Method and Apparatus For Spanning Gutter Gaps in Wall Panels
The wall panel system of the present invention includes a flexible sheet interlock to flexibly seal a joint defined by adjacent perimeter framing members and a capillary break to inhibit the entry of water into drainage or weep holes in gutters in the perimeter framing member.
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The present application is a continuation of U.S. patent application Ser. No. 09/886,297, filed Jun. 20, 2001, entitled “METHOD AND APPARATUS FOR ERECTING WALL PANELS”, which is a continuation application of 09/334,124, filed Jun. 15, 1999, entitled “METHOD AND APPARATUS FOR ERECTING WALL PANELS” now U.S. Pat. No. 6,330,772, which is a continuation application of U.S. patent application Ser. No. 08/989,748, filed Dec. 12, 1997, now U.S. Pat. No. 5,916,100, all the above identified references being fully incorporated herein by this reference.
FIELD OF THE INVENTIONThe present invention is directed generally to apparatus and methods for erecting wall panels and specifically to perimeter framing members for attaching wall panels to structural members.
BACKGROUND OF THE INVENTIONThe exterior walls of many commercial and industrial buildings are formed by mounting a number of wall panels and attached perimeter extrusions on a grid framework of structural members attached to the building. The resulting grid of wall panels are aesthetically attractive and protect the building structure from fluids in the terrestrial environment.
In designing a wall panel mounting system, there are a number of objectives. First, the joints between the wall panels should be substantially sealed from terrestrial fluids. Penetration of terrestrial fluids behind the wall panels can cause warpage and/or dislocation of the wall panels, which can culminate in wall panel failure. Second, any sealing material used in the joints between the wall panels should be non-skinning and non-hardening. The sealing material is located in a confined space in the joint. To maintain the integrity of the seal between the wall panels when the panels expand and contract in response to thermal fluctuations and other building movements (e.g., seismically induced movements), the sealing material must be able to move with the wall panels without failure of the seal. If the sealing material hardens or “sets up”, the sealing material can break or shear, thereby destroying the weather seal. Third, the longevity of the sealing material should be at least as long as the useful life of the wall panels. Fourth, the sealing material should be capable of being pre-installed before erection of a wall panel beside a previously installed wall panel to provide for ease and simplicity of wall panel installation and low installation costs. Wall panel systems presently must be installed in a “stair step” fashion (i.e., a staggered or stepped method) because the sealing material must be installed only after both of the adjacent wall panels are mounted on the support members. Fifth, a drainage system or gutter should be employed to drain any fluids that are able to penetrate the seal in the joints. The gutter, which commonly is a “U”-shaped member in communication with a series of weep holes, must not overflow and thereby provide an uncontrolled entry for terrestrial fluids into the interior of the wall. During storms, winds can exert a positive pressure on the wall, thereby forcing terrestrial fluids to adhere to the surface of the wall (i.e., known as a capillary attraction). In other words, as the fluids follow the wall profile, the fluids can be drawn through the weep holes into gutter. The amount of terrestrial fluids drawn through the weep holes is directly proportional to the intensity of the storm pressure exerted on the wall exterior. If a sufficient amount of fluids enter the weep holes, the gutter can overflow, leaking fluids into the wall interior. Such leakage can cause severe damage or even panel failure.
SUMMARY OF THE INVENTIONThese and other design considerations are addressed by the wall panel attachment system of the present invention. In a first aspect of the present invention, the wall panel attachment system includes an upper perimeter framing member attached to an upper wall panel and a lower perimeter framing member attached to a lower wall panel. The upper and lower perimeter framing members engage one another at perimeter edges of the upper and lower, typically vertically aligned, wall panels to define a recess relative to the upper and lower wall panels. At least one of the upper and lower perimeter framing members includes a plurality of drainage (or weep) holes for the drainage of terrestrial fluids located inside of the upper and lower perimeter framing members. At least one of the upper and lower perimeter framing members further includes a capillary break or blocking means (e.g., an elongated ridge running the length of the perimeter framing members) that (a) projects into the recess, (b) is positioned between the exterior of the upper and lower wall panels on the one hand and the plurality of drainage holes on the other, (c) is positioned on the same side of the recess as the plurality of drainage holes, and (d) is spaced from the plurality of drainage holes. The portion of the recess located interiorly of the capillary break is referred to as the circulating chamber. The capillary break inhibits terrestrial fluids, such as rainwater, from entering the plurality of drainage holes and substantially seals the joint between the upper and lower perimeter framing members from penetration by fluids.
