Linear surface covering system
09834928 · 2017-12-05
Assignee
Inventors
Cpc classification
E04B9/26
FIXED CONSTRUCTIONS
E04B9/363
FIXED CONSTRUCTIONS
International classification
E04B9/26
FIXED CONSTRUCTIONS
Abstract
The invention relates to a surface covering system, and, more specifically, to an improved linear surface covering system. The improvement includes each plank of the system having multi-directionally cut grooves. The improvement further includes clip projections which conform substantially to a notch formed by the multi-directional grooves. The system also includes an improved splice plate for stabilizing two adjacent planks positioned in end-to-end relation.
Claims
1. A method of installing a linear surface covering system comprising: a) positioning a plank adjacent to a resilient clip mounted to a carrier, the resilient clip comprising a main body portion having a center plane and first and second protrusions located on opposite sides of the main body portion, the plank comprising a back surface and first and second multi-directional grooves extending from the back surface into the interior of the plank; b) applying pressure to the plank thereby causing the plank to translate toward the carrier in a direction substantially orthogonal to the back surface of the plank and causing the first protrusion to move into the first multidirectional groove and the second protrusion to move into the second multi-directional groove, wherein during said movement of the first and second protrusions into the first and second multi-directional grooves, each of the first and second protrusions: (1) spread outwardly from the central plane of the resilient clip to allow a back portion of the plank to pass between the first and second protrusions during a first stage of said movement; and (2) snap-back toward one another to engage the back portion of the plank upon a second stage of said movement, the second stage of said movement being subsequent to the first stage of said movement; and c) discontinuing said application of said pressure from the plank, the plank being mounted to the carrier by the resilient clip.
2. The method of installing a linear surface covering system of claim 1, further comprising d) coupling the plank to an adjacent plank by a splice plate, the splice plate spanning a butt joint of the plank and the adjacent plank positioned end-to-end.
3. The method of installing a linear surface covering system of claim 1, wherein the first multidirectional groove and the second multi-directional groove are each inboard grooves.
4. The method of installing a linear surface covering system of claim 1, wherein during step b) the first protrusion contacts at least a portion of a first side-wall of the first multidirectional groove causing the first protrusion to spread outwardly from the central plane of the resilient clip.
5. The method of installing a linear surface covering system of claim 1, wherein during step b) the second protrusion contacts at least a portion of a second side-wall of the second multidirectional groove causing the second protrusion to spread outwardly from the central plane of the resilient clip.
6. A method of installing a linear surface covering system comprising: a) positioning a plank adjacent to a resilient clip comprising a main body portion and first and second protrusions located on opposite sides of the main body portion, the plank comprising a back surface, a first multi-directional inboard groove having a first floor, and a second multi-directional inboard groove having a second floor, the first and second multi-directional grooves extending from the back surface into the interior of the plank, the back surface having a central portion positioned between first and second edge portions, wherein a first side surface of the first multi-directional inboard groove extends upward from the first floor to the first edge portion and a first side surface of the second multidirectional inboard groove extends upward from the first floor to the second edge portion; b) applying pressure to the plank thereby causing the first protrusion to move into the first multidirectional inboard groove and the second protrusion to move into the second multi-directional inboard groove, wherein during said movement of the first and second protrusions into the first and second multi-directional inboard grooves, the first and second protrusions: (1) spread outwardly from one another to allow a back portion of the plank to pass between the first and second protrusions during a first stage of said movement; and (2) snap-back toward one another to engage the back portion of the plank upon a second stage of said movement, the second stage of said movement being subsequent to the first stage of said movement; and c) discontinuing said application of said pressure from the plank, the plank being mounted to the resilient clip.
7. The method of installing a linear surface covering system of claim 6, further comprising d) coupling the plank to an adjacent plank by a splice plate, the splice plate spanning a butt joint of the plank and the adjacent plank positioned end-to-end.
8. The method of installing a linear surface covering system of claim 6, wherein during step b) the first protrusion contacts at least a portion of a first side-wall of the first multidirectional groove and the second protrusion contacts at least a portion of a second side-wall of the second multidirectional groove causing the first and second protrusions to spread outwardly from each other.
9. The method of installing a linear surface covering system of claim 6, wherein the first and second edge portions of the back surface are substantially co-planar.
10. The method of installing a linear surface covering system of claim 6, wherein a second side surface of the first multi-directional inboard groove extends upward from the first floor to the central portion.
