CROSS-LAMINATED TIMBER AND COLD FORMED STEEL CONNECTOR AND SYSTEM
A cross-laminated timber (CLT) and cold formed steel (CFS) connector and system is provided. The CLT and CFS connector comprises a track, at least one fastener, and at least one spring. The track is configured to connect to at least one CFS stud. The at least one fastener includes a head and shaft. The at least one fastener is configured to connect the track to a CLT panel. The at least one spring is configured to receive the shaft of the fastener and compress between the head of the fastener and the track. Methods of installing the CLT and CFS connector and system are also provided.
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The present invention relates generally to the art of building construction, and more specifically to a connector that connects cold formed steel and cross-laminated timber.
BACKGROUNDA cross-laminated timber (CLT) commercial building may typically be a post and beam configuration. The posts are either glulam or steel-reinforced concrete and the beams are also glulam or reinforced concrete. The floor slabs of the building are CLT. A building comprising cross-laminated timber (CLT) panels such as CLT floors require a large steel panel under the CLT panel to connect the CLT panel to cold formed steel (CFS) studs and to support the load from the CFS studs. The CFS panels connecting the CLT floor to the CFS studs are heavy, costly, and labor intensive. Concrete building are heavy requiring a bigger foundations and more robust lateral systems. Concrete buildings also require re-shoring under active floors and a large labor crew size. Concrete decks are fabricated on site leading to a multiple step installation process.
SUMMARYA cross-laminated timber (CLT) and cold formed steel (CFS) connector is provided. The CLT and CFS connector comprises a track, at least one fastener, and at least one spring. The track is configured to connect to at least one CFS stud. The at least one fastener includes a head and a shaft. The at least one fastener is configured to connect the track to a CLT panel. The at least one spring is configured to receive the shaft of the fastener and compress between the head of the fastener and the track. The CLT and CFS connector may also include a second track and at least one second fastener. The second track is configured to connect to at least on second CFS stud. The at least one second fastener is configured to connect the second track to a second side of the CLT panel. A method of installing the CLT and CFS connector is also provided.
A CLT and CFS system is provided. The CLT and CFS system comprises a CLT panel, at least one CFS stud, a track, at least one fastener and at least one spring. The track is configured to connect to the at least one CFS stud. The at least one fastener includes a head and a shaft. The at least one fastener is configured to connect the track to the CLT panel. The at least one spring is configured to receive the shaft of the at least one fastener and compress between the head of the at least one fastener and the track. The CLT and CFS system may also include a second track and at least one second fastener. The second track is configured to connect to the at least one second CFS stud. The at least one second fastener is configured to connect the second track to a second side of the cross-laminated timber panel. A method of installing the CLT and CFS system is also provided.
The foregoing summary, as well as the following detailed description will be better understood when read in conjunction with the appended drawings. For the purpose of illustration, there is shown in the drawings different embodiments. It should be understood, however, that the teachings are not limited to the precise CLT and CFS connector, system, and methods of installation shown.
A cross-laminated timber (CLT) and cold formed steel (CFS) connector and a CLT and CFS system are provided. The CLT and CFS connector provides a mechanism to connect CLT panels to CFS studs to construct a structure such as a building. For example, the CLT and CFS connector connects CFS studs of walls of a building to a CLT panel floor. The CLT and CFS connector provides a structural solution that addresses the shrinkage and compressive and bearing forces on CLT platform floors. The CLT and CFS connector also provides a structural solution for in-plan or horizontal movements of the CLT panel with respect to the CFS studs. The CLT and CFS connector and system allows lighter building structures and are conducive for evolving structural code changes. The CLT floor panels do not require reshoring. Installing CLT and CFS systems also requires smaller crew sizes than concrete structures. Off-site fabrication of the CLT and CFS connectors and CLT panels allows for a single-step installation on-site saving time and/or money.
Spring assemblies 120a-n connect the first track 100a to a first side 310 of the CLT panel 300. The spring assembly 120a-n includes a fastener 122a-n and a spring 124a-n. Each fastener 122a-n have a head and a shaft. The fastener 122a-n may be a screw. The spring 124a-n is configured to receive the shaft of the fastener 122a-n. The spring 124a-n is also configured to compress between the head of the fastener 122a-n and the track 110a when the spring assembly 120a-n is installed. The spring assembly 120a-n accounts for shrinkage and movements of the CLT panel 300 due to climate variations. For example, in cold and dry conditions, the height H of a CLT panel 300 may shrink. The height H may shrink approximately 0.25 inches. Because the spacer 400 is made from steel, precast contract, or wood, there is minimal to no shrinkage of the spacer 400. As the CLT panel 300 shrinks, a space is created between the bottom of the first track 110a and the top 310 of the CLT panel 300. When the CLT panel 300 shrinks, the end of the fastener 122a-n embedded in the CLT panel 300 gets pulled down. When the end of the fastener 122a-n embedded in the CLT panel 300 gets pulled down, the spring 124a-n compresses between the head of the fastener 122a-n and the top of the track 110a. The springs 124a-n may be installed in a partially compressed condition prior to shrinkage of the CLT panel 300 taking place. For example, the springs 124a-n may be compressed approximately 0.25 inches when the fastener 122a-n is installed. When the CLT panel 300 shrinks, the spring 124a-n will compress further. The spring assembly 120a-n connects the CFS stud 200a and the CLT panel 300 while accounting for movement, such as shrinkage or creep, of the CLT panel 300.