While not wishing to be bound by any theory, the capillary break induces vortexing of any air stream containing droplets, thereby removing the droplets from the air stream upstream of the weep holes. Vortexing is induced by a decrease in the cross-sectional area of airflow (causing an increase in air stream velocity) as the air stream flows towards and past the capillary break followed by a sudden increase in the cross-sectional area of flow downstream of the capillary break (causing a decrease in air stream velocity). Behind and adjacent to the capillary break, the sudden decrease in air stream velocity causes entrained droplets to deposit on the surface of the recess. To induce vortexing, the capillary break can have a concave or curved surface on its rear surface (adjacent to the circulating chamber). The rear surface of the capillary break is adjacent to the weep holes.
To inhibit entry of the droplets into the weep holes adjacent to the capillary break, the weep holes must be located at a sufficient distance from the capillary break and a sufficient distance above the free end of the capillary break to remove the weep holes from the vortex. Preferably, the capillary break and weep holes are both positioned on the same side of a horizontal line intersecting the free end of the capillary break. Typically, the distance between the rear surface of the capillary break and the adjacent drainage holes (which are typically aligned relative to a common axis) is at least about 0.25 inches. Commonly, the distance of the weep holes above the free end of the capillary break is at least about 125% of the distance from the free end of the capillary break to the opposing surface of the recess.
The drainage holes and capillary break can be located on the same perimeter framing member or on different perimeter framing members.
To form a seal between the perimeter framing members of adjacent, horizontally aligned wall panels, a second aspect of the present invention employs a flexible sheet interlock, that is substantially impervious to the passage of terrestrial fluids, to overlap both of the perimeter framing members to inhibit the passage of terrestrial fluids in the space between the perimeter framing members.
The flexible sheet interlock is preferably composed of a sealing non-skinning and non-hardening material that has a useful life at least equal to that of the wall panels. In this manner, the integrity of the seal between the wall panels is maintained over the useful life of the panels. The most preferred sealing material is silicone or urethane. The flexible sheet interlock, being non-skinning and non-hardening, can move freely, in response to thermally induced movement of the wall panels, without failure of the seal.
The flexible sheet interlock can be pre-installed before erection of an adjacent wall panel to provide for ease and simplicity of wall panel installation and low installation costs. The flexible sheet interlock can be installed on the wall panel and folded back on itself during installation of the adjacent wall panel. After the adjacent wall panel is installed, the interlock can simply be unfolded to cover the joint between the adjoining wall panels.
BRIEF DESCRIPTION OF THE DRAWINGS
The first aspect of the present invention is directed to retarding the passage of terrestrial fluids through the joint between adjoining upper and lower wall panels.
The wall panels 54 can be composed of a variety of materials, including wood, plastics, metal, ceramics, masonry, and composites thereof. A preferred composite wall panel 54 is metal- or plastic-faced with a wood, metal, or plastic core. A more preferred wall panel 54 is a composite of metal and plastics sold under the trademark “ALUCOBOND ”.
Referring to
The degree of vortexing of the air stream depends, of course, on the increase in the cross-sectional area of flow as the air stream flows past the capillary break 74 and into the circulating chamber 86. If one were to define the space between the free end 124 (
The rear surface 120 (
The relative dimensions of the capillary break 74 are important to its performance. Preferably, the height “HC” (
The locations of the drainage holes 78 relative to the capillary break 74 is another important factor to performance. The drainage holes 78 are preferably located on the same side of the capillary break 74 as the circulating chamber 86 of the recess 82 (i.e., drainage holes 78 are in the upper portion of the circulating chamber 86 as shown in
Referring to
As can be seen from
Referring to
In
Note that
(i) there is a corresponding semi-cylindrical grove or notch 285 within a surface of the corresponding adjacent panel 54 for mating with (or more generally, engaging) a corresponding surface portion 290a (also referred to as a “bearing surface”) of the attachment member 290, and
(ii) there is a corresponding semi-cylindrical groove (or more generally, “grooved member”) 291 in each of the first of the opposing surfaces 286 for mating with (or generally, engaging) a corresponding surface portion 290b (also referred to as a “bearing surface”) of the attachment member 290.
