Double-insulated double-clad metal building system
10526779 ยท 2020-01-07
Inventors
Cpc classification
E04C3/11
FIXED CONSTRUCTIONS
E04C3/08
FIXED CONSTRUCTIONS
E04B2001/2472
FIXED CONSTRUCTIONS
E04C2/292
FIXED CONSTRUCTIONS
E04B1/3205
FIXED CONSTRUCTIONS
E04B1/2403
FIXED CONSTRUCTIONS
International classification
E04C2/32
FIXED CONSTRUCTIONS
E04C2/292
FIXED CONSTRUCTIONS
Abstract
A metal building system has multiple spaced building sections connected by inner and outer batten panels. Each building section has two spaced frame elements connected by inner and outer skin panels. The frame elements have two walls and a roof. The batten and skin panels have a metal layer that faces away from the frame elements and an insulation layer that faces the frame elements. The skin panels are seamed to the frame element and the batten panels are seamed to the skin panels such that there is no metal to metal contact between the frame elements, the skin panels and the batten panels. Each building section can be assembled at ground level, rotated to a final upright position and anchored.
Claims
1. A metal building system comprising: a plurality of longitudinally spaced frame elements each including two laterally spaced wall portions each having an upper end and two roof portions that each connect to said upper end of one of said wall portions and extend upwardly and inwardly, said roof portions connecting to each other at a roof peak opposite said wall portions, each of said wall and roof portions having an inner edge with a shaped inner flange and a spaced outer edge with a shaped outer flange, said wall and roof portions include an inner frame chord along said inner edge, a spaced outer frame chord along said outer edge and a plurality of struts connecting said inner and outer chords, inner cladding panels extending between said wall portions and between said roof portions of consecutive said frame elements, said inner cladding panels having two spaced side edges, said inner cladding panels including a metal layer and an insulation layer attached to and coextensive with said metal layer, said insulation layer facing towards said wall and roof portions, said side edges each having a seam that connects said inner cladding panel to said inner flanges of said wall and roof portions of said frame elements with said insulation layer separating and spacing said metal layer from said inner flanges, and outer cladding panels extending between said portions and between said roof portions of consecutive said frame elements, said outer cladding panels having two spaced side edges, said outer cladding panels including a metal layer and an insulation layer attached to and coextensive with said metal layer, said insulation layer facing towards said wall and roof portions, said side edges each having a seam that connects said outer cladding panel to said outer flanges of said wall and roof portions of said frame elements with said insulation layer separating and spacing said metal layer from, said outer flanges, whereby said insulation layers on said inner and outer cladding panels thermally isolate said inner and outer cladding panels from said frame elements, and said inner and outer cladding panels create dead-air space for improved resistance to heat transfer.
2. The system as set forth in claim 1: wherein said inner cladding panels include inner skin panels and inner batten panels, and said outer cladding panels include outer skin panels and outer batten panels, and including a plurality of spaced building sections each having two of said frame elements connected by said inner and outer skin panels, with said inner and outer batten panels connecting adjacent said building sections.
3. The system as set forth in claim 1: wherein said wall portions each have a lower end, and including a foundation having a substantially flat floor and two laterally spaced, longitudinally extending sets of spaced base rails that project upwardly relative to said floor, said base rails being sized and positioned to fit between said inner and outer chords of said wall portions at said lower end.
4. The system as set forth in claim 3: wherein said inner and outer chords each include an attachment angle at said lower end of said wall portions with said attachment angles each having an attachment aperture that extends laterally through said attachment angle, wherein said base rails include an anchor aperture for each wall portion, said anchor apertures being positioned to align with said attachment apertures in said attachment angles, and including four bolts for each frame element that extends through said anchor apertures and said attachment angles to anchor said frame elements, whereby said building sections can be assembled in a horizontal position with said bolts in said anchor apertures and said attachment apertures in said attachment angles of one of said frame elements, said building section can then be pivoted into an upright position, and said bolts can be installed in said anchor apertures and said attachment apertures in said attachment angles of the other said frame element of said building section.
5. The system as set forth in claim 2 wherein said inner skin panels and said inner batten panels are concave inwardly, and said outer skin panels and said outer batten panels are concave outwardly.
6. The system as set forth in claim 5 wherein said inner skin panels have a center section with two wide, shallow, spaced, longitudinal channels connected by a flat ridge, and edge portions along said side edges, and said outer skin panels have a center section with two wide, shallow, spaced, longitudinal channels connected by a flat ridge, and edge portions along said side edges.
7. The system as set forth in claim 6 wherein said inner skin panels and said outer skin panels include a plurality of large corrugations extending across said central section, said large corrugations being spaced inwardly from said edge portions, whereby said large corrugations provide rigidity between said side edges.
8. The system as set forth in claim 7 wherein said inner skin panels and said outer skin panels include a plurality of small corrugations extending from said large corrugations across said edge portions, whereby said small corrugations balance stress and shrinkage from forming said large corrugations.
