Heated floor and ceiling panel with a corrugated layer for modular use in buildings

Information

  • Patent Grant
  • 11054148
  • Patent Number
    11,054,148
  • Date Filed
    Friday, August 28, 2015
    9 years ago
  • Date Issued
    Tuesday, July 6, 2021
    3 years ago
Abstract
Floor and ceiling panels and methods of constructing a floor system for a building are described. In some embodiments, a panel includes a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, a ceiling substrate disposed below and attached to the plurality of joists, and an in-floor radiant heat member disposed between the corrugated form deck and the ceiling substrate. In some embodiments, the panel includes a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, and a sound dampener disposed between the corrugated form deck and the plurality of joists. In some embodiments, the method includes attaching a pre-assembled panel to a frame of the building and pouring concrete onto the panel so that a radiant heat member is separated from the concrete by a corrugated form deck of the panel.
Description
BACKGROUND

Conventional construction is conducted in the field at the building job site. People in various trades (e.g., carpenters, electricians, and plumbers) measure, cut, and install material as though each unit were one-of-a-kind. Furthermore, activities performed by the trades are arranged in a linear sequence. The result is a time-consuming process that increases the risk of waste, installation imperfections, and cost overruns.


The industry's response to improving efficiency has historically been modular construction. In the case of buildings with multiple dwelling units (e.g., apartments, hotels, student dorms, etc.), entire dwelling units (referred to as modules) are built off-site in a factory and then trucked to the job site. The modules are then stacked and connected together, generally resulting in a low-rise construction (e.g., between one and six stories).


SUMMARY

Techniques are generally described that include systems and methods. An example system may include a pre-assembled floor and ceiling panel for use in buildings. The panel may include a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, a ceiling substrate disposed below and attached to the plurality of joists, and an in-floor radiant heat member disposed between the corrugated form deck and the ceiling substrate.


In some embodiments, the panel may include a sound dampener disposed between the corrugated form deck and the plurality of joists.


In some embodiments, the panel may include a sound dampener disposed between the ceiling substrate and the plurality of joists.


In some embodiments, one or more joists of the plurality of joists may define a plurality of apertures extending transversely through the one or more joists.


In some embodiments, the in-floor radiant heat member extends through one or more apertures of the plurality of apertures of the one or more joists.


In some embodiments, the panel may include thermal insulation disposed between the corrugated form deck and the ceiling substrate. In some embodiments, the panel may include a layer of material disposed below the corrugated form deck. The layer of material may cover one or more flutes of the corrugated form deck to restrict migration of the thermal insulation into the one or more flutes. The layer of material may be thermally conductive. The in-floor radiant heat member may be attached to the layer of material.


In some embodiments, the panel may include plumbing, sprinkler piping, or electrical wiring disposed in a cavity defined between the thermal insulation and the ceiling substrate.


In some embodiments, the in-floor radiant heat member may be heat piping.


In some embodiments, the in-floor radiant heat member may be an electrical heating element.


In some embodiments, the panel may include a floor material disposed above the corrugated form deck. In some embodiments, the floor material may be concrete.


An example system may include a panel for use in a building. The panel may include a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, and a sound dampener disposed between the corrugated form deck and the plurality of joists.


In some embodiments, the sound dampener may include a plurality of strips of material aligned with the plurality of joists.


In some embodiments, the panel may include a ceiling substrate positioned below and attached to the plurality of joists, and a sound dampener disposed between the ceiling substrate and the plurality of joists. The panel may include a radiant heat member disposed between the corrugated form deck and the ceiling substrate. The panel may include thermal insulation disposed between the corrugated form deck and the ceiling substrate.


In some embodiments, the panel may include a thermally-conductive material abutted against a lower surface of the corrugated form deck. The thermally-conductive material may span across multiple flutes of the corrugated form deck. A radiant heat member may be disposed below and attached to the thermally-conductive material.


An example method may include a method of constructing a floor system for a building. The method may include attaching a pre-assembled panel to a frame of a building, wherein the pre-assembled panel comprises a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, a ceiling substrate disposed below and attached to the plurality of joists, and a radiant heat member disposed between the corrugated form deck and the ceiling substrate. The method may further include pouring concrete onto the corrugated form deck. The radiant heat member may be separated from the concrete by the corrugated form deck.


In some embodiments, the method may include attaching a second pre-assembled panel to a frame of a building, wherein the panel comprises a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, a ceiling substrate disposed below and attached to the plurality of joists, and a radiant heat pipe disposed between the corrugated form deck and the ceiling substrate. In some embodiments, the method may include attaching the pre-assembled panels together with a strip of material to cover a seam between the panels.


The foregoing summary is illustrative only and is not intended to be in any way limiting. In addition to the illustrative aspects, embodiments, and features described above, further aspects, embodiments, and features will become apparent by reference to the drawings and the following detailed description.





BRIEF DESCRIPTION OF THE DRAWINGS

The foregoing and other features of the present disclosure will become more fully apparent from the following description and appended claims, taken in conjunction with the accompanying drawings. Understanding that these drawings depict only several embodiments in accordance with the disclosure and are, therefore, not to be considered limiting of its scope, the disclosure will be described with additional specificity and detail through use of the accompanying drawings, in which:



FIG. 1 is a schematic illustration of an example multi-story building;



FIG. 2 is a schematic illustration of example floor and ceiling panels of the building of FIG. 1;



FIG. 3 is an exploded schematic illustration of an example floor and ceiling panel of the building of FIG. 1;



FIG. 4 is a fragmentary schematic illustration of an inverted example floor and ceiling panel of the building of FIG. 1 illustrating an in-floor radiant heat member extending lengthwise along and transversely between adjacent joists;



FIG. 5 is a fragmentary schematic illustration of an inverted example floor and ceiling panel of the building of FIG. 1 illustrating an in-floor radiant heat member extending transversely through a joist;



FIG. 6 is a schematic illustration of an example in-floor radiant heat member and a holder of the floor and ceiling panel of FIG. 5;



FIG. 7 is a fragmentary, schematic illustration of a cross-section of an example floor and ceiling panel of the building of FIG. 1; and



FIG. 8 is a flowchart illustrating an example method of constructing a floor system for a building;





all arranged in accordance with at least some embodiments of the present disclosure.


DETAILED DESCRIPTION

In the following detailed description, reference is made to the accompanying drawings, which form a part hereof. In the drawings, similar symbols typically identify similar components, unless context dictates otherwise. The illustrative embodiments described in the detailed description, drawings, and claims are not meant to be limiting. Other embodiments may be utilized, and other changes may be made, without departing from the spirit or scope of the subject matter presented herein. It will be readily understood that the aspects of the present disclosure, as generally described herein, and illustrated in the Figures, can be arranged, substituted, combined, separated, and designed in a wide variety of different configurations, all of which are implicitly contemplated herein.


This disclosure is drawn, inter alia, to methods, systems, products, devices, and/or apparatus generally related to a panel for use in a building. The panel may be assembled off-site in a shop and then transported to the building site. At the building site, the panel may be attached directly or indirectly to a building frame. The panel may define part of or the whole of a floor and part of or the whole of a ceiling in the building. The floor may be a portion of a story of the building above the panel, and the ceiling may be a portion of a story of the building below the panel.