In a third method for installing the flexible sheet interlock 250 shown in
The installation method will now be explained with reference to
Referring to
The steps to assemble the panel member assembly 300 are illustrated in
(i) having a first position 352a that is offset from the surface 353 of the panel member 54 on a side also having the surface 354 of the pocket 289, and
(ii) having a second position 352b that is offset from the surface 353 on a side not having the surface 354,
the attachment member 308 includes a portion that traverses the extent or separation between the first position and the second position. In the present embodiment, one such portion is the part of the attachment member 308 that extends from the bearing surface 320 to the dashed line 355. In
The steps to assemble each panel member assembly 300 of
The perimeter framing members 304a,b (
While various embodiments have been described in detail, it is apparent that modifications and adaptations of those embodiments will occur to those skilled in the art. However, it is to be expressly understood that such modifications and adaptations are within the scope of these inventions, as set forth in the following claims.
Claims
1. A wall system including a plurality of wall panels attached to a structural member, comprising:
- adjacent perimeter framing members, each framing member having a horizontal extent that: (a) extends horizontally to opposite ends of the framing member, and (b) extents horizontally beyond the horizontal extent of the other perimeter framing member;
- wherein each of the perimeter framing members is attached horizontally to a different wall panel, the wall panels being located in a side-by-side relationship; and
- a flexible sheet interlock, that is substantially impervious to fluids, wherein the flexible sheet interlock extends a channel for fluids across a gap between ends of first and second fluid channel segments, each fluid channel segment operably connected to one of the adjacent perimeter framing members for providing a corresponding predetermined fluid path, wherein the channel channels fluids across the gap and along the horizontal extents of each of the adjacent perimeter framing members.
2. The apparatus of claim 1, further comprising: an upper perimeter framing member attached to an upper wall panel, and at least one of the adjacent perimeter framing members attached to a lower wall panel, the upper perimeter framing member and the at least one of the adjacent perimeter framing members engaging one another at perimeter edges of the upper and lower wall panels to define a recess relative to the upper and lower wall panels, the recess having an opening between a lower edge of the upper wall panel and an upper edge of the lower wall panel;
- wherein at least one of the upper perimeter framing member and the at least one of the adjacent perimeter framing members includes a plurality of drainage holes for the drainage of fluids located inside of the upper and lower wall panels, and at least one of the upper perimeter framing members and the at least one of the adjacent perimeter framing members includes a capillary break: (i) projecting into the recess and positioned between the upper and lower wall panels, (ii) positioned on the same side of the recess as the plurality of drainage holes, (iii) spaced from the plurality of drainage holes to inhibit fluids from entering the plurality of drainage holes, and (iv) dividing the opening from a circulating chamber of the recess, the drainage holes draining into the circulating chamber;
- wherein the recess has a lower surface contoured for permitting fluids in the circulating chamber to discharge into an exterior environment via the opening.
3. The wall system of claim 2, wherein a first space between a free end of the capillary break and an opposing wall of the recess has a first vertical cross-sectional area, and a second space between opposing walls of the recess at a point between the capillary break and the plurality of drainage holes has a second vertical cross-sectional area and the second vertical cross sectional area is at least about 125% of the first vertical cross sectional area for creating, in combination with a curved surface of the capillary break, a vortex between the opposing walls of the recess at a point between the capillary break and the plurality of drainage holes.
4. The wall system of claim 2, wherein a distance between the capillary break and a drainage hole is at least about 0.25 inches.
5. The wall system of claim 2, wherein the centers of the plurality of drainage holes lie along a common axis.
6. The wall system of claim 2, wherein a surface of the capillary break adjacent to the plurality of drainage holes is concave.
7. The wall system of claim 2, wherein the plurality of drainage holes are spaced at regular intervals along the at least one of the upper and lower perimeter framing members.
8. The wall system of claim 2, wherein the plurality of drainage holes are located on the at least one of the adjacent perimeter framing member and the capillary break is located on the upper perimeter framing member.
9. The wall system of claim 2, wherein the plurality of drainage holes are located on a substantially horizontal surface.
10. The wall system of claim 2, wherein the plurality of drainage holes are located on one of the upper perimeter framing member and the at least one of the adjacent perimeter framing members, and the capillary break is located on the other of one of the upper perimeter framing member and the at least one of the adjacent perimeter framing members.
