Reversible insert for bird feeder

Information

  • Patent Grant
  • 10463025
  • Patent Number
    10,463,025
  • Date Filed
    Tuesday, October 14, 2014
    10 years ago
  • Date Issued
    Tuesday, November 5, 2019
    5 years ago
  • CPC
  • Field of Search
    • US
    • 119 057800
    • 119 052200
    • 119 051010
    • 119 052100
    • 119 429000
    • 119 052300
    • 119 464000
    • 119 052400
    • 119 057900
    • 119 074000
    • 119 537000
    • 119 072000
    • D30 124-128
    • D30 121
    • 221 044000
    • 221 241000
    • 221 304000
    • 222 142200
    • 222 1423-1429
  • International Classifications
    • A01K61/02
    • A01K39/012
    • Term Extension
      104
Abstract
Implementations described and claimed herein provide systems and methods for attracting different types of wild birds, as chosen by a user. In one implementation, a top section is configured to engage a cap, and a bottom section positioned opposite the top section includes at least one feeding station. A supporting member extends vertically from the bottom section to the top section. The supporting member, the top section, and the bottom section forma frame. A reversible insert has an elongated body extending between a first edge and a second edge. The first edge has a plurality of ports, and the second edge one or more slots. The frame is adapted to receive the reversible insert in an orientation based on a size of the bird seed.
Description
TECHNICAL FIELD

Aspects of the present disclosure relate to wild bird feeders and in particular to systems and methods for attracting different types of wild birds, as chosen by a user.


BACKGROUND

Each type of wild bird generally eats seed depending on the size of the type of bird. For example, finches and other small birds often prefer small seeds, such as thistle seeds, and larger birds prefer relatively large seeds. Many bird feeders fail to adapt to a user's desire to attract different types of wild birds. Specifically, conventional bird feeders are generally able to accommodate either large seeds or small seeds but not both. As a result, if a user purchases a large seed bird feeder but later wishes to attract birds that eat only small seeds, the user must purchase another bird feeder that is configured to dispense small seeds exclusively.


It is with these observations in mind, among others, that various aspects of the present, disclosure were conceived and developed.


SUMMARY

Implementations described and claimed herein address the foregoing problems, among others, by providing systems and methods for attracting different types of wild birds, as chosen by a user. In one implementation, a top section is configured to engage a cap, and a bottom section positioned opposite the top section includes at least one feeding station. A supporting member extends vertically from the bottom section to the top section. The supporting member, the top section, and the bottom section forma frame. A reversible insert has an elongated body extending between a first edge and a second edge. The first edge has a plurality of ports, and the second edge one or more slots. The frame is adapted to receive the reversible insert in an orientation based on a size of the bird seed.


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 modifications 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 DRAWINGS


FIG. 1 illustrates a perspective view of an example bird feeder having a reversible insert for selectively attracting one or more types of wild birds.



FIG. 2 is an exploded view of the bird feeder of FIG. 1.



FIG. 3 is a side view of the bird feeder of FIG. 1 with the cap not shown and the top portion shown transparent for clarity.



FIG. 4 shows a detailed view of the bird feeder of FIG. 1 with the cap engaged to the top portion.



FIG. 5 is a perspective, view of the bird feeder of FIG. 1 with the cap partially removed and the edge portions transparent.



FIG. 6 illustrates an example reversible insert.



FIG. 7 shows a perspective view of the bird feeder of FIG. 1 with the cap removed and a detailed view of the reversible inserts positioned using guides.



FIG. 8 is a bottom perspective view of the bird feeder of FIG. 1.



FIG. 9 illustrates a perspective view of an example perch assembly.



FIG. 10 shows a top perspective view of the perch assembly of FIG. 9.



FIG. 11 illustrates an isometric view of another example bird feeder having a reversible insert for selectively attracting one or more types of wild birds.



FIGS. 12 and 13 are side and front views, respectively, of the bird feeder of FIG. 11.



FIG. 14 is an isometric view of the bird feeder of FIG. 11 with a different ornamental pattern on the body of the supporting member.



FIGS. 15 and 16 are side and front views, respectively, of the bird feeder of FIG. 14.



FIGS. 17A and 17B are top and bottom views, respectively, of the bird feeder of FIG. 11.



FIG. 18 shows an isometric view of an example supporting member.



FIG. 19 illustrates an isometric view of another example reversible insert.



FIGS. 20A-C show side, front, and top views, respectively of the reversible insert of FIG. 19.



FIGS. 21 and 22 are side perspective views of the reversible insert of FIG. 19 being inserted into the supporting member of FIG. 18, removed and inserted, respectively.



FIGS. 23A and 23B are isometric views of the supporting member of FIG. 18 engaging the basin with the reversible insert of FIG. 19, removed and inserted, respectively.



FIG. 24 illustrates an isometric view of another example bird feeder having a reversible insert for selectively attracting one or more types of wild birds.



FIGS. 25, 26A, and 26B are side, front, and back views, respectively, of the bird feeder of FIG. 24.



FIGS. 27A and 27B are top and bottom views, respectively, of the bird feeder of FIG. 24.



FIG. 28 shows an isometric view of an example supporting member.



FIG. 29 illustrates an isometric view of another example reversible insert.



FIGS. 30A and 30B show side and top views, respectively of the reversible insert of FIG. 29.



FIGS. 31 and 32 are side perspective views of the reversible insert of FIG. 29 being inserted into the supporting member of FIG. 28, removed and inserted, respectively.



FIG. 33 shows a bottom perspective view of the reversible insert of FIG. 29 inserted into the supporting member of FIG. 28.



FIG. 34 illustrates an isometric view of another example bird feeder having a reversible insert for selectively attracting one or more types of wild birds.



FIGS. 35 and 36 are side and front views, respectively, of the bird feeder of FIG. 34.



FIGS. 37A and 37B are top and bottom views, respectively, of the bird feeder of FIG. 34.



FIG. 38 shows an isometric view of an example supporting member.



FIGS. 39 and 40 are side perspective views of the reversible insert of FIG. 29 being inserted into the supporting member of FIG. 38, removed and inserted, respectively.



FIG. 41 shows a bottom perspective view of the reversible insert of FIG. 29 inserted into the supporting member of FIG. 38.



FIG. 42 illustrates example operations for attracting different types of wild birds.