The panel may include a frame, a floor substrate, and a ceiling substrate. The frame may separate the floor substrate and the ceiling substrate apart from one another in a vertical direction. The frame may include a plurality of joists positioned between the floor substrate and the ceiling substrate. The frame may define one or more joist cavities between adjacent joists. The one or more joist cavities may accommodate an in-floor radiant heat member, plumbing, cabling, wiring, or other elements that may support dwelling or commercial units in the buildings. An insulative material may be located between the heat member and the ceiling substrate to reduce heat transmission from the heat member to the story below the panel. Sound dampener material may be positioned between the frame, the floor substrate, and the ceiling substrate to reduce sound transmission through the panel.


The floor substrate may be attached to an upper side of the frame. The floor substrate may support a floor material of an upper story. The floor substrate may be formed of a corrugated form deck or other floor substrate capable of supporting a floor material. In some embodiments, the floor substrate may support a concrete floor to define a finished floor of the upper story.


The ceiling substrate may be attached to a lower side of the frame. The ceiling substrate may support a ceiling material of a lower story. The ceiling substrate may be formed of a fiber cement board or other ceiling substrate capable of supporting a ceiling material. In some embodiments, the ceiling substrate may support one or more acoustical panels to define a finished ceiling of the lower story.


In some embodiments, the material composition of the floor and ceiling panel may be predominantly metal. In some embodiments it may be predominately aluminum. In still other embodiments, the panel components may be made from a variety of building suitable materials ranging from metals, to wood and wood polymer composites (WPC), wood based products (lignin), other organic building materials (bamboo) to organic polymers (plastics), to hybrid materials, or earthen materials such as ceramics. In some embodiments cement or other pourable or moldable building materials may also be used. In other embodiments, any combination of suitable building material may be combined by using one building material for some elements of the panel and other building materials for other elements of the panel. Selection of any material may be made from a reference of material options (such as those provided for in the International Building Code), or selected based on the knowledge of those of ordinary skill in the art when determining load bearing requirements for the structures to be built. Larger and/or taller structures may have greater physical strength requirements than smaller and/or shorter buildings. Adjustments in building materials to accommodate size of structure, load and environmental stresses can determine optimal economical choices of building materials used for all components in the system described herein. Availability of various building materials in different parts of the world may also affect selection of materials for building the panel described herein. Adoption of the International Building Code or similar code may also affect choice of materials.


Any reference herein to “metal” includes any construction grade metals or metal alloys as may be suitable for fabrication and/or construction of the system and components described herein. Any reference to “wood” includes wood, wood laminated products, wood pressed products, wood polymer composites (WPCs), bamboo or bamboo related products, lignin products and any plant derived product, whether chemically treated, refined, processed or simply harvested from a plant. Any reference herein to “concrete” includes any construction grade curable composite that includes cement, water, and a granular aggregate. Granular aggregates may include sand, gravel, polymers, ash and/or other minerals.


In some embodiments, the panel may include a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, a ceiling substrate disposed below and attached to the plurality of joists, and an in-floor radiant heat member disposed between the corrugated form deck and the ceiling substrate. The panel may be pre-fabricated off-site and transported to a building site for installation into a structural frame of a building. In some embodiments, when the panel is installed, the corrugated form deck may provide support for a floor material for a portion of a story of a building above the panel and the ceiling substrate may provide a ceiling for a portion of a story below the panel.


In referring now to the drawings, repeating units of the same kind or generally fungible kind, are designated by the part number and a letter (e.g. 214n), where the letters “a”, “b” and so on refer to a discrete number of the repeating items. General reference to the part number followed by the letter “n” indicates there is no predetermined or established limit to the number of items intended. The parts are listed as “a-n” referring to starting at “a” and ending at any desired number “n”.



FIG. 1 illustrates a schematic illustration of an example multi-story building 102, arranged in accordance with at least some embodiments described herein. The building 102 may include two or more stories or levels. The building 102 may include a corresponding number of stories to be classified as a low-rise, mid-rise, or high-rise construction (each city or zoning authority may define building heights in any fashion they deem proper). The floor-ceiling panel as described herein may be suitable for use in a building of any number of stories (levels). In FIG. 1, the building 102 includes six stories. In some embodiments, the building may be a residential multi-dwelling building having eight or more stories.


The building 102 may include a structural, external frame 104. The external frame 104 may serve as a structural exoskeleton of the building 102. The external frame 104 may include multiple columns 106, beams 108, and cross braces 110. The columns 106 may be oriented vertically, the beams 108 may be oriented horizontally, and the cross braces 110 may be oriented obliquely to the columns 106 and the beams 108. The beams 108 may extend between and be attached to adjacent columns 106 to connect the adjacent columns 106 to one another. The cross braces 110 may extend between and be attached to contiguous beams 108 and columns 106 to provide additional stiffness to the external frame 104. In various embodiments described herein, the external frame 104 may provide the structural support for the building 102. In some embodiments described herein, interior (demising) walls forming units or modules may not be load bearing walls. In some embodiments, the load bearing support may be provided by the external frame 104. The columns, beans and cross braces may be arranged to provide strictly structural support. The frame may be used to provide decoration or added support to the structure (not shown) as well.


The building 102 may include multiple units or modules 112 disposed internally of the external frame 104. The units 112 may be commercial, residential (such as dwelling units), or both. The units 112 may be assembled at the building site using multiple prefabricated components. The prefabricated components may be assembled independent of one another remotely from the building site and transported to the building site for installation. The components may be attached to the external frame 104, to adjacent components, or both at the building site to form the individual units 112. In some embodiments, the building 102 may include internal support structures. Prefabricated components may be attached to the internal support structures in some embodiments. Each story or level of the building 102 may include one or multiple units 112 defined by the prefabricated components. The units may be standardized and repetitive, or unique and individualized. Mixed units of standard size and shape may be combined with unique units in the same floor, or in independent arrangement on separate floors. In some embodiments, a unit may encompass more than one floor.


The components may include one or more pre-assembled floor and ceiling panels 114 and one or more walls 116. The floor and ceiling panels 114 may be oriented horizontally and may define the floor of an upper unit and the ceiling of a lower unit. Individual panels of the floor and ceiling panels 114 may be attached to adjacent floor and ceiling panels 114, columns 106, beams 108, or any combination thereof. The walls 116 may be oriented vertically and may partition each story into multiple units, a single unit into multiple rooms, or both. The walls 116 may be attached to the floor and ceiling panels 114 with fasteners and then caulked, sealed, or both.



FIG. 2 illustrates a schematic illustration of example floor and ceiling panels, arranged in accordance with at least some embodiments described herein. FIG. 2 shows four floor and ceiling panels 214a, 214b, 214c, 214d positioned adjacent and attached to one another. The floor portion of the panels is facing up and substantially covers the ceiling portion of the panel in the view shown in FIG. 2. The floor and ceiling panels 214a, 214b, 214c, 214d may be positioned side-by-side or end-to-end and attached together by one or more lap pieces. The various components shown in FIG. 2 are merely embodiments, and other variations, including eliminating components, combining components, and substituting components are all contemplated. The panels 214n may be provided in any configuration (e.g., end to end, side to side, in non-repeating forms where there may be gaps between panels, and other configurations such as “L” shapes, “U” shapes, “O” shapes, etc.), and in any number.


