Fence System
20210079684 ยท 2021-03-18
Assignee
Inventors
Cpc classification
E04H17/1447
FIXED CONSTRUCTIONS
E04H17/1404
FIXED CONSTRUCTIONS
E04H17/143
FIXED CONSTRUCTIONS
E04H17/16
FIXED CONSTRUCTIONS
International classification
E04H17/14
FIXED CONSTRUCTIONS
E04H17/16
FIXED CONSTRUCTIONS
Abstract
A fence section includes an upper horizontal rail, a lower horizontal rail, and vertical members. At least one of the vertical members is connected to the upper horizontal rail by an upper connection system and to the lower horizontal rail by a lower connection system.
Claims
1. A fence section, comprising: an upper horizontal rail including a first longitudinally-extending wall extending lengthwise of the upper horizontal rail and laterally between first and second upper rail sidewalls that depend from the first longitudinally-extending wall and are spaced apart from one another to define an upper rail cavity, wherein the first longitudinally-extending wall includes a plurality of upper rail apertures; a lower horizontal rail, spaced vertically below the upper horizontal rail, including a second longitudinally-extending wall extending lengthwise of the lower horizontal rail and laterally between first and second lower rail sidewalls that depend from the first longitudinally-extending wall and are spaced apart from one another to define a lower rail cavity, wherein the second longitudinally-extending wall includes a plurality of lower rail apertures; and a plurality of vertical members; wherein: for at least one of the plurality of vertical members: the vertical member is connected to the upper horizontal rail by an upper connection system and to the lower horizontal rail by a lower connection system; wherein: the upper connection system includes a first upper connecting structure and a second upper connecting structure; and the lower connection system includes a first lower connecting structure and a second lower connecting structure; wherein: the first upper rail sidewall includes a first upper counterpart of the first upper connecting structure, and the vertical member includes a second upper counterpart of the first upper connecting structure; the second upper rail sidewall includes a first upper counterpart of the second upper connecting structure, and the vertical member includes a second upper counterpart of the second upper connecting structure; the first lower rail sidewall includes a first lower counterpart of the first lower connecting structure, and the vertical member includes a second lower counterpart of the first lower connecting structure; the second lower rail sidewall includes a first lower counterpart of the second lower connecting structure, and the vertical member includes a second lower counterpart of the second lower connecting structure; the second upper counterpart of the first upper connecting structure, the second upper counterpart of the second upper connecting structure, the second lower counterpart of the first lower connecting structure, the second lower counterpart of the second lower connecting structure and the vertical member are integrally formed within a unitary one-piece construction; and for the upper connection system, the connection of the vertical member to the upper horizontal rail is effected by: (i) a first upper interaction between the first upper counterpart of the first upper connecting structure and the second upper counterpart of the first upper connecting structure, and (ii) a second upper interaction between the first upper counterpart of the second upper connecting structure and the second upper counterpart of the second upper connecting structure; for the lower connection system, the connection of the vertical member to the lower horizontal rail is effected by: (i) a first lower interaction between the first lower counterpart of the first lower connecting structure and the second lower counterpart of the first lower connecting structure, and (ii) a second lower interaction between the first lower counterpart of the second lower connecting structure and the second lower counterpart of the second lower connecting structure; the vertical member extends through the upper horizontal rail via a respective upper rail aperture and the lower horizontal rail via a respective lower rail aperture; the vertical member and the upper horizontal rail are co-operatively configured such that establishing of the connection by the upper connection system is effected in response to insertion of the vertical member through the upper horizontal rail via the respective rail aperture; the vertical member and the lower horizontal rail are co-operatively configured such that establishing of the connection by the lower connection system is effected in response to insertion of the vertical member through the lower horizontal rail via the respective rail aperture; and for the upper connection system, (i) at least one of (a) the first upper counterpart of the first upper connecting structure, and (b) the second upper counterpart of the first upper connecting structure, is resiliently deformable, such that at least one of the first upper counterpart of the first upper connecting structure and the second upper counterpart of the first upper connecting structure is deflected while the inserting is being effected, and (ii) at least one of (a) the first upper counterpart of the second upper connecting structure, and (b) the second upper counterpart of the second upper connecting structure, is resiliently deformable, such that at least one of the first upper counterpart of the second upper connecting structure and the second upper counterpart of the second upper connecting structure is deflected while the inserting is being effected, and for the lower connection system, (i) at least one of (a) the first lower counterpart of the first lower connecting structure, and (b) the second lower counterpart of the first lower connecting structure, is resiliently deformable, such that at least one of the first lower counterpart of the first lower connecting structure and the second lower counterpart of the first lower connecting structure is deflected while the inserting is being effected, and (ii) at least one of (a) the first lower counterpart of the second lower connecting structure, and (b) the second lower counterpart of the second lower connecting structure, is resiliently deformable, such that at least one of the first lower counterpart of the second lower connecting structure and the second lower counterpart of the second lower connecting structure is deflected while the inserting is being effected.