DETAILED DESCRIPTION

Aspects of the present disclosure relate to wild bird feeders for attracting different types of wild birds, as chosen by a user. In one aspect, a bird feeder includes a top section configured to engage a cap, which may be, for example, a roof, a lid, or the like. A bottom section is positioned opposite the top section and includes at least one feeding station from which one or birds may access seed. A supporting member extends vertically from the bottom section to the top section to form a frame. The supporting member may be, for example, a pair of opposing edge portions, an body, a cage, or the like. A reversible insert is removably insertable into the supporting member to hold and dispense seed via the at least one feeding station. The reversible insert includes an elongated body extending between a first end and a second end. The second end has one or more slots configured to dispense large or mixed size seed, and the first end has a plurality of ports configured to dispense exclusively small seed, such as thistle. The frame receives the reversible insert in an orientation depending on a size of the bird seed chosen, which dictates the type of birds that will be attracted to the bird feeder. To attract smaller birds, such as finches, the orientation of the reversible insert positions the first end having the plurality of ports adjacent to the feeding station. A user may then fill the bird feeder with small seed, which will be dispensed through the ports and accessible from the feeding station by the small birds. To attract larger birds, the orientation of the reversible insert positions the second end having the slot adjacent to the feeding station. A user may then fill the bird feeder with large or mixed seed, which will be dispensed through the slot and accessible from the feeding station by the large birds. As a result, the user is able to choose which birds to attract.


To begin a detailed description of an example bird feeder having a reversible insert for selectively attracting one or more types of wild birds, reference is made to FIG. 1. In one implementation, a feeder 100 includes a cap 102, a supporting member 104, a top section 106, and a bottom section 108. The supporting member 104, the top section 106, and the bottom section 108 form a frame, which may be a variety of shapes and sizes. In the example shown in FIG. 1, the frame forms a rectangular shaped bin with open sides.


In one implementation, the cap 102 is a roof having one or more surfaces forming a panel 112 defined by edges 114 and sides 116. The surfaces may be planar, contoured, angled, textured, smooth, and/or the like. To dispel precipitation, the roof may include two panels 112 sloping outwardly from a ridge 118 extending longitudinally between the ends 114 along a length of the panels 112 generally parallel to the sides 116. In one implementation, a cable 120 extends from the cap 102. The cable 120 includes a hanging portion 122 configured to engage a structure for suspending the feeder 100. As shown in FIG. 1, in one implementation, the cable 120 extends from an approximate center of the cap 120 and forms a loop including the hanging portion 122.


The cap 102 is configured to occlude an opening to a reservoir for holding a supply of seed. To fill the reservoir, the cap 102 is removed, the seed for attracting the desired bird types is added to the reservoir through the opening, and the cap 102 is replaced to occlude the opening. In one implementation, the reservoir is formed by the frame and/or one or more reversible inserts 128. The reversible inserts 128 may be transparent to provide a visual indication to the user of the level of the seed supply, for quick reference regarding whether the feeder needs to be refilled.


In one implementation, the supporting member 104 includes a first edge portion 124 and a second edge portion 126, each extending vertically from the bottom section 108 to the top section 106. The edge portions 124, 126 are positioned generally opposite each other. In one implementation, the edge portions 124, 126 are generally planar, smooth surfaces. However, other shapes and surfaces are contemplated. The edge portions 124, 126 are configured to receive the reversible inserts 128 to partially occlude the side openings defined by the frame. As such, in the example shown in FIG. 1, the reversible inserts 128 are sidewalls. In one implementation, the feeder 100 includes a pair of reversible inserts 128, each configured to be received by the edge portions 124, 126, such that the reversible inserts 128 are positioned generally opposite each other. To position each of the reversible inserts 128, in one implementation, the cap 102 is removed, and each of the reversible inserts 128 is slidably inserted along a length of the edge portions 124, 126 from the top section 106 until meeting the bottom section 108. The cap 102 is then replaced. The reversible inserts 128 are removable and invertible, such that the frame is configured to receive the reversible inserts 128 in an orientation depending on a size of the bird seed chosen, which dictates the type of birds that will be attracted to the bird feeder.


The bottom section 108 includes at least one feeding station 110 providing access to bird seed in the reservoir. The feeding station 110 may have any shape, size, and/or configuration. For example, each of the feeding stations 110 may be defined by an opening in the frame through which bird seed may be accessed. In the example shown in FIG. 1, the feeding stations 110 are each defined by a trough 130 configured to collect and hold seed dispensed from the reservoir through the side openings. In one implementation, the troughs 130 extend along a length of the bottom section 108 between the edge portions 124 and 126, and the troughs 130 are positioned generally opposite each other to form two feeding stations 110. A perch 132 is positioned adjacent to each of the troughs 130 from which birds may access the dispensed seed. The perch 132 may be variety of shapes and/or sizes. Furthermore, in some implementations, there may be a plurality perches 132 positioned adjacent to each of the troughs 130.


Turning to FIG. 2, an exploded view of the feeder 100 is shown. In one implementation, the top section 106 is sized and shaped to receive the cap 102. Where the cap 102 is a roof, as shown in FIG. 2, the top section 106 may include a pair of opposing end frames 134 connecting a side frame 140 and a ride beam 136 to form a panel frame for supporting the panel 112. Each of the panels 112 of the roof may be supported in this manner, with the ridge beam 136 configured to receive the ridge 118 of the roof. In one implementation, the edge portions 124, 126 each include top edges 146 configured to receive an edge panel 136 of the top section 106 and guides 144 configured to receive the reversible inserts 128. In one implementation, the guides. 144 are channels extending along a length of each edge of the edge portions 124, 126 from the top edge 146 to the base 148.


The reversible inserts 128 are removable and invertible, such that the guides 144 configured to receive the reversible inserts 128 in an orientation depending on a size of the bird seed chosen, which dictates the type of birds that will be attracted to the bird feeder. To further adapt the feeder 100 for the type of bird chosen, in one implementation, an adjustable perch assembly 142 is provided, which may be used to adjust the distance between the perches 132 and the troughs 130 based on the size of the bird type. As detailed herein, the perches 132 are mounted to the bottom section 108 using a perch mount 152, which enables the adjustment of the distance of the perches 132.


As can be understood from FIG. 2, in one implementation, the edge portions 124 and 126 are integrally molded with a base 148 extending horizontally from the first edge portion 124 to the second edge portion 126, and the troughs 130 protrude outwardly from the base 148. The base 148 may include one or more surfaces configured to direct the supply of seed to the troughs 130. For example, as shown in FIG. 2, in one implementation, the base 148 includes a contoured surface curving from one trough 130 to the other to direct the seed to the troughs 130.


To prevent squirrels from reaching the seed in the troughs 130, a user may wish to position the feeder 100 away from trees or similar support structures. Thus, the base 148 may include a receiver 150 configured to mount the feeder 100 on a pole or other support structure. Where the user wishes to suspend the feeder 100 from a tree branch or similar support structure, the hanging portion 122 of the cable 120 may be used. As can be understood from FIGS. 3-5, in, one implementation, the cable 120 extends through the cap 102 into an opening 154 in the top section 106 (e.g., in the ridge beam 136) where the cable is secured with a hanger mount 156. The cap 102 may be removably secured to the top section 106 using a latch 172 and a latch receiver 174. As a result, when the latch 172 is disengaged from the latch receiver 174, the cap 102 is permitted to move along a length of the cable 120 to remove the cap 102 for filling the reservoir with seed and/or reorienting the reversible inserts 128, as shown in FIG. 5. In one implementation, the latch 172 and the latch receiver 174 are configured to prevent accidental opening of the cap 102 and access by non-birds, such as squirrels.