11. The method of installing a linear surface covering system of claim 10, wherein the first side surface of the first multi-directional inboard groove opposes the second side surface of the first multi-directional inboard groove.
12. The method of installing a linear surface covering system of claim 6, wherein a second side surface of the second multi-directional inboard groove extends upward from the second floor to the central portion.
13. The method of installing a linear surface covering system of claim 12, wherein the first side surface of the second multi-directional inboard groove opposes the second side surface of the second multi-directional inboard groove.
14. A method of installing a ceiling system comprising: a) positioning a plank adjacent to a resilient clip mounted to a carrier, the resilient clip comprising a main body portion and first and second protrusions located on opposite sides of the main body portion, the first protrusion having a first cross-section and the second protrusion having a second cross-section, whereby the first cross-section is a mirrored image of the second cross-section, the plank comprising a back surface and first and second multi-directional grooves extending from the back surface into the interior of the plank; b) applying upward pressure to the plank thereby causing the first protrusion to move into the first multidirectional groove and the second protrusion to move into the second multi-directional groove, wherein during said movement of the first and second protrusions into the first and second multi-directional grooves, each of the first and second protrusions: (1) spread outwardly from one another to allow a back portion of the plank to pass between the first and second protrusions during a first stage of said movement; and (2) snap-back toward one another to engage the back portion of the plank upon a second stage of said movement, the second stage of said movement being subsequent to the first stage of said movement; and c) discontinuing said application of said pressure from the plank, the plank being mounted to the carrier by the resilient clip.
15. The method of installing a ceiling system of claim 14 further comprising suspending the carriers from a ceiling prior to step a).
16. The method of installing a ceiling system of claim 14, wherein the plank comprises a front surface opposite the back surface, wherein the front surface of the plank faces downward once mounted to the carrier by the resilient clip.
17. The method of installing a linear surface covering system of claim 14, wherein applying the pressure to the plank causes the plank to translate upward toward the carrier.
18. The method of installing a linear surface covering system of claim 14, further comprising d) coupling the plank to an adjacent plank by a splice plate, the splice plate spanning a butt joint of the plank and the adjacent plank positioned end-to-end.
19. The method of installing a linear surface covering system of claim 14, the resilient clip comprises a center plane and during step b), each of the first and second protrusions spread outwardly from the central plane of the resilient clip.
20. The method of installing a linear surface covering system of claim 14, wherein during step b) the first protrusion contacts at least a portion of a first side-wall of the first multidirectional groove and the second protrusion contacts at least a portion of a second side-wall of the second multidirectional groove causing the first and second protrusions to spread outwardly from each other.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(13) The same reference numbers will be used throughout the drawings to refer to the same or like parts.
DETAILED DESCRIPTION OF THE DRAWINGS
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(15) As best seen in
(16) As shown in
(17) In the example embodiment shown, the first and second surface portions 26, 27 and 26′, 27′ form a 90 degree angle. As shown in
(18) In the outward direction, the third bend 37 is located between the first bend 35 and the second bend 36 and the second bend 36 is the farthest-most bend from the main body 15 in the outward direction. Along the downward direction, the second bend 36 is located between the first bend 35 and the third bend 37, wherein the third bend is the farthest-most bend from the main body 15 in the downward direction.
(19) The clips 14 are preferably made of a resilient material, such as resilient spring steel. Unlike existing linear surface covering systems, all that is required is for the projections 28, 30 of the clip 14 to contact a respective notch 25, 25′, thereby forcing the resilient projections to spread, thereby distorting the profile of the clip. Mere hand pressure in the direction of Arrow A (
(20) Installing the linear surface covering system 1 includes the steps of positioning a plank 22 adjacent to a resilient clip 14 that is mounted to a carrier 10 and applying pressure to the plank in the direction of Arrow A, which is substantially orthogonal to the back surface of the plank 22. With pressure applied in the direction of Arrow A, the first protrusion 28 moves into the first multidirectional groove 23 and the second protrusion moves 30 into the second multi-directional groove 24. During the movement of the first and second protrusions 28, 30 into the first and second multi-directional grooves 23, 24, the first and second protrusions 28, 30 (1) spread outwardly from one another to allow a back portion 33 of the plank 22 to pass between the first and second protrusions 28, 30 during a first stage of said movement, and (2) then snap-back toward one another to engage the back portion 33 of the plank 22 upon a second stage of said movement, the second stage of said movement being subsequent to the first stage of said movement. Once snapped into place, application of pressure to the plank may be discontinued—thereby resulting in the plank being mounted to the carrier by the resilient clip. Thus, the need for tool adjustment to ensure the projections of the clip achieved a deep enough seat in the grooves is eliminated. Moreover, screws are not required to more positively secure the planks to the carriers.
