Fire-rated wall and ceiling system

Information

  • Patent Grant
  • 11466449
  • Patent Number
    11,466,449
  • Date Filed
    Friday, April 10, 2020
    4 years ago
  • Date Issued
    Tuesday, October 11, 2022
    a year ago
Abstract
The present application is directed toward fire-rated wall construction components and wall systems for use in building construction. Embodiments can include tracks for holding studs which incorporate various geometries capable of receiving fire-retardant material, flat straps for use between tracks and fluted wall components, fire sponges for use in fluted wall components, and tracks with protruding grooves or other structures which prevent unwanted air movement between a wallboard component and the track.
Description
RELATED APPLICATIONS

Related applications are listed in an Application Data Sheet (ADS) accompanying this application. The entirety of each related application listed on the ADS is expressly incorporated by reference herein.


BACKGROUND OF THE INVENTION
Field of the Invention

This application is directed toward fire-rated wall construction components for use in building construction.


Description of the Related Art

Fire-rated wall construction components and assemblies are commonly used in the construction industry. These components and assemblies are aimed at preventing fire, heat, and smoke from leaving one portion of a building or room and entering another, usually through vents, joints in walls, or other openings. The components often incorporate the use of a fire-retardant material which substantially blocks the path of the fire, heat, and smoke for at least some period of time. Intumescent materials work well for this purpose, since they swell and char when exposed to flames, helping to create a barrier to the fire, heat, and smoke.


One example of a fire-rated wall construction component is the Firestik® head-of-wall fireblock product. The Firestik® head-of-wall fireblock incorporates a metal profile with a layer of intumescent material on its inner surface. The metal profile of the Firestik® head-of-wall fireblock is independently and rigidly attached to a wall component, such as the bottom of a floor or ceiling, and placed adjacent to other wall components, such as a stud and track. The intumescent material, which is adhered to the inner surface of the metal profile, faces the stud and track, and the space created in between the intumescent material and the stud and track allows for independent vertical movement of the stud in the track when no fire is present.


When temperatures rise, the intumescent material on the Firestik® head-of-wall fireblock expands rapidly. This expansion creates a barrier which encompasses, or surrounds the stud and track and substantially prevents fire, heat, and smoke from moving through the spaces around the stud and track and entering an adjacent room for at least some period of time.


While the Firestik® head-of-wall fireblock serves to prevent fire, heat, and smoke from moving through wall joint openings, it also requires independent attachment and proper spacing from wall components. It would be ideal to have wall components and systems which themselves already incorporate a fire-retardant material.


An additional problem regarding current fire-rated wall components concerns ventilation. Exterior soffits for balconies or walkways are required to be fire rated. However, these soffits need to be vented to prevent the framing members from rotting. The rot is caused when airflow is taken away and condensation forms inside the framing cavity. The moisture from the condensation attacks the framing members and destroys them from the inside out. In many cases, the deterioration is not noticed until the framing is completely destroyed. Therefore, a fire-rated wall component is needed which accommodates proper ventilation during times when no fire or elevated heat is present, and seals itself when fire or elevated heat is present.


SUMMARY OF THE INVENTION

The present application is directed toward fire-rated wall construction components and systems for use in building construction. The term “wall,” as used herein, is a broad term, and is used in accordance with its ordinary meaning. The term may include, but is not limited to, vertical walls, ceilings, and floors. It is an object of the application to provide wall components and systems which have fire-retardant characteristics. It is also an object of the application to provide wall components and systems which allow for needed ventilation during times when no fire or elevated heat is present.


To achieve some or all of these objects, an embodiment of a wall system is provided that takes two separate components, a wall component and intumescent material, and combines the two for use in building construction. The embodiment includes at least one surface on a wall component capable of accepting intumescent material. In some embodiments, the outer surface of the intumescent material sits flush with a second surface of the wall component. This allows the wall component to retain its general shape and geometry without creating unwanted edges, protrusions, or uneven shapes. It also removes the need for a separate product or wall component to be installed outside or adjacent to a stud or track. In other arrangements, it may be desirable for the outer surface of the intumescent material to extend above the second surface of the wall component to, for example, facilitate contact between the intumescent material and another component or surface. In some arrangements, it may be desirable for the outer surface of the intumescent material to be positioned below the second surface of the wall component.


In an embodiment which resembles a vent or ventilation system, the intumescent material is positioned within an interior space of a vent. The vent may include first and second components, each including vent holes. In some arrangements, the intumescent material may include a set of holes, especially when the intumescent material is covering vent holes of the vent component(s). The term “holes,” as used herein, is a broad term, and is used in accordance with its ordinary meaning. The term includes, but is not limited to, holes, mesh, and slots. When the vent is in use, the holes in the vent surface (and, in some arrangements, the holes in the intumescent material) allow for continuous air flow through the vent. If provided, the holes in the intumescent material and the holes in the vent surface need not match up co-axially, as long as air flow is permitted. In some embodiments, the holes in the intumescent material may line up co-axially with the holes in the vent surface. Additionally, in some embodiments a flat strap may define a portion of the vent and may sit above the intumescent material. The flat strap may be a discrete piece attached separately, or may already be an integral part of the vent itself. The flat strap has its own set of holes which, when in use, allow for continuous air flow through the vent. In some embodiments the holes may be aligned co-axially with both the holes in the vent surface and the holes in the intumescent material. By having holes in both the vent and strap, air can flow through the vent, intumescent material (in some embodiments), and strap during times when there is no fire or elevated heat. When the temperature rises, however, the intumescent material will expand quickly and block air pathways. In this manner, the entire vent will be sealed, substantially preventing fire, heat, and smoke from reaching other rooms or parts of the building for at least some period of time. The intumescent material may be a strip of material that can be handled separately from the vent, or may be a layer of material applied to the vent (e.g., sprayed or painted onto the vent), among other possibilities.


In yet another embodiment, a wall system is provided which comprises a first wall component, a second wall component, a flat strap of material attached to the first wall component, and a strip of fire-retardant material located on the flat strap.


In yet another embodiment, a wall system is provided which comprises a deck with a flute, a wall generally aligned along the length of the flute, a flat strap located between the deck and the wall and attached to the deck, and a pair of fire-retardant material strips, one on either side of the flute, located on the flat strap between the flat strap and the deck.


In yet another embodiment, a pre-formed fire-retardant sponge is provided for use in a flute of a fluted deck, the sponge comprising a body having substantially the same shape as the shape of a flute of a fluted deck, the body being formed of compressible material and having at least one layer of fire-retardant material, and the body having an uncompressed size larger than that of the size of the flute.


In yet another embodiment, a fire-retardant wall system is provided comprising a track for receiving wall studs, the track comprising a web and flange, the track further comprising at least one surface for accepting fire-retardant material thereon, the at least one surface configured such that when the track is attached to a deck, the fire-retardant material can expand and seal any gaps present between the track and the deck when the fire-retardant material is exposed to elevated heat. The system further comprises at least one wall stud received within the track, at least one piece of drywall attached to the at least one wall stud, and an elongate protrusion or sealing element located along the flange.


In yet another embodiment, a fire-retardant wall system is provided comprising a track for receiving wall studs, the track comprising a web and flange, the track further comprising at least one surface for accepting fire-retardant material thereon, the at least one surface configured such that when the track is attached to a deck, the fire-retardant material can expand and seal any gaps present between the track and the deck when the fire-retardant material is exposed to elevated heat. The system further comprises fire-retardant material attached to the at least one surface of the track, the fire-retardant material being located along at least a portion of the flange, at least one wall stud received within the track, at least one piece of drywall attached to the at least one wall stud, and an elongate protrusion located along the flange between a free end of the flange and an edge of the fire-retardant material.


An embodiment involves a fire rated metal stud framing wall and ceiling system including a metal bottom track having a web, a first flange and a second flange. The first and second flanges extend in an upward direction from opposing side edges of the web. The bottom track defines an interior space between the web and the inwardly-facing surfaces of the first and second flanges. A plurality of metal studs are spaced from one another along the bottom track. Each of the plurality of studs has a bottom end received within the interior space of the bottom track and each of the studs extends in a generally vertical direction from the bottom track. A metal top track includes a web, a first flange and a second flange. The first and second flanges extend in a downward direction from opposing side edges of the web. The top track defines an interior space between the web and the inwardly-facing surfaces of the first and second flanges. Upper ends of each of the plurality of studs are received within the interior space of the top track. At least one heat-expandable, intumescent material strip extends along a length of the top track. The intumescent material strip is attached to the top track and has at least a first surface facing the top track and a second surface. The top track is secured to a ceiling and the at least one intumescent material strip is located on the top track such that the second surface of the at least one intumescent material strip contacts the ceiling. The second surface of the at least one intumescent material strip defines a width that is less than the width of the web of the metal top track.