Adjacent floor and ceiling panels 214a, 214b may be attached together in a side-by-side relationship by a first lap piece 218. The lap piece 218 may be formed of a strip of corrugated form deck extending longitudinally along a seam 220 formed between abutting sides of the panels 214n. The strip of corrugated form deck 218 may extend laterally from the seam 220 in opposing directions and overlap an upper surface of the adjacent floor and ceiling panels 214a, 214b. In some embodiments, the strip of corrugated form deck 218 may extend further to overlap an upper surface of the adjacent floor and ceiling panels 214c, 214d. In some embodiments, a second strip of corrugated form deck may be used to overlap an upper surface of the adjacent floor and ceiling panels 214c, 214d. The strip of corrugated form deck 218 may be attached to the adjacent floor and ceiling panels 214a, 214b to maintain the location of the panels 214a, 214b relative to one another. The strip of corrugated form deck 218 may have a deck flute pattern matching a flute pattern of the adjacent floor and ceiling panels 214a, 214b. In some embodiments, the strip of corrugated form deck 218 may overlap one or more flutes of each panel 214a, 214b. The corrugated form deck 218 may securely attach the adjacent panels 214a, 214b together, restrict ingress of concrete into the seam 220 during formation of a concrete topping slab at the building site, or both. In some embodiments, the strip of corrugated form deck 218 may have a width of between about two inches and about twenty-four inches. In some embodiments, the strip of corrugated form deck 218 may have a width of about six inches. The strip of corrugated form deck 218 may be formed of metal, such as aluminum or steel, or a non-metallic material, such as plastic. In some embodiments, the strip of corrugated form deck 218 may be formed of galvanized steel. In some embodiments, the strip of corrugated form deck 218 may be manufactured from G90 galvanized steel. In some embodiments, the strip of corrugated form deck 218 may have a thickness between about 20 gauge and about 26 gauge. In some embodiments, the strip of corrugated form deck 218 may be manufactured by Verco Decking, Inc. (marketed under the name Deep VERCOR™).


Adjacent floor and ceiling panels 214a, 214c and 214b, 214d may be attached together in an end-to-end relationship by a second lap piece 222. The second lap piece 222 may be oriented generally perpendicular (e.g., plus or minus fifteen degrees) to the first lap piece 218. The lap piece 222 may be formed of a strip of corrugated form deck 222 extending along a seam formed between abutting ends of the panels 214a, 214c and 214b, 214d. The overlap of the strip of corrugated form deck 218 extending along the sides of adjacent panels 214a, 214b may be different than the overlap of the strips of corrugated form deck 222 extending along the ends of the adjacent panels 214a, 214c and 214b, 214d. For example, the overlap of the strip of corrugated form deck 222 extending along the ends of the adjacent panels 214n may be greater than the overlap of the strip of corrugated form deck 218 extending along the sides of the adjacent panels 214a, 214b. In some embodiments, the overlap of the strip of corrugated form deck 222 may be about nine inches and the overlap of the strip of corrugated form deck 218 may be about three inches. In some embodiments, the strip of corrugated form deck 222 may have a width of about two inches to about twenty-four inches. In some embodiments, the strip of corrugated form deck 222 may have a width of about eighteen inches. The strip of corrugated form deck 222 may be formed of metal, such as aluminum or steel, or a non-metallic material, such as plastic. In some embodiments, the strip of corrugated form deck 222 may be formed of galvanized steel. In some embodiments, the strip of corrugated form deck 222 may be manufactured from G90 galvanized steel. In some embodiments, the strip of corrugated form deck 222 may have a thickness between about 20 gauge and about 26 gauge. In some embodiments, the strip of corrugated form deck 222 may be manufactured by Verco Decking, Inc. (marketed under the name Deep VERCOR™). As shown in FIG. 2, the floor and ceiling panel 214n may be rectangular in shape. In some embodiments, the floor and ceiling panel 214n may be non-rectangular in shape, such as triangular in shape (e.g., pie shaped), or configured in other shapes based on the building application.


An exploded illustration of a floor and ceiling panel 314 in accordance with some embodiments is now shown (FIG. 3). FIG. 3 shows a corrugated form deck 324, a first sound dampener or dampener member 326, a frame 328, one or more holders or carriers 330, an in-floor radiant heat member 332, thermal insulation 334, a second sound dampener or dampener member 336, and a ceiling substrate 338. The corrugated form deck 324, first sound dampener 326, frame 328, one or more holders 330, in-floor radiant heat member 332, thermal insulation 334, second sound dampener 336, and ceiling substrate 338 may be pre-assembled to form the panel 314 prior to transport to the building site. A concrete topping slab may be formed on top of the corrugated form deck 324, which may be performed at the building site while the remainder of the panel 314 may be pre-fabricated and delivered to the building site. In some embodiments, one or more acoustical ceiling panels may be attached to the ceiling substrate 338. The various components shown in FIG. 3 are merely examples, and other variations, including eliminating components, combining components, and substituting components are all contemplated.


The frame 328 may include a plurality of joists 340 and opposing end members 342. The joists 340 may form supporting members that span the distance between the opposing end members 342 to support the floor of an upper unit and the ceiling of a lower unit. The joists 340 may be oriented generally perpendicular (e.g., plus or minus fifteen degrees) to the end members 342. The joists 340 may have apertures 344 extending transversely through the joists 340. In some embodiments, the joists 340 may be punched to form the apertures 344. In some embodiments, the frame 328 may be formed of metal, such as aluminum or steel, for fire resistance, structural strength, weight reduction, or other factors. In some embodiments, the frame 328 may be formed of a non-metallic material, such as wood or plastic.


The joists 340 may be spaced apart from one another at regular intervals along the length of the end members 342. In some embodiments, the joists 340 may be spaced at between about eight inch centers to about thirty-six inch centers along the length of the end members 342. In some embodiments, the joists 340 may be spaced at two foot centers along the length of the end members 342. The spacing of the joists 340 may be adjusted based on the load requirements of the panel 314. The number of joists 340 and end members 342 may be varied to suit the parameters of the particular building. In some embodiments, and as shown in FIG. 3, the frame 328 may include five joists 340 and two end members 342. The dimensions of the joists 340 and the end members 342 may be varied to suit the parameters of the particular building. In some embodiments, the frame 328 has a height of about ten inches, a width of about eight feet, and a length of about twenty-two feet. In some embodiments, the joists 340 have a height of about ten inches and a length of about twenty-two feet. In some embodiments, the end members 342 have a height of about ten inches and a length of about eight feet.


The joists 340 may include two or more outer joists 340a and one or more inner joists 340b positioned between the outer joists 340a. The outer joists 340a may be attached (e.g., machined, welded, bolted, or adhered) to the end members 342 to define an outer portion of the frame 328 and form a box frame. The inner joists 340b may extend generally parallel (e.g., plus or minus fifteen degrees) to the outer joists 340a. In some embodiments, the joists 340 may be formed of metal, such as aluminum or steel, for fire resistance, structural strength, weight reduction, or other factors. In some embodiments, the joists 340 may be formed of a non-metallic material, such as wood or plastic. In some embodiments, the joists 340 may be formed of lightweight steel and may be manufactured by Steelform Building Products Inc. (marketed under the name Mega Joist).