2. The fence section as defined in claim 1, wherein at least one of the first upper counterpart of the first upper connecting structure and the second upper counterpart of the first upper connecting structure is biased into the first upper interaction; at least one of the first upper counterpart of the second upper connecting structure and the second upper counterpart of the second upper connecting structure is biased into the second upper interaction; at least one of the first lower counterpart of the first lower connecting structure and the second lower counterpart of the first lower connecting structure is biased into the first lower interaction; and at least one of the first lower counterpart of the second lower connecting structure and the second lower counterpart of the second lower connecting structure is biased into the second lower interaction.
3. The fence section as defined in claim 1, wherein each one of the upper and lower horizontal rails includes an extruded lineal of plastic material.
4. The fence section as defined in claim 1, wherein: the first upper counterpart of the first upper connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member through the upper horizontal rail via the respective upper rail aperture, and a second position for effecting the first upper interaction; and the first upper counterpart of the second upper connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member through the respective upper rail aperture, and a second position for effecting the second upper interaction; and the first lower counterpart of the first lower connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member through the lower horizontal rail via the respective lower rail aperture, and a second position for effecting the first lower interaction with the second lower counterpart of the first lower connecting structure; and the first lower counterpart of the second lower connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member through the lower horizontal rail via the respective lower rail aperture, and a second position for effecting the second lower interaction.
5. The fence section as defined in claim 1, wherein for each one of the at least one vertical member: the connection of the vertical member to the upper horizontal rail is exclusively via the upper connection system, and the connection of the vertical member to the lower horizontal rail is exclusively via the lower connection system.
6. The fence section of claim 1, wherein: the second upper counterpart of the first upper connecting structure includes a first upper slot; the second upper counterpart of the second upper connecting structure includes a second upper slot; the second lower counterpart of the first lower connecting structure includes a first lower slot; the second lower counterpart of the second lower connecting structure includes a second lower slot; the first upper interaction includes an extension of the first upper counterpart of the first upper connecting structure into the first upper slot; the second upper interaction includes an extension of the first upper counterpart of the second upper connecting structure into the second upper slot; the first lower interaction includes an extension of the first lower counterpart of the first lower connecting structure into the first lower slot; and the second lower interaction includes an extension of the first lower counterpart of the second lower connecting structure into the second lower slot.
7. A fence section comprising: at least two horizontal rails, each one of the at least two horizontal rails including a longitudinally-extending wall extending lengthwise of the horizontal rail and laterally between first and second rail sidewalls that depend from the longitudinally-extending wall and are spaced apart from one another, wherein the longitudinally-extending wall includes at least one rail aperture; and at least one vertical member; wherein: the at least two horizontal rails and the at least one vertical member are co-operatively configured such that, for at least one of the at least one vertical member: the vertical member is connected to each one of the at least two horizontal rails by a respective connection system such that at least two connection systems are provided; each one of the at least two connection systems includes a first connecting structure and a second connecting structure; the first connecting structure includes a first counterpart that is connected to a second counterpart, wherein the first counterpart of the first connecting structure is defined by the first rail sidewall and the second counterpart of the first connecting structure is defined by the vertical member; the second connecting structure includes a first counterpart that is connected to a second counterpart, wherein the first counterpart of the second connecting structure is defined by the second rail sidewall and the second counterpart of the second connecting structure is defined by the vertical member; and the second counterpart of the first connecting structure, the second counterpart of the second connecting structure and the vertical member are integrally formed within a unitary one-piece construction; the connection of the first counterpart of the first connecting structure to the second counterpart of the first connecting structure is established by a first interaction between the first counterpart of the first connecting structure and the second counterpart of the first connecting structure, and the connection of the first counterpart of the second connecting structure to the second counterpart of the second connecting structure is established by a second interaction between the first counterpart of the second connecting structure and the second counterpart of the second connecting structure; and for each one of the at least two horizontal rails, the connection with the vertical member horizontal rail is established in response to insertion of the vertical member through the horizontal rail via a respective rail aperture, wherein: at least one of: (a) the first counterpart of the first connecting structure and (b) the second counterpart of the first connecting structure is resiliently deformable, such that at least one of the first counterpart of the first connecting and the second counterpart of the first connecting structure is deflected while the inserting is being effected; and at least one of: (a) the first counterpart of the second connecting structure and (b) the second counterpart of the second connecting structure is resiliently deformable, such that at least one of the first counterpart of the second connecting structure and the second counterpart of the second connecting structure is deflected while the inserting is being effected.