Referring to FIG. 6, an example reversible insert 128 is shown. In one implementation, the reversible insert 128 includes an elongated body 166 extending from a first end 158 to a second end 160. The first end 158 includes a plurality of ports defined in a surface of the elongated body 166 and configured to dispense exclusively small seed, such as thistle seeds, and the second end 160 includes one or more slots 170 defined in a surface of the elongated body 166 and configured to dispense large seed, such as sunflower seeds, or mixed size seed.


In one implementation, the ports 168 are relatively small openings sized to dispense small seed in a controlled manner and to restrict larger birds from accessing the seed. For example, each of the ports 168 may have a width extending along the length of the first end 158 of approximately 3.5 mm and a length extending generally perpendicularly to the first end 158 of approximately 1 cm. The ports 168 may have a variety of shapes, including, without limitation, circular, elliptical, rectangular, triangular, contoured, angled, and/or the like. For example, the ports 168 may have a flattened elliptical shape, as shown in FIG. 6. However, other sizes and shapes are contemplated. In one implementation, the ports 168 are positioned near but not intersecting an edge of the first end 158.


In one implementation, the slots 170 are relatively large openings intersecting an edge of the second end 160 and sized to dispense large or mixed seed in a controlled manner. In one implementation, the second end 160 includes one slot 170 extending along a majority of the length of the second end 160, as shown in FIG. 6. For example, the slot 170 may have a width extending along the length of the second end 160 of approximately 10-12 cm and a length extending generally perpendicularly to the second end 160 of approximately 2 cm. The slots 170 may have a variety of shapes, including, without limitation, arched, circular, elliptical, rectangular, triangular, contoured, angled, and/or the like. For example, as shown in FIG. 6, the slots 170 may have an arched shape defined by two curved ends connecting an elongated edge to an edge of the second end 160, such that the slots 170 intersect the edge of the second end 160.


The elongated body 166 may be a variety of shapes and sizes configured to be removably inserted into the supporting member 104. For example, the elongated body 166 may be planar, cylindrical, cubical, pyramidal, and/or the like. The elongated body 166 may be made from a transparent or translucent material with a generally uniform thickness. In the example shown in FIG. 6, the elongated body 166 is planar with a rectangular shape having curved corners. The rectangular shape of the elongated body 166 is defined by opposing ends 158 and 160 and opposing sides 162 and 164.


Turning to FIG. 7, the reversible inserts 128 are removable and invertible, such that the frame is configured to receive the reversible inserts 128 in an orientation depending on a size of the bird seed chosen, which dictates the type of birds that will be attracted to the bird feeder.


In one implementation, the orientation includes positioning either the first end 158 or the second end 160 adjacent to the feeding station 110 depending on the size of the bird seed to be dispensed. For large seed, such as sunflower seeds, the orientation includes positioning the second end 160 adjacent to the feeding station 110, such that the large seed is dispensed through the slot(s) 170, and for small seed, such as thistle seeds, the orientation includes positioning the first end 158 adjacent to the feeding station 110, such that the small seed is dispensed through the ports 168.


To position each of the reversible inserts 128, in one implementation, the cap 102 is removed, and each of the reversible inserts 128 is slidably inserted along the guides 144 until meeting the bottom section 108. Once inserted, the reversible inserts 128 are held in place by the supporting member 104, the bottom section 108, and/or the top section 106. In one implementation, once inserted, one of the ends 158, 160 is positioned along the side frame 140, the other end 158, 160 is positioned along the base 148 adjacent to the trough 130, and the sides 162, 164 are positioned in the guides 144. In the example, shown in FIG. 7, the reversible insert 128 is oriented to dispense large seed, with the second end 160 positioned adjacent to the trough 130 and the first end 158 positioned along the side frame 140. If the user wishes to attract birds that eat smaller seeds, the reversible insert 128 may be removed, inverted, and inserted along the guides 144 until the first end 158 is positioned adjacent to the trough 130. Accordingly, the feeder 100 is convertible between a large seed feeder and a small seed feeder, such that the user may choose which birds to attract.


For a detailed description of the adjustable perch assembly 142, reference is made to FIGS. 8-10. In one implementation, each of the perches 132 is a thin, elongated body supported by a structural member 180. However, other shapes and sizes of the perches 132 are contemplated, and the structural member 180 may be integrally formed with the perch 132, connected to the perch 132, or removed entirely. The perch mount 152 may include an opening 178 through which a pole or similar support may be inserted to engage the receiver 150.


In one implementation, each of the perches 132 is adjustably mounted to the perch mount 152 with one or more support arms 176. The distance of the perches 132 from the troughs 130 may be adjusted by changing the length of the support arms 176. In one implementation, one or more surfaces of the support arms 176 includes a series of indentations or detents 184, which an end of a flexing finger 186 extending from the perch mount 152 ratchets into and out of to adjust the length of the support arms 176.


To prevent the perches 132 from being accidentally removed from the perch mount 152, in one implementation, the adjustable perch assembly 142 includes perch support receivers 182 having holes configured to receive detent fingers 188, which bias outwardly from a plane of the support arms 176. As such if the support arm 176 is pulled too far, the detent finger 188 will engage the perch support receivers 182 to prevent the support arm 176 from being removed from the perch mount 152. In one implementation, the support arms 176 for opposing perches 132 are offset within the perch mount 152 to permit the support arms 176 to bypass each other and the opening 178 to move unobstructed.


Referring to FIGS. 11-43, in one implementation, the cap 102 is a lid including an extending portion 204 and a receiving portion 206. The extending portion 204 extends outwardly from the receiving portion 206, which is configured to engage the top section 106 to occlude the reservoir. The extending portion 204 and the receiving portion 206 may each have one or more surfaces, which may be planar, contoured, angled, textured, smooth, and/or the like. In one implementation, the extending portion 204 is disposed proximal to the top section 106 from the receiving portion 206 to create a generally sloped appearance. The cap 102 may include other features, such as a finial, for aesthetic appearance and for gripping to remove the cap 102. In one implementation, the cable 120 extends from a first opening in the cap 102 to a second opening in the cap 102 to form a loop with the hanging portion 122 at the top of the loop. The hanging portion 122 may be disposed over the approximate center of the cap 102 to stably suspend the feeder 100.


In one implementation, the feeder 100 includes a basin 208 configured to engage the bottom section 108. The basin 208 may be a variety of sizes and shapes, including, but not limited to, elliptical, circular, rectangular, triangular, contoured, angled, and/or the like. The basin 208 may be shaped to mirror the shape of the bottom section 108 and sized to mirror the size of the cap 102. In one implementation, the basin 208 includes a surface forming the trough 130 and a surface tapering outwardly to an outer edge forming the perch 132. The basin 208 may include one or more protruding members 210 on a bottom surface to support the feeder 100 when positioned on a surface, such as a table, for cleaning or filling, for example.