The first and second sound dampener 326, 336 may form a dual sound dampener system in each floor and ceiling panel 314. The first sound dampener 326 may be positioned along an upper side of the frame 328, and the second sound dampener 336 may be positioned along a lower side or underside of the frame 328. The first and second dampener 326, 336 may effectively mitigate floor impact and ambient noise sound transmission to meet building codes. The first and second sound dampener 326, 336 may be formed of various materials. In some embodiments, the first and second sound dampener 326, 336 may be formed of an elastomeric material, such as rubber. In some embodiments, the first and second sound dampener 326, 336 may be formed of recycled, ground-up rubber tires, rubber, foam padding, or other material with acoustic dampening properties.


The first and second sound dampener 326, 336 may be formed in elongate strips 346. The strips 346 may have a length corresponding to a length of an associated joist 340 or end member 342. The strips 346 may have a width corresponding to a width of an associated joist 340 or end member 342. In some embodiments, the strips 346 may be designed to match the footprint of the frame 328 and rest on top of the frame 328. In some embodiments, the strips 346 may be designed to extend beyond the frame 328 such that ends and/or edges of the strips 346 may extend over the top of the frame 328. In some embodiments, the strips 346 may be designed to be smaller than the footprint of the frame 328 such that a portion of the top of the frame is not covered by the strips 346. In some embodiments, the first and second sound dampener 326, 336 may extend along opposing upper and lower sides of each joist 340 and end member 342 of the frame 328. The thickness of the first and second sound dampener 326, 336 may be varied to suit the parameters of the building. In some embodiments, the first and second sound dampener 326, 336 may have a thickness between about one-eighth of an inch and about one inch. In some embodiments, the first and second sound s 326, 336 may have a thickness of about one-quarter of an inch.


The first sound dampener 326 may be abutted against an upper surface 328a of the frame 328. The first sound dampener 326 may be disposed between the corrugated form deck 324 and the frame 328. The first sound dampener 326 may space the corrugated form deck 324 apart from the frame 328 by the thickness of the first sound dampener 326. The first sound dampener 326 may include a plurality of strips of material 346 aligned with the joists 340, the end members 342, or both. In some embodiments, the strips of material 346 may extend along a majority of the length of each joist 340 and end member 342 of the floor and ceiling panel 314. In some embodiments, the strips of material 346 may extend along the entire length of each joist 340 and end member 342 of the floor and ceiling panel 314. The first sound dampener 326 may mitigate sound transmission between the corrugated form deck 324 and the frame 328.


The second sound dampener 336 may be abutted against a lower surface 328b of the frame 328. The second sound dampener 336 may be disposed between the ceiling substrate 338 and the frame 328. The second sound dampener 336 may space the ceiling substrate 338 apart from the frame 328 by the thickness of the second sound dampener 336. The second sound dampener 336 may include a plurality of strips of material 346 aligned with the joists 340, the end members 342, or both. In some embodiments, the strips of material 346 may extend substantially parallel along the length of each joist 340 and end member 342 of the floor and ceiling panel 314. In some embodiments, the strips of material 346 may extend along the entire length of each joist 340 and end member 342 of the floor and ceiling panel 314. The second sound dampener 336 may mitigate sound transmission between the ceiling substrate 338 and the frame 328.


The corrugated form deck 324 may be disposed above and attached to the frame 328, with the first sound dampener 326 positioned between the corrugated form deck 324 and the frame 328. In some embodiments, the corrugated form deck 324 may be disposed above and attached to the plurality of joists 340, the end members 342, or both. The corrugated form deck 324 may form a supporting substrate for a concrete topping slab. The corrugated form deck 324 may extend the entire length and width of the frame 328 to enclose an upper side of the floor and ceiling panel 314. The corrugated form deck 324 may define a plurality of alternating ridges and flutes 348. The flutes 348 may form recesses between adjacent ridges. While the corrugated pattern is shown roughly perpendicular to the long axis of the floor ceiling panel, the orientation of the corrugated pattern may be in any angle in relation to the long axis of the floor ceiling panel. In some embodiments, the corrugated form deck 324 may be formed of metal, such as aluminum or steel, or a non-metallic material, such as plastic. In some embodiments, the corrugated form deck 324 may be formed of galvanized steel. In some embodiments, the corrugated form deck 324 may be manufactured from G90 galvanized steel. In some embodiments, the corrugated form deck 324 may have a thickness between about 20 gauge and about 26 gauge. In some embodiments, the corrugated form deck 324 may be manufactured by Verco Decking, Inc. (marketed under the name Deep VERCOR™). In some embodiments, the corrugated form deck 324 may be a 1.5 inch corrugated steel form deck that is fastened, such as screwed, to the top of the frame 328 to form a sub-floor of an upper unit.


The in-floor radiant heat member 332 may be disposed between the corrugated form deck 324 and the ceiling substrate 338. In some embodiments, the in-floor radiant heat member 332 may be disposed below the corrugated form deck 324 within one or more bays or joist cavities 350 defined between adjacent joists 340. Between adjacent joists 340, the in-floor radiant heat member 332 may include one or more straight sections 352 extending parallel to the adjacent joists 340. The straight sections 352 may extend the majority of the length of the adjacent joists 340. In an embodiment, the in-floor radiant heat member 332 may include one or more transversely-extending sections 354 connecting the adjacent straight sections 352. The in-floor radiant heat member 332 may be a heat pipe, an electrical heating element, or other suitable heat member. In some embodiments, the in-floor radiant heat member 332 may be formed of hydronic radiant heat piping or tubing. In some embodiments, the in-floor radiant heat member 332 may be formed as a pipe or tube of cross-linked polyethylene, commonly referred to as PEX piping or tubing. The in-floor heating element may take on any shape or configuration so long as it is capable of distributing substantially throughout the panel 314. In some embodiments, electrical resistance may be used to cause the corrugated form deck to act as a heating element. In other embodiments, resistance heating may be used to cause the frame to act as the in-floor heating element.


The one or more holders 330 may be disposed between the corrugated form deck 324 and the ceiling substrate 338. The one or more holders 330 may be abutted against a lower side or underside of the corrugated form deck 324. In some embodiments, foam insulation may be introduced into the panel 314 below the corrugated form deck 324 and above the ceiling substrate 338. The one or more holders 330 may conceal or shield one or more flutes 348 of the corrugated form deck 324 to reduce migration of the foam insulation, for example, into the one or more flutes 348, which may otherwise block a portion of the heat transfer from the in-floor heat member 332 through the corrugated form deck 324 and a concrete topping slab. The one or more holders 330 may at least partially define a layer of material 356 sized to fit within a joist cavity 350 of the frame 328. The layer of material 356 may have similar length and width dimensions as the joist cavity 350, thereby concealing all of the flutes 348 of the corrugated form deck 324 between adjacent joists 340. The layer of material 356 may be thermally conductive and may be referred to as a heat-conductive or thermally-conductive material. In some embodiments, the layer of material 356 may be formed of metal, such as aluminum or steel.