8. The fence section of claim 7, wherein for each one of the at least two connection systems: at least one of the first counterpart of the first connecting structure and the second counterpart of the first connecting structure is biased into the first interaction, and at least one of the first counterpart of the second connecting structure and the second counterpart of the second connecting structure is biased into the second interaction.
9. The fence section of claim 7, wherein for each one of the at least two connection systems: the first counterpart of the first connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member, through the horizontal rail via the respective rail aperture, and a second position for effecting the first interaction; and the first counterpart of the second connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member, through the horizontal rail via the respective rail aperture, and a second position for effecting the second interaction.
10. The fence section of claim 7, wherein for each one of the at least one vertical member: the connection of the vertical member to the one or more horizontal rails is exclusively via the one or more connection systems.
11. The fence section of claim 7, wherein the at least two horizontal rails are of plastic material and the at least one vertical member is of plastic material.
12. The fence section of claim 7, wherein: the first counterpart of the first connecting structure and the first rail sidewall are integrally formed within a unitary one-piece construction; and the first counterpart of the second connecting structure and the second rail sidewall are integrally formed within a unitary one-piece construction.
13. The fence section of claim 7 wherein: the second counterpart of the first connecting structure includes a first slot; the second counterpart of the second connecting structure includes a second slot; the first interaction includes an extension of the first counterpart of the first connecting structure into the first slot; and the second interaction includes an extension of the first counterpart of the second connecting structure into the second slot.
14. A kit for assembling a fence, comprising: at least two horizontal rails, each one of the at least two horizontal rails including a longitudinally-extending wall extending lengthwise of the horizontal rail and laterally between first and second rail sidewalls that depend from the longitudinally-extending wall and are spaced apart from one another, wherein the longitudinally-extending wall includes at least one rail aperture; and at least one vertical member; wherein: the at least two horizontal rails and the at least one vertical member are co-operatively configured such that, for at least one of the at least one vertical member: the vertical member is connectible to the at least two horizontal rails for obtaining an assembly wherein each one of the at least two horizontal rails is connected to the vertical member by a respective connection system such that at least two connection systems are provided; each one the at least two connection systems includes a first connecting structure and a second connecting structure; the first connecting structure includes a first counterpart that is connectible to a second counterpart, wherein the first counterpart of the first connecting structure is defined by the first rail sidewall and the second counterpart of the first connecting structure is defined by the vertical member; the second connecting structure includes a first counterpart that is connectible to a second counterpart, wherein the first counterpart of the second connecting structure is defined by the second rail sidewall and the second counterpart of the second connecting structure is defined by the vertical member; the second counterpart of the first connecting structure, the second counterpart of the second connecting structure, and the vertical member are integrally formed within a unitary one-piece construction; the connection of the first counterpart of the first connecting structure to the second counterpart of the first connecting structure is establishable by a first interaction between the first counterpart of the first connecting structure and the second counterpart of the first connecting structure, and the connection of the first counterpart of the second connecting structure to the second counterpart of the second connecting structure is establishable by a second interaction between the first counterpart of the second connecting structure and the second counterpart of the second connecting structure; for each one of the at least two horizontal rails, the connection with the vertical member is establishable in response to insertion of the vertical member through the horizontal rail via a respective rail aperture, wherein: at least one of: (a) the first counterpart of the first connecting structure, and (b) the second counterpart of the first connecting structure, is resiliently deformable, such that at least one of the first counterpart of the first connecting structure and the second counterpart of the first connecting structure is deflected while the inserting is being effected, and at least one of: (a) the first counterpart of the second connecting structure and (b) the second counterpart of the second connecting structure is resiliently deformable, such that at least one of the first counterpart of the second connecting structure and the second counterpart of the second connecting structure is deflected while the inserting is being effected.
