Wild bird feed dispenser with squirrel-resistant mechanism

Information

  • Patent Grant
  • 8978586
  • Patent Number
    8,978,586
  • Date Filed
    Thursday, May 23, 2013
    11 years ago
  • Date Issued
    Tuesday, March 17, 2015
    9 years ago
Abstract
A bird feed dispenser for wild birds with squirrel-resistant mechanism that occludes feed ports when a non-bird having a weight sufficient to activate the mechanism engages a portion of the roof or a perch thereon. The dispenser includes at least two feed ports, corresponding perches, and a torsion spring that provide biasing force for the mechanism. The occlusion of feed ports in the dispenser is such that when a non-bird having weight sufficient to activate the mechanism engages a portion of the roof or a perch thereon, all the feed ports are obstructed.
Description
TECHNICAL FIELD

Aspects of the presently disclosed technology relate to wild bird feed dispensers. In particular, the technology relates to wild bird feed dispensers that include mechanisms that resist non-birds from accessing the feed in the dispenser.


BACKGROUND

Attracting wild birds by feeding birdseed is a very popular hobby. Usually, persons who wish to attract wild birds, specifically song birds, with feed do not wish to also attract non-bird species, specifically squirrels. Squirrels enjoy eating birdseed and can discourage wild birds from visiting the birdfeeder device, especially when the squirrels are likely to consume most of the birdseed. This can be expensive as well, since feeding squirrels and such non-bird species as well as wild birds can be quite burdensome. There are many mechanisms and strategies to deny squirrels and the like access to the bird seed in a bird feeder. Most such mechanisms, as here, rely on the substantial difference between the weight of a typical squirrel and that of a desirable song bird.


SUMMARY

Disclosed is a feeder for dispensing birdfeed to wild birds but resists dispensing that birdseed to non-birds. These feeders have a hanger for suspending the bird feeder from a support, and a housing having a generally vertically extending wall. This wall defines a feed reservoir for a supply of the birdseed to be dispensed. The housing wall has at least two feeding ports formed through the wall. The housing also defines an upwardly facing opening into the feed reservoir, primarily for filling the feed reservoir with birdfeed, preferably birdseed. The feeder also has a roof assembly which removably covers the upwardly facing opening into the feed reservoir. This roof assembly is mounted for movement relative to the housing. There is a perch at each of the at least two feeding ports. This perch is mounted for movement relative to its adjacent port. There is a mechanical link attached to the perch and extending to and linking the roof assembly, whereby movement of the roof assembly relative to the housing causes to perch to move relative to its adjacent port. The roof assembly includes at least one opening sized to permit the hanger to pass through the roof whereby the hanger attaches to and suspends the housing and whereby movement of the perch or movement of the roof assembly relative to the housing is permitted even when the feeder is suspended by this hanger. There is at least one torsion spring for biasing the perch into a first position relative to its adjacent port. This torsion spring permits the perch to move to a second position when a non-bird moves either the roof assembly or the perch downwardly against the bias of this torsion spring. The link preferably extends generally vertically from the perch upwardly to engage a portion of the roof assembly that extends outwardly from and beyond the wall of the housing. This mechanical link most preferably has an aperture aligned with a feed port at least in one of the spring biased positions of the perch.


Other implementations are also described and recited herein. Further, while multiple implementations are disclosed, still other implementations of the presently disclosed technology will become apparent to those skilled in the art from the following detailed description, which shows and describes illustrative implementations of the presently disclosed technology. As will be realized, the presently disclosed technology is capable of modification in various aspects, all without departing from the spirit and scope of the presently disclosed technology. Accordingly, the drawings and detailed description are to be regarded as illustrative in nature and not limiting.





BRIEF DESCRIPTION OF THE FIGURES


FIG. 1 is a perspective view of one embodiment.



FIG. 2 is an exploded view showing the main parts of the first embodiment.



FIG. 3 is a partial close-up view of a moveable perch and an adjacent feed port.



FIG. 4 is a view similar to FIG. 3 with a base portion removed to show torsion springs.



FIG. 5 is a vertical cross-section through the center of the embodiment of FIG. 1.



FIG. 6 is a close-up partial sectional view through an upper portion of the first embodiment showing the roof assembly, the hanger and the housing.



FIG. 7A is another embodiment shown in perspective.



FIG. 7B is very similar to FIG. 7A with the roof assembly and actuators depicted transparently.



FIG. 8 is a plan view of the embodiment shown in FIG. 7 with a transparent roof assembly.



FIG. 9 is an exploded view of the main parts of the embodiment of FIG. 7A.



FIG. 10 shows a pair of port shutters with their inter-engagable linkages separated for clarity.



FIG. 11 shows a pair of port shutters with their linkages inter-engaged.



FIG. 12 is another view of the port shutters of FIG. 11.



FIG. 13 shows the link extending from the perch to engage the underside of the roof assembly.



FIG. 14 is a partial cross-sectional view of a pair of movable perch assemblies.



FIG. 15 shows the embodiment of FIG. 7A with a hidden port shutter in order to view a torsion spring adjustably engaging the housing.



FIG. 16 is a close up of the link between the perch and the underside of the roof, as well as a latch and latch stud.



FIG. 17 is a side view of the embodiment of FIG. 7A, wherein a port shutter is depicted transparently.