9. The system as set forth in claim 5 wherein said inner and outer batten panels have a channel shape with a center portion, two spaced side portions that extend transversely from said center portion and two edge portions along said side edges.
10. The system as set forth in claim 9 wherein said inner and outer batten panels include a plurality of large corrugations extending across said central portion, whereby said large corrugations provide rigidity between said side edges.
11. The system as set forth in claim 10 wherein said inner and outer batten panels include a plurality of small corrugations extending across said side portions and said edge portions.
12. The system as set forth in claim 1 wherein said wall portions each have a lower end, said inner cladding panels each extend from said roof peak to said lower end and said outer cladding panels each extend from said roof peak to said lower end.
13. The system as set forth in claim 1 wherein said frame elements and said metal layer of said inner and outer cladding panels are made from light gauge metal.
14. The system as set forth in claim 1 wherein said frame elements and said metal layer of said inner and outer cladding panels are roll formed.
15. The system as set forth in claim 1 wherein said insulation layer of said inner and outer cladding panels is aluminized foil-bubble insulation.
16. A metal building system comprising: a foundation having a substantially flat floor and two laterally spaced, longitudinally extending sets of spaced base rails that project upwardly relative to said floor, a plurality of longitudinally spaced building sections each having two longitudinally spaced frame elements, inner skin panels and outer skin panels, said frame elements each including two laterally spaced wall portions each having a lower end and an upper end, and two roof portions that each connect to said upper end of one of said wall portions and extend upwardly and inwardly, said roof portions connecting to each other at a roof peak opposite said wall portions, each of said wall and roof portions having an inner frame chord with an inner edge having a shaped inner flange, a spaced outer frame chord with an outer edge having a shaped outer flange and a plurality of struts connecting said inner and outer chords, said wall portions and said inner and outer chords of said wall portions being spaced to receive said base rails at said lower ends, said inner skin panels extending between said wall portions and between said roof portions of said frame elements, said inner skin panels having two spaced side edges, said inner skin panels including a metal layer and an insulation layer attached to and coextensive with said metal layer, said insulation layer facing towards said wall and roof portions, said side edges each having a seam that connects said inner skin panel to said inner flanges of said wall and roof portions of said frame elements with said insulation layer separating and spacing said metal layer from said inner flanges, said outer skin panels extending between said wall portions and between said roof portions of said frame elements, said outer skin panels having two spaced side edges, said outer skin panels including a metal layer and an insulation layer attached to and coextensive with said metal layer, said insulation layer facing towards said wall and roof portions, said side edges each having a seam that connects said outer skin panel to said outer flanges of said wall and roof portions of said frame elements with said insulation layer separating and spacing said metal layer from said outer flanges, inner batten panels extending between said wall portions and between said roof portions of said frame elements of adjacent building sections, said inner batten panels having two spaced side edges, said inner batten panels including a metal layer and an insulation layer attached to and coextensive with said metal layer, said insulation layer facing towards said wall and roof portions, said side edges each having a seam that connects said inner batten panel to said inner flanges of said wall and roof portions of said frame elements with said insulation layer separating and spacing said metal layer from said inner flanges, and outer batten panels extending between said wall portions and between said roof portions of said frame elements of adjacent building sections, said outer batten panels having two spaced side edges, said outer batten panels including a metal layer and an insulation layer attached to and coextensive with said metal layer, said insulation layer facing towards said wall and roof portions, said side edges each having a seam that connects said outer cladding panel to said outer flanges of said wall and roof portions of said frame elements with said insulation layer separating and spacing said metal layer from said outer flanges, whereby said insulation layers on said inner and outer skin and batten panels thermally isolate said inner and outer skin and batten panels from said frame elements, and said inner and outer skin and batten panels create dead-air space for improved resistance to heat transfer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Details of this invention are described in connection with the accompanying drawings that bear similar reference numerals in which:
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DETAILED DESCRIPTION OF THE INVENTION
(14) Referring to
(15) Each building section 15 includes two longitudinally spaced frame elements 24, inner skin panels 25 and outer skin panels 26. As shown in
(16) The wall portions 28 have an inner edge 35 with a shaped inner flange 36 and a spaced outer edge 37 with a shaped outer flange 38. The roof portions 29 have an inner edge 40 with a shaped inner flange 41 and a spaced outer edge 42 with a shaped outer flange 43. The wall portions 28 include an L-shaped inner frame chord 45 along the inner edge 35, a spaced, L-shaped outer frame chord 46 along the outer edge 37 and a plurality of struts 47 connecting the inner and outer chords 45 and 46. The roof portions 29 include an L-shaped inner frame chord 49 along the inner edge 40, a spaced, L-shaped outer frame chord 50 along the outer edge 42 and a plurality of struts 47 connecting the inner and outer chords 49 and 50. The struts 47 generally extend diagonally between the inner frame chords 45 and 49 and the outer frame chords 46 and 50 of the wall and roof portions 28 and 29, in a zigzag arrangement.