In some arrangements, each of the first flange and the second flange include planar portions that extend a substantial depth of the top track. The top track can include a recess defined by at least one side edge of the web, wherein the intumescent material strip is positioned within the recess. The second surface of the intumescent material strip can be opposite the first surface. The intumescent material strip can have an exposed third surface that faces the same direction as an outer surface of one of the first and second flanges. Each of the first and second flanges include a plurality of vertically-oriented slots. The at least one intumescent material strip can be a first strip and a second strip, wherein the first strip and second strip are adhesively attached to the top track along respective outermost surfaces which come in contact with the ceiling. The system can include at least one wall board coupled to the plurality of studs. The bottom track and the top track can be constructed from a cold formed steel. In some embodiments, the at least one intumescent material strip is adhesively attached to the top track.


An embodiment involves a fire rated metal stud framing wall and ceiling system including a metal bottom track having a web, a first flange and a second flange. The first and second flanges extend in an upward direction from opposing side edges of the web. The bottom track defines an interior space between the web and the inwardly-facing surfaces of the first and second flanges. A plurality of metal studs are spaced from one another along the bottom track and each of the studs has a bottom end received within the interior space of the bottom track. Each of the studs extends in a generally vertical direction from the bottom track. A metal top track includes a web, a first flange and a second flange. The first and second flanges extend in a downward direction from opposing side edges of the web. The top track defines an interior space between the web and the inwardly-facing surfaces of the first and second flanges. Upper ends of each of the plurality of studs are received within the interior space of the top track. A first heat-expandable, intumescent material strip extends along a length of the top track on a first side thereof and a second heat-expandable, intumescent material strip extends along a length of the top track on a second side thereof. The first and second intumescent material strips are attached to the top track and each have at least a first surface facing the top track and a second surface. The second surface defines a width and the combined widths of the second surfaces of the first and second intumescent material strips is less than the width of the web of the metal top track. The top track is secured to a ceiling and the first and second intumescent material strips are located on the top track such that the second surface of each of the first and second intumescent material strips contact the ceiling.


In some arrangements, each of the first flange and the second flange comprise planar portions that extend a substantial depth of the top track. The top track can also include a first recess defined by a first side edge of the web and a second recess defined by a second side edge of the web, wherein the first intumescent material strip is positioned within the first recess and the second intumescent material strip is positioned within the second recess. The second surface can be opposite the first surface on each of the first and second intumescent material strips. Each of the intumescent material strips can further include an exposed third surface that faces the same direction as an outer surface of the respective one of the first and second flanges closest to the intumescent material strip. Each of the first and second flanges can include a plurality of vertically-oriented slots. At least one wall board can be coupled to the plurality of studs. The studs, the bottom track and the top track can be constructed from a cold formed steel. The first and second intumescent material strips can be adhesively attached to the top track.


Additional embodiments involve individual components of the systems described above, such as the individual flat straps, tracks or vent components, for example. In addition, embodiments of the present invention include methods of manufacturing the wall systems, vents or vent systems described above. Furthermore, other embodiments involve methods of assembling the wall systems, vents or vent systems described above.





BRIEF DESCRIPTION OF THE DRAWINGS

These and other features, aspects and advantages of the various devices, systems and methods presented herein are described with reference to drawings of certain embodiments, which are intended to illustrate, but not to limit, such devices, systems, and methods. The drawings include fourteen (14) figures. It is to be understood that the attached drawings are for the purpose of illustrating concepts of the embodiments discussed herein and may not be to scale.



FIG. 1 illustrates a cross-sectional view of an embodiment of a fire-rated wall component connected to a floor and stud element.



FIG. 2 illustrates a perspective view of an embodiment of a fire-rated wall component with arcuate or curved portions.



FIG. 3 illustrates a perspective view of an embodiment of a fire-rated wall component with arcuate portions, including intumescent material.



FIG. 4 illustrates a perspective view of an embodiment of a fire-rated wall component with channels or slots and intumescent material in the slots.



FIGS. 5A and 5B illustrate perspective views of embodiments of a fire-rated wall component including holes for ventilation.



FIGS. 6A and 6B illustrate perspective views of an embodiment of a fire-rated wall component including holes for ventilation.



FIGS. 7A and 7B illustrate perspective views of an embodiment of a fire-rated wall component including holes for ventilation.



FIG. 8 illustrates a cross-sectional view of an embodiment of a fire-rated wall component with intumescent material on its top surface.



FIG. 9 illustrates a cross-sectional view of an embodiment of a fire-rated wall component with intumescent material on both its top and side surfaces.



FIG. 10A illustrates a cross-sectional view of an embodiment of a wall system with a flat strap.



FIG. 10B illustrates a cross-sectional view of the track portion of the embodiment of FIG. 10A prior to installation.



FIG. 10C illustrates a cross-sectional view of a portion of the embodiment of FIG. 10A.



FIG. 10D illustrates the embodiment of 10A, except with the fasteners moved in.



FIG. 11 illustrates a perspective view of an embodiment of a fire sponge.



FIG. 12A illustrates a cross-sectional view of an embodiment of a wall system which incorporates the fire sponge of FIG. 11.



FIG. 12B illustrates a cross-sectional view of a portion of the embodiment of the wall system of FIG. 12A.



FIG. 13 illustrates a cross-sectional view of an embodiment of a wall system with a protruding groove to inhibit movement of air.



FIG. 14 illustrates a cross-sectional view of an embodiment of a wall assembly.





DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

The preferred embodiments of the present invention are directed toward fire-rated wall construction components and systems for use in building construction. Fire-rated wall construction components and assemblies are commonly used in the construction industry. These components and assemblies are aimed at preventing fire, heat, and smoke from leaving one portion of a building or room and entering another, usually through vents, joints in walls, or other openings. The components and assemblies often incorporate the use of some sort of fire-retardant material, such as intumescent material, which substantially blocks the path of the fire, heat, and smoke for at least some period of time. One embodiment comprises metal stud framing and intumescent and combines the two into a single component which is then incorporated into a metal stud framing wall and ceiling system. The metal stud framing wall comprises a top track with intumescent attached adhesively which allows the intumescent to be sandwiched between two hard surfaces (see FIG. 14).



FIG. 1 illustrates a cross-sectional view of an embodiment of a fire-rated wall component 10 connected to a floor or ceiling element 18 and stud element 20. The wall component 10 is used as a track for holding a stud within a vertical wall, and may include slots along its sides. The slots provide areas to accommodate fasteners for connection with the studs and allow for vertical movement of the attached studs during an earthquake or some other event where vertical movement of the studs is desired.


As can be seen in FIG. 2, wall component or header track 10 has both a flat top surface 28 and two arcuate surfaces 24 and 26. Top surface 28 is flat for ease of attachment to the bottom surface of a floor or ceiling 18. The two arcuate surfaces 24 and 26 are designed to receive intumescent material. The arcuate nature of the surfaces 24 and 26 can encourage the intumescent material, in at least some embodiments, to expand in a more radial direction from the top of the wall component 10 when subjected to elevated levels of heat, thereby filling in a larger area between and alongside the header track and floor 18. In other embodiments, the surfaces 24, 26 can have other shapes or configurations.


The intumescent material, identified as 12 and 14 in FIGS. 1 and 3, is bonded to arcuate surfaces 24 and 26. The term “bonded,” as used herein, is a broad term, and is used in accordance with its ordinary meaning. The term includes, but is not limited to, mechanically bonded or bonded using adhesive. In some embodiments, when the intumescent material is bonded, an outer surface of the intumescent material will be flush with top surface 28. This allows top surface 28 to remain flush, or at least partially flush, with the bottom of floor element 18, and may aid in the installation of wall component 10 to a floor or ceiling. This flush attachment additionally allows the wall component 10 to retain a fluid or smooth-shaped geometry free of added edges, overlaps, or protrusions. In doing so, the area of contact between the intumescent material and the floor element 18 can inhibit air and sound from moving past the header track 10. In other arrangements, it may be desirable for the outer surface of the intumescent material to extend above the top surface 28 to, for example, ensure contact between the intumescent material and the floor element 18. In some arrangements, it may be desirable for the outer surface of the intumescent material to be positioned below the second surface of the wall component.


By incorporating intumescent material onto a wall component such as a track for studs in the manner shown, it becomes unnecessary to use or attach additional features or devices to the wall component. Instead, when the temperature rises near the wall component 10, the intumescent material 12 and/or 14 will heat up. At some point when the intumescent material becomes hot enough, it will quickly expand to multiple times its original volume. This intumescent material will expand towards the floor or ceiling element 18 and outwards toward any open space. This helps to substantially prevent fire, heat, and smoke from moving past, through, or around wall component 10 and stud 20 for at least some period of time.



FIG. 4 illustrates another embodiment of a fire-rated wall component 32. In this embodiment, the wall component 32 again takes the form of a track member for use in holding studs in place within a vertical wall. However, here the wall component 32 has two slots or channels, shown as 34 and 36, wherein the intumescent material 40 and 42 is attached. As can be seen in the drawing, the top surface layers of intumescent material 40 and 42 are flush with the top surface 38 of wall component 32. This allows the top surface 38 of wall component 32 to maintain a smooth geometry, which may aid in the installation of wall component 32 to a floor, ceiling or intersecting wall. This flush attachment additionally allows the wall component 10 to retain a fluid or smooth-shaped geometry free of added edges, overlaps, or protrusions. However, a flush attachment as described above is not essential to the success of the present invention.