DETAILED DESCRIPTION

Referring to the various figures, the birdfeeder assembly 10 comprises two generally vertically symmetrical housing halves of injection molded preferably transparent or translucent polymer. These two housing halves may be held together by glue or screws or may be assembled using clips and hinging mechanisms so that the housing 12 can be easily cleaned after being used to feed birds. The housing 12 preferably includes internal baffles 14 to help distribute the seed that is poured into the top upwardly facing opening towards various feed ports 16. The feed ports 16 are thus molded-in passages through the housing 12 wall from the outside of the housing 10 to the interior where the bird seed is held within the housing 12 reservoir. Referring to the embodiment of FIG. 1, the housing 12 includes four feed ports 16, two on each diametrically opposite side. Each pair of feed ports 16 is arranged one vertically above the other. The bottom of the feed reservoir is defined by a pair of generally curving walls 18 that engage along adjacent edges or surfaces to define a generally solid bottom which slopes to the bottom-most pair of feed ports 16. As seen in FIG. 4, below this bottom surface the housing 12 walls continue and support and define a pair of studs 20 about which a pair of torsion springs 22 are mounted. As will be detailed, these torsion springs 22 engage a pair of actuators 24 or linkages which mechanically interconnect all of the perches 26 as well as at least a portion of the roof assembly 28.


Referring to FIG. 3, a base 30, preferably of a stamped thin metal similar to the roof assembly 28 and actuator 24 portions as will be detailed, engages and surrounds this lower portion of the housing 12. As stated previously, this embodiment has four feeding ports 16. Accordingly, this embodiment includes a perch 26 adjacent to each of the feeding ports 16. The perch 26 preferably comprises a T-shaped metal protrusion attached to a sheet metal actuator 24 by a pair of lugs 56. This construction permits the perch 26 to hinge upwardly and fit snugly against the and parallel to the housing 10 for easy compact shipping. More importantly, however, each perch 26 is affixed to the actuator 24 which as will be detailed, is in turn mounted for movement relative to the housing 12. Referring again to FIG. 4, a torsion spring 22 as mentioned previously is mounted at one end to the housing 12 and around an integrally formed stud 20 within the bottom portion of the housing 12. As seen in FIGS. 4 and 5, the distal movable end of the torsion spring 22 engages preferably the lower-most end of the actuator 24. In this embodiment the torsion spring 22 passes through a slot 32 in the base 30 and serves to help guide the generally vertical movement of the perches 26 and actuators 24 (and at least a portion of the roof assembly 28 as will be detailed.)


Referring to FIG. 6, the upper-most end of the actuator 24 is affixed, preferably by welding, to a portion of the roof assembly 28. In more detail, the roof assembly 28 comprises a lid portion 34 which is removably attached to and covers the upwardly facing opening into the feed reservoir of the housing 12. This portion is separate from but cooperates with a movable, radially-extending outward portion 36 of the roof assembly 28 which is affixed to the upper end of the actuators 24. These two portions of the roof assembly 28 (i.e., lid portion 34 and the movable portion 36) act to close the opening used to fill the seed reservoir and to help shield the feed reservoir and the feed ports 16 from precipitation. The second or movable portion 36 of the roof assembly 28 protrudes radially outwardly beyond the vertical wall of the housing 12 and, as previously discussed, is affixed to the upper end of the actuator 24.


Referring to various figures, a hanger 38, preferably comprising a flexible steel cable of about a 1/16th inch diameter is affixed at each of its ends to a molded in plastic lug 68 at the upper-most edge of the housing 12.


The movable portion 36 of the roof assembly 28 is attached to and moves with the actuator 24 and thus moves against or with the bias of the torsion springs 22 as previously described. Note that the actuator 24 includes an aperture 40 which, in one position of the spring biased perch 26 is aligned with the feed port 16 through the housing 12 wall. If a non-bird species, such as a squirrel, attempts to access the birdseed in the feed when the feeder is hanging from the hanger 38, usually this requires the squirrel to grip either the roof 28 or one or more of the perches 26, since the housing 12 has almost no features which can be gripped by the squirrel. The weight of this non-bird species overpowers the spring bias of the torsion springs 22, causing the movable portion 36 of the roof assembly 28 and the actuator 24 and its attached perches 26 to move downwardly. This downward displacement moves the apertures 40 in the actuators 24 out of alignment with the feed ports 16, thus occluding or obscuring access to the feed ports 16.


Further referring to FIGS. 3 and 4, the movable end of the biasing spring 22 is loosely attached to the actuator 24 and slides in a slot 32 through a peripheral band 42 that extends and connects the lower-most end of each actuator 24 with its opposing actuators 24. The peripheral band 42 helps guide the actuator 24 in a substantially only vertical direction up and down so that the aperture 40 through the actuator 24 normally aligns laterally as well as vertically with the feed port 16 when a bird is sitting on the perch 26 or at least when any non-bird species such as a squirrel has not deflected the actuator 24 downwardly against the bias of the torsion spring 22.


In a similar manner, each actuator 24 is attached at diametrically opposite locations to the movable portion 36 of the roof assembly 28. In this way a non-bird species, such as a squirrel may attempt to access the birdseed by climbing down the hanger 38 and gripping the roof 28 portion at any location. Regardless of that location, all of the feed ports 16 become closed or occluded when the actuator 24 assembly slides downwardly, guided by and against the bias of one or more torsion springs 22.


Preferably, the overall assembly 10 includes two torsion springs 22, each mounted symmetrically opposite from one another and engaging the bottom-most edge of the adjacent actuator 24 on opposite sides of the housing 12, as seen in FIGS. 4 and 5.