15. The kit of claim 14, wherein: at least one of the first counterpart of the first connecting structure and the second counterpart of the first connecting structure is biased into the first interaction in response to alignment of the first counterpart of the first connecting structure with the second counterpart of the first connecting structure, and at least one of the first counterpart of the second connecting structure and the second counterpart of the second connecting structure is biased into the second interaction in response to alignment of the first counterpart of the second connecting structure with the second counterpart of the second connecting structure.
16. The kit of claim 15, wherein: the at least one of the first counterpart of the first connecting structure and the second counterpart of the first connecting structure, that is biased into the first interaction, includes the first counterpart of the first connecting structure, such that the first counterpart of the first connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member through the horizontal rail via the respective rail aperture, and a second position for effecting the first interaction; and the at least one of the first counterpart of the second connecting structure and the second counterpart of the second connecting structure, that is biased into the second interaction, includes the first counterpart of the second connective structure, such that the first counterpart of the second connecting structure is resiliently deformable between: a first position for permitting the insertion of the vertical member through the horizontal rail via the respective rail aperture, and a second position for effecting the second interaction.
17. The kit of claim 14, wherein for at least one of the at least one vertical member, connection to the at least two horizontal rails is exclusively via the at least two connection systems.
18. The kit of claim 14, wherein: the at least two horizontal rails are of plastic material; and the at least one vertical member is of plastic material.
19. The kit of claim 14, wherein: the first counterpart of the first connecting structure, and the first rail sidewall, are integrally formed within a unitary one-piece construction; and the first counterpart of the second connecting structure, and the second rail sidewall, are integrally formed within a unitary one-piece construction.
20. The kit of claim 14, wherein: the second counterpart of the first connecting structure includes a first slot and the first interaction includes an extension of the first counterpart of the first connecting structure into the first slot; and the second counterpart of the second connecting structure includes a second slot and the second interaction includes an extension of the first counterpart of the second connecting structure into the second slot.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0062] The drawings included herewith are for illustrating various examples of articles, methods, and apparatuses of the present specification and are not intended to limit the scope of what is taught in any way. In the drawings:
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DETAILED DESCRIPTION
[0106] Various apparatuses or processes will be described below to provide an example of an embodiment of each claimed invention. No embodiment described below limits any claimed invention and any claimed invention may cover processes or apparatuses that are not described below. The claimed inventions are not limited to apparatuses or processes having all of the features of any one apparatus or process described below or to features common to multiple or all of the apparatuses described below. It is possible that an apparatus or process described below is not an embodiment of any claimed invention. Any invention disclosed in an apparatus or process described below that is not claimed in this document may be the subject matter of another protective instrument, for example, a continuing patent application, and the applicants, inventors or owners do not intend to abandon, disclaim or dedicate to the public any such invention by its disclosure in this document.
[0107] Referring to
[0108] Referring to
[0109] In the example illustrated, the rail profile 116 includes a distal lattice recess 134 associated with the distal face 122. The distal lattice recess 134 includes opposed distal lattice recess sidewalls 136a, 136b each having an outer end 138a, 138b at the distal face 122, and an inner end 140a, 140b disposed vertically intermediate the distal face 122 and the panel recess base 132. A distal lattice recess base 142 extends generally laterally between the inner ends 140a, 140b of the distal lattice recess sidewalls 136a, 136b.
[0110] A frangible cover strip 143 can be provided for releasably covering the distal lattice recess 134. The frangible cover strip 143 can extend laterally between the outer ends 140a, 140b of the distal lattice recess sidewalls 136a, 136b. In the example illustrated, the distal face 122 is generally planar, and the frangible cover strip 143 is coplanar with the distal face 122.
[0111] In the example illustrated, the connection between opposed lateral edges of the cover strip 143 and the adjacent outer ends 138a, 138b of the distal lattice sidewalls 136a, 136b comprises a thinned section of extruded material (e.g. having opposed v-grooves), facilitating tearing away the cover strip 143 to provide access to the recess 134 for use.
[0112] The rail profile 116 can additionally or alternatively be provided with a proximal lattice recess 144 associated with the proximal face 120. The proximal lattice recess 144 has laterally spaced apart proximal lattice recess sidewalls 146a, 146b each having an outer end 148a, 148b at the panel recess base 132, and an inner end 150a, 150b vertically intermediate the panel recess base 132 and the distal lattice recess base 142. A proximal lattice recess base 152 extends laterally between the inner ends 150a, 150b of the proximal lattice recess sidewalls 146a, 146b.