Turning to FIGS. 11-33, in one implementation, the supporting member 104 includes an elongated body 200 extending vertically from the bottom section 108 to the top section 106. The elongated body 200 may be a variety of shapes including, without limitation, cylindrical, cubical, pyramidal, tapered, contoured, angled, and/or the like. The elongated body 200 may be sized to accommodate various capacities for the supply of bird seed. In one implementation, the elongated body 200 is sized to hold a supply of bird seed weighing approximately 1.5-2.5 pounds. However, other sizes are contemplated. The elongated body 200 may include surfaces with aesthetically pleasing features, including patterns defined therein, as shown in FIGS. 11-18 and 24-26B, for example.


As can be understood from FIGS. 11-23B, in one implementation, the bottom section 108 includes a pair of opposing feeding stations 110, each defined by an opening in the elongated body 200 formed by a slot 202. The slots 202 may be a variety of sizes and shapes, including, but not limited to, arched, circular, elliptical, rectangular, triangular, contoured, angled, and/or the like. For example, as shown in FIGS. 11 and 14, the slots 202 may have a rectangular shape with curved corners. In one implementation, the slots 202 are sized to expose the slot 170 of the reversible insert 128 and the ports 168 when positioned adjacent to the slots 202.


Referring to FIG. 18, in one implementation, the elongated body 200 has a cylindrical shape with an elliptical circumference defined by the top section 106 and the bottom section 108. The top section 106 includes a top edge 212 configured to engage the receiving portion 206 of the cap 102, and the bottom section 108 includes a bottom edge 214 configured to engage the basin 208 using one or more securing features 216. In one implementation, the slots 202 intersect the bottom edge 214.


As can be understood from FIGS. 19-23B, in one implementation, the feeder 100 includes a pair of reversible inserts 128, each configured to be received by the elongated body 200, such that the reversible inserts 128 are positioned generally opposite each other and adjacent to the slots 202. The reversible inserts 128 may be sized and shaped to mirror the size and shape of the elongated body 200. For example, as shown in FIGS. 19-20C, the elongated body 166 of the reversible inserts 128 may be contoured, such that the elongated body 166 curves from the first side 162 to the second side 164 to match the cylindrical shape with an elliptical circumference of the elongated body 200, as shown in FIGS. 18-23B.


Referring to FIGS. 21-22, to configure the feeder 100 to dispense a desired seed type, in one implementation, each of the reversible inserts 128 is inserted along the guides 144 from the top section 106 until meeting the bottom section 108, such that one of the ends 158 or 160 is coplanar with the bottom edge 214. The guides 144 may be one or more tabs extending from an interior surface 218 of the elongated body 200 configured to receive the sides 162, 164 of the reversible insert 128.


As described herein, each of the reversible inserts 128 are removable and invertible, such that the frame is configured to receive the reversible inserts 128 in an orientation depending on a size of the bird seed chosen, which dictates the type of birds that will be attracted to the bird feeder.


In one implementation, the orientation includes positioning either the first end 158 or the second end 160 adjacent to the feeding station 110, defined by the slot 202, depending on the size of the bird seed to be dispensed. For large seed, such as sunflower seeds, the orientation includes positioning the second end 160 adjacent to the feeding station 110, such that the large seed is dispensed through the slot(s) 170, and for small seed, such as thistle seeds, the orientation includes positioning the first end 158 adjacent to the feeding station 110, such that the small seed is dispensed through the ports 168.


To position each of the reversible inserts 128, in one implementation, the cap 102 is removed, and each of the reversible inserts 128 is slidably inserted along the guides 144 until meeting the bottom section 108. Once inserted, the reversible inserts 128 are held in place by the supporting member 104, the bottom section 108, and/or the top section 106. In one implementation, once inserted, one of the ends 158 or 160 is positioned adjacent to the slot 202 and the sides 162, 164 are positioned in the guides 144. In the example shown in FIG. 22, the reversible insert 128 is oriented to dispense large seed, with the second end 160 positioned adjacent to the slot 202. If the user wishes to attract birds that eat smaller seeds, the reversible insert 128 may be removed, inverted, and inserted along the guides 144 until the first end 158 is positioned adjacent to the slot 202. Accordingly, the feeder 100 is convertible between a large seed feeder and a small seed feeder, such that the user may choose which birds to attract.


As can be understood from FIGS. 23A-B, in one implementation, the basin 208 includes the base 148 protruding from the trough 130 and extending generally perpendicularly to the elongated body 200. The base 148 may include one or more surfaces configured to direct the supply of seed to the slots 202. For example, as shown in FIGS. 23A-B, in one implementation, the base 148 includes a pair of surfaces angled toward the slots 202 to direct the seed to the slots 202.


Referring to FIGS. 24-33, the bottom section 108 includes four feeding stations 110, each defined by an opening in the elongated body 200 formed by a slot 202. In one implementation, the slots 202 are oriented as two pairs of opposing slots 202, such that the four slots 202 are spaced equally from each other along the bottom edge 214. It will be appreciated that any number of slots 202 may be provided in various orientations.


As described herein, the slots 202 may be a variety of sizes and shapes, including, but not limited to, arched, circular, elliptical, rectangular, triangular, contoured, angled, and/or the like. For example, as shown in FIG. 24, the slots 202 may have a rectangular shape with curved corners. In one implementation, the slots 202 are sized to expose the slot 170 of the reversible insert 128 and the ports 168 when positioned adjacent to the slots 202.


Referring to FIG. 28, in one implementation, the elongated body 200 has a cylindrical shape with a circular circumference defined by the top section 106 and the bottom section 108. The top section 106 includes the top edge 212 configured to engage the receiving portion 206 of the cap 102, and the bottom section 108 includes the bottom edge 214 configured to engage the basin 208 using the securing features 216. In one implementation, the slots 202 intersect the bottom edge 214.


As can be understood from FIGS. 29-32, in one implementation, the feeder 100 includes one reversible insert 128 configured to be received by the elongated body 200. The reversible insert 128 may be sized and shaped to mirror the size and shape of the elongated body 200. For example, as shown in FIGS. 29-32B, the elongated body 166 of the reversible insert 128 is cylindrical in shape extending from the first edge 158 to the second edge 160 to match the cylindrical shape of the elongated body 200, as shown in FIGS. 29-32.


Referring to FIGS. 31-33, to configure the feeder 100 to dispense a desired seed type, in one implementation, the reversible insert 128 is inserted along a length of the elongated body. 200 from the top section 106 until meeting the bottom section 108, such that one of the ends 158 or 160 engages the guides 144. The guides 144 may be one or more members protruding from the interior surface 218 of the elongated body 200 to position the sides 162, 164 of the reversible insert 128.


As described herein, the reversible insert 128 is removable and invertible, such that the frame is configured to receive the reversible insert 128 in an orientation depending on a size of the bird seed chosen, which dictates the type of birds that will be attracted to the bird feeder.