Referring to FIGS. 7A and 7B, as well as subsequent figures, this embodiment also uses a pair of actuators 24 or linkages, but these actuators 24 normally bear upwardly on the downwardly-facing surface of a one-piece roof assembly 28. Each actuator 24 is mounted and guided by a screw 44 attached to a stud in the side of the housing 12 wall. The actuator 24 is capable of displacing a sliding distance 74, relative to the screw 44 location. The lower-most end of each actuator 24 includes a lug 56 to which is pivotally mounted a moveable perch 26 as previously described, the actuator 24 also has an aperture 40 which when the assembly is not being attached by a non-bird species aligns with and permits access to a feeding port 16 through the side of the housing 12. A torsion spring 22 mounted within the base 30 portion of the housing 12 engages the housing 12 in a mounting plate 46 at one end and the moveable end engages an inner surface of one of a pair of port shutters 48. The pair of port shutters 48 is shown separately in FIGS. 10-12. These consist of an upper broad portion 50 sized to occlude access through the feeding port 16 when moved towards the port 16 from the inside. Each of these shutters swing from a position spaced from the seed port 16 to a position adjacent to and against the inner surface of the feed port 16 when a non-bird species hangs from or engages the roof assembly 28 or any one of the perches 26 as will be detailed.



FIG. 14 shows a pair of perches 26 assembled to and engaging a pair of port shutters 48. Note that each of these paired perches 26 and shutters 48 pivot about axis x1 and x2 respectively. Each of the shutters 48 includes an extension arm 52 with a pair inter-engaging camming surfaces 54 such that if one of the shutters 48 moves towards the feed port 16 to occlude that feed port 16, the other shutter 48 will also move in this similar pivotal manner about its associated pivoting axis. The movement of the perch 26 is transmitted to the roof 28 or the movement of the roof 28 is transmitted to the perches 26 and thus the port shutters 48 via a lug and screw interconnections 56 as shown in FIGS. 13, 14, and 16, among others.



FIG. 15 generally shows a close-up of the lower portion of the assembly 10 with the port shutter 48 hidden in order to view the torsion spring 22. The spring bias provided by the pair of torsion springs 22 can be adjusted by moving the otherwise fixed end of the torsion spring 22 into one of two or many slots 32 formed in the bottom portion of the port shield 58 which is attached in turn to the adjacent portion of the housing 12 wall. The slots 32 in the mounting plate 46 are shown such that placement of the torsion spring 22 in differing slots 32 either increases or decreases the biasing force associated with the spring 22. The change in biasing force results in different forces necessary to displace the perch 26 and thus occlude the feed in the port 16. The reason for the variable bias force is that a change in displacement angle 70 between the moving end of the torsion spring (i.e., the end that is housed in the port shutter 48) and the static end (i.e., the end that is in the slot 32) causes a change in the force necessary to oppose such a force. In such a way, a smaller displacement angle 70 between ends of the torsion spring 22 equates to a higher biasing force necessary to displace the perch 26. As an example, to increase the force necessary to displace the perch 26 (i.e., to allow for heavier birds to feed), the torsion spring 22 is placed in a slot 32 that increases the bias force. In this example, the bias force will be the largest in the highest or topmost slot 32. On the other hand, in order to minimize the force necessary to displace the perch 26, the torsion spring 22 is placed in a slot 32 that decreases the bias force. In this example, the bias force will be the least in the lowest slot 32.


Although the embodiment of FIG. 7A includes two slots 32 for altering the biasing force associated with lowering the perch 26 and thus occluding access to the feed, the assembly 10 can includes any suitable number of slots 32. As an example, the embodiment of FIG. 1 and/or FIG. 7A may include three or four slots 32 for the altering of the biasing force. Whereas the embodiment of FIG. 1 includes a single slot 32, it is contemplated that such an embodiment may include additional slots 32, as similarly depicted with respect to the embodiment in FIG. 7A.



FIG. 15 further illustrates the interaction between the actuator 24, the mounting plate 46, and the perch 26. The actuator 24 couples to the perch 26 at a lug and screw 56 as described previously. As a force is applied to either a portion of the roof assembly 28 or to the perch 26, the actuator 24 displaces downwardly relative to the mounting plate 46. The low end of the actuator 24 also includes a notch 66 that accommodates certain movements from the perch 26 when the actuator 24 is in a downward displacement.


Referring to FIG. 16, the roof 28 is attached to the housing 12 by a latch 60 and a latch stud 62. In addition, the screw 44 and stud are visible, wherein a downward force on the roof assembly 28 will engage with a top end of the actuator 24 and cause the actuator to displace downwardly relative to the screw 44 and stud, which is coupled to the housing 12. It is evident from this illustration that the amount of downward displacement of the actuator is determined by the allowable sliding distance 74 of the actuator 24 relative to the screw 44.


The roof assembly 28 toggles or rotates about the latch stud 62, as seen in FIG. 16. The rotation or toggling of the roof 28 is guided or otherwise restrained by guides 72 on either side of the latch 60. The amount of rotation of the roof 28 effects the downward displacement of the roof 28. The displacement of the roof can be controlled by appropriate placement of the guides 72 relative to the latch 60 and latch stud 62. In such a way, the position and angle of the guides 72 will correlate to the sliding distance 74 of the screw 44 so that the downward displacement of the roof 28 generally corresponds with the downward displacement of the actuator 24.


Referring to FIG. 16, the hanger 38 extends through an aperture in the roof 28 and is affixed at each of its ends to a molded plastic lug 68 at the upper most edge of the housing 12, as described previously.