It is possible that more than two slots could be used in the type of embodiment shown in FIG. 4, or even as few as one. The purpose of having the intumescent material located in the slots 34 and 36 is to create fire protection areas. When the intumescent material 40 and 42 becomes hot, it will expand rapidly into the open areas around it. Much as in the embodiment shown in FIGS. 1-3, this expansion will help to create a barrier, or seal, substantially preventing fire, heat, and smoke from moving from one area of a building to another for at least some period of time.



FIGS. 5A and 5B illustrate other embodiments of a fire-rated wall component 46. Here, the wall component takes the form of a soffit vent. The wall component 46 has a lower ventilation area 48 which includes a set or series of ventilation holes. These holes, which are hidden from view in FIGS. 5A and 5B, but are shown in FIG. 6B, allow air and other matter to travel between floors and rooms in a building, or between the outside of a building and the interior of a building.


As can be seen in FIG. 5A, a strip of intumescent material 50 is provided within the vent 46 and above ventilation area 48. The intumescent material 50 may be loosely positioned within the vent 46 or, as illustrated, may be attached adjacent to one or more components of the vent 46. The top surface of the intumescent material is flush with the top surface 54 of wall component 46. This allows for easy installation and use of a flat strap 52, which may be a separate member from the vent 46 or may be integrated with the vent 46. A flush fit, however, is not essential to the success of the present invention.


In some arrangements, especially if covering the holes of the ventilation area 48, the intumescent material 50 may be provided with a series of surfaces defining holes. These holes are hidden from view in FIGS. 5A and 5B but are shown in FIG. 6A. The holes allow air and other matter to continue to travel between floors and rooms in a building, or between the outside of a building and the interior of a building. Flat strap 52 also has a series of holes 60 located in its center area. This series of holes, much like the ventilation and intumescent material holes, allows air and other matter to travel between floors and rooms in a building, or between the outside of a building and the interior of a building.


The intumescent material 50 may occupy a portion or all of the interior space defined by the vent 46. In one or more arrangements, the intumescent material 50 occupies only a portion of the interior space to facilitate air flow through the vent 46. When the intumescent material 50 becomes hot, it will expand to many times its original size into the open areas around it. Much as in the embodiments shown in FIGS. 1-4, this expansion will help to create a barrier, or seal, inhibiting or at least substantially preventing fire, heat, and smoke from moving from one area of a building to another for at least some period of time.



FIGS. 6A and 6B illustrate another embodiment of a fire-rated wall component 56. In FIG. 6A, intumescent material holes 58 are visible, and the intumescent material 50 extends along the sides of vent area 48. When the intumescent material 50 becomes hot, it expands rapidly, filling much if not all of the space underneath the flat strap 52. This expansion substantially cuts off at least a substantial amount of air movement through the vent surface 48, and inhibits or at least substantially prevents fire, heat, and smoke from moving through the vent for at least some period of time. As can be seen in the embodiment in FIG. 6A, the flat strap 52 is formed as an integral part of the wall component 56. In other embodiments, the flat strap 52 may be a discrete piece attached separately.



FIG. 6B illustrates the bottom view of fire-rated wall component 56.


Here, ventilation holes 68 can be seen in the vent area 48. The intumescent material 50 is attached to both the vent area 48 and along its extended sides. The intumescent material 50 can be a single piece of material, or can be made up of several pieces. The intumescent material 50 can be secured to the strap 52 or wall component 56 by any suitable means. For example, in one arrangement, the intumescent material 50 includes an adhesive backing, which permits the intumescent material 50 to be secured to the strap 52 or wall component 56. In an alternative arrangement, the intumescent material 50 may be secured to the strap 52 or wall component 56 by a mechanical fastener, such as a screw or rivet, for example. Other suitable mechanisms or methods may also be used. The intumescent material 50 may be secured to the strap 52 or wall component 56 during the manufacturing process or in the field.



FIGS. 7A and 7B illustrate another embodiment of a fire-rated wall component 66. With reference to FIG. 7A, the wall component 66 can include a flat strap 52 with intumescent material 50 attached underneath, such that the intumescent material faces the inside area of the vent. In at least some embodiments the flat strap can comprise 20 gauge sheet metal, and the intumescent material can be about 2 mm thick and about 1¼″ wide. Other gauges, sizes, and shapes are also possible. The intumescent material can be attached to the flat strap 52 by various means, including but not limited to adhesive tape and/or mechanical fasteners. The flat strap 52 can be a discrete piece attached separately to the top surface 54, or can be formed as an integral part of the wall component, as shown in FIG. 6A. In some embodiments, the flat strap 52 can include expanded metal lathes along either side with slots or holes 60, and an area in between for attachment of the intumescent material 50. In some embodiments, the holes 60 can be about ¼″ wide and about 1½″ wide. Other sizes are also possible.


With continued reference to FIG. 7A, the wall component 66 can allow air movement through the vent when the intumescent material 50 has not expanded. The air can move through holes 68 into the open space inside the vent and then out through slots or holes 60. In at least some embodiments the holes 68 can be about ⅛″ in diameter. Other sizes and shapes are also possible. When the intumescent material expands, it can cover up either or both sets of holes 68, 60, in order to inhibit fire, heat, and smoke from moving through the vent.


With reference to FIG. 7B, in some embodiments the intumescent material can instead be placed on the lower portion of the vent itself as opposed to the bottom of the flat strap 52. Holes 68 can be located on one or both sides of the intumescent material along the bottom of the vent, and slots or holes 60 can be located along the flat strap 52. Just as with the embodiment shown in FIG. 7A, the intumescent material 50 can expand to cover up holes 60 and/or 68 when exposed to elevated levels of heat, inhibiting fire, heat, and smoke from moving through the vent. In at least some embodiments the top of the vent can have at least one end that wraps about the flat strap 52 to help hold it in place, as shown in FIG. 7B.


In yet other embodiments, the intumescent material, or other fire-retardant material, can be sprayed or painted onto one or both sides of the bottom of the vent or onto the flat strap. The spray or paint can cover areas which surround the holes 68. When exposed to heat, the fire-retardant material can expand to cover the holes 68, thereby inhibiting fire, heat, and smoke from moving through the vent.



FIG. 8 illustrates another embodiment of a fire-rated wall component 72. In this embodiment, the wall component 72 is a track for holding a wall stud 20 beneath a ceiling 18. Here, the intumescent material 74 is attached to the top surface of the wall component 72. During installation, it is possible to install the wall component 72 and intumescent material 74 to the ceiling 18. In some embodiments, this may be accomplished by threading a screw through both the wall component and intumescent material. Additionally, in some embodiments the intumescent material may extend down one or both sides of the wall component 72.



FIG. 9 illustrates another embodiment of a fire-rated wall component 80. In this embodiment, the wall component 80 is a track for holding a wall stud. However, here the intumescent material 84 extends both along a portion of the top and side surfaces of the wall component 80. In particular, intumescent material is provided on the side and top surfaces of each corner portion of the wall component 80. In some embodiments, an outer surface of the intumescent material 84 may be flush with the top surface 82. In other embodiments, the intumescent material 84 may extend above the adjacent surfaces of the wall component 80, or may be positioned below the adjacent surfaces of the wall component 80.


With reference to FIG. 10A, a fire-retardant wall system 110 can comprise a first wall component 112, a second wall component 114, a flat strap 116, and at least one strip of fire-retardant material 118. In at least some embodiments the first wall component 112 can comprise a fluted deck such as the one illustrated in FIG. 10A. In yet other embodiments the first wall component 112 can comprise a floor, ceiling, overhang, or any other type of wall component.


In at least some embodiments the second wall component 114 can comprise a track, or header track, such as the one illustrated in FIG. 10A, for retaining wall studs. The header track can comprise a slotted header track. In yet other embodiments the second wall component can comprise a different type of track or wall component.


With reference to FIGS. 10A and 10B, the second wall component 114 can include at least one gasket 120. The gasket 120 can itself comprise a strip of fire-retardant material, including but not limited to intumescent material. In at least some embodiments, the gasket 120 can be adhered to a surface of the second wall component 114 such that when the second wall component is attached to, pressed, and/or placed against the fire strap 116, the gasket or gaskets 120 can form a sound and/or air seal, inhibiting sound and/or air from moving from one side of the second wall component 114 to the other. For example, and with reference to FIG. 10B, in at least some embodiments the gasket can be adhered to the second wall component 114 such that a portion of it protrudes and/or extends past an adjacent edge of the second wall component 114. When the second wall component 114 is pressed against and/or attached to the flat strap 116 or other wall component, the portion of the gasket protruding past the edge can be compressed down towards the adjacent edge of the wall component 114 in order to form a seal between the flat strap 116 and second wall component 114. As described above, this seal and contact can inhibit air and sound from moving past the second wall component 114.