11. The wall system of claim 1, wherein the flexible sheet interlock is composed of silicone.
12. The wall system of claim 1, wherein the flexible sheet interlock is attached to each of the adjacent perimeter framing members by a sealant having a different composition than the flexible sheet interlock.
13. The wall system of claim 1, further comprising a substantially rigid insert and an upper perimeter framing member that is in an interlocking relationship with at least one of the adjacent perimeter framing members, the substantially rigid insert being located between the upper perimeter framing member and the flexible sheet interlock to retain the flexible sheet interlock in position.
14. The wall system of claim 1, further comprising an upper perimeter framing member that is in an interlocking relationship with at least one of the adjacent perimeter framing members, the at least one of the adjacent perimeter framing members including a lip projecting inwardly and being located adjacent to an end of the flexible sheet interlock to retain the flexible sheet interlock in position.
15. The wall system of claim 1, wherein the adjacent perimeter framing members are positioned in an end-to-end relationship with one another.
16. A wall including a plurality of wall panels attached to a structural member, comprising:
- adjacent perimeter framing members, each framing member having a horizontal extent that: (a) extends horizontally to opposite ends of the framing member, and (b) extents horizontally beyond the horizontal extent of the other perimeter framing member, each of the perimeter framing members being attached horizontally to a different wall panel, the wall panels being located in a side-by-side relationship; and
- a flexible sheet interlock, that is substantially impervious to fluids, wherein the flexible sheet interlock extends a channel for fluids across a gap between ends of first and second fluid channel segments, each fluid channel segment operably connected to one of the adjacent perimeter framing members for providing a corresponding predetermined fluid path, wherein the channel channels fluids across the gap and along the horizontal extents of each of the adjacent perimeter framing members, wherein at least one of the adjacent perimeter framing members includes retaining means for retaining an end of the flexible sheet interlock in position when a third perimeter framing member is placed in an interlocking relationship with the at least one of the adjacent perimeter framing members.
17. The wall system of claim 1, further including a retaining means for retaining the flexible sheet interlock in a position for conducting the fluids between the first and second fluid channel segments, the retaining means including at least one of a substantially rigid insert and a lip projecting from the at least one of the adjacent perimeter framing members.
18. A method for erecting a wall from a plurality of wall panels, each respective wall panel being attached to a corresponding plurality of perimeter framing members, comprising:
- engaging a first wall panel attached to a first plurality of perimeter framing members to a structural member;
- engaging a second wall panel attached to a second plurality of perimeter framing members to a structural member, the second wall panel being located above the first wall panel;
- wherein for at least one perimeter framing member (S) of the second plurality of perimeter framing members, and at least one perimeter framing member (F) of the of the first plurality of perimeter framing members, the perimeter framing member S engages a bottom edge of the second wall panel, and the perimeter framing member F engages a top edge of the first wall panel;
- attaching a flexible sheet interlock to the perimeter framing member F;
- engaging a third wall panel attached to a third plurality of perimeter framing members to a structural member, the third wall panel being located beside the first wall panel and below the second wall panel, and at least one perimeter framing members (T) of the of the third plurality of perimeter framing members engaging the perimeter framing member F;
- wherein each of the perimeter framing members F and T have a horizontal extent that: (a) extends horizontally to opposite ends of the perimeter framing member, and (b) extents horizontally beyond the horizontal extent of the other of the perimeter framing members F and T; and
- attaching the flexible sheet interlock to the perimeter framing member T for providing a channel for fluids across a space between ends of first and second fluid channel segments, each fluid channel segment operably connected to one of the perimeter framing members F and T for providing a corresponding predetermined fluid path, wherein the channel channels fluids across the gap and along the horizontal extents of each of the perimeter framing members F and T.
19. A wall system for engaging a structural member, comprising:
- a plurality of wall panels; and
- adjacent perimeter framing members located in a side-by-side relationship, each of the adjacent perimeter framing members attached to a different wall panel, the wall panels being located in a side-by-side relationship; and
- a flexible sheet interlock, that is substantially impervious to terrestrial fluids, overlaps each of the adjacent perimeter framing members to inhibit the passage of terrestrial fluids between the adjacent perimeter framing members.
Type: Application
Filed: Dec 14, 2006
Publication Date: May 3, 2007
Applicant: ELWARD SYSTEMS CORPORATION (Lakewood, CO)
Inventor: Jed Mitchell (Lakewood, CO)
Application Number: 11/610,584
International Classification: E04B 1/70 (20060101);