FIG. 17 depicts the assembly 10 with a transparent port shutter 48 in order to clearly display the torsion spring 22 and the inner structure of the shutter 48. The moving end of the torsion spring 22 is mounted within the port shutter 48 such that rotation of the shutter 48 about axis x1 towards the port 16 decreases the displacement angle 70 for so long as a force is applied. As the force is decreased, on either the perch 26 or a portion of the roof assembly 28, the shutter 48 rotates about axis x1 back towards the center of the housing 12, which correspondingly increases the displacement angle 70. Further referring to FIG. 17, the perch 26 is received in the receiving slot 64 of the port shutter 64. The receiving slot 64 includes a latch mechanism on the upper side of the shutter 48 that engages with the shaft of the perch 26.


In operation, this bird feeder 10 example functions as follows: The user releases the roof from the housing 12 by deflecting the latches 60 outwardly from over the latch studs 62, and slides the roof upwardly along a portion of the hanger 38 cable. This exposes the upwardly facing opening into the seed reservoir formed by the walls of the housing 12. Once the housing 12 is filled with birdseed to form a reservoir of the seed, the interior adjacent the feed ports 16 become filled with seed. The user latches the roof onto the latch studs 62. The seed filters down through the housing 12 and is distributed to in this case two seed ports 16. Birds having a normal weight can rest on the perch 26 and feed via the feed ports 16. The actuators 24 remain relatively unmoving, being held in an upward position by the bias of the one or preferably two torsion springs 22. Should a non-bird species, such as a squirrel, try to feed from the seed ports 16, the spring bias of the torsion springs 22 is overcome, thus moving the perch 26 downwardly, which in turn drags the actuator 24 down as well as moves both of the port shutters 48 downwardly and forwardly to occlude the seed ports 16. Similarly, if a non-bird species such as a squirrel tries to access the seed ports 16 by gripping and hanging from the roof, the roof pivots about the latch studs, pressing on the adjacent actuator 24. The actuator 24 in turn moves the perch 26 immediately below that side of the housing 12, and the port shutter closes. Since both port shutters 48 are linked together with the cam surfaces 54 as previously discussed, the other port 16 is closed by the shutter as well, thus defeating any chance that a squirrel or other non-bird species could easily access the supply of seed in the housing 12.


Various modifications and additions can be made to the exemplary embodiments discussed without departing from the spirit and scope of the presently disclosed technology. For example, while the embodiments described above refer to particular features, the scope of this disclosure also includes embodiments having different combinations of features and embodiments that do not include all of the described features. Accordingly, the scope of the presently disclosed technology is intended to embrace all such alternatives, modifications, and variations together with all equivalents thereof.

Claims
  • 1. A feeder for dispensing a supply of bird feed to wild birds, but resisting dispensing the bird feed to a non-bird, the feeder comprising: a housing having a generally vertically extending wall defining a feed reservoir for the supply of bird feed to be dispensed and an upwardly facing opening to the feed reservoir, the wall having a plurality of feed ports formed through the wall;a roof assembly removably covering the upwardly facing opening and mounted for movement relative to the housing, the roof assembly including at least one opening sized to permit a hanger to pass through, the hanger attaching to the housing for suspending the feeder from a support;a plurality of perches, each of the perches disposed adjacent to an adjacent port of the feed ports and being mounted for movement relative to the adjacent port, movement of the perches and movement of the roof assembly relative to the housing being permitted when the housing is suspended by the hanger;at least one spring for biasing each of the perches into a first position relative to the adjacent port, the at least one spring permitting each of the perches to move to a second position when the non-bird moves either the roof assembly or at least one of the perches downwardly against the bias of the at least one spring; anda mechanical link attached to each of the perches and extending generally vertically from the perches to and linking a portion of the roof assembly that extends outwardly from and beyond the wall, whereby movement of the roof assembly relative to the housing causes each of the perches to move relative to the adjacent port.
  • 2. A feeder for dispensing a supply of bird feed to wild birds but resisting dispensing the bird feed to a non-bird, the feeder comprising: a housing having a generally vertically extending wall defining a feed reservoir for the supply of bird feed to be dispensed and an upwardly facing opening to the feed reservoir, the wall having a plurality of feed ports formed through the wall;a roof assembly removably covering the upwardly facing opening and mounted for movement relative to the housing, the roof assembly including at least one opening sized to permit a hanger to pass through, the hanger attaching to the housing for suspending the feeder from a support;a plurality of perches, each of the perches disposed adjacent to an adjacent port of the feed ports and being mounted for movement relative to the adjacent port, movement of the perches and movement of the roof assembly relative to the housing being permitted when the housing is suspended by the hanger;at least one spring for biasing each of the perches into a first position relative to the adjacent port, the at least one spring permitting each of the perches to move to a second position when the non-bird moves either the roof assembly or at least one of the perches downwardly against the bias of the at least one spring; anda mechanical link attached to each of the perches and extending generally vertically from the perches upwardly to a portion of the roof assembly that extends outwardly from and beyond the wall, whereby movement of the roof assembly relative to the housing causes each of the perches to move relative to the adjacent port.
  • 3. The feeder of claim 2, wherein the mechanical link has a plurality of apertures, each aperture aligned with one of the feed ports.
  • 4. The feeder of claim 2, wherein a biasing force of the at least one spring is adjustable.
  • 5. The feeder of claim 4, wherein the at least one spring includes a reference end and a moving end, and the biasing force is adjustable by changing a displacement angle defined between the reference end and the moveable end of the at least one spring.
  • 6. The feeder of claim 5, wherein moving the reference end of the at least one spring into a plurality of slots changes the displacement angle.
  • 7. The feeder of claim 2, wherein a biasing force of each of the at least one spring is separately adjustable.
  • 8. The feeder of claim 2, wherein movement of one of the perches relative to the adjacent port causes movement of all of the perches relative to the feed ports.
  • 9. The feeder of claim 2, wherein the perches are mechanically linked by a camming device, such that movement from one of the perches is transmitted through the camming device to another of the perches.
  • 10. The feeder of claim 9, wherein opposing perches include reciprocating halves of the camming device.
  • 11. The feeder of claim 2, wherein a plurality of apertures in the mechanical link are aligned with the feed ports when the perches are in the first position, and when the perches are in the second position, the feed ports are occluded.
  • 12. The feeder of claim 2, wherein movement of one of the perches relative to the adjacent port causes the roof assembly to move relative to the housing.
  • 13. The feeder of claim 12, wherein the movement of the roof assembly is downward displacement of the portion of the roof assembly that extends outwardly from and beyond the wall.
  • 14. The feeder of claim 13, wherein the downward displacement of the roof assembly is a result of the roof assembly pivoting about an orthogonal axis to an axis defined through the feed ports.
  • 15. The feeder of claim 12, wherein the movement of the roof assembly includes a pivoting movement relative to the housing.
  • 16. The feeder of claim 2, wherein the mechanical link includes a pair of actuators extending along the wall to the portion of the roof assembly that extends outwardly from and beyond the wall.
  • 17. The feeder of claim 2, wherein the roof assembly includes a lid portion for removably covering the upwardly facing opening and a movable portion including the portion of the roof assembly that extends outwardly from and beyond the wall.
  • 18. The feeder of claim 17, wherein a translational movement of the movable portion causes all of the perches to move to the second position and occlude all of the feed ports.
  • 19. The feeder of claim 2, wherein the roof assembly includes a lid for removably covering the upwardly facing opening, the lid including the portion of the roof assembly that extends outwardly from and beyond the wall.
  • 20. The feeder of claim 2, wherein the feed ports are accessible when the perches are in the first position and the feed ports are at least partially occluded when the perches are in the second position.
CROSS-REFERENCE TO RELATED APPLICATIONS

