GB2399359A - Basement wall construction including brick ledge - Google Patents

Basement wall construction including brick ledge Download PDF

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Publication number
GB2399359A
GB2399359A GB0405521A GB0405521A GB2399359A GB 2399359 A GB2399359 A GB 2399359A GB 0405521 A GB0405521 A GB 0405521A GB 0405521 A GB0405521 A GB 0405521A GB 2399359 A GB2399359 A GB 2399359A
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United Kingdom
Prior art keywords
brick ledge
flange
brick
wall
studs
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Application number
GB0405521A
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GB0405521D0 (en
Inventor
Jr John Patrick Hughes
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Individual
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Individual
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Publication of GB0405521D0 publication Critical patent/GB0405521D0/en
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    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D31/00Protective arrangements for foundations or foundation structures; Ground foundation measures for protecting the soil or the subsoil water, e.g. preventing or counteracting oil pollution
    • E02D31/02Protective arrangements for foundations or foundation structures; Ground foundation measures for protecting the soil or the subsoil water, e.g. preventing or counteracting oil pollution against ground humidity or ground water
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D27/00Foundations as substructures
    • E02D27/01Flat foundations
    • E02D27/02Flat foundations without substantial excavation
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B2/00Walls, e.g. partitions, for buildings; Wall construction with regard to insulation; Connections specially adapted to walls
    • E04B2/56Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members
    • E04B2002/565Load-bearing walls of framework or pillarwork; Walls incorporating load-bearing elongated members with a brick veneer facing

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  • Engineering & Computer Science (AREA)
  • Mining & Mineral Resources (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Paleontology (AREA)
  • Civil Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Structural Engineering (AREA)
  • Environmental & Geological Engineering (AREA)
  • Hydrology & Water Resources (AREA)
  • Finishing Walls (AREA)

Abstract

A basement wall (10) is formed by a series of vertical metal studs (20) supported by a metal sill (38, Figure 4) extending along a concrete footing (12, Figure 5) at their lower ends. A metal shear plate (23, Figure 5) and foam wall (22) are mounted on the studs to form an outer surface of the wall. A brick ledge (78) is attached to the studs adjacent the upper edge of the foam wall, the brick ledge comprising a metal sheet having an upper flange (82) fastened to the studs through the shear panel, a planar mid section (86), an inclined section (92) attached to the mid section and a lower flange (88) is attached to the outer face of the shear panel. The brick ledge is also claimed independently.