[0113] The rail profile 116 further includes at least one tongue 158 extending from one panel recess sidewall inwardly of the recess 124, towards the opposing panel recess sidewall. In the example illustrated, the tongue 158 extends from the panel recess sidewall 126a laterally (generally horizontally) towards the other panel recess sidewall 126b. The tongue 158 is joined to the panel recess sidewall 126a at a vertical position generally intermediate the inner and outer ends 128a, 130a thereof.
[0114] Referring to
[0115] Referring to
[0116] As seen in
[0117] A third rail 172 can be mounted atop the lattice panel 170. In the example, illustrated, the third rail 172 has the same common rail profile 116 as the first and second rails 112, 114. An upper marginal portion of the lattice panel 170 is received in the proximal lattice recess 144 (see also
[0118] In an alternate example shown in
[0119] In
[0120] Referring to
[0121] The profile 216 can also include pressure tabs 227 extending generally from the panel recess base towards the proximal face of the profile 216. The pressure tabs 227 are configured to bear against the end face of the panel 215. This can facilitate secure mounting of the panels 215 in the panel recesses 224.
[0122] In
[0123]
[0124]
[0125] Referring to
[0126] The front and back faces 417a, 417b can be provided with one or more recessed channels 486 extending along the height 460 of the panel. Each channel 486 comprises opposed channel side faces 490a, 490b, extending generally orthogonally from the respective panel face 417a, 417b and towards the panel interior (i.e. towards the opposing panel face), and a channel base 492 extending between the lateral faces. The channel base 492 is, in the example illustrated, generally planar and parallel to the faces 417a, 417b. The orthogonal (or lateral) extent of the channel side faces 490a, 490b generally defines a channel depth D1. The spacing between the channel side faces 490a, 490b (measured parallel to the rails) generally defines a channel width W1. The channels 486 provide the panels 415 with raised panel portions 425 on either side of the recessed channels 486. The raised panel portions 425 can create the appearance of a plurality of side-by-side slats each extending longitudinally along the height 460 of the panel 415.
[0127] In the example shown, each panel 415 comprises one channel 486 spaced approximately mid-way between the vertically extending ends 423a, 423b. However, in other examples, more than one channel 486 may be provided on each face.
[0128] Referring to
[0129] Further, the width W2 (extending parallel to the rails 412, 414) of each wall 494a, 494b is generally equal to the width W1 of the channel face 492. Accordingly, referring to
[0130] Referring to
[0131] Referring to
[0132] To provide the grooves 466a, 466b, 468a, 468b, a saw cut can be made across the entire width 421 of the panel 415. The depth of cut can be set to generally equal the channel depth D1, so that the thickness of the extruded wall forming the raised panels 425 is cut through, but the wall forming the base 492 is below the depth of cut and so remains uncut.
[0133] Upon installation, when the tongues 458a, 458b are received in the slots 466 and 468, the innermost edges of the tongues 458a, 458b generally abut the channel bases 492. This can help to close off what would otherwise be an opening between the outer edges 428a, 428b of the panel slot sidewalls 426a, 426b and the base panel 492 of the channels 486. If left uncovered, such openings could admit snow, dirt, water or other matter to invade the rails. Further, as grooves 466, 468 are not provided in channels 486 (i.e. grooves 466, 468 are not cut into the channel bases 492), the channel bases 492 may provide additional strength to the panels 415.
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[0135] Another example of a fence section 1100 is shown in
[0136] Referring still to
[0137] Each of the vertical members 1150 defines and extends along a respective vertical axis, for example vertical axis 1156. The vertical members 1150 are, in the example illustrated, extruded lineals that each have the same extruded cross section. In some examples each vertical member 1150 may be extruded as a separate member, or may be an injection molded member, or the vertical members 1150 may each be cut to length from a single, longer extruded member. The vertical axis of each vertical member generally coincides with the extrusion direction of the vertical members. The upper 1152 and lower slots of the vertical members 1150 extend generally perpendicular to its vertical axis. The upper 1152 and lower slots may be formed in the vertical members 1150 using a secondary manufacturing process after the vertical members 1150 have been extruded, for example by cutting, routing, machining and milling. In the example illustrated the upper 1152 and lower slots are formed by plunge cutting with a saw blade having a thickness generally equal to the thickness of the slot. The saw blade can have a depth a cut that provides a slot all the way through the sidewall, and having notches in each edge wall orthogonal to the sidewall.