The flat strap 116 can be attached to the first wall component, the second wall component, or both the first and second wall components. For example, and as illustrated in FIG. 10A, the flat strap 116 can be attached via fasteners 122 to the first wall component 112. In at least some embodiments, the flat strap 116 can comprise an about 6″-8″ wide 20 gauge flat strap. The flat strap 116 can be used to cover a portion or all of one or more flutes 124 of the fluted deck 112, FIG. 10A showing a cross-section of the flute 124. Thus, the flat strap 116 provides a surface for the second wall component 114 to contact when the wall component 114 is generally aligned with the length of the flute 124, or when the wall component 114 extends generally alongside and underneath the length of the flute 124 as shown in FIG. 10A. In other embodiments a portion or portions of the wall component 114 can be aligned with a portion of the fluted deck that does not include the flute 124.


With reference to FIGS. 10A-10D, the strip of fire-retardant material 118 can comprise intumescent material, which expands when subjected to elevated levels of heat, or can comprise other types of fire retardant material. In some embodiments an about ½″ thick strip of material can be used. Other thicknesses are also possible.


In at least some embodiments, and with reference to FIG. 10C, the strip of fire-retardant material 118 can be adhered to the flat strap so that it rests between the flat strap 116 and first wall component 112. In at least some embodiments, the fire-retardant system 110 can include two or more strips of fire-retardant material 118. In some embodiments, the strips of fire-retardant material 118 can be located approximately ¼″ in from the ends of the flat strap 116. For example, and with reference to FIG. 10A, the system 110 can include one strip of fire-retardant material 118 located on each side of the second wall component 114 and on each side of the flute 124.


In at least some embodiments, and with reference to FIGS. 10A and 10C, the strip of fire-retardant material 118 can include a preformed fastener hole for insertion of the fastener 122. The fastener 122 can be fastened through the fire-retardant material 118. A washer 117 can be used between a head of the fastener 122 and the flat strap 116 to help secure the flat strap 116. The fastener 122 can help to secure the fire-retardant material in place. In other embodiments, and with reference to FIG. 10D, the fastener 122 can be located adjacent or inside of the fire-retardant material 118 along the flat strap 116.


In some embodiments, the fasteners 122 can be located every 12″ on center along the length of the flat strap. In order to locate the areas for attachment, in at least some embodiments, the flat strap 116 can include the preformed fastener hole, as described above, or other suitable markings. For example, in some embodiments the flat strap can be indented, scored, or a laser or inkjet (or other suitable) line can be placed along the length of the flat strap 116, to help locate where the fasteners 122 should be installed through the fire-retardant material and into the wall component 112.


With continued reference to FIGS. 10A-10D, the fire-retardant system 110 can inhibit fire, smoke, air, sound, and/or debris from moving from one side of the second wall component 114 to the other (e.g. from one room to another inside a building). The strip or strips of fire-retardant material 118 and/or 120 can act as gaskets, preventing air and/or sound from moving past the system 110. At the same time, when the strips 118 and/or 120 are exposed to elevated levels of heat, they can expand and fill any gaps left between the flat strap 116 and first and second wall components 112, 114.


The flat strap 116 with fire-retardant material 118 can be used with other systems, decks, tracks, or wall components as well. Thus, it is not limited to use with a fluted wall component and/or header track, as illustrated in FIGS. 10A-10D.


With reference to FIGS. 11 and 12, a fire sponge 130 can be used to prevent the spread of fire, heat, and/or debris. The fire sponge 130 can be sized and shaped so that it is custom-made for particular sized and shaped spaces. For example, the fire sponge 130 can be shaped so that it fits snugly into the hollow area or areas of a fluted deck.


With continued reference to FIG. 11, the fire sponge 130 can comprise an inner layer of material 132, such as for example mineral wool. The inner layer 132 can be compressible, so that the entire sponge 130 can be compressed into an area smaller than the volume of the fire sponge 130 itself. The fire sponge 130 can further comprise another layer of material 134 outside of the inner layer 132. In some arrangements, the layer of material 134 can be the outermost layer, and in other arrangements can be an intermediate layer. In at least some embodiments the layer of material 132 can comprise fire-retardant material, including but not limited to intumescent material. In at least some embodiments, the fire sponge 130 can further comprise an additional outer layer of material 136, including but not limited to latex smoke seal. In one preferred embodiment, the outer layer of latex smoke seal can range between 1/16″-⅛″ in thickness. This outer layer of latex smoke seal can give the fire sponge 130 a flexible, yet durable shape. For example, the latex can prevent wear and tear during shipping and/or installation, and can also prevent smoke from moving through the fire sponge 130.


With reference to FIGS. 11 and 12A, the custom-made and pre-shaped fire sponges 130 can be made to have a trapezoidal cross-section so as to fit into the generally trapezoidal-shaped flutes commonly found in decks. In at least some embodiments, the trapezoidal-shaped fire sponge 130 can have widths which are larger than the widths of the flute. Other shapes and geometries are also possible. In some embodiments, the fire sponge 130 can be made at least in part of a compressible material, and its initial manufactured size can be larger than that of the flute 124. This allows the sponge 130 to be compressed to fit inside the flute 124, and once inside to expand and hold itself in place. For example, in at least one embodiment, the fire sponge 130 can be made to compress by approximately 30% of its initial volume to fit inside the flute 124. Other percentages and/or ranges of percentages are also possible.


Custom-made and pre-shaped fire sponges can reduce the amount of time required for fire-proofing the interior of a building, particularly if the size of the fluted wall components is known. For example, instead of placing or stuffing numerous, similar-shaped fire blocks or material into a hollow area and then using an airless sprayer to spray latex smoke sealer, a single custom-shaped fire sponge as described above can be used.


With continued reference to FIG. 12A, a fire-retardant wall system 210 can include a first fluted wall component 212 and a second, attached wall component 214. In at least some embodiments the first fluted wall component 212 can comprise a fluted deck, and can include hollow areas for insertion of a fire sponge or sponges 130. In at least some embodiments, the sponges 130 can be inserted after the second wall component 214 has been attached to the fluted wall component 212.


With reference to FIGS. 12A and 12B, in at least some embodiments the second wall component 214 can comprise a header track, which may be slotted or unslotted. In some embodiments the track can have a U-shape. In other embodiments it can have a J-shape. Other shapes are also possible. In at least some embodiments the track can be used for shaft areas in buildings, including but not limited to elevator shafts. In such arrangements, the structures for sealing with wallboard members described below may be provided on only one side of the track because the shaft side typically does not include wallboard.


With continued reference to FIGS. 12A and 12B, the illustrated header track is slotted and can comprise a strip or strips of fire-retardant material 216, including but not limited to intumescent material, along at least one flange. The strip of fire-retardant material 216 can be located along an area of the flange adjacent and/or proximal to the series of slots 218 in the flange. As illustrated in FIG. 12A, the second wall component 214 can extend along the bottom of the fluted wall component 212, generally perpendicular to the lengths of the flutes 224.


The second wall component 214 can further comprise a strip or strips of a sealing element 220 located between the strip 216 and series of slots 218, and also between the strip 216 and a piece or pieces of an outer wallboard member, such as a sheet of drywall 222, or other exterior material. The sealing element 220 can be a separate component from the track 214 such as, for example, caulk, foam or tape, and can be used to prevent or inhibit air from moving between the drywall and the second wall component 214. Alternatively, as described below, the sealing element can be formed by the track itself. For example, and with reference to FIG. 12B, the sealing element 220 can extend away from the flange and towards the drywall 222 such that the drywall 222 is able to rest against a portion of the sealing element 220. This configuration can help prevent air from moving between the drywall 222 and the track, while at the same time preventing the drywall from covering up or moving over and interfering with the fire-retardant material 216.


With reference to FIG. 13, other structures or embodiments for preventing unwanted airflow are also possible. For example, a fire-retardant wall system 310 can comprise a slotted or unslotted track 312. In the illustrated arrangement, the track 312 is slotted. The slotted track 312 can comprise at least one surface for accepting fire-retardant material 314 thereon. The at least one surface can be configured such that when the track is attached to a first wall component, the fire-retardant material 314 can expand and seal a gap between the slotted track 312 and first wall component when the fire-retardant material is exposed to elevated heat. The track 312 can also comprise an elongate protrusion or rib 316 located along at least a portion of one or more of the flanges of the track and proximal the at least one surface, as illustrated in FIG. 13.


In at least some embodiments, the elongate protrusion 316 can have a generally v-shaped cross section. Other cross-section shapes are also possible, for example, the protrusion 316 can be generally u-shaped or trapezoidal in shape. The elongate protrusion 316 can act as both a boundary area for the fire-retardant material, as well as a resting and/or attachment location for a piece of drywall 318, or other exterior material. The drywall can rest and/or remain in contact with the elongate protrusion 316, thereby blocking air from moving between the drywall 318 and slotted track 312. At the same time, the elongate protrusion 316 can help prevent the drywall 318 from contacting and/or interfering with the fire-retardant material 314.