Description

BASEMENT WALL CONSTRUCTION
Background and Summary of the Invention
This invention relates to building construction, and particularly to the construction and formation of basement walls.
In my prior patents, U.S. Patent Nos. 5,535,556 issued July 16, 1996, and 5,890,334 issued April 6, 1999, both for "Basement Wall Construction", I disclosed a basement wall formed of a series of vertical metal studs supported on a metal sill on the upper face of a concrete footing. An insulating sheathing is mounted on the metal studs to form the wall outer surface.
In both patents a horizontal brick ledge formed of 16 gauge galvanized metal was attached by self-tapping screws to the studs. Each brick ledge had a Z-shaped cross-section that was mounted on the upper end of the metal studs and the outer sheathing panels. The brick ledge had an upper vertical edge that was attached to the studs, a horizontal bricksupporting midsection that was mounted on the sheathing and a lower vertical edge that was attached to the sheathing.
I have found that an improved brick ledge can be used for such a basement wall construction. The ledge has an upper vertical flange that is attached to the studs. The lower half of the brick ledge is bent at an acute angle from the horizontal midsection, toward the foam panel, with a bottom flange lying in a plane parallel to the top edge of the foam panel. This arrangement provides adequate support for a one-story brick wall.
For a two-story brick wall, an insert similar to that of my prior disclosed brick ledge is mounted beneath the outer brick ledge. l
Still further objects and advantages of this invention will become apparent to those skilled in the art to which the invention pertains upon
reference to the following detailed description.
Description of the Drawings
The description refers to the accompanying drawings in which like reference characters refer to like parts throughout the several views and in which: FIGURE 1 is a vertical cross-sectional view taken through a basement wall constructed accordingly to the invention; FIGURE 2 is a sectional plan view on a reduced scale through a basement having a wall construction according to the wall of Figure 1; FIGURE 3 is a horizontal sectional view through a typical stud; FIGURE 4 is an enlarged fragmentary sectional view of the footing; FIGURE 5 is a perspective view of the inside of the wall; FIGURE 6 is a sectional view of a brick ledge suitable for a two-story wall of brick; FIGURE 7 is a sectional view of a brick ledge useful for a one-story brick wall; FIGURE 8 is a horizontal sectional view of a corner section of the wall; and FIGURE 9 shows a typical ship lapped seam between adjacent foam panels.
Description of the Preferred Embodiment of the Invention This invention, as depicted in Figures 1 through 4, comprises a basement wall 10 that includes a concrete footing 12 located below ground surface 14 for supporting an upright skeleton frame 16. A channel-shaped horizontal cap 18 is located on a series of equally spaced upright metal studs or posts 20. The upper ends of studs 20 are attached to metal cap 18 which extends along and around the perimeter of the basement. Cap 18 is attached to the vertical studs by self-tapping screws 68 or a clinching tool.
Figure 2 shows a representative stud arrangement for a four-sided basement framework. A rigid thermal insulation foam wall 22 and a 24 gauge steel shear panel 23 are attached to the outside face of upright metal studs 20 on foam sides to define the basement envelope. The shear panel is attached to the studs with a combination of screws and pneumatically driven pins (not shown). The foam wall is glued to the shear panel with a silicone seal around the wall's edges.
Footing 12 partially supports a conventional poured concrete floor 24, as best seen in Figure 4. Concrete floor 24 typically has a thickness of about four inches.
Referring to Figure 5, footing 12 has an inner edge contiguous with a hollow rigid drain tile 26, and an outer edge contiguous with an outer drain tile 28. Each drain tile comprises a rigid plastic extrusion having a box-like cross- section. A partition 29 extends transversely across the midpoint of the tile, except at couplings (not shown) which connect the tile ends. Each drain tile has a series of slots 30 for receiving water. Drain tiles 26 and 28 are used as forms for pouring the concrete footing.
Either the inner drain tile 26 or the outer drain tile 28 is connected to a sub-surface drainage device, not shown. The drainage device can be a sump in the basement floor or a storm drain leading away from the building.
A metal sill 38 is seated along the upper face of concrete footing 12.
Sill 38 is formed of 16 gauge galvanized metal coated with waterproof sealant.
As shown in Figure 4, the sill has a channel-shaped cross-section comprising a web 40 seated on footing 12, an outer upright flange 42, and an inner upright flange 44. Flange 44 has a height greater than the vertical thickness of concrete floor 24, forming a dam preventing water flow onto the surface of floor 24. Any water in the channel is confined to the channel.
Sill 38 is made up of elongated channel sections having their ends abutted together to form an endless channel extending around the perimeter of the building wall. Typically, web 40 has a cross-sectional width of about six inches, inner flange 44 has a cross-sectional height of about six inches, and outer flange 42 has a cross-sectional height of one to two inches. Web 40 is attached to footing 12 by nails 48 (only one shown).
A metal web stiffener 50 is seated on top of web 40 to reinforce the bottom end of the studs which incur the greatest load when the soil has been filled in around the basement wall.
This sill is also used as a form for pouring concrete floor 24.
Referring to Figure 3, metal studs 20 each have a C-shaped cross section, two inches deep by six inches wide, formed of 16 gauge galvanized steel, as shown in Figure 3. Figure 3 shows a metal stud located at some point between the corners of the basement, whereas Figure 8 shows a representative metal stud corner assembly comprising studs 20a, 20b and 20c.