In one implementation, the orientation includes positioning either the first end 158 or the second end 160 adjacent to the feeding station 110, defined by the slot 202, depending on the size of the bird seed to be dispensed. For large seed, such as sunflower seeds, the orientation includes positioning the second end 160 adjacent to the feeding station 110, such that the large seed is dispensed through the slot(s) 170, and for small seed, such as thistle seeds, the orientation includes positioning the first end 158 adjacent to the feeding station 110, such that the small seed is dispensed through the ports 168.


To position the reversible insert 128, in one implementation, the cap 102 is removed, and the reversible insert 128 is slidably inserted along a length of the elongated body 200 until meeting the bottom section 108. Once inserted, the reversible insert 128 is held in place by the supporting member 104, the bottom section 108, and/or the top section 106. In one implementation, once inserted, one of the ends 158 or 160 is positioned adjacent to the slots 202 with the other end positioned near the top section 106. The guides 144 may hold the reversible insert 128 in place. In the example shown in FIG. 32, the reversible insert 128 is oriented to dispense large seed, with the second end 160 positioned adjacent to the slots 202. If the user wishes to attract birds that eat smaller seeds, the reversible insert 128 may be removed, inverted, and inserted along a length of the elongated body 200 until the first end 158 is positioned adjacent to the slots 202. Accordingly, the feeder 100 is convertible between a large seed feeder and a small seed feeder, such that the user may choose which birds to attract.


Referring to FIGS. 34-41, in one implementation, the supporting member 104 includes a cage formed by a plurality of elongated rods 300 extending vertically from the bottom section 108 to the top section 106 and a plurality of looped rods 302 extending around the elongated body 166 of the reversible insert 128. There may be any number of the elongated rods 300 and/or the looped rods 302 of any shape or size according to design preferences.


In one implementation, the bottom section 108 includes four feeding stations 110, each defined by an opening in a body 306 formed by a slot 202. In one implementation, the slots 202 are oriented as two pairs of opposing slots 202, such that the four slots 202 are spaced equally from each other along the bottom edge 214. It will be appreciated that any number of slots 202 may be provided in various orientations.


As described herein, the slots 202 may be a variety of sizes and shapes, including, but not limited to, arched, circular, elliptical, rectangular, triangular, contoured, angled, and/or the like. For example, as shown in FIG. 34, the slots 202 may have a rectangular shape with curved corners. In one implementation, the slots 202 are sized to expose the slot 170 of the reversible insert 128 and the ports 168 when positioned adjacent to the slots 202.


Referring to FIG. 28, in one implementation, the top section 106 includes a collar 304 extending around and connecting the elongated rods 300. The collar 304 is configured to engage the cap 102. In one implementation, the frame formed by the body 306, the collar 304, and the cage has a cylindrical shape with a circular circumference defined by the top section 106 and the bottom section 108. The top section 106 includes the top edge 212 configured to engage the receiving portion 206 of the cap 102, and the bottom section 108 includes the bottom edge 214 configured to engage the basin 208 using the securing features 216. In one implementation, the slots 202 intersect the bottom edge 214.


As can be understood from FIGS. 39-41, in one implementation, the feeder 100 includes one reversible insert 128, for example as shown in FIGS. 29-30B, configured to be received by the frame. The reversible insert 128 may be sized and shaped to mirror the size and shape of the frame. For example, as shown in FIGS. 39-41, the elongated body 166 of the reversible insert 128 is cylindrical in shape extending from the first edge 158 to the second edge 160 to match the cylindrical shape of the frame, as shown in FIGS. 39-41.


Referring to FIGS. 39-41, to configure the feeder 100 to dispense a desired seed type, in one implementation, the reversible insert 128 is inserted along a length of the elongated rods 300 from the top section 106 until meeting the bottom section 108. As described herein, the reversible insert 128 is removable and invertible, such that the frame is configured to receive the reversible insert 128 in an orientation depending on a size of the bird seed chosen, which dictates the type of birds that will be attracted to the bird feeder.


In one implementation, the orientation includes positioning either the first end 158 or the second end 160 adjacent to the feeding station 110, defined by the slots 202, depending on the size of the bird seed to be dispensed. For large seed, such as sunflower seeds, the orientation includes positioning the second end 160 adjacent to the feeding station 110, such that the large seed is dispensed through the slot(s) 170, and for small seed, such as thistle seeds, the orientation includes positioning the first end 158 adjacent to the feeding station 110, such that the small seed is dispensed through the ports 168.


To position the reversible insert 128, in one implementation, the cap 102 is removed, and the reversible insert 128 is slidably inserted along a length of the elongated rods 300 until meeting the bottom section 108. Once inserted, the reversible insert 128 is held in place by the supporting member 104, the bottom section 108, and/or the top section 106. In one implementation, once inserted, one of the ends 158 or 160 is positioned adjacent to the slots 202 with the other end positioned near the top section 106. In the example shown in FIG. 40, the reversible insert 128 is oriented to dispense large seed, with the second end 160 positioned adjacent to the slots 202. If the user wishes to attract birds that eat smaller seeds, the reversible insert 128 may be removed, inverted, and inserted along a length of the elongated rods 300 until the first end 158 is positioned adjacent to the slots 202. Accordingly, the feeder 100 is convertible between a large seed feeder and a small seed feeder, such that the user may choose which birds to attract.


For a detailed description of example operations for attracting different types of wild birds, reference is made to FIG. 42. In one implementation, an operation 402 provides a frame including a supporting member extending from a bottom section to a top section. The supporting member may be, for example, an elongated body, a pair of opposing edge portions, a cage comprising elongated rods, and/or the like. Such examples of the supporting member, as illustrated herein, are exemplary only and not intended to be limiting. In one implementation, the top section is configured to engage a cap, and the bottom section includes at least one feeding station.


An operation 404 provides at least one reversible insert having an elongated body extending between a first edge and a second edge. The first edge includes a plurality of ports configured to dispense small seed, and the second edge includes one or more slots configured to dispense large or mixed seed. The elongated body of the reversible insert(s) may be a variety of shapes, including, without limitation, planar, cylindrical, cubical, pyramidal, and/or the like. An operation 406 positions the reversible insert(s) in an orientation in the frame based on a size of bird seed. To attract smaller birds, such as finches, the orientation of the reversible insert positions the first end having the plurality of ports adjacent to the feeding station. A user may then fill the bird feeder with small seed, which will be dispensed through the ports and accessible from the feeding station by the small birds. To attract larger birds, the orientation of the reversible insert positions the second end having the slot adjacent to the feeding station. A user may then fill the bird feeder with large or mixed seed, which will be dispensed through the slot and accessible from the feeding station by the large birds. As a result, the user is able to choose which birds to attract.


It is believed that the present disclosure and many of its attendant advantages will be understood by the foregoing description, and it will be apparent that various changes may be made in the form, construction and arrangement of the components without departing from the disclosed subject matter or without sacrificing all of its material advantages. The form described is merely explanatory, and it is the intention of the following claims to encompass and include such changes.