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[0139] In some examples the upper 1152 and lower slots are cut into the sidewall 1160 so that the slot faces 1162, 1164 are generally orthogonal to the outer surface 1166 of the sidewall 1160. Such slots may be created by cutting the vertical members 1150 using a saw blade that is generally orthogonal to the sidewalls 1160. In other examples, the slots are cut into the sidewall 1160 so that the slot edge faces 1162 are at an oblique angle 1163 relative to outer surface 1166. This type of angle slot may be formed by cutting the vertical members 1150 with an angled saw blade. Angled slot edge faces 1162 may provide clearance for the attachment legs 1130 to flex and bend as they are snapped or snap-fit into the slots while maintaining the vertical connection to and support of the rail members 1110, 1112 once the attachment legs 1130 have been fully inserted into their respective slots. The slot end faces 1164 are parallel to each other and are spaced apart by a slot length 1159b and the slot edge faces 1162 are spaced apart by a slot height 1159a.
[0140] In the example illustrated, each attachment leg 1130 comprises opposing attachment leg end faces 1132 spaced apart by an attachment leg length. The attachment leg length is generally equal to, but slightly less than the slot length 1159b of the corresponding slot so that the attachment leg end faces 1132 can closely fit between the slot end faces 1164 without interfering with the slot end faces 1164 so that the attachment leg 1130 can be inserted into its slot.
[0141] Referring to
[0142] Referring still to
[0143] Referring still to
[0144] In the example illustrated in
[0145] Referring to
[0146] When the rails 1110, 1112 have a generally C-shaped profile, as illustrated in
[0147] Complementing the arrangement of opposing attachment legs 1130 each vertical member 1150 includes a set of complimentary opposing upper slots 1152 and a set of opposing lower slots 1154 formed in opposing sidewalls 1160 of the vertical member 1150 for receiving the opposing pairs of attachment legs 1130 on the upper and lower rails 1110, 1112 respectively.
[0148] In this example, the rail sidewalls 1120, 1122 may also be at least partially resilient to enable them to flex outwardly when the vertical members 1150 are inserted through the internal cavity 1124 when the attachment legs 1130 are not aligned with the slots 1152, 1154, and then to return to their original configuration after the attachment legs 1130 are inserted through the slots 1152, 1154.
[0149] The apertures 1126 in the upper walls 1118 of the rails 1110, 1112 are illustrated as being generally rectangular, with rounded corners that are shaped to snugly receive the vertical members 1150. In other examples, both the apertures 1126 and the vertical members 1150 maybe of a different configuration. While the vertical members 1150 are shown as being generally rectangular, it is understood that the cross-sectional shape (and its dimensions and proportions) of the vertical members 1150 may be any suitable shape, including square, rectangular, triangular, circular and polygonal. Similarly, the apertures 1126 may be of any desired size and shape that can receive a corresponding vertical member. The apertures may have the same general shape and size as the vertical members so that the vertical members closely fit within the apertures with little visible gap between the surfaces of the vertical member and the receiving aperture. Alternatively, the apertures may be of a different size and/or shape than the vertical members so that the vertical members are loosely received within the apertures. For example, a round vertical member could be loosely received within a larger, square aperture.
[0150] In an alternate example shown in
[0151] Referring now to
[0152] Fence section 1200 also includes a plurality of vertical members 1250 extending between the upper and lower horizontal rails 1210, 1212. Referring to
[0153] Referring to
[0154] With reference to
[0155] In some examples the slots 1252, 1254 can be cut into the sidewall 1260 so that the slot faces 1262, 1264 are generally orthogonal to the outer surface 1266 of the sidewall 1260. Such slots 1252, 1254 may be created by plunge cutting the vertical members 1250 using a saw blade that is generally orthogonal to the sidewalls 1260. In other examples, the slots 1252, 1254 are cut into the sidewall 1260 so that the slot edge faces 1262 are at an oblique angle relative to the outer surface 1266. The slot end faces 1264 are parallel to each other and are spaced apart by a slot length 1259b and the slot edge faces 1262 are spaced apart by a slot height 1259a.