In some embodiments, the drywall is fastened to a stud within the slotted track 312. The head portion 320 of the fastener can tend to bow out the drywall, leaving a gap at the top of the drywall to allow air, sound, or debris in general to move between the drywall and the slotted track 312. The sealing element 220 and/or elongate protrusion 316 can have depths large enough such that even if the drywall is bowed out, the drywall remains in contact with the sealing element 220 and/or elongate protrusion 316. For example, in some embodiments, the sealing element 220 and/or protrusion 316 can have depths at least equivalent to the depth of the fastener head 320. As described above, the track can be configured for use in a shaft wall application. In such an arrangement, the track may include fire-retardant material 216 or 314 and the sealing element 220 or protrusion 316 on only one side (i.e., the side opposite the shaft). The flange of the track facing the shaft may be the same or a different length (shorter or longer) than the opposite flange. In some applications, it may be desirable for the shaft flange to be longer than the opposite flange.


The present application does not seek to limit itself to only those embodiments discussed above. Other embodiments resembling tracks, vents, or other wall components are possible as well. Various geometries and designs may be used in the wall components to accommodate the use of fire-retardant material. Additionally, various materials may be used. In at least some embodiments the wall component and wall system materials can comprise steel, iron, or other material having at least some structural capacity. The fire-retardant materials can comprise intumescent material, such as for example BlazeSeal™, or some other material which accomplishes the same purposes as those described above.


Although these inventions have been disclosed in the context of certain preferred embodiments and examples, it will be understood by those skilled in the art that the present inventions extend beyond the specifically disclosed embodiments to other alternative embodiments and/or uses of the inventions and obvious modifications and equivalents thereof. In addition, while several variations of the inventions have been shown and described in detail, other modifications, which are within the scope of these inventions, will be readily apparent to those of skill in the art based upon this disclosure. It is also contemplated that various combinations or sub-combinations of the specific features and aspects of the embodiments can be made and still fall within the scope of the inventions. It should be understood that various features and aspects of the disclosed embodiments can be combined with or substituted for one another in order to form varying modes of the disclosed inventions. Thus, it is intended that the scope of at least some of the present inventions herein disclosed should not be limited by the particular disclosed embodiments described above.

