This patent application is the U.S. National Stage of International Patent Application No. PCT/EP2014/073191, filed Oct. 29, 2014, which claims the benefit of European Patent Application No. 13191527.4, filed Nov. 5, 2013, which are each incorporated by reference.
The present invention relates to a screw, a building envelope and a method for insulating a building wall or a building roof.
Such a method is known from EP 510 563 B1. In order to insulate a rear-ventilated metal façade, the insulating element is inserted into a frame profile mounted on vertical supports and having frame partition walls. To avoid heat bridges, spacing strips are placed on the frame partition walls and screwed in place, between which additional insulating panels are accommodated.
The invention addresses the problem of providing a screw, a building envelope and a method for insulating a building wall or a building roof with which a simplified insulation of a building envelope is possible.
For a screw comprising a drive, a drilling tip spaced apart from the drive in a driving direction for producing a bore having a bore axis and a bore diameter, and further comprising a shaft extending from the drive to the drilling tip, the problem is solved in that the shaft has a stop section, which can be fed through the bore when the driving direction of the screw is tilted in relation to the bore axis, and which has a stop surface for blocking the feeding of the stop section through the bore when the driving direction of the screw is oriented parallel to the bore axis.
An advantageous embodiment is characterized in that the stop section has an elliptical cross section. The cross section is preferably circular.
An advantageous embodiment is characterized in that the stop section comprises a bend of the shaft. Another advantageous embodiment is characterized in that the stop section comprises a curve of the shaft.
An advantageous embodiment is characterized in that the shaft bears a first threaded section, which has a first thread between the stop section and the drilling tip. The first thread preferably extends opposite to the driving direction up to the stop surface or past the stop surface. According to an alternative embodiment, the shaft has a first thread-free section between the stop surface and the first thread.
An advantageous embodiment is characterized in that the shaft bears a second threaded section, which has a second thread between the stop section and the drive. The second thread preferably has a larger outside diameter than the first thread.
The drive preferably comprises a screw head. The second thread particularly preferably extends up to the screw head. According to an alternative embodiment, the shaft has a second thread-free section between the screw head and the second thread.
An advantageous embodiment is characterized in that the screw is inserted in a building envelope having a wall or a roof with an insulating element applied to the wall or the roof in order to secure the insulating element on the wall or the roof. The building envelope preferably has a base plate and a cover plate, wherein the screw fastens the cover plate to the base plate and wherein a distance of the cover plate from the base plate is greater in the area of the screw than a distance between a driving-in end of the drilling tip and the stop surface of the screw.
According to an advantageous refinement, the building envelope additionally has a frame partition wall that protrudes from the baseplate and to which the screw is fastened. The base plate, together with the frame partition wall, then forms a frame. A material of the base plate, the frame partition and/or the cover plate preferably comprises a metal or an alloy.
In a method for insulating a building wall, in which a base plate is fastened to the wall, an insulating element is placed on the base plate, a cover plate is placed on the insulating element and is fastened by means of the screw to the base plate. Preferably a first bore is drilled with the drilling tip in the cover plate, the screw is guided through the first bore hole in the cover plate until the stop surface bears against the cover plate, the screw is tilted in order to move the stop section through the first bore, the screw is tilted back until the driving direction of the screw is oriented perpendicular to the cover plate in the area of the first bore, the screw is guided through the first bore in the cover plate until the drilling tip has drilled a second bore in the base plate, and the screw is guided through the first and second bore until the stop surface bears against the base plate.
The invention will be described in detail below with reference to the drawings. Therein:
The screw 180 has a drive constructed as a screw head 182 and a drilling tip 181 at a distance from the screw head 182 in a driving direction 200 for drilling a first bore 160 into the cover plate 170 and a second bore into the fastening region 140. A shaft 183 that extends between the drilling tip 181 and the screw head 182 of the screw 180 bears a self-tapping first thread 184 in a first threaded section, which adjoins the drilling tip 181, and a second thread 185 in a second thread section. The second thread 185 has a larger diameter than the first thread 184. Beneath the head 182, a sealing washer arrangement 186 having a sealing washer and a cover washer has been pulled onto the screw shaft 183.