(17) The inner and outer frame chords 45 and 46 shown of the wall portions 28 diverge slightly upwardly. The base rails 21 are spaced to fit between the inner and outer frame chords 45 and 46 at the lower end 31 of each wall portion 28. Referring to
(18) The inner frame chords 45 and 49 and the outer frame chords 46 and 50 of the wall and roof portions 28 and 29, and generally the struts 47 are roll formed from light gauge metal. The wall and roof portions 28 and 29 connect at a hip 57. As shown in
(19) The outer frame chords 46 and 50 of the wall and roof portions 28 and 29 are connected at the hip 57 by an outer hip bar 65 that angles between the substantially vertical outer frame chord 46 of the wall portion 28 and the sloped outer frame chord 50 of the roof portion 29. Outer hip bolster bars 66 are connected with bolts 55 to the outer frame chords 46 and 50 from the outer hip bar 65 along a portion of the outer frame chord 46 and from the outer hip bar 65 along a portion of the outer frame chord 50 to reinforce the hip 57.
(20) Referring to
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(22) The inner and outer skin panels 25 and 26 are generally the same shape. The inner skin panels 25 are assembled to be concave inwardly with the insulation layer 75 facing outwardly. The outer skin panels 26 are assembled to be concave outwardly with the insulation layer 75 facing inwardly. The inner and outer skin panels 25 and 26 have a center section 77 with two wide, shallow, spaced, longitudinal channels 78 connected by a flat ridge 79, and edge portions 80 along the side edges 73. Large corrugations 81 extend across the center section 77 to provide rigidity between the side edges 73 of the inner and outer skin panels 25 and 26. Small corrugations 82 extend from the large corrugations 81 across the edge portions 80.
(23) The building section 15 is assembled with the inner flanges 36 and 41 of wall and roof portions 28 and 29 of the two frame elements 24 projecting towards each other and the outer flanges 38 and 43 of wall and roof portions 28 and 29 of the two frame elements 24 projecting towards each other. The side edges 73 of the inner skin panels 25 each include a seam 84 the connects the inner skin panels 25 to the inner flanges 41 of the two frame elements 24. The side edges 73 of the outer skin panels 26 each include a seam 84 the connects the outer skin panels 26 to the outer flanges 43 of the two frame elements 24.
(24) Referring to
(25) The small corrugations 82 facilitate forming the seam 84 while balancing stress and shrinkage from the forming of the large corrugations 81. The insulation layer 75 is on the inside of the slots 87, mechanically attaching the insulation layer 75 to the metal layer 74. The insulation layer 75 is on the inside of the slots 87 so that the metal layer 74 does not contact the frame elements 24, thermally isolating the inner and outer skin panels 25 and 26 from the frame elements 24.
(26) The inner chords 45 and 49 of the wall and roof portions 28 and 29 can be assembled and seamed to an inner skin panel 25 at a factory, without the inner hip bar 58 or a bend at the hip 57, to provide a substantially flat, stackable unit for shipping. The outer chords 46 and 50 of the wall and roof portions 28 and 29 can be assembled and seamed to an outer skin panel 26 at a factory, without the outer hip bar 65 or a bend at the hip 57, to provide a substantially flat, stackable unit for shipping. After arrival at the job site, the inner skin panel 25 can be bent at the hip 57, and the inner hip bar 58, bolster bars 59 and inner hip chord 51 can be assembled. After arrival at the job site, the outer skin panel 25 can be bent at the hip 57, and the outer hip bar 65 and bolster bars 66 can be assembled.
(27) As shown in
(28) The frame elements 24, and inner and outer skin panels 25 and 26 of the building section 15 can be assembled in a substantially horizontal position on the foundation 14 with the bolts 55 through the anchor apertures 22 and the attachment apertures 53 of one of the frame elements 24. After assembly of the building section 15, the building section 15 can be rotated to the final, vertical position and the bolts 55 can be assembled through the anchor apertures 22 and the attachment apertures 53 of the other frame element 24. As each consecutive building section 15 is assembled, inner and outer batten panels 16 and 17 are applied to connect adjacent building sections 15.
(29) Referring to
(30) The inner and outer batten panels 16 and 17 can include large corrugations 94 across the center portion 90 to provide rigidity between the side edges 73, and small corrugations 95 extending from the large corrugations 94 to the side edges 73. Alternatively, the inner and outer batten panels 16 and 17 can include small corrugations 95 across the center portion 90 and the side edges 73. As shown in
(31) The side portions 91 shown in
(32) Although the present invention has been described with a certain degree of particularity, it is understood that the present disclosure has been made by way of example and that changes in details of structure may be made without departing from the spirit thereof.