Claims
  • 1. A head-of-wall assembly comprising: an overhead, fluted pan deck having a plurality of elongate hollow spaces separated by lower surfaces;a header track having first and second flanges connected by a web, the header track coupled with the lower surfaces of the overhead, fluted pan deck at the web;a plurality of studs coupled with the header track;a wallboard coupled with the plurality of studs;a pre-shaped fire sponge having a cross-sectional shape and comprising: an inner layer comprising a compressible material; andan outer layer encompassing the inner layer;wherein the pre-shaped fire sponge is positioned above the header track within one elongate hollow space of the plurality of elongate hollow spaces to block passage of smoke and/or fire through the one elongate hollow space;wherein the pre-shaped fire sponge is compressed along at least one dimension within the one elongate hollow space;wherein an entirety of the pre-shaped fire sponge is above an upper plane of the header track.
  • 2. The head-of-wall assembly of claim 1, wherein the outer layer is an outermost layer.
  • 3. The head-of-wall assembly of claim 1, wherein the outer layer comprises a polymer material.
  • 4. The head-of-wall assembly of claim 1, wherein the outer layer comprises a latex material.
  • 5. The head-of-wall assembly of claim 1, wherein outer layer has a thickness between 1/16 inch and ⅛ inch.
  • 6. The head-of-wall assembly of claim 1, wherein the outer layer comprises a smoke seal material.
  • 7. The head-of-wall assembly of claim 1, wherein the outer layer is flexible.
  • 8. The head-of-wall assembly of claim 1, wherein the outer layer comprises a heat-resistant material.
  • 9. The head-of-wall assembly of claim 1, wherein the outer layer maintains the cross-sectional shape of pre-shaped fire sponge.
  • 10. The head-of-wall assembly of claim 1, wherein the one elongate hollow space has a trapezoidal cross-sectional shape and the cross-sectional shape of pre-shaped fire sponge is trapezoidal.
  • 11. The head-of-wall assembly of claim 1, wherein the outer layer prevents passage of smoke through the inner layer.
  • 12. The head-of-wall assembly of claim 1, wherein the compressible material of the inner layer comprises mineral wool.
  • 13. The head-of-wall assembly of claim 1, wherein the compressible material of the inner layer is compressed by approximately 30%.
  • 14. The head-of-wall assembly of claim 1, wherein the inner compressible material of the inner layer is compressed by the outer layer.
  • 15. The head-of-wall assembly of claim 1, wherein the pre-shaped fire sponge is compressed to fit within the one elongate hollow space within the pan deck above the header track, the pre-shaped fire sponge expands after placement within the one elongate hollow space to hold itself in place.
  • 16. The head-of-wall assembly of claim 1, further comprising a fire-retardant material strip coupled with and extending along the header track.
  • 17. The head-of-wall assembly of claim 1, further comprising a sealing element material strip coupled with and extending along the header track.
  • 18. The head-of-wall assembly of claim 1, wherein the compressible material of the inner layer comprises an intumescent material.
  • 19. The head-of-wall assembly of claim 1, further comprising: a second pre-shaped fire sponge, separate from the first pre-shaped fire sponge, comprising: an inner layer comprising a compressible material; andan outer layer encompassing the inner layer;wherein the second pre-shaped fire sponge is positioned above the header track within a second elongate hollow space of the plurality of elongate hollow spaces to block passage of smoke and/or fire through the second elongate hollow space.
  • 20. A head-of-wall assembly comprising: an overhead, fluted pan deck having a plurality of elongate hollow spaces separated by lower surfaces;a header track having first and second flanges connected by a web, the header track coupled with the lower surfaces of the overhead, fluted pan deck at the web and extending along a first direction transverse to the plurality of elongate hollow spaces;a plurality of studs coupled with the header track;a wallboard coupled with the plurality of studs;a pre-shaped fire sponge comprising: an inner layer comprising a compressible material; andan outer layer encompassing the inner layer;wherein the pre-shaped fire sponge is positioned within one elongate hollow space of the plurality of elongate hollow spaces to block passage of smoke and/or fire through the one elongate hollow space;wherein a maximum width of the outer layer of the pre-shaped fire sponge in the first direction is less than a maximum width of the one elongate hollow space in the first direction.
  • 21. The head-of-wall assembly of claim 20, wherein the outer layer is an outermost layer.
  • 22. The head-of-wall assembly of claim 20, wherein the pre-shaped fire sponge is compressed along at least one dimension within the one elongate hollow space.
  • 23. The head-of-wall assembly of claim 20, wherein the compressible material of the inner layer comprises mineral wool.
  • 24. The head-of-wall assembly of claim 20, wherein the compressible material of the inner layer is compressed by approximately 30%.
  • 25. The head-of-wall assembly of claim 20, wherein the inner compressible material of the inner layer is compressed by the outer layer.
  • 26. The head-of-wall assembly of claim 20, wherein the pre-shaped fire sponge is compressed to fit within the one elongate hollow space within the pan deck above the header track, the pre-shaped fire sponge expands after placement within the one elongate hollow space to hold itself in place.
US Referenced Citations (493)
Number Name Date Kind
661832 Wilkinson Nov 1900 A
965595 Nicholson Jul 1910 A
1130722 Fletcher Mar 1915 A
1563651 Pomerantz Dec 1925 A
2105771 Holdsworth Jan 1938 A
2114386 Killion Apr 1938 A
2218426 Hulbert, Jr. Oct 1940 A
2556878 Kohlhaas Jun 1951 A
2664739 Marcy Jan 1954 A
2683927 Maronek Jul 1954 A
2733786 Drake Feb 1956 A
3041682 Alderfer et al. Jul 1962 A
3129792 Gwynne Apr 1964 A
3271920 Downing, Jr. Sep 1966 A
3309826 Zinn Mar 1967 A
3324615 Zinn Jun 1967 A
3346909 Blackburn Oct 1967 A
3355852 Lally Dec 1967 A
3397495 Thompson Aug 1968 A
3460302 Cooper Aug 1969 A
3481090 Lizee Dec 1969 A
3537219 Navarre Nov 1970 A
3562985 Nicosia Feb 1971 A
3566559 Dickson Mar 1971 A
3604167 Hays Sep 1971 A
3609933 Jahn et al. Oct 1971 A
3648419 Marks Mar 1972 A
3668041 Lonning Jun 1972 A
3683569 Holm Aug 1972 A
3696569 Didry Oct 1972 A
3707819 Calhoun et al. Jan 1973 A
3713263 Mullen Jan 1973 A
3730477 Wavrunek May 1973 A
3744199 Navarre Jul 1973 A
3757480 Young Sep 1973 A
3786604 Kramer Jan 1974 A
3837126 Voiturier et al. Sep 1974 A
3839839 Tillisch et al. Oct 1974 A
3866370 Guarino et al. Feb 1975 A
3908328 Nelsson Sep 1975 A
3921346 Sauer et al. Nov 1975 A
3922830 Guarino et al. Dec 1975 A
3934066 Murch Jan 1976 A
3935681 Voiturier et al. Feb 1976 A
3955330 Wendt May 1976 A
3964214 Wendt Jun 1976 A
3974607 Balinski Aug 1976 A
3976825 Anderberg Aug 1976 A
3998027 Wendt et al. Dec 1976 A
4011704 O'Konski Mar 1977 A
4103463 Dixon Aug 1978 A
4122203 Stahl Oct 1978 A
4130972 Varlonga Dec 1978 A
4139664 Wenrick Feb 1979 A
4144335 Edwards Mar 1979 A
4144385 Downing Mar 1979 A
4152878 Balinski May 1979 A
4164107 Kraemling et al. Aug 1979 A
4178728 Ortmanns et al. Dec 1979 A
4203264 Kiefer et al. May 1980 A
4205498 Unayama Jun 1980 A
4217731 Saino Aug 1980 A
4276332 Castle Jun 1981 A
4281494 Weinar Aug 1981 A
4283892 Brown Aug 1981 A
4295304 Kim Oct 1981 A
4318253 Wedel Mar 1982 A
4329820 Wendt May 1982 A
4356672 Beckman et al. Nov 1982 A
4361994 Carver Dec 1982 A
4424653 Heinen Jan 1984 A
4434592 Reneault et al. Mar 1984 A
4437274 Slocum et al. Mar 1984 A
4454690 Dixon Jun 1984 A
4461120 Hemmerling Jul 1984 A
4467578 Weinar Aug 1984 A
4480419 Crites Nov 1984 A
4495238 Adiletta Jan 1985 A
4497150 Wendt et al. Feb 1985 A
4507901 Carroll Apr 1985 A
4517782 Shamszadeh May 1985 A
4575979 Mariani Mar 1986 A
4578913 Eich Apr 1986 A
4598516 Groshong Jul 1986 A
4622794 Geortner Nov 1986 A
4632865 Tzur Dec 1986 A
4649089 Thwaites Mar 1987 A
4672785 Salvo Jun 1987 A
4709517 Mitchell et al. Dec 1987 A
4711183 Handler et al. Dec 1987 A
4723385 Kallstrom Feb 1988 A
4756945 Gibb Jul 1988 A
4761927 O'Keeffe et al. Aug 1988 A
4787767 Wendt Nov 1988 A
4805364 Smolik Feb 1989 A