The present application claims priority under 35 U.S.C. §119 to U.S. provisional patent application 61/650,711, which was filed May 23, 2012, entitled “WILD BIRD FEED DISPENSER WITH SQUIRREL-RESISTANT MECHANISM,” and is hereby incorporated by reference in its entirety into the present application.

US Referenced Citations (301)
Number Name Date Kind
276392 Gregory Apr 1883 A
447006 Sweeney Feb 1891 A
771654 Meek Oct 1904 A
824693 Hood Jun 1906 A
922720 Peters et al. May 1909 A
D63321 Pirson Nov 1923 S
1718432 Qualmann Jun 1929 A
1879318 Klein Sep 1932 A
D109128 Copeman Apr 1938 S
D115321 Pueschel Jun 1939 S
2283373 Krafft May 1942 A
2531915 Maly Nov 1950 A
D164692 Kelly Oct 1951 S
D165799 Stedman Jan 1952 S
D167179 Stewart Jul 1952 S
2634705 Mayes Apr 1953 A
D173658 Jones Dec 1954 S
D174139 Sadler Mar 1955 S
D178917 England et al. Oct 1956 S
2773474 Nugent Dec 1956 A
D180686 Everett Jul 1957 S
D185456 Michalek et al. Jun 1959 S
2944516 Malloy, Sr. Jul 1960 A
3022768 Lynch Feb 1962 A
D193558 Perry Sep 1962 S
D194750 Dahmus Mar 1963 S
3090354 Merritt et al. May 1963 A
3136296 Luin Jun 1964 A
D199995 Knodt Jan 1965 S
3244150 Benton Apr 1966 A
D206975 Dawson Feb 1967 S
D216002 Stone Nov 1969 S
3499413 Heard Mar 1970 A
D217470 Morrow May 1970 S
3693310 Middleton Sep 1972 A
D235744 England Jul 1975 S
3967576 Soerensen Jul 1976 A
D241699 Barecki Oct 1976 S
D244786 Dryden Jun 1977 S
D244883 Rohrmuller Jun 1977 S
D249726 Cosman Sep 1978 S
4188913 Earl et al. Feb 1980 A
4194714 Schultz Mar 1980 A
4201155 Hyde, Jr. May 1980 A
D257179 Campo Sep 1980 S
4223637 Keefe Sep 1980 A
4327669 Blasbalg May 1982 A
4328605 Hutchison et al. May 1982 A
4331104 Clarke May 1982 A
D267355 Blasbalg Dec 1982 S
D268362 Wong Mar 1983 S
D274013 Sun May 1984 S
4466376 Wells Aug 1984 A
D276510 Bent et al. Nov 1984 S
D277739 Grammas et al. Feb 1985 S
D278168 Latham et al. Mar 1985 S
D285840 Poon Sep 1986 S
4649865 Riggi Mar 1987 A
4682461 Sizemore Jul 1987 A
4712512 Schreib et al. Dec 1987 A
4738221 Nock Apr 1988 A
D297074 Burke et al. Aug 1988 S
D299770 Coffer Feb 1989 S
D300882 Olson May 1989 S
4896628 Kadunce Jan 1990 A
D313169 Scott et al. Dec 1990 S
4989548 Short et al. Feb 1991 A
4996947 Petrides Mar 1991 A
5033411 Brucker Jul 1991 A
D324436 Embree Mar 1992 S
5094417 Creed Mar 1992 A
5105765 Loken Apr 1992 A
D326003 Embree May 1992 S
D326286 Kerivan May 1992 S
5115343 Bennett May 1992 A
D334133 Hartzheim Mar 1993 S
5191857 Boaz Mar 1993 A
D335006 Blasbalg Apr 1993 S
5255631 Anderson Oct 1993 A
5265557 Lovitz Nov 1993 A
5289796 Armstrong Mar 1994 A
5291855 Laverty Mar 1994 A
D349981 Fasino Aug 1994 S
D352575 Bransky et al. Nov 1994 S
D352787 Hulse Nov 1994 S
D354079 Shapiro Jan 1995 S
D365893 Thorp Jan 1996 S
5490480 Dumond Feb 1996 A
D370313 Nottingham et al. May 1996 S
D370315 Miller May 1996 S
D371226 Lee Jun 1996 S
D371227 Lee Jun 1996 S
D371230 Nottingham et al. Jun 1996 S
D376731 Lin Dec 1996 S
D380066 Green et al. Jun 1997 S
D384443 Olfert Sep 1997 S
D384505 Stewart Oct 1997 S
5676089 Morganson Oct 1997 A
D386834 Nissim et al. Nov 1997 S
D386835 Passamare Nov 1997 S
D386836 Hunt Nov 1997 S
D388312 Sorkin Dec 1997 S
5701841 Fasino Dec 1997 A
D390490 Ruderick Feb 1998 S
5729949 Hartzheim Mar 1998 A
5782200 Knowles et al. Jul 1998 A
D397529 Fuller et al. Aug 1998 S