As shown in Figures 4 and 5, each stud is dimensioned to fit snugly between flanges 42 and 44 of sill 38. The studs are spaced along the sill by a predetermined distance, e.g. 12 inches. The stud spacing is related to the loading requirements. The studs are attached to sill 38 by self-tapping, non- corrosive, metal screws 46 or a clinching tool.
Referring to Figure 4, anchor bolts 48 are embedded in the concrete footing at spaced points, e.g. on 12 inch centers, such that each anchor bolt extends down into concrete footing. The anchor bolt size depends on the load applied by the back fill soil laid against the wall's outside surface, a minimum of 7001bm shear value.
Sill 38 is sealed to the upper surface of footing 12 such that groundwater is directed into the slots in drain tiles 26 and 28. The anchor bolts are required if the back fill soil is returned to the excavation before the concrete floor is laid. If the concrete floor has been laid before the excavation has been filled, then actuated nail fasteners are used since the floor will prevent the sill from shifting.
Each foam wall panel 22 is adhesively attached to the outer edge surfaces of a shear panel 23 by a silicone sealant that functions also to form a seal between the foam panel and the shear panel. Each wall panel 22 has a vertical height that depends on the height of the brick ledge. If there is no brick ledge, the foam panel height is the full height of the back fill. Wall panels 22 have a thickness of 2,< inches.
Each wall panel 22 is preferably formed of a closed cell rigid foam material that is sold under the mark PERIMATE available from Dow Corporation and made for sub-surface applications.
The relatively light panels 22 are adhesively attached on shear panel 23 with a minimum amount of mechanical fastening. For shipping, self tapping screws 46 with washers 54 are placed approximately 12 inches vertically from the bottom of wall panel and sealed with silicone 58.
Panels 22 have their edges shiplapped together to form a continuous inner panel layer around the entire perimeter of the basement. A typical lap is illustrated in Figure 9. During service, foam panels 22 provide a continuous barrier and drainage preventing groundwater from flowing into the basement interior space.
Referring to Figure 4, sill 38 is sealed to the upper surface of footing 12 such that groundwater is directed through the gravel into drain tiles 26 and 28.
Referring to Figures 1 and 5, a plurality of horizontal bridging members 72 are mounted between each pair of studs to prevent relative motion between the two studs. This structure is disclosed in my U.S. Patent No. 6,164,028 issued December 26, 2000, for "Reinforced Steel Stud Structured and is incorporated herein by reference.
A horizontal brick ledge 72 formed of a 16 gauge, galvanized metal is attached by self-tapping screws (not shown) to the studs directly above foam wall 22, as illustrated in Figures 1 and 6.
A 4/ inch thick upper foam wall 74 is adhesively attached to the outside face of the shear panel directly above foam wall 22 and extends from the upper edge of foam wall panel 22 up to the outer flange of cap 18. Wall 74 is closely adjacent stacked bricks 76 supported on brick ledge 72 at the upper end of foam wall 22. . Wall 74 is available from the Dow Corporation under the trademark "Thermax." Elongated cooperating one- piece, 16 gauge outer brick ledge member 78 and an inner brick ledge member 80 form brick ledge (72). The arrangement of Figure 6 is suited for a two-story wall of bricks. Outer brick ledge member 78 has a vertical flange 82 that is attached by threaded fasteners 84 to studs 20. Brick ledge member 78 has a horizontal midsection 86. A wall of stacked bricks is seated on horizontal midsection 86. The width of horizontal portion of brick ledge member 78 is about double the thickness of foam wall 22. Brick ledge member 78 has a lower, vertical flange 88 fastened by threaded fasteners 90 to the vertical face of inner brick ledge member 80.
Midsection 86 of the brick ledge is attached to lower flange 88 by an inclined wall 92 disposed at a 45 angle with respect to flange 88.
Inner brick ledge member 80 is mounted inside the outer brick ledge member and has an upper vertical flange 94, a horizontal midsection 96 and a vertical lower flange 98. Upper flange 94 is attached to the stud 22 by fasteners 84. Lower flange 98 is attached to outer brick ledge vertical flange by fastener 90. The entire brick ledge is treated with a protective coating of silicone.
Referring to Figure 7, where the brick ledge is to support only a onestory brick wall, inner brick ledge member 80 is eliminated. Horizontal midsection 86 of the brick ledge is considerably wider than the thickness of wall 22 in order to accommodate the width of the bricks in the brick wall.
However, the particular geometry of brick ledge member 86 is such that it and the load of the brickwall biases foam wall 22 against studs 20 and the shear panel. The shear panel prevents "racking" of the foam wall and also protects the inside face of foam wall 22 from damage. The studs are attached to the shear wall by fasteners 21, as shown in Figure 3.
Referring to Figure 8, a typical corner of the wall structure is assembled by attaching the side surface of stud 20a to the end of an adjacent stud 20b to form a right angle corner. Stud 28 is then sealed by a silicone seal at points, 100, 102 and 104 to the two shear panels. The web of stud 20c is attached as, illustrated in Figure 8, by fastener means 108 to the sidewall of stud 20a.
The sidewall of stud 20c is sealed by a silicone seal at location 104 to the shear panel. The web of stud 20b is attached by fasteners 110 to web 106 of flange 20c. The exterior joints of the wall and corners are sealed after the foam panels are mounted in place such as at location 109.
The principal advantages of the illustrated wall construction are its high thermal insulation value, and its excellent leakage resistance. The use of metal studs is advantageous because the metal resists rotting, while providing good vertical load-carrying capability.
Having described my invention, I claim:

