The present invention relates to a dry-hang wall panel using a thin stone slat and, more particularly, to a light dry-hang wall panel allowing easy construction while providing a smooth appearance with a sense of quality.
An outer wall of a building is generally painted or mounted with tiles, steel panels, stone slabs, etc. to provide enhanced appearance quality. Stone slabs are popular due to their natural aesthetic patterns although they are expensive. The stone slabs are generally mounted on a wall by hang-dry or wet-type constructing methods. In the hang-dry method, hangers are fixed to a wall of a building for engaging with hooks fixed to stone slabs. The dry-hang method is faster than the wet-type method requiring a longer period of time for the cement to harden. Furthermore, it is not necessary to remove the old wall panels initially mounted to the outer wall of an old building in the dry-hang method. The hangers can be directly fixed to the old wall panels to rapidly construct a new wall panel, reducing the construction time while meeting the user needs.
Conventionally, the stone slabs have a thickness of abut 18-30 mm after cutting, avoiding breakage during transportation. An end of each stone slab is processed to form a hole or a groove for coupling with a hook, allowing the stone slab to be mounted to a wall face by the dry-hang method, examples of which are disclosed in Taiwan Utility Model Nos. M397404 and M261538. However, many workers are needed to carry the stone slabs having a thickness larger than 18 mm, causing inconvenience to construction and increasing the costs. Furthermore, it is difficult to construct a ceiling with these stone slabs. Further, people may be injured while carrying the stone slabs in a building. Further, the stone slabs may crack while forming the hole or groove, and formation of the hole or groove is not easy. Further, the heavy stone slabs mounted to the wall face are liable to break or even fall down in an earthquake.
Furthermore, the resources of natural stone slabs lessen due to continuing quarrying. Thus, use of the stone slabs having a thickness larger than 18 mm is not friendly to the environment and significantly increases the costs of the outer wall.
In a solution disclosed in Taiwan Utility Model Nos. M397403 and M330319, a composite stone slab structure includes a thin stone slab having a thickness of 3-10 mm and a reinforcing material mounted to a rear side of the thin stone slab. Thus, a stone slab having a thickness of 18-30 mm can be divided into two or more thin stone slabs of the same area to reduce the costs while providing environmental protection in addition to presenting the natural stone patterns when the thin stone slabs are bonded to a wall face.
However, the individual thin stone slab having a large area is liable to bend and deform. Although the thin stone slab can be reinforced by engaging with a thick reinforcing material, the thick reinforcing material increases the overall weight and is difficult to install. Furthermore, the surface of the thick reinforcing material is apt to bend due to difficulties in leveling, resulting in an uneven wall face.
An objective of the present invention is to provide a dry-hang wall panel allowing easy construction to form a smooth dry-hang wall panel or ceiling.
A dry-hang wall panel according to the present invention includes a thin stone slab having a thickness of about 3-10 mm. A reinforcing sheet has an area corresponding to the thin stone slab and is fixed to a rear side of the thin stone slab. A rear frame made of a rigid material is fixed to a peripheral edge of the reinforcing sheet. The rear frame has a hollow area in a central portion thereof.
In examples, the rear frame includes a plurality of elongated beams connected to each other. Each elongated beam has a side fixed to the peripheral edge of the reinforcing sheet. Two ends respectively of two adjacent elongated beams are fixed to each other. The elongated beams together define a hollow section. The ends respectively of two adjacent elongated beams are fixed to each other by a connection plate. The reinforcing sheet is fixed to the thin stone slab by glue, and the rear frame is fixed to the reinforcing sheet by glue. Hooks are mounted to the rear frame and can be fixed to a wall face.
In an example, each elongated beam of the rear frame includes a coupling section and a frame section. The coupling section is engaged with the reinforcing sheet. The coupling section includes a coupling groove receiving the peripheral edge of the thin stone slab and the peripheral edge of the reinforcing sheet. The coupling groove further includes a lip enveloping a front face of the peripheral edge of the thin stone slab.
In another example, a recess is formed in the front face of the peripheral edge of the thin stone slab, with the lip of each of the plurality of elongated beams received in the recess.
In a further example, each elongated beams has a groove.
In another example, a reinforcing rib is connected between two of the elongated beams.
The present invention will become clearer in light of the following detailed description of illustrative embodiments of this invention described in connection with the drawings.
With reference to
The rear frame 3 is made of aluminum, wood, stainless steel, steel pipes coated with zinc, or other rigid material less likely to deform. The rear frame 3 includes four elongated beams 31 each having a side fixed by glue 6 to a peripheral edge of a rear side of the reinforcing sheet 2. The elongated beams 31 are fixed to each other to form a rectangular structure having a hollow section 33 defined by the elongated beams 31. A connection plate 32 is used to fix to two ends respectively of two adjacent elongated beams 31. The elongated beams 31 mounted to the rear side of the reinforcing sheet 2 increases the leveling effect between the peripheral edges of the reinforcing sheet 2 and the thin stone slab 1. Even if the thin stone slab 1 and the reinforcing sheet 2 have an area greater than 60×60 cm, the thin stone slab 1 can still be leveled by the elongated beams 31. The area of the rear frame 3 does not have to correspond to the thin stone slab 1, providing a light structure. Furthermore, the hollow section 33 provides a space for heat insulation effect and sound buffering effect. The rear frame 3 further includes insertion holes 30, and hooks 4 are engaged in the insertion holes 30. The hooks 40 can be of any desired form as conventional including but not limited to of a commercially available type.
With reference to
The rear frame 3 is not of full frame type to reduce the costs and has a low weight to reduce the load to the wall of the building while allowing easy carriage by workers during construction. The hooks 4 can be mounted to the rear frame 3 without damaging the thin stone slab 1. The elongated beams 31 of the rear frame 3 are strong enough to resist deformation. Thus, the elongated beams 31 are coupled to the peripheral edge of the reinforcing sheet 2 to prevent deformation of the wall panel even if the wall panel has a large area. As a result, the whole wall face can have better leveling without using a thick reinforcing sheet 2. The wall panel according to the present invention avoids the disadvantage of easy bending of large-area thin stone slabs 1, allowing use of large-area wall panels on the wall face to improve the sense of quality. The surface of a building using the wall panels according to the present invention can be smooth for aesthetic purposes. Furthermore, the wall panels according to the present invention can be mounted to an inner wall of a building. Further, the wall panels according to the present invention are light and, thus, can be mounted to a ceiling, providing enhanced utility.
In view of the foregoing, the wall panel according to the present invention provides enhanced utility and is suitable for proceeding with repair, modification, and face-lift of a wall face of a building because the wall panels according to the present invention is light and inexpensive, providing a smooth outer wall with a sense of quality. After dry-hang of the wall panels according to the present invention onto a wall face, semi-dry-semi-wet type construction using cement can be used. Furthermore, the rear frame 3 can be integrally formed as a single, monolithic piece, allowing easy construction. Further, in a case that the rear frame 3 has a large area, insertion holes can be formed in two sides of the rear frame 3 to increase the engagement strength between the rear frame 3 and the wall face.
Although specific embodiments have been illustrated and described, numerous modifications and variations are still possible without departing from the scope of the invention. The scope of the invention is limited by the accompanying claims.