While the present disclosure has been described with reference to various embodiments, it will be understood that these embodiments are illustrative and that the scope of the disclosure is not limited to them. Many variations, modifications, additions, and improvements are possible. More generally, embodiments in accordance with the present disclosure have been described in the context of particular implementations. Functionality may be separated or combined in blocks differently in various embodiments of the disclosure or described with different terminology. These and other variations, modifications, additions, and improvements may fall within the scope of the disclosure as defined in the claims that follow.

Claims
  • 1. A method for selectively dispensing bird seed, the method comprising: holding a reversible insert with a frame in a first vertical orientation, the frame including a support member extending vertically between a top section and a bottom section having at least one feeding station, wherein a perch is positioned adjacent the at least one feeding station, the reversible insert having an elongated body extending between a first edge and a second edge creating a continuous cavity extending from the first edge to the second edge, the first edge disposed on an opposite end of the elongated body from the second edge, the first edge having a plurality of ports in the elongated body sized to dispense a first sized bird seed and the second edge having one or more slots in the elongated body sized to dispense a second sized bird seed different from the first sized bird seed, the first vertical orientation positioning the first edge of the reversible insert adjacent to the feeding station for the plurality of ports to dispense the first sized bird seed;releasing the reversible insert from the frame based on a selection of the second sized bird seed for dispensing;receiving the elongated body of the reversible insert inverted into a second orientation based on the selection, the frame receiving the elongated body of the reversible insert; andpositioning the second edge adjacent to the feeding station for the one or more slots to dispense the second sized bird seed.
  • 2. The method of claim 1, further comprising: rereleasing the reversible insert from the frame based on a subsequent selection of the first sized bird seed for dispensing;receiving the elongated body of the reversible insert reinverted into the first vertical orientation based on the subsequent selection, the frame receiving the elongated body of the reversible insert; andrepositioning the first edge adjacent to the feeding station for the one or more slots to dispense the first sized bird seed.
  • 3. The method of claim 1, wherein the reversible insert is released from the frame by sliding.
  • 4. The method of claim 1, wherein the top section is configured to engage a cap.
  • 5. The method of claim 4, wherein the cap includes at least one of: a roof or a lid.
  • 6. The method of claim 1, wherein the first sized bird seed is small and the second sized bird seed is large.
  • 7. The method of claim 1, wherein the elongated body of the reversible insert is made from a transparent material.
  • 8. The method of claim 1, wherein a shape of the elongated body is at least one of: planar, contoured, or cylindrical.
  • 9. The method of claim 1, wherein the supporting member includes at least one of: a cage, a pair of opposing edge portions, or an elongated body.
CROSS-REFERENCE TO RELATED APPLICATIONS

The present application is a continuation-in-part of U.S. patent application Ser. No. 13/107,841, entitled “Hopper Type Wild Bird Feeder” and filed on May 13, 2011, now Pat. No. 8,857,374 and issued Oct. 14, 2014, which claims benefit under 35 U.S.C. § 119 to U.S. Provisional Patent Application No. 61/330,842, entitled “Hopper Type Wild Bird Feeder” and filed on May 3, 2010. Both of these applications are incorporated by reference in their entirety herein.

