Single leaf separating wall
10392797 ยท 2019-08-27
Assignee
Inventors
Cpc classification
E04B2/562
FIXED CONSTRUCTIONS
International classification
E04B2/56
FIXED CONSTRUCTIONS
Abstract
A single leaf building component for use in separating walls in timber frame building construction. Two timber frame studs are held together at an edge by at least one acoustic connector. The connector holds the frames at a fixed distance, prevents sound transfer and provides a lifting point. Embodiments of the connector are described with the inclusion of a dampening material and having a timber body.
Claims
1. An acoustic attenuated building assembly for use as a separating wall, the assembly comprising a first plurality of timber studs arranged as a first timber frame for a first leaf to provide a perimeter to the assembly, a second plurality of timber studs arranged as a second timber frame for a second leaf matching the perimeter in the assembly, the first and second timber frames being spaced apart with a plurality of acoustic connectors located between the frames, the plurality of acoustic connectors being arranged on an inner edge of the timber studs within the perimeter of the assembly, wherein at least two of the acoustic connectors are arranged on a first side of the assembly, said assembly further comprising an acoustic wall cap disposed across and covering said space between the first and second timber frames on at least one side thereof, the acoustic wall cap being split at the positions of the at least two acoustic connectors to allow lifting straps looped around the at least two acoustic connectors to protrude through the wall cap to lift the assembly into a building construction to abut a further assembly.
2. An acoustic attenuated building assembly according to claim 1 wherein there is at least one connector on a second side, opposite the first side, of the assembly.
3. An acoustic attenuated building assembly according to claim 1 wherein two of the connectors are spaced apart symmetrically along the first side.
4. An acoustic attenuated building assembly according to claim 1 wherein each timber frame is sheathed by a board.
5. An acoustic attenuated building assembly according to claim 4 wherein the board includes acoustic blocking properties to improve the reduction in sound transmission across the assembly.
6. An acoustic attenuated building assembly according to claim 4 wherein the board is selected from a group comprising: gypsum plasterboard, magnesium oxide wallboard or timber boarding.
7. An acoustic attenuated building assembly according to claim 1 wherein one or more parts of the building component are treated with a water repellent.
8. An acoustic attenuated building assembly according to claim 1 wherein one or more parts of the building component are treated with a fire retardant.
9. An acoustic attenuated building assembly according to claim 1 wherein insulation is located between the studs on each frame.
10. An acoustic attenuated building assembly according to claim 1 wherein insulation is located in the separation between the leafs.
11. An acoustic attenuated building assembly according to claim 1 wherein the acoustic connector provides first and second abutting surfaces separated by a desired separation distance.
12. An acoustic attenuated building assembly according to claim 1 wherein the acoustic connector includes a sound attenuation element.
13. An acoustic attenuated building assembly according to claim 12 wherein the sound attenuation element is an acoustic isolator.
14. An acoustic attenuated building assembly according to claim 12 wherein the sound attenuation element is a dampening material.
15. An acoustic attenuated building assembly according to claim 14 wherein the dampening material is a bitumen-based flexible material.
16. An acoustic attenuated building assembly according to claim 1 wherein the connector has a timber body.
Description
(1) Embodiments of the present invention will now be described by way of example only with reference to the accompanying drawings of which:
(2)
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(8) Referring initially to
(9) Building component 10 also includes magnesium oxide board 44 located across each frame 20 on the leafs 12, 14 to provide an entire building component 10 which can be considered as a single leaf separating wall. Insulation 28, 32 may also be located between the leafs 12, 14 and in the cavity 30 if desired.
(10) The component 10 is manufactured by first constructing a frame 20 of timber studs 16 with parallel aligned bracing battens 18 arranged within, as shown in
(11) Each part of the building component 10 is nailed to the other parts and provides a cassette structure as a single assembly, which can be manufactured off-site and brought to the construction site as a single component ready for installation. Each component 10 can be lifted into place using the slings 88 and nailed to adjacent building components 10. As the connectors 24 are fixed to the frames 20, the leafs 12, 14 are at a fixed separation to provide a cavity 28 whose width can be checked for quality during manufacture, and thus is guaranteed. Use of the building component 10 speeds up construction time, removes the requirement for metal strips to be used and does not require skilled personnel to maintain the separation between the leafs during construction.
(12) The studs 16, battens 18 and connecting rail(s) 24 can be treated with a water repellent to prevent shrinkage and buckling of the building component and the separating wall in which it forms part of. Additionally, the studs 16, battens 18 and connector 24 can be treated with a fire retardant to improve the fire performance of the structure. If the panels 44 are selected as magnesium oxide wallboards (mgo), then the component can meet the 30 minute fire rating requirements. The component 10 also meets the current standard in Scotland, England and Wales for sound testing. Thermal performance is also met in providing the default U-value of zero.
(13) Referring now to
(14) The acoustic layer 66 may be any sound attenuating material. A flexible bitumen based material is preferred as this is easily applied around the connector 24. It should be remembered that the cavity gap separation should include the thickness of the acoustic layer on each ledge 36, 42. Although an acoustic material is suggested, sound attenuation may be achieved by a structure machined on the body 60.
(15) In the embodiment of the connector 24, each end 68 and the surface 62 is chamfered 70. The chamfer 70 is also covered by the acoustic layer 66. Chamfering provides a guide for the second frame 20 to be located on the first leaf 12.
(16) Referring now to
(17) Referring now to
(18) Reference is now made to
(19) The fixed separation on the component 10 also assists in construction of the floors 94 and higher separating walls by preventing creep and drifting in construction.
(20) Though not illustrated, it will be appreciated that the component 10 could be used at an outside masonry wall.
(21) The principle advantage of the present invention is that it provides a building component for use as a single leaf separating wall which is a single piece for ease of installation and speed of construction.
(22) A further advantage of the present invention is that it provides a building component for use as a separating wall which provides a guaranteed separation between the leafs without the use of metal strips or other fixings on the outer edges of the leafs.
(23) It will be apparent to those skilled in the art that various modifications may be made to the invention herein described without departing from the scope thereof. For example, attenuation means may be incorporated in the studs and/or battens to further improve sound performance. Insulation need not be incorporated in the component if it is not required. Equally other forms of insulation such as foams can be used in the component. Though it is stated that the component can be manufactured off-site, the component may also be fabricated on-site. While the studs and rails are shown as being connected by nails, engineered joints may be used instead to further improve the sound performance while providing a building component which is entirely made of environmentally friendly sustainable materials.