Claims (1)

  1. - Claims 1 1. A below-ground basement structure, comprising: 2 a concrete
    footing disposed a substantial distance below 3 ground level, said footing having an inner edge and an outer edge; 4 a basement floor extending from the inner edge of said footing; 6 an upright skeleton frame supported on said footing, said 7 skeleton frame comprising a lower sill resting on said footing, plural upright 8 metal studs extending upwardly from said sill at regularly spaced points 9 therealong, and an upper cap spanning said metal studs an appreciable distance above said sill; 11 each of said metal studs having an outer flat shear panel 12 mounting surface, and upper ends; 13 a metal shear panel mounted on said shear panel 14 mounting surface, and attached to the sill and the cap; a plurality of flat rigid first foam panels secured flatwise to 16 the shear panel; said first foam panels having a first thickness, vertical side 17 edges shiplapped together to form an outer wall, and an outer face; 18 first means for securing said first foam panels to said 19 shear panel; said first foam panels having a height less than the height 21 of said studs whereby the upper edge of the first foam panels is disposed in a 22 spaced relationship below the upper ends of the studs; 23 a second foam panel secured to said shear panel and 24 extending from the upper edge of the first foam panels to the upper ends of 2' the wall and the shear panel and having a thickness less than the thickness of 26 the first foam panels;
    27 an elongated brick ledge having an upper flange fastened 28 to the studs through the shear panel adjacent the upper edge of the first foam 29 panels, the brick ledge having a horizontal midsection having a width greater than the thickness of the first foam panels and greater than the thickness of a 31 brick wall; 32 the brick ledge having an inclined section and a lower flange, the inclined 33 section being connected to both the outer edge of the brick ledge midsection, 34 and the lower flange being attached to an outer face of the shear panel; and whereby the weight of a brick wall on the brick ledge 36 biases the first foam panels toward said studs.
    1 2. A basement structure as defined in claim 1, including an inner 2 brick ledge having an upper flange disposed in a face-to-face relationship with 3 the upper flange of the first mentioned brick ledge and fastened to said studs, 4 said inner brick ledge having a lower flange disposed in a face-to-face relationship with the lower flange of the first mentioned brick ledge and 6 attached thereto, and a horizontal midsection in a face-to-face relationship 7 with the midsection of the first mentioned brick ledge adjacent the top edge of 8 the first foam panels.
    1 3. A basement structure as defined in claim 2, in which the lower 2 flange of the inner brick ledge is disposed at right angles to the midsection 3 thereof. it'
    1 4. A basement structure as defined in claim 2, in which the upper 2 flange of the inner brick ledge is disposed at a right angle with respect to the 3 midsection thereof.
    1 5. A brick ledge for a wall having a vertical upper planar structure 2 and a vertical lower planar structure, spaced from the plane of the upper 3 planar structure but parallel to the upper planar structure, said brick ledge 4 comprising: a unitary sheet metal body having an upper flange suited 6 for attached to an upper planar structure, a lower flange suited for attachment 7 to lower planar structure, a planar midsection disposed at a right angle to the 8 upper flange, and an inclined wall having an upper edge attached to the 9 planar midsection, and a lower flange attachable to the lower planar structure.
    1 6. A brick ledge as defined in claim 5, in which the inclined wall is 2 disposed at a 45 angle to both the midsection and the lower flange of the 3 brick ledge.
    1 7. A brick ledge as defined in claim 7, including an inner sheet 2 metal member having an upper flange in a face-to-face relationship to the 3 upper flange of the first mentioned brick ledge, a lower flange in a face-to-face 4 to the lower flange of the first mentioned brick ledge, and a midsection having an upper section forming a right angle to both the upper flange thereof and
    - .
    the lower flange thereof, and connected to both the upper and lower flanges thereof.
    8. A below-ground basement structure substantially as hereinbefore described with reference to and/or as shown in Figures 1 to 9.
    9. A brick ledge substantially as hereinbefore described with reference to and/or as shown in Figures 1 to 9.
GB0405521A 2003-03-12 2004-03-11 Basement wall construction including brick ledge Withdrawn GB2399359A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US10/388,034 US20040177576A1 (en) 2003-03-12 2003-03-12 Basement wall construction