The thermal insulation 334 may be disposed between the corrugated form deck 324 and the ceiling substrate 338. The thermal insulation 334 may be disposed beneath the layer of material 356 in the joist cavities 350 of the frame 328. In some embodiments, the thermal insulation 334 may be spray foam insulation, such as a closed-cell spray foam insulation. The thermal insulation 334 may have a depth that is less than the distance between the layer of material 356 and the ceiling substrate 338 so as to define a cavity or space between the thermal insulation 334 and the ceiling substrate 338. Fire sprinkler piping, electrical wiring, data cabling, or plumbing may extend through the cavity. In some embodiments, the thermal insulation 334 may have a depth of about two inches to about eight inches. In some embodiments, the thermal insulation 334 may have a depth of about four inches and may define a space of about six inches. In some embodiments, the thermal insulation 334 may be a closed-cell spray foam manufactured by Icynene Inc.


The ceiling substrate 338 may be attached to the frame 328, with the second sound dampener 336 positioned between the frame 328 and the ceiling substrate 338. The ceiling substrate 338 may be formed with various dimensions depending on the building application. The ceiling substrate 338 may be disposed below and attached to the plurality of joists 340. The ceiling substrate 338 may extend the entire length and width of the frame 328 to enclose a lower side of the floor and ceiling panel 314. The ceiling substrate 338 may have a width of about four feet and a length of about eight feet. The ceiling substrate 338 may have a thickness of between about one-quarter of an inch and about one inch. In some embodiments, the ceiling substrate 338 may have a thickness of about three-quarters of an inch. The ceiling substrate 338 may be secured to the frame 328 with fasteners, for example, after assembly of the frame 328, the corrugated form deck 324, the one or more holders 330, the in-floor radiant heat member 332, the thermal insulation 334, and the sound isolation members 326, 336. Acoustical ceiling panels may be disposed below the ceiling substrate 338 to finish the ceiling of a portion of a story in a building below the panel. The ceiling substrate 338 may be a non-combustible material such as a non-combustible cement and cellulose fiber board. In some embodiments, the ceiling substrate 338 may be formed of a sheet of magnesium oxide board and a sheet of fiber board. In some embodiments, the ceiling substrate 338 may be formed of one sheet of twelve millimeter magnesium oxide board and one sheet of eleven millimeter fiber board. In some embodiments, the fiber board may be a non-combustible, structural fiber cement board manufactured by US Architectural Products (marketed under the name Plycem® CemDeck™).


A concrete topping slab may be disposed above the corrugated form deck 324. The concrete topping slab may form a lightweight concrete finished floor of a unit disposed above the floor and ceiling panel 314. The concrete topping slab may be formed on top of the corrugated form deck 324 to create the building diaphragm, transferring lateral loads to the external frame of the building. The concrete topping slab may be formed on top of the pre-assembled floor and ceiling panel 314 at the building site. The concrete topping slab may include an integral color compound mixed in to the concrete for aesthetics. The concrete topping slab may be troweled to form the finished floor of a building unit. After the concrete topping slab is cured, a sealer may be applied to the slab. The concrete topping slab may span an entire floor of the building in some embodiments. Accordingly, a number of floor and ceiling panels may be used to define a floor of the building, and a singly concrete topping slab may be formed and supported by the collection of floor and ceiling panels.



FIG. 4 provides a close-up illustration of an inverted example floor and ceiling panel 414 in accordance with at least some embodiments. FIG. 4 illustrates the floor and ceiling panel in a position inverted from how the floor and ceiling panel may typically be used. That is, the reader is looking from the ceiling portion of the panel through the interior of the panel to the floor portion of the panel. FIG. 4 shows a portion of the in-floor radiant heat member 432, a holder 430, and joists 440. The various components described in FIG. 4 are merely examples, and other variations, including eliminating components, combining components, and substituting components are all contemplated.


As shown in FIG. 4, a portion of the in-floor radiant heat member 432 may be disposed between adjacent joists 440 of the floor and ceiling panel 414. The in-floor radiant heat member 432 may be attached to an underside of the corrugated form deck 424. The in-floor radiant heat member 432 may be formed as a continuous loop and may be secured to the corrugated form deck 424 by one or more holders 430 positioned beneath the corrugated form deck 424 between the adjacent joists 440. The holders 430 may secure one or more straight sections 452 of the radiant heat member 432 to the corrugated form deck 424, and a transversely-extending section 454 of the radiant heat member 432 may extend between the ends of the straight sections 452.


A layer of thermally-conductive material 456 may be disposed between a retention feature 458 of the holders 430 and the corrugated form deck 424 to distribute the heat from the radiant heat member 432 to the corrugated form deck 424. The layer of material 456 may include a sheet of material 460, flanges 462 of the holders 430, or both. The sheet of material 460 may be disposed between the flanges 462 of the holders 430 and may cover the flutes 448 of the corrugated form deck 424 exposed between the holders 430. The sheet of material 460 may be attached to the underside of the corrugated form deck 424, to the holders 430, or both. The sheet of material 460 and the flanges 462 may form a barrier in each bay or joist cavity 450 and may prevent the intrusion of insulation, such as closed-cell spray foam insulation, into the flutes 448 of the corrugated form deck 424 between the in-floor radiant heat member 432 and the corrugated form deck 424. The layer of material 456 may provide uniform radiant heat transfer from the radiant heat member 432 through the corrugated form deck 424 and into the concrete topping slab, which may function as the floor of a story in a building above the concrete topping slab. In some embodiments, the sheet of material 460 and the flanges 462 may be constructed as a single, continuous piece of material and may define a unitary layer of material 456. The holders 430, the sheet of material 460, or both may be formed of any thermally-conductive material, such as metals like aluminum or steel, wood or plastic.



FIG. 5 illustrates a floor and ceiling panel in a position inverted from how the floor and ceiling panel may typically be used. That is, the floor portion of the panel is facing down. An in-floor radiant heat member 532 is now shown in a floor and ceiling panel 514 according to some embodiment (FIG. 5). The in-floor radiant heat member 532 may extend transversely through a joist 540, arranged in accordance with at least some embodiments described herein. The various components described in FIG. 5 are merely examples, and other variations, including eliminating components, combining components, and substituting components are all contemplated.


One or more of the joists 540 of the frame may define a plurality of apertures extending transversely through the one or more joists 540. The apertures may include a first set of apertures 564 aligned along a centerline of the joists 540 and spaced along the length of the joists 540. Additionally or alternatively, the apertures may include a second set of apertures 566 offset from a centerline of the joists 540 and spaced along the length of the joists 540 between adjacent apertures of the first set of apertures 564. The first set of apertures 564 may include oval-shaped apertures, and the second set of apertures 566 may include circular-shaped apertures. The first set of apertures 564 may be larger in size than the second set of apertures 566.


To extend into adjacent joist cavities 550, the radiant heat member 532 may extend through one or more apertures 566 defined in the joists 540. As shown in FIG. 5, the radiant heat member 532 may extend through an aperture of the second set of apertures 566 that is spaced from the underside of the corrugated form deck 524 by less than one-third of the height of the joist 540. The aperture 566 may have an inner dimension, such as an inner diameter, that matches an outer dimension, such as an outer diameter, of the radiant heat member 532. Although not shown, a grommet may be received within the aperture 566 and may internally receive the radiant heat member 532 to prevent wear on the radiant heat member 532 from the joist 540. As shown in FIG. 5, the radiant heat member 532 may extend transversely through the inner joists 540 and extend lengthwise along the joists 540 within the joist cavities 550. The radiant heat member 532 may extend transversely through an aperture formed in an outer joist 540 into an adjacent floor and ceiling panel so that the radiant heat member 532 may extend continuously through one or more floor and ceiling panels 514 of a unit 112 of the building 102.