D399611 Ericson et al. Oct 1998 S
5947054 Liethen Sep 1999 A
D414901 Cirelli Oct 1999 S
D420176 Heinzeroth Feb 2000 S
D421709 Haslem et al. Mar 2000 S
6073581 Wang Jun 2000 A
D428437 Hmelar et al. Jul 2000 S
6095087 Bloedorn Aug 2000 A
6119627 Banyas et al. Sep 2000 A
D431760 Sullivan Oct 2000 S
D435666 Barsomian Dec 2000 S
D440361 Colwell Apr 2001 S
6213054 Marshall Apr 2001 B1
6253707 Cote Jul 2001 B1
6305321 Potente Oct 2001 B1
D451251 Chrisco et al. Nov 2001 S
D452929 Perelli Jan 2002 S
6360690 Canby Mar 2002 B1
6408788 Lieb et al. Jun 2002 B1
D459840 Lian Jul 2002 S
6415737 Banyas et al. Jul 2002 B2
6427629 Lush Aug 2002 B1
D462172 Aurelio, Jr. Sep 2002 S
D462286 Perelli Sep 2002 S
6450120 Nylen Sep 2002 B1
6457439 Engelking Oct 2002 B1
D466255 Kuelbs Nov 2002 S
D466656 Kuelbs et al. Dec 2002 S
D467513 Neff Dec 2002 S
D468368 Jones Jan 2003 S
D470630 Kuelbs Feb 2003 S
D471327 Kuelbs Mar 2003 S
D472490 Perelli Apr 2003 S
6543383 Cote Apr 2003 B1
6543384 Cote Apr 2003 B2
6546894 Chrisco et al. Apr 2003 B2
D475128 Svendsen et al. May 2003 S
6571742 Tsengas Jun 2003 B1
6622654 Fasino Sep 2003 B2
D480291 Sorkin Oct 2003 S
D482262 Sorkin Nov 2003 S
6701867 Garrison Mar 2004 B1
D490576 Rich et al. May 2004 S
D491443 Lowery Jun 2004 S
D495900 Mayse Sep 2004 S
D497458 Nauert Oct 2004 S
D499515 Schulze et al. Dec 2004 S
D500243 Turek Dec 2004 S
D500668 Kelly et al. Jan 2005 S
D503019 Swift et al. Mar 2005 S
6863024 Obenshain Mar 2005 B1
6866004 Lush Mar 2005 B1
D504746 Lee May 2005 S
D505755 Lundstrom et al. May 2005 S
6895894 Fort, II May 2005 B2
D509325 Jung et al. Sep 2005 S
6945192 Cote Sep 2005 B2
D512661 Morris et al. Dec 2005 S
D512800 Jung et al. Dec 2005 S
6986322 Lumpkin et al. Jan 2006 B2
D514319 King et al. Feb 2006 S
D515748 Jung et al. Feb 2006 S
D516413 Anderson et al. Mar 2006 S
7021241 Nock Apr 2006 B2
7032538 Lush Apr 2006 B1
7032539 Obenshain Apr 2006 B1
D522180 Goria, II May 2006 S
D524490 Obenshain Jul 2006 S
7086352 Goodger Aug 2006 B2
7096821 Ruff Aug 2006 B2
D535445 Obenshain Jan 2007 S
7185605 Lush Mar 2007 B1
7191731 Cote Mar 2007 B2
D542982 Wendell May 2007 S
D543256 Chen May 2007 S
7258075 Jones et al. Aug 2007 B1
7261056 Hunter et al. Aug 2007 B2
D551952 Palmer Oct 2007 S
7278613 Roy Oct 2007 B2
7287486 Hunter Oct 2007 B2
D557595 Ernst et al. Dec 2007 S
7302911 Lush Dec 2007 B1
D558567 Ismert Jan 2008 S
D561040 Sequeira Feb 2008 S
7347162 Zieff et al. Mar 2008 B2
D567098 Sequeira Apr 2008 S
D568754 Sequeira May 2008 S
7370607 O'Dell May 2008 B2
7373901 Baynard May 2008 B2
D575118 Bignon Aug 2008 S
D575591 Bonetti Aug 2008 S
7409922 Baynard et al. Aug 2008 B1
D578379 Sorkin Oct 2008 S
D578870 Sorkin Oct 2008 S
D581183 Kutscha et al. Nov 2008 S
D581259 Portz Nov 2008 S
7448346 Stone et al. Nov 2008 B1
7451580 Kelly et al. Nov 2008 B2
7469656 Hunter et al. Dec 2008 B2
7484475 Milliner Feb 2009 B2
7503282 Lush Mar 2009 B1
7506611 Lush Mar 2009 B1
D590541 Chaoui Apr 2009 S
7516716 Puckett et al. Apr 2009 B2
D592362 Rutherford et al. May 2009 S
D594737 Kelly et al. Jun 2009 S
7549394 Nock Jun 2009 B2
D600099 Dahlin Sep 2009 S
D606708 McMullen Dec 2009 S
D607612 Yang Jan 2010 S
D609064 Najaryan et al. Feb 2010 S
D609864 Tsai Feb 2010 S
7654225 Madsen et al. Feb 2010 B2
D612108 Torres et al. Mar 2010 S
D612730 Rushe Mar 2010 S