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GB0405521D0 GB0405521D0 (en) 2004-04-21
GB2399359A true GB2399359A (en) 2004-09-15

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Families Citing this family (7)

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Publication number Priority date Publication date Assignee Title
US7137225B2 (en) * 2002-06-25 2006-11-21 David Zuppan Foundation wall system
US20060096204A1 (en) * 2004-11-05 2006-05-11 Titan Structural L.L.C. Structural wall apparatuses, systems, and methods
US20070193151A1 (en) * 2006-02-21 2007-08-23 Anderson Alan A System and Method for Finishing Basement Walls
US20100088981A1 (en) * 2008-10-09 2010-04-15 Thermapan Structural Insulated Panels Inc. Structural Insulated Panel for a Foundation Wall and Foundation Wall Incorporating Same
US20100107539A1 (en) * 2008-11-05 2010-05-06 Martens Clark M Insulating wall panel apparatuses, systems, and methods
CA2779808A1 (en) * 2011-06-14 2012-12-14 Paul Kapteyn Modular wall system
CN110805126A (en) * 2019-11-20 2020-02-18 中建六局土木工程有限公司 Basement exterior wall and waterproof integrated construction method

Citations (4)

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EP0528578A1 (en) * 1991-08-10 1993-02-24 Roxbury Limited Improvements in or relating to supports for building structures
GB2295169A (en) * 1994-11-19 1996-05-22 Roxbury Ltd Flooring arrangement
US5526623A (en) * 1994-02-19 1996-06-18 Roxbury Limited Structural beams
US5535556A (en) * 1994-04-18 1996-07-16 Hughes, Jr.; John P. Basement wall construction

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US2081380A (en) * 1936-09-16 1937-05-25 Harry J Nachreiner Brick veneering structure
US3347510A (en) * 1965-07-12 1967-10-17 Frank E Buyken Waler bracket
US3939618A (en) * 1971-07-06 1976-02-24 Vercon Products, Inc. Foundation assemblies for building structures
US4685268A (en) * 1985-04-26 1987-08-11 Roy Roger E Method and apparatus for reinforcing building brick veneer footings
US5356103A (en) * 1993-09-30 1994-10-18 Mcclurg Donald L Apparatus for providing support on a metal purling

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0528578A1 (en) * 1991-08-10 1993-02-24 Roxbury Limited Improvements in or relating to supports for building structures
US5526623A (en) * 1994-02-19 1996-06-18 Roxbury Limited Structural beams
US5535556A (en) * 1994-04-18 1996-07-16 Hughes, Jr.; John P. Basement wall construction
US5890334A (en) * 1994-04-18 1999-04-06 Hughes, Jr.; John P. Basement wall construction
GB2295169A (en) * 1994-11-19 1996-05-22 Roxbury Ltd Flooring arrangement

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GB0405521D0 (en) 2004-04-21
US20040177576A1 (en) 2004-09-16

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