The radiant heat member 532 may be attached to one or more holders 530 to secure the radiant heat member 532 to the corrugated form deck 524. The holders 530 may be positioned longitudinally along the length of the joist cavity 550 between adjacent joists 540. The holders 530 may be attached, for example adhered or welded, to an underside of the corrugated form deck 524. A sheet of material 560 may be positioned between the holders 530 within the joist cavity 550 and extend along the length of the joist cavity 550. The holder 530 and the sheet of material 560 may form a layer of material 556 covering the corrugated form deck 524. In some embodiments, the holders 530 and the sheet of material 560 may be formed as a single member.



FIG. 6 illustrates an embodiment of an in-floor radiant heat member 632 and holder 630 of the floor and ceiling panel. The radiant heat member 632 may be partially placed within the holder 630. The holder 630 may be attached to an underside of a corrugated form deck. The various components described in FIG. 6 are merely examples, and other variations, including eliminating components, combining components, and substituting components are all contemplated.


The radiant heat member 632 may be pressed into a longitudinally-extending recess 668 to secure the radiant heat member 632 in place. The holders 630 may include a flange 662 on one or both sides of the retention feature 658. The flange 662 may be formed as a thin, elongate plate and may have a rectangular shape. The retention feature 658 may be generally U-shaped having a closed side 658a attached to the holder 630 and an open side 658b opposite the closed side 658a configured to receive the radiant heat member 632. The holders 630 may be oriented such that the flange 662 is disposed between the corrugated form deck 624 and the retention feature 658. The recess 668 of the retention feature 658 may open in a downwardly direction. During insertion of the radiant heat member 632 into a holder 630, the retention feature 658 may resiliently deform until the radiant heat member 632 snaps into the recess 668 of the holder 630, where the radiant heat member 632 may be secured in place by the retention feature 658. The holder 630 may be formed of a thermally-conductive material, such as aluminum or steel, to transfer heat from the radiant heat member 632 to the corrugated form deck 624 and into the concrete topping slab. The holder 630 may be formed as an extrusion.



FIG. 7 provides a cross-section of a floor and ceiling panel 714 according to an embodiment. A concrete topping slab 770 may be poured over a corrugated form deck 724 once the floor and ceiling panel 714 is properly installed. The floor and ceiling panel 714 may contain first and second sound dampeners 726, 736, one or more holders 730, one or more radiant heat member(s) 732, a sheet of material 760, thermal insulation 734, a ceiling substrate 738, one or more acoustical ceiling panels 772, joists 740, plumbing 774, sprinkler piping 776, and electrical cabling or wiring 778. The various components described in FIG. 7 are merely examples, and other variations, including eliminating components, combining components, and substituting components are all contemplated.


The concrete topping slab 770 may be formed on top of the corrugated form deck 724 at the building site. In some embodiments, the concrete topping slab 770 may be placed (e.g., poured) on top of the corrugated form deck 724 after installation of the pre-assembled floor and ceiling panel 714 at the building site. The concrete topping slab 770 may create the structural diaphragm for the building 102. The concrete topping slab 770 may have a thickness suitable for the building 102. In some embodiments, the concrete topping slab 770 may have a thickness of between about one inch and about twelve inches. In some embodiments, the concrete topping slab 770 may have a thickness of about three inches. The concrete topping slab 770 may form the finished floor of a unit positioned directly above the floor and ceiling panel 714.


The one or more acoustical ceiling panels 772 may be positioned along a lower side or underside of the ceiling substrate 738 at the building site. In some embodiments, the acoustical ceiling panels 772 may be attached to the ceiling substrate 738 after installation of the pre-assembled floor and ceiling panel 714 at the building site. In some embodiments, the acoustical ceiling panels 772 may be attached to the ceiling substrate 738 with hook and loop fasteners. The acoustical ceiling panels 772 may form the finished ceiling of a unit positioned directly below the floor and ceiling panel 714. The acoustical ceiling panels 772 may have seams between adjacent panels that are offset from seams of the ceiling substrate 738. In some embodiments, the one or more acoustical ceiling panels 772 may be made from one-hundred percent polyester and may be manufactured by Acoustical Solutions (marketed under the name PolyPhon™ Polyester Acoustical Panels).


The first and second sound dampeners 726, 736 may be positioned along opposing upper and lower sides of the frame 728 to mitigate sound transmission between upper and lower adjacent units. The first sound dampener 726 may be positioned between a deck 724 and the joists 740. The second sound dampener 736 may be positioned between the ceiling substrate 738 and the joists 740. The first and second sound dampeners 726, 736 may be formed as elongate strips of material 746 extending along the length of the joists 740.


The joists 740 may extend vertically between the first and second sound dampeners 726, 736. One or more of the inner joists 740 may be I-shaped and may extend between opposing end members. The joists 740 may be attached (e.g., machined, welded, bolted, or adhered) to the end members. One or more of the joists 740 may be formed of two C-shaped members 780 attached back-to-back. In some embodiments, one or more of the inner joists 740 may be formed of two members 780 fastened back-to-back. The C-shaped members may be stitch welded, bolted, screwed or fastened together in any suitable manner. In some embodiments, one or more of the joists 740 may be formed of I-beams.


The holders 730 may be attached to the corrugated form deck 724. The holders 730 may include a flange or base plate 762 disposed in the same plane as the first sound dampener 726. Each joist cavity 750 of the frame 728 may include one or more holders 730. The central joist cavity 750 may include one, two, or more holders 730 positioned alongside the joists 740. The retention feature 758 of the holders 730 may extend downwardly from the flange 762. The retention feature 758 may be attached to the base of the holder, such as by adhesive, welding, or another suitable attachment method. The radiant heat member 732 may be held in the holder 730 due to an interference fit. The retention feature 758 may resiliently deform upon insertion of the radiant heat member 732 into the retention feature 758.


The thermal insulation 734 may be disposed between the corrugated form deck 724 and the ceiling substrate 738. The thermal insulation 734 may be prevented from ingress into the flutes of the corrugated form deck 724 by the layer of material 756. The sheet of material 760 and the flanges 762 may form the layer of material 756. The thermal insulation 734 may be spaced apart from the ceiling substrate 738 to define a cavity or space 782 between the thermal insulation 734 and the ceiling substrate 738. The thermal insulation 734 may surround all but an upper side of the retention features 758 of the holders 730 to restrict the heat from the radiant heat member 732 from radiating laterally or downwardly toward a lower unit 112. The thermal insulation 734 may direct the heat from the radiant heat member 732 upwardly toward the concrete topping slab or floor 770. The heat from the radiant heat member 732 may be transferred to the concrete topping slab 770 via the layer of material 756 and the corrugated form deck 724. The thermal insulation 734 may be placed (e.g., sprayed) into the joist cavity 750 after attachment of the corrugated form deck 724 to the frame 728, the holders 730 to the corrugated form deck 724, and the sheet of material 760 to the corrugated form deck 724.


Plumbing 774, sprinkler piping 776, electrical cabling or wiring 778, or any combination thereof may be disposed in a cavity or space 782 defined within the floor and ceiling panel 714 between the thermal insulation 734 and the ceiling substrate 738. The plumbing pipes 774, sprinkler piping 776, and electrical cabling or wiring 778 may be positioned below the thermal insulation 734 and above the ceiling substrate 738. After installation of the plumbing pipes 774, sprinkler piping 776, electrical cabling or wiring 778, or any combination thereof, the ceiling substrate 738 may be installed to enclose a lower side of the floor and ceiling panel 714.