4810986 Leupold Mar 1989 A
4822659 Anderson et al. Apr 1989 A
4825610 Gasteiger May 1989 A
4845904 Menchetti Jul 1989 A
4850385 Harbeke Jul 1989 A
4854096 Smolik Aug 1989 A
4866898 LaRoche et al. Sep 1989 A
4881352 Glockenstein Nov 1989 A
4885884 Schilger Dec 1989 A
4897976 Williams et al. Feb 1990 A
4899510 Propst Feb 1990 A
4914880 Albertini Apr 1990 A
4918761 Harbeke Apr 1990 A
4930276 Bawa et al. Jun 1990 A
4935281 Tolbert et al. Jun 1990 A
4982540 Thompson Jan 1991 A
4987719 Goodson, Jr. Jan 1991 A
5010702 Daw et al. Apr 1991 A
5090170 Propst Feb 1992 A
5094780 von Bonin Mar 1992 A
5103589 Crawford Apr 1992 A
5105594 Kirchner Apr 1992 A
5111579 Andersen May 1992 A
5125203 Daw Jun 1992 A
5127203 Paquette Jul 1992 A
5127760 Brady Jul 1992 A
5140792 Daw et al. Aug 1992 A
5146723 Greenwood et al. Sep 1992 A
5152113 Guddas Oct 1992 A
5155957 Robertson et al. Oct 1992 A
5157883 Meyer Oct 1992 A
5157887 Watterworth, III Oct 1992 A
5167876 Lem Dec 1992 A
5173515 von Bonin et al. Dec 1992 A
5203132 Smolik Apr 1993 A
5205099 Grunhage et al. Apr 1993 A
5212914 Martin et al. May 1993 A
5222335 Petrecca Jun 1993 A
5244709 Vanderstukken Sep 1993 A
5279091 Williams et al. Jan 1994 A
5285615 Gilmour Feb 1994 A
5315804 Attalla May 1994 A
5319339 Leopold Jun 1994 A
5325651 Meyer et al. Jul 1994 A
5347780 Richards et al. Sep 1994 A
5367850 Nicholas Nov 1994 A
5374036 Rogers et al. Dec 1994 A
5376429 McGroarty Dec 1994 A
5390458 Menchetti Feb 1995 A
5390465 Rajecki Feb 1995 A
5394665 Johnson Mar 1995 A
5412919 Pellock et al. May 1995 A
5433991 Boyd, Jr. et al. Jul 1995 A
5452551 Charland et al. Sep 1995 A
5454203 Turner Oct 1995 A
5456050 Ward Oct 1995 A
5460864 Heitkamp Oct 1995 A
5471791 Keller Dec 1995 A
5471805 Becker Dec 1995 A
5477652 Torrey et al. Dec 1995 A
5502937 Wilson Apr 1996 A
5531051 Chenier, Jr. et al. Jul 1996 A
5552185 De Keyser Sep 1996 A
5592796 Landers Jan 1997 A
5604024 von Bonin Feb 1997 A
5644877 Wood Jul 1997 A
5687538 Frobosilo et al. Nov 1997 A
5689922 Daudet Nov 1997 A
5709821 von Bonin et al. Jan 1998 A
5724784 Menchetti Mar 1998 A
5735100 Campbell Apr 1998 A
5740635 Gil et al. Apr 1998 A
5740643 Huntley Apr 1998 A
5755066 Becker May 1998 A
5765332 Landin et al. Jun 1998 A
5787651 Horn et al. Aug 1998 A
5797233 Hascall Aug 1998 A
5798679 Pissanetzky Aug 1998 A
5806261 Huebner et al. Sep 1998 A
5820958 Swallow Oct 1998 A
5822935 Mitchell et al. Oct 1998 A
5870866 Herndon Feb 1999 A
5913788 Herren Jun 1999 A
5921041 Egri, II Jul 1999 A
5927041 Sedlmeier et al. Jul 1999 A
5930963 Nichols Aug 1999 A
5930968 Pullman Aug 1999 A
5945182 Fowler et al. Aug 1999 A
5950385 Herren Sep 1999 A
5968615 Schlappa Oct 1999 A
5968669 Liu et al. Oct 1999 A
5970672 Robinson Oct 1999 A
5974750 Landin et al. Nov 1999 A
5974753 Hsu Nov 1999 A
6023898 Josey Feb 2000 A
6058668 Herren May 2000 A
6061985 Kraus et al. May 2000 A
6110559 De Keyser Aug 2000 A
6116404 Heuft et al. Sep 2000 A
6119411 Mateu Gil et al. Sep 2000 A
6128874 Olson et al. Oct 2000 A
6128877 Goodman et al. Oct 2000 A
6131352 Barnes et al. Oct 2000 A
6151858 Ruiz et al. Nov 2000 A
6153668 Gestner et al. Nov 2000 A
6176053 St. Germain Jan 2001 B1
6182407 Turpin et al. Feb 2001 B1
6189277 Boscamp Feb 2001 B1
6207077 Burnell-Jones Mar 2001 B1
6207085 Ackerman Mar 2001 B1
6213679 Frobosilo et al. Apr 2001 B1
6216404 Vellrath Apr 2001 B1
6233888 Wu May 2001 B1
6256948 Van Dreumel Jul 2001 B1
6256960 Babcock et al. Jul 2001 B1
6279289 Soder et al. Aug 2001 B1
6305133 Cornwall Oct 2001 B1
6318044 Campbell Nov 2001 B1
6374558 Surowiecki Apr 2002 B1
6381913 Herren May 2002 B2
6405502 Cornwall Jun 2002 B1
6408578 Tanaka et al. Jun 2002 B1
6430881 Daudet et al. Aug 2002 B1
6470638 Larson Oct 2002 B1
6487825 Silik Dec 2002 B1
6595383 Pietrantoni Jul 2003 B2
6606831 Degelsegger Aug 2003 B2
6647691 Becker et al. Nov 2003 B2
6668499 Degelsegger Dec 2003 B2
6679015 Cornwall Jan 2004 B1
6698146 Morgan et al. Mar 2004 B2
6705047 Yulkowski Mar 2004 B2
6711871 Beirise et al. Mar 2004 B2
6732481 Stahl, Sr. May 2004 B2
6739926 Riach et al. May 2004 B2
6748705 Orszulak Jun 2004 B2
6783345 Morgan et al. Aug 2004 B2
6792733 Wheeler et al. Sep 2004 B2
6799404 Spransy Oct 2004 B2
6843035 Glynn Jan 2005 B1
6854237 Surowiecki Feb 2005 B2
6871470 Stover Mar 2005 B1
6951162 Shockey et al. Oct 2005 B1
7043880 Morgan et al. May 2006 B2
7059092 Harkins et al. Jun 2006 B2
7104024 deGirolamo et al. Sep 2006 B1
7152385 Morgan et al. Dec 2006 B2
7191845 Loar Mar 2007 B2
7240905 Stahl Jul 2007 B1
7251918 Reif et al. Aug 2007 B2
7302776 Duncan et al. Dec 2007 B2
7398856 Foster et al. Jul 2008 B2
7413024 Simontacchi et al. Aug 2008 B1
7487591 Harkins et al. Feb 2009 B2
7497056 Surowiecki Mar 2009 B2
7506478 Bobenhausen Mar 2009 B2
7513082 Johnson Apr 2009 B2
7540118 Jensen Jun 2009 B2
7594331 Andrews et al. Sep 2009 B2
7603823 Cann Oct 2009 B2
7610725 Willert Nov 2009 B2
7617643 Pilz et al. Nov 2009 B2
7681365 Klein Mar 2010 B2
7685792 Stahl, Sr. et al. Mar 2010 B2
7716891 Radford May 2010 B2
7735295 Surowiecki Jun 2010 B2
7752817 Pilz et al. Jul 2010 B2
7775006 Giannos Aug 2010 B2
7776170 Yu et al. Aug 2010 B2
7797893 Stahl, Sr. et al. Sep 2010 B2
7810295 Thompson Oct 2010 B2
7814718 Klein Oct 2010 B2
7827738 Abrams et al. Nov 2010 B2
7836652 Futterman Nov 2010 B2
7866108 Klein Jan 2011 B2
7870698 Tonyan et al. Jan 2011 B2
7921537 Rodlin Apr 2011 B2
7921614 Fortin et al. Apr 2011 B2
7941981 Shaw May 2011 B2
7950198 Pilz et al. May 2011 B2
7984592 Jiras Jul 2011 B1
8056293 Klein Nov 2011 B2
8061099 Andrews Nov 2011 B2
8062108 Carlson et al. Nov 2011 B2
8069625 Harkins et al. Dec 2011 B2
8074412 Gogan et al. Dec 2011 B1
8074416 Andrews Dec 2011 B2
8079188 Swartz et al. Dec 2011 B2
8087205 Pilz et al. Jan 2012 B2
8100164 Goodman et al. Jan 2012 B2
8132376 Pilz et al. Mar 2012 B2
8136314 Klein Mar 2012 B2
8151526 Klein Apr 2012 B2
8181404 Klein May 2012 B2
8225581 Strickland et al. Jul 2012 B2
8281552 Pilz et al. Oct 2012 B2
8322094 Pilz et al. Dec 2012 B2
8353139 Pilz Jan 2013 B2
8375666 Stahl, Jr. et al. Feb 2013 B2
8413394 Pilz et al. Apr 2013 B2
8468759 Klein Jun 2013 B2
8495844 Johnson Jul 2013 B1
8499512 Pilz et al. Aug 2013 B2
8541084 Deiss et al. Sep 2013 B2
8544226 Rubel Oct 2013 B2
8555566 Pilz et al. Oct 2013 B2
8578672 Mattox et al. Nov 2013 B2
8584415 Stahl, Jr. et al. Nov 2013 B2
8590231 Pilz Nov 2013 B2
8595999 Pilz et al. Dec 2013 B1
8596019 Aitken Dec 2013 B2
8607519 Hilburn Dec 2013 B2
8640415 Pilz et al. Feb 2014 B2
8646235 Hilburn, Jr. Feb 2014 B2
8671632 Pilz et al. Mar 2014 B2
8728608 Maisch May 2014 B2
8782977 Burgess Jul 2014 B2
8793947 Pilz et al. Aug 2014 B2
8938922 Pilz et al. Jan 2015 B2
8950132 Collins et al. Feb 2015 B2
8955275 Stahl, Jr. Feb 2015 B2
8973319 Pilz et al. Mar 2015 B2
9045899 Pilz et al. Jun 2015 B2
9127454 Pilz et al. Sep 2015 B2
9151042 Simon et al. Oct 2015 B2
9206596 Robinson Dec 2015 B1
9284730 Klein Mar 2016 B2
9290932 Pilz et al. Mar 2016 B2
9290934 Pilz et al. Mar 2016 B2
9316133 Schnitta Apr 2016 B2
9371644 Pilz et al. Jun 2016 B2
9458628 Pilz et al. Oct 2016 B2
9481998 Pilz et al. Nov 2016 B2
9506246 Joseph et al. Nov 2016 B2
9512614 Klein et al. Dec 2016 B2
9523193 Pilz Dec 2016 B2
9551148 Pilz Jan 2017 B2
9616259 Pilz et al. Apr 2017 B2
9637914 Pilz et al. May 2017 B2
9683364 Pilz et al. Jun 2017 B2
9719253 Stahl, Jr. et al. Aug 2017 B2
9739052 Pilz et al. Aug 2017 B2
9739054 Pilz et al. Aug 2017 B2
9752318 Pilz Sep 2017 B2
9879421 Pilz Jan 2018 B2
9885178 Barnes et al. Feb 2018 B1
9909298 Pilz Mar 2018 B2
9931527 Pilz et al. Apr 2018 B2
9995039 Pilz et al. Jun 2018 B2
10000923 Pilz Jun 2018 B2
10011983 Pilz et al. Jul 2018 B2
10077550 Pilz Sep 2018 B2
10166418 Foerg et al. Jan 2019 B2
10184246 Pilz et al. Jan 2019 B2
10214901 Pilz et al. Feb 2019 B2
10227775 Pilz et al. Mar 2019 B2
10246871 Pilz Apr 2019 B2
10406389 Pilz et al. Sep 2019 B2
10472819 Klein Nov 2019 B2
10494818 Maziarz Dec 2019 B2
10563399 Pilz et al. Feb 2020 B2
10619347 Pilz et al. Apr 2020 B2
10626598 Klein Apr 2020 B2
10669710 Förg Jun 2020 B2
10689842 Pilz Jun 2020 B2
10731338 Zemler et al. Aug 2020 B1
10753084 Pilz et al. Aug 2020 B2
10900223 Pilz Jan 2021 B2
10914065 Pilz Feb 2021 B2
10920416 Klein et al. Feb 2021 B2
10954670 Pilz Mar 2021 B2
11041306 Pilz et al. Jun 2021 B2
11060283 Pilz et al. Jul 2021 B2
11111666 Pilz Sep 2021 B2
11141613 Pilz et al. Oct 2021 B2
11162259 Pilz Nov 2021 B2
11268274 Pilz Mar 2022 B2
20020029535 Loper Mar 2002 A1
20020160149 Garofalo Oct 2002 A1
