jan 1987 JP
A-62-176828 Jun 1987 JP
62-171510 Jul 1987 JP
06-341420 Dec 1994 JP
2003-247519 May 2003 JP
WO 9407041 Mar 1994 WO
Related Publications (1)
Number Date Country
20070189876 A1 Aug 2007 US
Continuations (2)
Number Date Country
Parent 10688173 Oct 2003 US
Child 11788085 US
Parent 09933312 Aug 2001 US
Child 10688173 US