FIG. 8 illustrates a flowchart illustrating an example method of constructing a floor system for a building, arranged in accordance with at least some embodiments described herein. Block 804 recites “attach pre-assembled floor and ceiling panel to frame of building”, and block 806 recites “pour concrete onto corrugated form deck of pre-assembled floor and ceiling panel.” For example, the method 800 of FIG. 8 may be implemented using the floor and ceiling panel, external frame, and building shown in the preceding Figures. Recall the pre-assembled panel may include a plurality of joists, a corrugated form deck disposed above and attached to the plurality of joists, a ceiling substrate disposed below and attached to the plurality of joists, and an in-floor radiant heat member disposed between the corrugated form deck and the ceiling substrate. The radiant heat member may be separated from the concrete by the corrugated form deck.


The blocks included in the described example methods are for illustration purposes. In some embodiments, the blocks may be performed in a different order. In some other embodiments, various blocks may be eliminated. In still other embodiments, various blocks may be divided into additional blocks, supplemented with other blocks, or combined together into fewer blocks. Other variations of these specific blocks are contemplated, including changes in the order of the blocks, changes in the content of the blocks being split or combined into other blocks, etc.


In block 804, the floor and ceiling panel may be attached to the frame of a building. For example, the floor and ceiling panel may be attached to an exterior metal structure, which may provide the structural support for a building. Generally, any mechanism may be used to attach the floor and ceiling panel, or multiple floor and ceiling panels, to the frame of the building, such as an external metal structure. Any type of fastening may generally be used.


In block 806, concrete may be poured onto the floor and ceiling panel. As described herein, pouring the concrete may form a diaphragm of the building, which may span an entire story of the building in some embodiments. In this manner, the concrete may be poured at the completed height of the story of the building, after the floor and ceiling panels had been positioned at the desired story, thereby forming the floor of units in that story.


Example 1

In a first non-limiting example, a floor and ceiling panel may include a frame, a floor substrate, and a ceiling substrate. The frame may be made of metal, such as aluminum or steel. Alternatively the frame may be made of wood. The floor substrate may be a corrugated form deck made from metal, such as aluminum or steel, and may be attached to the frame along an upper side of the frame. The ceiling substrate may be made from fiber-cement board and may be attached to the frame along a lower side of the frame. A heat pipe may be routed through one or more joist cavities defined by the panel and may be attached to a lower side of the corrugated form deck. The heat pipe may be made from plastic, such as cross-linked polyethylene. Sound isolation material may be positioned between the frame and the corrugated form deck and between the frame and the ceiling substrate. The sound isolation material may be made from an elastomeric material, such as rubber. A three-inch layer of concrete may be poured on top of the corrugated form deck so that the heat pipe is separated from the concrete by the corrugated form deck. Spray foam insulation, such as closed-cell spray foam insulation, may be sprayed into the one or more joist cavities beneath the heat pipe to mitigate heat radiation in a downwardly direction toward the ceiling substrate.


Example 2

In a second non-limiting example, a floor and ceiling panel may include a frame, a floor substrate, and a ceiling substrate. The frame may be made from wood or wood-based products like WPC. The floor substrate may be made from wood and may be attached to the frame along an upper side of the frame. The ceiling substrate may be made from wood and may be attached to the frame along a lower side of the frame. A heat member, such as a heat pipe or an electrical heating element, may be routed through one or more joist cavities defined by the panel and may be attached to a lower side of the floor substrate. Sound isolation material may be positioned between the frame and the floor substrate and between the frame and the ceiling substrate. The sound isolation material may be formed of a vibration damping material, such as an elastomer. A flooring material (such as wood, a moldable or pourable material, a tile, or concrete) may be placed on top of the floor substrate to form a finished floor surface. Insulation may be placed into the one or more joist cavities between the heat member and the ceiling substrate to mitigate heat radiation in a downwardly direction toward the ceiling substrate.


Example 3

In a third example, a floor and ceiling panel may include a frame, a floor substrate, and a ceiling substrate. The frame may be formed of a fiber-reinforced composite material. The floor substrate may be formed of fiber-cement board and may be attached to the frame along an upper side of the frame. The ceiling substrate may be formed of fiber-cement board and may be attached to the frame along a lower side of the frame. A heat member, such as a fluidic heat pipe or an electrical heating element, may be routed through one or more joist cavities defined by the panel and may be attached to a lower side of the floor substrate. Sound isolation material may be positioned between the frame and the floor substrate and between the frame and the ceiling substrate. The sound isolation material may be formed of a commercially-available vibration damping material, such as an elastomer. A layer of moldable or pourable material (such as concrete) may be formed on top of the floor substrate. Insulation may be placed in the one or more joist cavities around the heat member to mitigate heat radiation in a downwardly direction toward the ceiling substrate.


The examples provided are for explanatory purposes only and should not be considered to limit the scope of the disclosure. Embodiments of pre-assembled floor and ceiling panels described herein, including the pre-assembled floor and ceiling panel 114, may provide a floor and ceiling system useable in low-rise, mid-rise, and high-rise residential projects, among others. The panels may be configured to comply with one or more of the following building codes: fire, energy, handicap, life-safety, and acoustical (impact and ambient noise transfer). In some embodiments, the pre-assembled floor and ceiling panels may be considered as a fully-integrated sub-assembly meeting fire, sound impact, energy, and life/safety codes. The floor and ceiling panels may be fully integrated with electrical, fire protection, energy insulation, and sound isolation capabilities in some embodiments. The floor and ceiling panels may be designed to achieve a fire rating set by the applicable building code, such as a two-hour fire rating. In some embodiments, the panels may provide a heating system for the building units, such as the units 112 in FIG. 1.


The floor and ceiling panels described herein may be fabricated off-site in a factory or shop and transported to the project jobsite for attachment to a structural frame, such as a structural exoskeleton, of a building. The panels may be fabricated in various sizes, such as eight feet by twenty-two feet. Smaller infill panels may be prefabricated on a project-by-project basis to complete the building floor system. At the building site, the panel may be attached to end walls, demising walls, utility walls, building utilities, or any combination thereof. The floor and ceiling panel may provide support the overall floor system, which may include a concrete topping slab poured in the field to create a structural diaphragm for the building.


The floor and ceiling panel may provide a floor substrate and a ceiling substrate. A frame, such as a light gauge frame, may support the floor substrate. In some embodiments, the floor substrate is a corrugated form deck, and a lightweight concrete finished floor is formed on top of the corrugated form deck. Opposite the floor substrate the frame may support a ceiling substrate, such as a fiber-cement board. An in-floor radiant heat member, sound and energy insulation, sound dampeners for acoustically separating floors, fire sprinkler piping, electrical wiring and data cabling, or any combination thereof may be positioned between the floor and ceiling substrates.