[0156] Referring to
[0157] Referring to
[0158] Referring to
[0159] Each attachment leg 1230 may also be resilient, or include some resilient portions, so that it is moveable between a first position for inserting the attachment leg 1230 and barb 1234 through its slot 1252, 1254 and a second position for retaining (or securing or locking) the attachment leg 1230 within its slot 1252, 1254. When the attachment leg 1230 is in its first or insertion position the barb 1234 can be passed through the slot 1252, 1254 from outside the vertical member 1250 to inside the hollow interior of the vertical member 1250. To facilitate insertion of the attachment leg 1230 and barb 1234, an angled portion of the barb 1234 (extending from the leading edge 1240 to the abutment surface 1236 in the example shown) may engage a slot edge face 1262 and act as a cam surface to guide the barb 1234 as it is inserted, as described in detail above with respect to fence section 1100. When the attachment leg 1230 is in the second position the abutment surface 1236 engages the inner surface 1268 of the sidewall 1260. The resilient nature of the attachment leg 1230 biases the attachment leg 1230 is second position.
[0160] In the example of the fence section 1200 illustrated in
[0161] In one example, as illustrated in
[0162] In another example, as illustrated in
[0163] In this configuration, the attachment legs 1230 extending from the first rail sidewall 1220 of the upper and lower horizontal rails 1210, 1212 are received within and connected to the corresponding upper and lower slots 1252, 1254 of the vertical members 1250 in the first set of vertical members 1250a thereby securing each vertical member in the first set of vertical members 1250a adjacent the first sidewall of both horizontal side rails. Similarly, the attachment legs 1230 extending from the second sidewall 1222 of the upper and lower horizontal rails 1210, 1212 are received within and connected to the corresponding upper and lower slots 1252, 1254 of the vertical members 1250 in the second set of vertical members 1250b, thereby securing each vertical member 1250 in the second set of vertical members 1250b on the opposite side of the rails 1210, 1212 from the first set of vertical members 1250a, adjacent the second sidewall 1222 of both horizontal side rails 1210, 1212. When assembled in this configuration, the fence section 1200 can be described as a double-sided fence.
[0164] In the double-sided configuration, the first and second sets of vertical members 1250a, 1250b can be arranged to directly oppose each other, or, as illustrated in
[0165] In either the single-sided or double-sided configurations the attachment legs 1230 have an attachment leg length 1231 (the distance between opposing attachment leg end faces 1232, shown in
[0166] In each of the examples of fence sections described above, the attachment of the vertical members 1250 to the upper and lower horizontal rails 1210, 1212 includes only the connection between the attachment legs 1230 and the slots 1252, 1254 and is free from other fastening means. The connection between the attachment legs 1230 and the slots 1252, 1254 is a press-fit or snap-fit connection wherein an attachment leg 1230 is aligned with a corresponding slot 1252, 1254 and an insertion force is applied (by a user or during the manufacturing process) to push the attachment leg 1230 (including barb 1234) completely into its slot 1252, 1254. During insertion process the attachment leg 1230 (or a portion thereof) may deflect or bend as it passes through its slot 1252, 1254 and then snap back or return to its original position to positively engage a portion of the vertical member 1230 and retain the attachment leg 1230 within its slot 1252, 1254 once fully inserted. Fully inserted is understood to mean inserted to the extent necessary for the attachment leg 1130, 1230 to operatively or positively engage its slot 1252, 1254 so as to be retained therein to functionally secure the vertical members 1150, 1250 to the rails 1110, 1112, 1210, 1212. In the examples described, the attachment legs 1130, 1230 may be considered fully inserted when the they have been inserted to the point where abutment surface 1136, 1236 of the barb 1134, 1234 engages the inner surface 1168, 1268 of the vertical member sidewall 1160, 1260. When a functional or operational engagement between the vertical members and the rails is achieved an attachment leg 1130, 1230 may be considered fully inserted, even if a portion of the attachment leg 1130, 1230 extends beyond the outer sidewall surface 1168, 1268 such that a portion of the attachment leg is visible to the user after the fence sections have been assembled and the vertical members are slightly spaced from the rails.
[0167] Generally, a method for assembling a fence section using the snap-fit connectors described above includes providing a first and second horizontal rails that are parallel to, and spaced apart from each other. Both the first and second rails include at least one integrally formed attachment leg extending therefrom. In addition to the first and second rails the assembly method includes providing a plurality of vertical members. The size and shape of the vertical members may be dictated by user preferences or by the style of fence section being created (for example fence sections 1100, 1200). Each vertical member provided includes at least one upper slot formed in a sidewall for receiving one attachment leg from the first horizontal rail and at least one lower slot formed in the sidewall for receiving one attachment leg from the second horizontal rail. Depending on the fence style selected the upper and lower slots may be formed on the same sidewall or on opposing sidewalls. The fence panel is then assembled by connecting each vertical member to the first and second horizontal rails by inserting each attachment leg on the first horizontal rail into a corresponding upper slot on each of the vertical members and inserting each attachment leg on the second horizontal rail into the corresponding lower slot on each on each vertical member.