US Referenced Citations (472)
Number Name Date Kind
110473 Kennedy Dec 1870 A
117807 Orndoff Aug 1871 A
D8908 Wiley Jan 1876 S
276392 Gregory Apr 1883 A
447006 Sweeney Feb 1891 A
632167 Biesmeyer Aug 1899 A
727597 Day May 1903 A
813954 Davis Feb 1906 A
D43781 Sanford Apr 1913 S
1166100 Unknown Dec 1915 A
1251935 Stevens Jan 1918 A
D63321 Pirson Nov 1923 S
1558316 Tipple Oct 1925 A
1634569 Bray Jul 1927 A
1716432 Qualmann Jun 1929 A
D81602 Teague Jul 1930 S
1791956 Cowles Feb 1931 A
D87460 Cook Aug 1932 S
1879318 Klein Sep 1932 A
1891042 Benoit Dec 1932 A
D109128 Copeman Apr 1938 S
D115321 Pueschel Jun 1939 S
2283373 Krafft May 1942 A
2350922 Planeta Jun 1944 A
2417178 Ritter Mar 1947 A
D153759 Blatt May 1949 S
2510721 Smith Jun 1950 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
D170150 Kowap Aug 1953 S
D173658 Jones Dec 1954 S
2696803 Deffenbaugh Dec 1954 A
D174139 Sadler Mar 1955 S
2725663 Mullen Dec 1955 A
D178917 England et al. Oct 1956 S
2773474 Nugent Dec 1956 A
2786446 Newman Mar 1957 A
D180686 Everett Jul 1957 S
2804844 Gigliotti Sep 1957 A
2887987 Fitzgerald May 1959 A
D185456 Michalek et al. Jun 1959 S
2891508 Bower Jun 1959 A
2944516 Malloy, Sr. Jul 1960 A
2971671 Shakman Feb 1961 A
2987041 Bard Jun 1961 A
3022768 Lynch Feb 1962 A
3051126 Merritt et al. Aug 1962 A
3051303 Daanen Aug 1962 A
D193558 Parry Sep 1962 S
D194750 Dahmus Mar 1963 S
3090354 Merritt et al. May 1963 A
3136296 Luin Jun 1964 A
3145690 Bachman Aug 1964 A
D199995 Knodt Jan 1965 S
D200778 Pregont Apr 1965 S
3244150 Blair Apr 1966 A
3295498 Brown Jan 1967 A
D206975 Dawson Feb 1967 S
3307602 Boster Mar 1967 A
3316884 Viggars May 1967 A
3372676 Williams Mar 1968 A
D216002 Stone Nov 1969 S
D216361 Pappas, Jr. Dec 1969 S
3499413 Heard Mar 1970 A
D217470 Morrow May 1970 S
3526335 Swett et al. Sep 1970 A
3693310 Middleton Sep 1972 A
D230948 Moon Mar 1974 S
D234180 Dart et al. Jan 1975 S
D235744 England Jul 1975 S
3901192 Adams Aug 1975 A
3967576 Soerensen Jul 1976 A
3977363 Fisher, Jr. Aug 1976 A
D241699 Barecki Oct 1976 S
D241860 Calamia Oct 1976 S
D244786 Dryden Jun 1977 S
D244883 Rohrmuller Jun 1977 S
4030451 Miller Jun 1977 A
D245349 Fisher, Jr. Aug 1977 S
D245643 Orfei Aug 1977 S
D245927 Edwards et al. Sep 1977 S
D248006 Christian May 1978 S
D249726 Cosman Sep 1978 S
4144842 Schlising Mar 1979 A
4167917 Noll Sep 1979 A
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
D258338 Gersin Feb 1981 S
D259143 Aktinson May 1981 S
D260843 Laird et al. Sep 1981 S
4327669 Blasbalg May 1982 A
4328605 Hutchison et al. May 1982 A
4331104 Clarke May 1982 A
D266611 Metts et al. Oct 1982 S
D267355 Blasbalg Dec 1982 S
D268056 Campbell-Kelly et al. Feb 1983 S
D268362 Wong Mar 1983 S
4389975 Fisher, Jr. Jun 1983 A
D272507 Conti Feb 1984 S
D272508 Conti Feb 1984 S
4434745 Perkins Mar 1984 A
4444324 Grenell Apr 1984 A
D274013 Sun May 1984 S
D274563 Blasbalg Jul 1984 S
4466376 Wells Aug 1984 A
D276510 Bent et al. Nov 1984 S
D277514 Bescherer Feb 1985 S
D277739 Grammas et al. Feb 1985 S
D278168 Latham et al. Mar 1985 S
D278751 Seager May 1985 S
D282019 Kilham Dec 1985 S
D284033 Brodsky May 1986 S
D285840 Poon Sep 1986 S
D289210 Tucker et al. Apr 1987 S
D289211 Riha Apr 1987 S
4664066 Steuernagel et al. May 1987 A
D290769 Taylor Jul 1987 S
D290773 Liethen Jul 1987 S
4682461 Sizemore Jul 1987 A
D292372 Sykes Oct 1987 S
4712512 Schreib et al. Dec 1987 A
4732112 Fenner et al. Mar 1988 A
4738221 Nock Apr 1988 A
D297074 Burke et al. Aug 1988 S
4798172 Clarke Jan 1989 A
D299770 Coffer Feb 1989 S
4821681 Tucker Apr 1989 A
D300882 Olson May 1989 S
4896628 Kadunce Jan 1990 A
4901673 Overstreet Feb 1990 A
4938168 Meidell Jul 1990 A
D309858 Meyersburg Aug 1990 S
D313169 Scott et al. Dec 1990 S
4974547 Graham Dec 1990 A
4986219 Harris Jan 1991 A
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
5140945 Barnhart et al. Aug 1992 A
D329892 Brister Sep 1992 S
5168830 Deglis Dec 1992 A
D334133 Hartzheim Mar 1993 S
5191857 Boaz Mar 1993 A
D334635 Wenstrand Apr 1993 S
5207180 Graham May 1993 A
D337271 Pezzoli et al. Jul 1993 S
D338317 Woodward Aug 1993 S
5247904 Anderson Sep 1993 A
5255631 Anderson Oct 1993 A
5265557 Lovitz Nov 1993 A
5269242 Toldi Dec 1993 A
D343030 Harwick, Jr. Jan 1994 S
5289796 Armstrong Mar 1994 A
5291855 Laverty Mar 1994 A
D349981 Fasino Aug 1994 S
D351691 Lipton Oct 1994 S
D351692 Cossey Oct 1994 S
D352575 Bransky et al. Nov 1994 S
D352787 Hulse Nov 1994 S
5361723 Burleigh Nov 1994 A
D354079 Shapiro Jan 1995 S
D355006 Lo Jan 1995 S
D360495 Sanderson Jul 1995 S
D360829 Leeds Aug 1995 S
D365893 Thorp Jan 1996 S
D366413 Tober Jan 1996 S
5479879 Blek Jan 1996 A
5490480 Dumond Feb 1996 A
D370311 Logan, Jr. May 1996 S
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
D371979 Nottingham et al. Jul 1996 S
5533467 Lancia Jul 1996 A
5558040 Colwell et al. Sep 1996 A
D376731 Lin Dec 1996 S
D380066 Green et al. Jun 1997 S
5655477 Hoffman et al. Aug 1997 A
D383878 Merino et al. Sep 1997 S
D384443 Olfert Sep 1997 S
D384505 Stewart Oct 1997 S
D386834 Nissim et al. Nov 1997 S
D386835 Passamare Nov 1997 S
D386836 Hunt Nov 1997 S
5682835 Walter et al. Nov 1997 A
D388312 Sorkin Dec 1997 S
5701841 Fasino Dec 1997 A
5711247 Henshaw Jan 1998 A
D390490 Ruderick Feb 1998 S
5729949 Hartzheim Mar 1998 A
5746156 Petrides May 1998 A
5775256 Henshaw Jul 1998 A
5782200 Knowles et al. Jul 1998 A
D397529 Fuller et al. Aug 1998 S
D399611 Ericson et al. Oct 1998 S
5829382 Garrison Nov 1998 A
D406307 Kang Mar 1999 S
D408420 Buter Apr 1999 S
5947054 Liethen Sep 1999 A
D414901 Cirelli Oct 1999 S
D420176 Heinzeroth Feb 2000 S
D421709 Haslem et al. Mar 2000 S
D425259 Lang May 2000 S
6071867 Purcell et al. Jun 2000 A
6079361 Bowell et al. Jun 2000 A
D428437 Hmelar et al. Jul 2000 S
D428537 Miller Jul 2000 S
6095087 Bloedorn Aug 2000 A
6119627 Banyas et al. Sep 2000 A
D431760 Sullivan Oct 2000 S
D433633 La Fata Nov 2000 S
6145477 Jansen Nov 2000 A
D434980 Suzuki Dec 2000 S
D435666 Barsomian Dec 2000 S
D440361 Colwell Apr 2001 S
6213054 Marshall Apr 2001 B1
6253706 Sloop Jul 2001 B1
D448290 Schultz et al. Sep 2001 S
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