D614019 Goodman et al. Apr 2010 S
D616040 Spencer May 2010 S
D616288 Simon et al. May 2010 S
7721677 McClaskey May 2010 B1
7739982 Cote Jun 2010 B2
D620074 Muhlenbruck Jul 2010 S
D621241 Mirer et al. Aug 2010 S
D621268 Morabito Aug 2010 S
D622910 Puckett Aug 2010 S
D632952 Dablemont Feb 2011 S
D635844 Boothby Apr 2011 S
7926450 Tsengas Apr 2011 B1
D638501 Fishman May 2011 S
D644090 Sittig Aug 2011 S
8028490 Kelly et al. Oct 2011 B2
D649299 Lush Nov 2011 S
D649302 Hickok Nov 2011 S
D650261 McDuff et al. Dec 2011 S
8070380 Pucillo et al. Dec 2011 B2
D656690 Tu Mar 2012 S
D661573 Paik et al. Jun 2012 S
D664307 Krueger et al. Jul 2012 S
D664437 Barel Jul 2012 S
8230809 Cote Jul 2012 B2
D667294 Wang Sep 2012 S
8272607 Bonnema Sep 2012 B2
D671692 Carter Nov 2012 S
D677016 Carter Feb 2013 S
D678625 Carter et al. Mar 2013 S
D678626 Krueger Mar 2013 S
D678627 Carter Mar 2013 S
D679059 Carter Mar 2013 S
D679453 Krueger et al. Apr 2013 S
20030033985 Hardison Feb 2003 A1
20030136347 Fasino Jul 2003 A1
20030150390 Rich et al. Aug 2003 A1
20030226514 Cote Dec 2003 A1
20040098942 Lee et al. May 2004 A1
20040216684 Obenshain Nov 2004 A1
20040231606 Nock Nov 2004 A1
20040250777 Stachowiak Dec 2004 A1
20050120967 Ruff Jun 2005 A1
20050120972 Aboujaoude et al. Jun 2005 A1
20050263085 Rich Dec 2005 A1
20050268862 Morrison Dec 2005 A1
20060225658 Baynard Oct 2006 A1
20060249096 Gick Nov 2006 A1
20060266295 McDarren Nov 2006 A1
20060272585 O'Dell Dec 2006 A1
20060288532 Kim Dec 2006 A1
20070034160 Nock Feb 2007 A1
20070163506 Bloedorn Jul 2007 A1
20070227453 Puckett et al. Oct 2007 A1
20070227454 Fahey Oct 2007 A1
20070266951 Berns Nov 2007 A1
20080022936 Stone et al. Jan 2008 A1
20080078329 Hunter et al. Apr 2008 A1
20080105206 Rich et al. May 2008 A1
20080134979 Crocker Jun 2008 A1
20080276874 Evans Nov 2008 A1
20090020075 Wood et al. Jan 2009 A1
20090071408 Wechsler Mar 2009 A1
20090223456 Hunter et al. Sep 2009 A1
20090260576 Vosbikian Oct 2009 A1
20090283046 Black Nov 2009 A1
20090304900 Augustin Dec 2009 A1
20090314221 Wang Dec 2009 A1
20100061091 Galipeau et al. Mar 2010 A1
20100089330 McMullen Apr 2010 A1
20100288200 Lush Nov 2010 A1
20100300363 Nangia Dec 2010 A1
20110083609 Cote Apr 2011 A1
20110088626 Hepp et al. Apr 2011 A1
20110180004 Humphries et al. Jul 2011 A1
20110214616 Levin et al. Sep 2011 A1
20110226186 Hunter et al. Sep 2011 A1
20120037080 Hepp et al. Feb 2012 A1
20120055410 Cote Mar 2012 A1
20120234249 Gaze Sep 2012 A1
Foreign Referenced Citations (1)
Number Date Country
2269305 Apr 1992 GB
Non-Patent Literature Citations (48)
Entry
U.S. Appl. No. 13/107,841, filed May 13, 2011, Donegan et al.
U.S. Appl. No. 13/420,086, filed Mar. 14, 2012, Carter et al.
U.S. Appl. No. 13/420,063, filed Mar. 14, 2012, Carter et al.
U.S. Appl. No. 29/427,461, filed Jul. 18, 2012, Krueger et al.
U.S. Appl. No. 29/448,176, filed Mar. 11, 2013, Carter.
U.S. Appl. No. 13/855,523, filed Apr. 2, 2013, Donegan et al.
U.S. Appl. No. 13/855,565, filed Apr. 2, 2013, Donegan et al.
Ex Parte Quayle Action, Design U.S. Appl. No. 29/390,071, mailed Dec. 20, 2011, 4 pages.
Notice of Allowance, Design U.S. Appl. No. 29/390,071, mailed Mar. 26, 2012, 7 pages.
Response to Ex Parte Quayle Action, Design U.S. Appl. No. 29/390,071, filed Mar. 19, 2012, 20 pages.