[0168] Referring to
[0169] Referring to
[0170] When the resilient retaining member 1335 is in the insertion position (as best shown in
[0171] The resilient retaining member 1335 of each barb 1334 forms the abutment surface 1336 and when the attachment leg 1330 is fully inserted in its slot (as defined above) the resilient retaining member 1335 moves to the retention position so that the abutment surface 1336 engages the inner surface 1368 of the vertical member sidewall 1360. In the examples illustrated, when the retaining member 1335 is inserted and moved to the retention position the base surface 1338 of the rail 1310 contacts the outer surface 1366 of the vertical member sidewall 1360.
[0172] In some examples, the contact between the retaining member 1335 and the base surface 1338 and the inner and outer surfaces 1366, 1368 of the vertical member sidewall 1360 creates a satisfactory connection between the rails and the vertical members. In other examples, as shown in
[0173] Referring now to
[0174] Similarly to the example of
[0175] Referring now to
[0176] The second extruded lineal 1410 extends lengthwise along a second longitudinal axis 1414 and includes an attachment leg 1430 (also referred to as a first attachment leg) corresponding to the slot 1452. The attachment leg 1430 extends outward from the second extruded lineal 1410 and is generally parallel to the second longitudinal axis 1414. The first attachment leg 1452 is integrally formed with the second extruded lineal 1410 and is inserted into or received within in the first slot 1452 to secure the first extruded lineal 1450 to the second extruded lineal 1410.
[0177] Optionally, as shown in
[0178] In the single-slot and double-slot examples, each slot 1452, 1453 forms an opening that extends through the sidewall 1460. Each opening or slot 1452, 1453 has opposed slot edge faces 1462 and opposing slot end faces 1464. The slot edge faces 1462 and slot end faces 1464 extending through the sidewall 1460 from the outer surface 1466 of the sidewall 1460 to the inner surface 1468 of the sidewall 1460.
[0179] In the example illustrated, the slot edge faces 1462 are parallel to each other and perpendicular to the outer surface 1466 of the sidewall 1460 and the first longitudinal axis 1456. In another example, the slot edge faces 1462 are at an oblique angle relative to the first longitudinal axis 1456 (for example the slot edge faces 1162 and 1262 described above).
[0180] Each attachment leg 1430, 1431 has a distal portion spaced apart from the second extruded lineal 1410 and a barb 1434 that extends from the distal portion. Each barb 1434 includes an abutment surface 1436 that engages and bears against a portion of the inner surface 1468 of the sidewall 1460 that is adjacent the slot 1452, 1453 into which the attachment leg 1430, 1431 is received. This engagement between the abutment surface 1436 and the inner sidewall surface 1468 may help to retain the attachment leg 1430, 1431 within its slot 1452, 1453 when the attachment leg 1430, 1431 is fully inserted into its slot 1452, 1453.
[0181] The second extruded lineal 1410 also includes a base surface 1438 that cooperates with the abutment surface 1436 to secure the second extruded lineal 1410 to the first extruded lineal 1450. Each attachment leg 1430, 1431 extends from the base surface 1438 and the base surface 1438 generally opposes the abutment service 1436 (either physicallyi.e. the surfaces are facing each other, or operationally/functionallyi.e. the abutment surface and the base surface exert generally opposing forces on the first extruded lineal) and is spaced apart from the abutment surface 1436 by a distance 1472 that is greater than the thickness T of the first extruded lineal sidewall 1460.
[0182] The slot end faces 1464 are spaced apart by a first width 1474 (also referred to as a slot width) and the attachment legs 1430, 1431 received within each slot 1452, 1453 second width 1476. The second width 1476 is generally equal to, but at least slightly shorter than, the first width 1474 so the attachment legs 1430, 1431 can fit within the slots 1452, 1453 but translation or sliding of the first extruded lineal 1450 relative to the second extruded lineal 1410 along the second longitudinal axis 1414 is inhibited when the attachment legs 1430, 1431 are received in their slots 1452, 1453.
[0183] While the above description provides examples of one or more processes or apparatuses in accordance with the applicant's contribution to the state of the art as disclosed herein, it will be appreciated that other processes or apparatuses may be within the scope of such contribution, and any exclusive right that may be granted to the applicants in respect of such contribution is not necessarily limited to the aforementioned examples as specifically described herein.