20020170249 Yulkowski Nov 2002 A1
20030079425 Morgan et al. May 2003 A1
20030089062 Morgan et al. May 2003 A1
20030196401 Surowiecki Oct 2003 A1
20030213211 Morgan et al. Nov 2003 A1
20040010998 Turco Jan 2004 A1
20040016191 Whitty Jan 2004 A1
20040045234 Morgan et al. Mar 2004 A1
20040139684 Menendez Jul 2004 A1
20040149390 Monden et al. Aug 2004 A1
20040211150 Bobenhausen Oct 2004 A1
20050183361 Frezza Aug 2005 A1
20050246973 Jensen Nov 2005 A1
20060032163 Korn Feb 2006 A1
20060123723 Weir et al. Jun 2006 A1
20060137293 Klein Jun 2006 A1
20060213138 Milani et al. Sep 2006 A1
20060261223 Orndorff, II et al. Nov 2006 A1
20070056245 Edmondson Mar 2007 A1
20070068101 Weir et al. Mar 2007 A1
20070130873 Fisher Jun 2007 A1
20070193202 Rice Aug 2007 A1
20070261343 Stahl, Sr. et al. Nov 2007 A1
20080087366 Yu et al. Apr 2008 A1
20080134589 Abrams et al. Jun 2008 A1
20080172967 Hilburn Jul 2008 A1
20080196337 Surowiecki Aug 2008 A1
20080250738 Howchin Oct 2008 A1
20090049781 Pilz Feb 2009 A1
20090107064 Bowman Apr 2009 A1
20090178369 Pilz et al. Jul 2009 A1
20090223159 Colon Sep 2009 A1
20090282760 Sampson et al. Nov 2009 A1
20100199583 Behrens et al. Aug 2010 A1
20110011019 Stahl, Jr. et al. Jan 2011 A1
20110041415 Esposito Feb 2011 A1
20110056163 Kure Mar 2011 A1
20110067328 Naccarato et al. Mar 2011 A1
20110099928 Klein et al. May 2011 A1
20110146180 Klein Jun 2011 A1
20110167742 Klein Jul 2011 A1
20110185656 Klein Aug 2011 A1
20110214371 Klein Sep 2011 A1
20110274886 Flennert Nov 2011 A1
20110302857 McClellan et al. Dec 2011 A1
20120023846 Mattox et al. Feb 2012 A1
20120066989 Pilz et al. Mar 2012 A1
20120180414 Burgess Jul 2012 A1
20120247038 Black Oct 2012 A1
20120266550 Naccarato et al. Oct 2012 A1
20120297710 Klein Nov 2012 A1
20130086859 Pilz Apr 2013 A1
20130118102 Pilz May 2013 A1
20130205694 Stahl, Jr. Aug 2013 A1
20140219719 Hensley et al. Aug 2014 A1
20140260017 Noble, III Sep 2014 A1
20150135622 Muenzenberger et al. May 2015 A1
20150135631 Foerg May 2015 A1
20150275506 Klein et al. Oct 2015 A1
20150275507 Klein et al. Oct 2015 A1
20150275510 Klein et al. Oct 2015 A1
20150368898 Stahl, Jr. et al. Dec 2015 A1
20160017598 Klein et al. Jan 2016 A1
20160017599 Klein et al. Jan 2016 A1
20160097197 Pilz Apr 2016 A1
20160123003 Pilz May 2016 A1
20160130802 Pilz May 2016 A1
20160201319 Pilz Jul 2016 A1
20160201893 Ksiezppolski Jul 2016 A1
20160208484 Pilz Jul 2016 A1
20160265219 Pilz Sep 2016 A1
20160296775 Pilz Oct 2016 A1
20170016227 Klein Jan 2017 A1
20170130445 Pilz May 2017 A1
20170175386 Pilz Jun 2017 A1
20170191261 Pilz Jul 2017 A9
20170198473 Pilz Jul 2017 A1
20170234004 Pilz Aug 2017 A1
20170234010 Klein Aug 2017 A1
20170260741 Ackerman Sep 2017 A1
20170306615 Klein et al. Oct 2017 A1
20170328057 Pilz Nov 2017 A1
20170209722 Pilz Dec 2017 A1
20180010333 Foerg et al. Jan 2018 A1
20180030723 Pilz Feb 2018 A1
20180030726 Pilz Feb 2018 A1
20180044913 Klein et al. Feb 2018 A1
20180171624 Klein et al. Jun 2018 A1
20180195282 Pilz Jul 2018 A1
20180289994 Pilz Oct 2018 A1
20180291619 Ackerman et al. Oct 2018 A1
20180347189 Pilz Dec 2018 A1
20180363293 Pilz Dec 2018 A1
20190284797 Pilz Sep 2019 A1
20190284799 Förg Sep 2019 A1
20190316348 Pilz Oct 2019 A1
20190316350 Pilz Oct 2019 A1
20190323234 Watanabe et al. Oct 2019 A1
20190330842 Pilz Oct 2019 A1
20190338513 Pilz Nov 2019 A1
20190344103 Pilz Nov 2019 A1
20190360195 Pilz et al. Nov 2019 A1
20200240140 Pilz Jul 2020 A1
20200284030 Pilz Sep 2020 A1
20200362551 Klein Nov 2020 A1
20210017761 Klein Jan 2021 A1
20210040731 Pilz Feb 2021 A1
20210062502 Archer Mar 2021 A1
20210148112 Klein May 2021 A1
20210164222 Pilz Jun 2021 A1
20210189721 Klein Jun 2021 A1
20210254333 Pilz Aug 2021 A1
20210285208 Pilz Sep 2021 A1
20210396004 Pilz Dec 2021 A1
20220010553 Pilz Jan 2022 A1
20220023684 Pilz Jan 2022 A1
20220042303 Pilz Feb 2022 A1
20220056686 Pilz Feb 2022 A1
20220098856 Pilz Mar 2022 A1
Foreign Referenced Citations (29)
Number Date Country
2234347 Oct 1999 CA
2711659 Feb 2012 CA
2697295 Dec 2013 CA
2736834 Dec 2015 CA
2803439 Mar 2017 CA
3010414 Aug 2017 CA
2827183 Jul 2018 CA
3036429 Sep 2019 CA
3041494 Oct 2019 CA
3041494 Oct 2019 CA
3052184 Feb 2020 CA
60213279 Jul 2007 DE
0335347 Oct 1989 EP
0 346 126 Dec 1989 EP
3 196 376 Jul 2017 EP
3 348 729 Jul 2018 EP
2268101 Mar 2007 ES
2 159 051 Nov 1985 GB
2 411 212 Aug 2005 GB
2 424 658 Oct 2006 GB
06-042090 Feb 1994 JP
06-146433 May 1994 JP
06-220934 Aug 1994 JP
07-4620 Jan 1995 JP
WO 2003038206 May 2003 WO
WO 2007103331 Sep 2007 WO
WO 2009026464 Feb 2009 WO
WO 2017129398 Aug 2017 WO
WO 2019108295 Jun 2019 WO
Non-Patent Literature Citations (37)
Entry
U.S. Appl. No. 15/285,440, filed Oct. 4, 2016, Pilz.
U.S. Appl. No. 15/462,671, filed Mar. 17, 2017, Pilz.
U.S. Appl. No. 15/469,370, filed Mar. 24, 2017, Pilz et al.
U.S. Appl. No. 15/481,272, filed Apr. 6, 2017, Pilz.
U.S. Appl. No. 15/655,688, filed Jul. 20, 2017, Pilz.
U.S. Appl. No. 15/680,025, filed Aug. 17, 2017, Pilz et al.
U.S. Appl. No. 15/912,313, filed Mar. 5, 2018, Pilz.
U.S. Appl. No. 15/943,349, filed Apr. 2, 2018, Pilz et al.
U.S. Appl. No. 16/598,211, filed Oct. 10, 2019, Pilz.
U.S. Appl. No. 16/791,869, filed Feb. 14, 2020, Pilz et al.
U.S. Appl. No. 16/809,401, filed Mar. 4, 2020, Pilz.
BlazeFrame 2009 catalog of products, available at least as of Mar. 4, 2010 from www.blazeframe.com, in 20 pages.
Canadian First Office Action for Application No. 2,697,295, dated Sep. 21, 2011, in 4 pages.
Canadian Second Office Action for Application No. 2,697,295, dated May 23, 2012, in 4 pages.
Canadian Office Action for Application No. 2,827,183, dated Mar. 27, 2015 in 4 pages.
Canadian Office Action for Application No. 2,827,183, dated Mar. 7, 2016 in 4 pages.
Catalog page from Stockton Products, printed from www.stocktonproducts.com, on Dec. 16, 2007, showing #5 Drip, in 1 page.
ClarkDietrich Building Systems, Product Submittal Sheet, (FTSC) Flat Trail Vertical Slide Clip. CD-FTSC11 Jul. 2011. 1 page.
DoubleTrackTM information sheets by Dietrich Metal Framing, in 2 pages; accessible on Internet Wayback Machine on Jul. 8, 2006.
FireStikTM by Cemco Brochure, published on www.firestik.us, in 18 pages; accessible on Internet Wayback Machine on Aug. 13, 2007.
Information Disclosure Statement letter; U.S. Appl. No. 12/196,115, dated Aug. 4, 2011.
International Search Report for Application No. PCT/US2008/073920, dated Apr. 9, 2009.
“Intumescent Expansion Joint Seals”, Astroflame; http://www.astroflame.com/intumescent_expansion_joint_seals; Jul. 2011; 4 pages.
James A. Klein's Answer, Affirmative Defenses and Counterclaims to Third Amended Complaint; U.S. District Court, Central District of California; Case No. 2:12-cv-10791-DDP-MRWx; Filed Sep. 17, 2014; pp. 1-37.
Letter from Thomas E. Loop; counsel for defendant; Jun. 26, 2015.
Expert Report of James William Jones and exhibits; Case No. CV12-10791 DDP (MRWx); May 18, 2015.
Letter from Ann G. Schoen of Frost Brown Todd, LLC; Jun. 24, 2015.
“System No. HW-D-0607”, May 6, 2010, Metacaulk, www.rectorseal.com, www.metacault.com; 2008 Underwriters Laboratories Inc.; 2 pages.
Trim-Tex, Inc., TRIM-TEX Wall Mounted Deflection Bead Installation Instructions, 2 pages. [Undated. Applicant requests that the Examiner review and consider the reference as prior art for the purpose of examination.].
“Wall Mounted Deflection Bead,” Trim-Tex Drywall Products; Oct. 9, 2016; 3 pages.
U.S. Appl. No. 16/001,228, filed Jun. 6, 2018.
U.S. Appl. No. 16/112,118, filed Aug. 24, 2018.
U.S. Appl. No. 16/871,644, filed May 11, 2020, Pilz.
U.S. Appl. No. 17/305,653, filed Jul. 12, 2021, Pilz et al.
U.S. Appl. No. 17/303,173, filed May 21, 2021, Pilz et al.
U.S. Appl. No. 17/445,393, filed Aug. 18, 2021, Pilz.
U.S. Appl. No. 17/453,158, filed Nov. 1, 2021, Pilz.
Related Publications (1)
Number Date Country
20200340240 A1 Oct 2020 US
Provisional Applications (1)
Number Date Country
60957434 Aug 2007 US
Continuations (9)
Number Date Country
Parent 16253653 Jan 2019 US
Child 16845535 US
Parent 15986280 May 2018 US
Child 16253653 US
Parent 15680072 Aug 2017 US
Child 15986280 US
Parent 15337972 Oct 2016 US
Child 15680072 US
Parent 14844966 Sep 2015 US
Child 15337972 US
Parent 14284297 May 2014 US
Child 14844966 US
Parent 13691595 Nov 2012 US
Child 14284297 US
Parent 13217145 Aug 2011 US
Child 13691595 US
Parent 12196115 Aug 2008 US
Child 13217145 US
Continuation in Parts (1)
Number Date Country
Parent 12013361 Jan 2008 US
Child 12196115 US