6418878 Cathell et al. Jul 2002 B1
D461827 Koebbe Aug 2002 S
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
6543384 Cote Apr 2003 B2
6546894 Chrisco et al. Apr 2003 B2
D475128 Svendsen et al. May 2003 S
6561126 Carter May 2003 B2
6584933 Stone Jul 2003 B1
6591781 Hardison Jul 2003 B2
D478475 Backes et al. Aug 2003 S
6622654 Fasino Sep 2003 B2
D480291 Sorkin Oct 2003 S
D482262 Sorkin Nov 2003 S
6659041 Curts Dec 2003 B1
D485930 Chen Jan 2004 S
D490576 Rich et al. May 2004 S
D491019 Marsden et al. Jun 2004 S
D491443 Lowery Jun 2004 S
D493053 Snell Jul 2004 S
D495900 Mayse Sep 2004 S
6789916 Ruggles Sep 2004 B2
6792891 Coburn et al. Sep 2004 B1
D497226 Nauert Oct 2004 S
D497406 King Oct 2004 S
D497458 Nauert Oct 2004 S
D499515 Schulzw et al. Dec 2004 S
D500243 Turek Dec 2004 S
6830009 Kuelbs Dec 2004 B1
D500668 Kelly et al. Jan 2005 S
D503019 Swift et al. Mar 2005 S
6863024 Obenshain Mar 2005 B1
6866004 Lush Mar 2005 B1
D504547 Nauert Apr 2005 S
D504746 Lee May 2005 S
D505521 Schrodt May 2005 S
D505755 Lundstrom et al. May 2005 S
6895894 Fort, II May 2005 B2
6901882 Kuelbs Jun 2005 B2
D509325 Jung et al. Sep 2005 S
6945192 Cote Sep 2005 B2
D511866 Lundstrom et al. Nov 2005 S
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
D515916 Bleuer Feb 2006 S
D516413 Anderson et al. Mar 2006 S
7017517 Paquette Mar 2006 B2
7017521 Kuelbs Mar 2006 B2
D518380 Moran Apr 2006 S
7021241 Nock Apr 2006 B2
7032538 Lush Apr 2006 B1
7032539 Obenshain Apr 2006 B1
D522180 Goria, II May 2006 S
D523141 Massey Jun 2006 S
D524490 Obenshain Jul 2006 S
7086352 Goodger Aug 2006 B2
7096821 Ruff Aug 2006 B2
7168392 Kuelbs Jan 2007 B2
D535445 Obenshain Feb 2007 S
7185605 Lush Mar 2007 B1
D540349 Waki Apr 2007 S
D542659 Meether et al. May 2007 S
D542982 Wendell May 2007 S
D543256 Chen May 2007 S
D544153 Obenshain Jun 2007 S
D544942 Chen Jun 2007 S
7234416 Hoff Jun 2007 B2
D546506 Barszcz Jul 2007 S
D548587 DuVal et al. Aug 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
D556568 DuVal Dec 2007 S
D557595 Ernst et al. Dec 2007 S
7302911 Lush Dec 2007 B1
D558567 Ismert et al. Jan 2008 S
D561021 DuVal et al. Feb 2008 S
D561040 Sequeira Feb 2008 S
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
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
D591589 Myers et al. May 2009 S
D592046 Myers et al. May 2009 S
D592362 Rutherford et al. May 2009 S
7530330 Valle May 2009 B1
D594737 Kelly et al. Jun 2009 S
7540260 Rich et al. Jun 2009 B2
7540262 Kuelbs Jun 2009 B2
7549394 Nock Jun 2009 B2
D596033 Zach et al. Jul 2009 S
D599159 Stein Sep 2009 S
D600099 Dahlin Sep 2009 S
7610875 Webber Nov 2009 B2
D606447 West et al. Dec 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
7669553 White et al. Mar 2010 B2
D614019 Goodman et al. Apr 2010 S
D616040 Spencer May 2010 S
D616288 Simon et al. May 2010 S
7721677 McClaskey May 2010 B1
7726259 Hepp et al. Jun 2010 B2
7739982 Cote Jun 2010 B2
7743732 Webber 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
D623805 Vosbikian Sep 2010 S
7798099 Vosbikian Sep 2010 B2
7874264 McMullen Jan 2011 B2
D632952 Dablemont Feb 2011 S
D635844 Boothby Apr 2011 S
D636238 Elmelund Apr 2011 S
7930994 Stone et al. Apr 2011 B2
D638501 Fishman May 2011 S
D638588 Vosbikian May 2011 S
7958845 Gardner Jun 2011 B2
D643442 Sato et al. Aug 2011 S
D643855 Taniguchi et al. Aug 2011 S
D644090 Sittig Aug 2011 S
7997434 Benetti Aug 2011 B2
8006642 Vosbikian Aug 2011 B2
8028460 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
D652059 Sato et al. Jan 2012 S
D656690 Tu Mar 2012 S
D657399 Nemoto Apr 2012 S
8156894 Krah Apr 2012 B1
D658684 Roman May 2012 S
D664307 Krueger et al. Jul 2012 S
D664437 Barel Jul 2012 S
8230809 Cote Jul 2012 B2
8245666 Sena et al. Aug 2012 B2
D667294 Wang Sep 2012 S
D667573 Yamamoto et al. Sep 2012 S
8272607 Bonnema Sep 2012 B2
8276541 LoRocco et al. Oct 2012 B2
D671276 Krueger Nov 2012 S
D671277 Vosbikian et al. Nov 2012 S
D671692 Carter Nov 2012 S
8347818 Cowger et al. Jan 2013 B2
D676614 Fields et al. Feb 2013 S
D677016 Carter Feb 2013 S
8413605 Baynard et al. Apr 2013 B2
8857374 Donegan Oct 2014 B1
20030033985 Hardison Feb 2003 A1
20030136347 Fasino Jul 2003 A1
20030226514 Cote Dec 2003 A1
20040098942 Lee et al. May 2004 A1
20040134436 Fort, II Jul 2004 A1
20040216684 Obenshain Nov 2004 A1
20040231606 Nock Nov 2004 A1
20040250777 Stachowiak Dec 2004 A1
20040261726 Lumpkin Dec 2004 A1
20050120967 Ruff Jun 2005 A1
20050257749 Kuelbs Nov 2005 A1
20050263085 Rich Dec 2005 A1
20060207512 Fort, II Sep 2006 A1
20060225658 Baynard Oct 2006 A1
20060266295 McDarren Nov 2006 A1
20060272585 O'Dell 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
20080127902 Bent et al. Jun 2008 A1
20080134979 Crocker Jun 2008 A1
20080210172 Waikas Sep 2008 A1
20080276874 Evans Nov 2008 A1
20080302304 Mayfield Dec 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
20100061091 Galipeau et al. Mar 2010 A1
20100089330 McMullen Apr 2010 A1
20100258054 Frazier Oct 2010 A1
20100288200 Lush Nov 2010 A1
20110067637 Baynard Mar 2011 A1
20110073043 Dault Mar 2011 A1
20110083609 Cote Apr 2011 A1
20110088626 Hepp et al. Apr 2011 A1
20110180004 Humphries et al. Jul 2011 A1
20110226186 Hunter et al. Sep 2011 A1
20120037080 Hepp et al. Feb 2012 A1
20120055410 Cote Paul Mar 2012 A1
20120234249 Gaze Sep 2012 A1
20130125826 Meter May 2013 A1
Non-Patent Literature Citations (7)
Entry
Non-Final Office Action, U.S. Appl. No. 13/107,841, dated Jun. 27, 2012, 9 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, dated Jan. 9, 2013, 22 pages.
Response to Final Office Action, U.S. Appl. No. 13/107,841, filed Jul. 8, 2013, 10 pages.
Non-Final Office Action, U.S. Appl. No. 13/107,841, filed Aug. 19, 2013, 20 pages.
Response to Non-Final Office Action, U.S. Appl. No. 13/107,841, filed Jan. 22, 2014, 12 pages.
Notice of Allowance, U.S. Appl. No. 13/107,841; dated Jun. 12, 2014, 18 pages.
Related Publications (1)
Number Date Country
20150027377 A1 Jan 2015 US
Provisional Applications (1)
Number Date Country
61330842 May 2010 US
Continuation in Parts (1)
Number Date Country
Parent 13107841 May 2011 US
Child 14514196 US