The screw shaft 183 comprises a stop section 187 with a bend 188 of the shaft 183, a stop surface 189 and a curve 190 of the shaft 183. The stop surface 189 is formed by the peripheral surface of the shaft due to the bend 188 of the shaft 183 and, in the position shown in
In order to insulate the building envelope 100, the base plate 120 is first fastened to the wall 110. Then the insulating element 150 is placed on the base plate 120 and the cover plate 170 is placed on the insulating element 150 and fastened by means of the screw 180 to the base plate. Initially, the first bore 160 is drilled in the cover plate 170 with the drilling tip 181, so that the first bore 160 has a bore axis perpendicular to the surface 171 of the cover plate 170. The bore diameter of the first bore 160 is then as large as the outer diameter of the drill tip 181. Then the screw 180 is screwed through the first bore 160 by means of the first thread 184, which has a larger outside diameter than the drilling tip 181, and consequently the bore, until the stop surface 189 bears against the surface 171 of the cover plate 170. The position shown in
In order to move the stop section 187 through the first bore 160, the screw 180 is then tilted. In
Then the second bore 260 is drilled into the fastening region 140 by means of the drilling tip 181, such that the second bore 260 has a bore axis perpendicular to the surface 171 of the cover plate 170. The bore diameter of the second bore 160 is then also as large as the outside diameter of the drilling tip 181. Then the screw 180 is screwed through the second bore by means of the first thread 184 until the stop surface 189 bears against the surface 141 of the fastening region 140. The position shown in
In addition, the cover plate 170 is only connected to the base plate 120 via the insulation plate 150 and the screw 180. The distance between the base plate 120 and the cover plate 170 is determined solely by the screw 180 and, relative to the fastening region 140, corresponds to the distance between the screw head 182 and the stop surface 189, possibly reduced by the thickness of the sealing washer arrangement 186, viewed in the driving direction in each case. Pilot drilling of one of the boards, for example, in order to guide a stop exceeding the diameter of the shaft through the bore, is not necessary with the described screw.
The invention was described with reference to the example of building insulation. It should be pointed out, however, that the screw according to the invention is also suitable for other purposes.
Number | Date | Country | Kind |
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13191527 | Nov 2013 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/073191 | 10/29/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2015/067507 | 5/14/2015 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3391720 | Morse | Jul 1968 | A |
3682507 | Waud | Aug 1972 | A |
5649798 | Ito | Jul 1997 | A |
20070154284 | Palm | Jul 2007 | A1 |
Number | Date | Country |
---|---|---|
10 2005 039744 | Mar 2007 | DE |
0 510 563 | Mar 1996 | EP |
1 005 851 | Apr 1952 | FR |
S64-2011 | Mar 1983 | JP |
H0610178 | Sep 1991 | JP |
2004-060356 | Feb 2004 | JP |
2007-016864 | Jan 2007 | JP |
1011531 | Sep 2000 | NL |
WO 03029664 | Apr 2003 | WO |
WO 2006007739 | Jan 2006 | WO |
Entry |
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European Patent Office, European Search Report in European Patent Application No. 13191527.4, mailed Mar. 20, 2014. |
International Bureau, International Search Report in International Patent Application No. PCT/EP2014/073191, mailed Feb. 19, 2015. |
Japan Patent Office, English Translation of Notice of Reasons for Rejection in Japanese Patent Application No. 2016-550991, mailed Jan. 27, 2017. |
Australian Patent Office, Examination Report No. 1 for standard (counterpart) Australian Patent Application No. 2014345729, mailed Mar. 15, 2017. |
Number | Date | Country | |
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20160258468 A1 | Sep 2016 | US |