Response to Restriction Requirement, Design U.S. Appl. No. 29/390,071, filed Dec. 12, 2011, 2 pages.
Restriction Requirement, Design U.S. Appl. No. 29/390,071, mailed Oct. 11, 2011, 4 pages.
Non-Final Office Action, U.S. Appl. No. 13/107,841, mailed Jun. 27, 2012, 9 pages.
Notice of Allowance, Design U.S. Appl. No. 29/427,461, mailed Oct. 4, 2012, 15 pages.
Response to Non-Final Office Action, U.S. Appl. No. 13/107,841, filed Nov. 27, 2012, 21 pages.
Final Office Action, U.S. Appl. No. 13/107,841, mailed Jan. 9, 2013, 22 pages.
Response to Final Office Action, U.S. Appl. No. 13/107,841, filed Jul. 8, 2013, 10 pages.
Restriction Requirement, Design U.S. Appl. No. 29/387,519, mailed Jun. 13, 2012, 4 pages.
Notice of Allowance, Design U.S. Appl. No. 29/387,520, mailed Jun. 15, 2012, 10 pages.
Ex Parte Quayle Action, Design U.S. Appl. No. 29/387,515, mailed Jun. 20, 2012, 5 pages.
Response to Restriction Requirement, Design U.S. Appl. No. 29/387,519, filed Jul. 5, 2012, 2 pages.
Non-Final Office Action, U.S. Appl. No. 29/387,516, mailed Jul. 6, 2012, 7 pages.
Response to Ex Parte Quayle Action, U.S. Appl. No. 29/387,515, filed Aug. 20, 2012, 7 pages.
Final Quayle Action, Design U.S. Appl. No. 29/387,515, mailed Aug. 28, 2012, 5 pages.
Notice of Allowance, Design U.S. Appl. No. 29/387,519, mailed Sep. 13, 2012, 11 pages.
Response to Non-Final Office Action, Design U.S. Appl. No. 29/387,516, filed Nov. 6, 2012, 10 pages.
Response to Final Office Action, Design U.S. Appl. No. 29/387,515, filed Nov. 19, 2012, 4 pages.
Notice of Allowance, U.S. Appl. No. 29/387,516, mailed Nov. 13, 2012, 11 pages.
Notice of Allowance, U.S. Appl. No. 29/387,518, mailed Dec. 21, 2012, 24 pages.
Notice of Allowance, U.S. Appl. No. 29/387,515, mailed Dec. 18, 2012, 14 pages.
Notice of Allowance, U.S. Appl. No. 29/387,520, mailed Dec. 21, 2012, 8 pages.
Notice of Allowance, U.S. Appl. No. 29/416,887, mailed Dec. 26, 2012, 15 pages.
Notice of Allowance, U.S. Appl. No. 29/416,886, mailed Jan. 10, 2013, 15 pages.
Non-Final Office Action, U.S. Appl. No. 13/107,841, filed mailed Aug. 19, 2013, 20 pages.
Response to Non-Final Office Action, U.S. Appl. No. 13/107,841, filed Jan. 22, 2014, 12 pages.
Non-Final Office Action, U.S. Appl. No. 13/855,565, mailed Sep. 27, 2013, 32 pages.
Response to Non-Final Office Action, U.S. Appl. No. 13/855,565, filed Jan. 27, 2014, 6 pages.
Non-Final Office Action, U.S. Appl. No. 13/855,523, mailed Sep. 30, 2013, 29 pages.
Response to Non-Final Office Action, U.S. Appl. No. 13/855,523, filed Jan. 27, 2014, 6 pages.
Non-Final Office Action, U.S. Appl. No. 13/420,086, mailed Oct. 7, 2013, 23 pages.
Response to Non-Final Office Action, U.S. Appl. No. 13/420,086, filed Apr. 7, 2014, 16 pages.
Non-Final Office Action, U.S. Appl. No. 13/420,063, mailed Apr. 10, 2014, 10 pages.
Notice of Allowance, U.S. Appl. No. 13/855,523; mailed May 14, 2014, 10 pages.
Notice of Allowance, U.S. Appl. No. 13/855,565; mailed May 13, 2014, 10 pages.
Notice of Allowance, U.S. Appl. No. 13/107,841; mailed Jun. 12, 2014, 18 pages.
Response to Non-Final Office Action, U.S. Appl. No. 13/420,063, filed Sep. 10, 2014, 9 pages.
U.S. Appl. No. 14/486,795, filed Sep. 15, 2014, Donegan et al.
U.S. Appl. No. 14/486,904, filed Sep. 15, 2014, Donegan et al.
Provisional Applications (1)
Number Date Country
61650711 May 2012 US