(21) In another embodiment, the linear surface covering system 1 is installed by positioning a plank 22 adjacent to a resilient clip 14 that is mounted to a carrier 10 and applying pressure to the plank in a direction of Arrow A, which is substantially orthogonal to the back surface of the plank. The pressure applied to the plank 22 causes the first protrusion 28 to move into the first multidirectional groove 23 and the second protrusion 30 to move into the second multi-directional groove 24, wherein during said movement of the first and second protrusions 28, 30 into the first and second multi-directional grooves 23, 24, the first and second protrusions 28, 30 (1) first spread outwardly from one another to allow a back portion 33 of the plank 22 to pass between the first and second protrusions 28, 30 during a first stage of said movement, and followed by snap-back toward one another to engage the back portion 33 of the plank 22 upon a second stage of said movement. The second stage of the movement is subsequent to the first stage of said movement. Finally, the application of said pressure to the plank is discontinued—thereby resulting in the plank being mounted to the carrier by the resilient clip 14. According to the present invention, the need for tool adjustment to ensure the projections 28, 30 of the clip 14 achieved a deep enough seat in the grooves 23, 24 is eliminated. Moreover, screws are not required to more positively secure the planks 22 to the carriers 10.
(22) As shown, once the clip projections are fully seated in their respective groove, the profile will return to its undistorted, i.e. non-tensioned, profile. Specifically, the first and second protrusions 28, 30 are biased, causing the resilient clip 14 to return to a substantially non-deformed state after each of the plurality of planks 22 are snap-fit to the resilient clip 14. The first portion 31, the second portion 32, and the third portion 34 of the first protrusion 28 of the resilient clip 14 extend into the first multi-directional groove 23 of the one of the planks 22 and the first portion 31, the second portion 32, and the third portion 34 of the second protrusion 30 of the clip 14 extend into the second multi-directional groove 24 of the one of the planks 22. The notches 25, 25′ and the portion 33 of the back of the plank 22 between the two grooves 23, 24 will be encapsulated by the relaxed clip 14 and a portion of the protrusions will be positioned under the notches 25, 25′ which will serve to support a plank 22 suspended from the linear carrier 10. The preferred configuration of the clip 14 supporting a plank 22 in a non-tensioned state, adds strength to the attachment of the plank to the carrier. In other words, as one of skill in the art would understand, a plank would be more easily removed from the carrier if the clips supporting the planks were in tension.
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(24) Further, as best shown in
(25) The splice plate of the invention provides the capability of applying more holding force around the grooves, than, for example by, snapping the splice on the abutting planks as described below. Such capability is desirable since it holds the ends of the planks tighter at the seam which, in turn, improves the visual at the seam. In addition, the added strength of the hold helps impede twisting of the plank to prevent unevenness of the planks at the butt joint, again, improving the visual. In effect, the splice plate creates a longer length of wood, i.e. create a plank unit, and most importantly, control the location of the impact of the stresses. More specifically, several planks can act and move as one, in turn, distributing the forces acting thereon to the edges of the plank unit. An additional advantage of the splice plate is that more complex edge detail of the planks (e.g. tongue and groove configuration) is not needed to impart the necessary strength at the plank seems. Thus, the edge detail can be simplified to a flat/flush edge detail.
(26) While the invention has been described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims.
(27) For example, the grooves 23, 24 can form the notch 25 on the opposite wall, i.e. outboard wall, of a groove by inverting the direction of the cuts forming the grooves. In other words, the first surface portion 26 of the notch 25 would be sloped downwardly and inwardly and the second surface portion 27 would be sloped downwardly and outwardly. In turn, the projections 28 and 30 of the clip 14 would be bent to correspond to the contours of the notch 25. Instead of springing the protrusions outwardly, the notches would press the protrusions inwardly. As the protrusions move deeper in their respective groove, the protrusions would spring outwardly, thus seating a portion of the protrusion below the notch.
(28) Optionally, as best seen in
(29) Also, the splice plate could be formed of a single piece of resilient material similar to the clips described above. Thus, in the one-piece configuration, the splice plate would be snapped over the pair of notches in a similar fashion thereto.