The spacer 400 is positioned within the CLT panel 300 and between the first CFS stud 200a and the second CFS stud 200b. The spacer 400 is positioned so that the first CFS stud 200a bears on the spacer 400 and load is transferred through the first CFS stud 200a to the second CFS stud 200b. The spacer 400 in
Having thus described in detail a preferred selection of embodiments of the present invention, it is to be appreciated and will be apparent to those skilled in the art that many physical changes could be made to the CLT and CFS connector, CLT and CFS system, method of installing a CLT and CFS connector, and method of installing a CLT and CFS system without altering the inventive concepts and principles embodied therein. The present embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are therefore to be embraced therein.
Claims
1. A cross-laminated timber and cold formed steel system comprising:
- a cross-laminated timber panel;
- at least one cold formed steel stud;
- a track configured to connect to the at least one cold formed steel stud;
- at least one fastener including a head and a shaft, the at least one fastener configured to connect the track to the cross-laminated timber panel; and,
- at least one spring configured to receive the shaft and compress between the head and the track.
2. The cross-laminated timber and cold formed steel system of claim 1 wherein the track is made from cold formed steel.
3. The cross-laminated timber and cold formed steel system of claim 1 wherein the track is U-shaped.
4. The cross-laminated timber and cold formed steel system of claim 1 further comprising a spacer configured to nest within the cross-laminated timber panel.
5. The cross-laminated timber and cold formed steel system of claim 4 wherein the spacer is made from steel.
6. The cross-laminated timber and cold formed steel system of claim 4 wherein the spacer is made from precast concrete.
7. A cross-laminated timber and cold formed steel system of claim 1 further including:
- at least one second cold formed steel stud;
- a second track configured to connect to the at least one second cold formed steel stud; and,
- at least one second fastener configured to connect the second track to a second side of the cross-laminated timber panel.
8. A building structure comprising:
- a plurality of cross-laminated timber panel floors;
- a plurality of panelized walls including a plurality of cold formed steel studs;
- a plurality of tracks configured to connect the cold formed steel studs to the cross-laminated timber panel floors; and,
- a plurality of spring assemblies configured to connect the plurality of tracks to the cross-laminated timber panel floors, each spring assembly of the plurality of spring assemblies including a fastener having a shaft and a head and a spring configured to receive the shaft of the fastener and compress between the head of the fastener and a track of the plurality of tracks.
9. The building structure of claim 8 wherein each track of the plurality of tracks is made from cold formed steel.
10. The building structure of claim 8 wherein each track of the plurality of tracks is U-shaped.
11. The building structure of claim 8 further comprising a plurality of spacers configured to nest within the cross-laminated timber panel under the plurality of cold formed steel studs.
12. The building structure of claim 11 wherein each spacer of the plurality of spacers is made from steel.
13. The building structure of claim 11 wherein each spacer of the plurality of spacers is made from precast concrete.
14. A method of installing a cross-laminated timber and cold formed steel system comprising:
- positioning a track on a first side of a cross-laminated timber panel;
- attaching a first side of the track to the cross-laminated timber panel with a fastener and a spring assembly, the fastener including a head and a shaft, the shaft extending through the spring and the spring positioned between the head and the track; and,
- connecting a cold formed steel stud to a second side of the track.
15. The method of installing a cross-laminated timber and cold formed steel system of claim 14 further comprising attaching a second track to a second side of the cross-laminated timber panel.
16. The method of installing a cross-laminated timber and cold formed steel system of claim 15 further comprising attaching the second track to a second cold form steel stud.
17. The method of installing a cross-laminated timber and cold formed steel system of claim 14 further comprising inserting a spacer into the cross-laminated timber panel.
18. The method of installing a cross-laminated timber and cold formed steel system of claim 17 further comprising connecting the spacer to the track.
19. The method of installing a cross-laminated timber and cold formed steel system of claim 17 wherein the spacer is made from at least one of steel and precast concrete.
20. The method of installing a cross-laminated timber and cold formed steel system of claim 17 wherein the spacer is installed at the location of the cold formed steel stud.
Type: Application
Filed: Feb 26, 2021
Publication Date: Sep 1, 2022
Applicant: Mercer Mass Timber LLC (Vancouver)
Inventors: Robert Malczyk (Vancouver), Hercend Mpidi Bita (Vancouver), Ricardo Jose Delgado Sousa Brites (Vancouver)
Application Number: 17/187,380