The present disclosure is not to be limited in terms of the particular embodiments described in this application, which are intended as illustrations of various aspects. Many modifications and embodiments can be made without departing from its spirit and scope, as will be apparent to those skilled in the art. Functionally equivalent methods and apparatuses within the scope of the disclosure, in addition to those enumerated herein, will be apparent to those skilled in the art from the foregoing descriptions. Such modifications and embodiments are intended to fall within the scope of the appended claims. The present disclosure is to be limited only by the terms of the appended claims, along with the full scope of equivalents to which such claims are entitled. It is to be understood that this disclosure is not limited to particular methods, reagents, compounds compositions or biological systems, which can, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting.


With respect to the use of substantially any plural and/or singular terms herein, those having skill in the art can translate from the plural to the singular and/or from the singular to the plural as is appropriate to the context and/or application. The various singular/plural permutations may be expressly set forth herein for sake of clarity.


It will be understood by those within the art that, in general, terms used herein, and especially in the appended claims (e.g., bodies of the appended claims) are generally intended as “open” terms (e.g., the term “including” should be interpreted as “including but not limited to,” the term “having” should be interpreted as “having at least,” the term “includes” should be interpreted as “includes but is not limited to,” etc.).


It will be further understood by those within the art that if a specific number of an introduced claim recitation is intended, such an intent will be explicitly recited in the claim, and in the absence of such recitation no such intent is present. For example, as an aid to understanding, the following appended claims may contain usage of the introductory phrases “at least one” and “one or more” to introduce claim recitations. However, the use of such phrases should not be construed to imply that the introduction of a claim recitation by the indefinite articles “a” or “an” limits any particular claim containing such introduced claim recitation to embodiments containing only one such recitation, even when the same claim includes the introductory phrases “one or more” or “at least one” and indefinite articles such as “a” or “an” (e.g., “a” and/or “an” should be interpreted to mean “at least one” or “one or more”); the same holds true for the use of definite articles used to introduce claim recitations. In addition, even if a specific number of an introduced claim recitation is explicitly recited, those skilled in the art will recognize that such recitation should be interpreted to mean at least the recited number (e.g., the bare recitation of “two recitations,” without other modifiers, means at least two recitations, or two or more recitations).


Furthermore, in those instances where a convention analogous to “at least one of A, B, and C, etc.” is used, in general such a construction is intended in the sense one having skill in the art would understand the convention (e.g., “a system having at least one of A, B, and C” would include but not be limited to systems that have A alone, B alone, C alone, A and B together, A and C together, B and C together, and/or A, B, and C together, etc.). In those instances where a convention analogous to “at least one of A, B, or C, etc.” is used, in general such a construction is intended in the sense one having skill in the art would understand the convention (e.g., “a system having at least one of A, B, or C” would include but not be limited to systems that have A alone, B alone, C alone, A and B together, A and C together, B and C together, and/or A, B, and C together, etc.). It will be further understood by those within the art that virtually any disjunctive word and/or phrase presenting two or more alternative terms, whether in the description, claims, or drawings, should be understood to contemplate the possibilities of including one of the terms, either of the terms, or both terms. For example, the phrase “A or B” will be understood to include the possibilities of “A” or “B” or “A and B.”


In addition, where features or aspects of the disclosure are described in terms of Markush groups, those skilled in the art will recognize that the disclosure is also thereby described in terms of any individual member or subgroup of members of the Markush group.


As will be understood by one skilled in the art, for any and all purposes, such as in terms of providing a written description, all ranges disclosed herein also encompass any and all possible subranges and combinations of subranges thereof. Any listed range can be easily recognized as sufficiently describing and enabling the same range being broken down into at least equal halves, thirds, quarters, fifths, tenths, etc. As a non-limiting example, each range discussed herein can be readily broken down into a lower third, middle third and upper third, etc. As will also be understood by one skilled in the art all language such as “up to,” “at least,” “greater than,” “less than,” and the like include the number recited and refer to ranges which can be subsequently broken down into subranges as discussed above. Finally, as will be understood by one skilled in the art, a range includes each individual member. Thus, for example, a group having 1-3 items refers to groups having 1, 2, or 3 items. Similarly, a group having 1-5 items refers to groups having 1, 2, 3, 4, or 5 items, and so forth.


While the foregoing detailed description has set forth various embodiments of the devices and/or processes via the use of block diagrams, flowcharts, and/or embodiments, such block diagrams, flowcharts, and/or embodiments contain one or more functions and/or operations, it will be understood by those within the art that each function and/or operation within such block diagrams, flowcharts, or embodiments can be implemented, individually and/or collectively, by a wide range of hardware, software, firmware, or virtually any combination thereof.


The herein described subject matter sometimes illustrates different components contained within, or connected with, different other components. It is to be understood that such depicted architectures are merely examples, and that in fact many other architectures can be implemented which achieve the same functionality. In a conceptual sense, any arrangement of components to achieve the same functionality is effectively “associated” such that the desired functionality is achieved. Hence, any two components herein combined to achieve a particular functionality can be seen as “associated with” each other such that the desired functionality is achieved, irrespective of architectures or intermedial components. Likewise, any two components so associated can also be viewed as being “operably connected”, or “operably coupled”, to each other to achieve the desired functionality, and any two components capable of being so associated can also be viewed as being “operably couplable”, to each other to achieve the desired functionality. Specific embodiments of operably couplable include but are not limited to physically mateable and/or physically interacting components and/or wirelessly interactable and/or wirelessly interacting components and/or logically interacting and/or logically interactable components.


While various aspects and embodiments have been disclosed herein, other aspects and embodiments will be apparent to those skilled in the art. The various aspects and embodiments disclosed herein are for purposes of illustration and are not intended to be limiting, with the true scope and spirit being indicated by the following claims.

Claims
  • 1. A pre-assembled floor and ceiling panel for use in a building, the panel comprising: a plurality of parallel joists, including a first outer joist at a first side of the panel, a second outer joist at a second side of the panel opposite to the first side of the panel, and a third inner joist positioned between the first outer joist and the second outer joist;a corrugated form deck disposed above and attached to the plurality of parallel joists;a ceiling substrate disposed below and attached to the plurality of parallel joists;an in-floor radiant heat member disposed between the corrugated form deck and the ceiling substrate, wherein: the in-floor radiant heat member extends transversely through a first aperture formed transversely through the first outer joist so as to extend the in-floor radiant heat member to a first panel that is adjacent to the panel at the first side,the in-floor radiant heat member extends transversely through a second aperture that is formed transversely through the second outer joist so as to extend the in-floor radiant heat member to a second panel that is adjacent to the panel at the second side,the in-floor radiant heat member extends transversely through a third aperture that is formed transversely through the third inner joist so that the in-floor radiant heat member extends continuously between two joist cavities defined at least in part by the third inner joist, andthe pre-assembled floor and ceiling panel is configured to comply with a two-hour fire rating;thermal insulation disposed between the corrugated form deck and the ceiling substrate; anda layer of material disposed below and attached to an underside of the corrugated form deck and disposed as a separate layer above the thermal insulation,wherein the layer of material covers flutes of the corrugated form deck to restrict upward migration of the thermal insulation into the flutes,wherein the layer of material comprises a plurality of layer pieces each having similar length and width dimensions as a corresponding joist cavity defined by two adjacent joists so as to conceal all flutes of the corrugated form deck between the two adjacent joists,wherein the layer of material is thermally conductive, andwherein the in-floor radiant heat member is disposed below and attached to the layer of material to enable the layer of material to receive and conduct heat from the in-floor radiant heat member and such that the layer of material provides uniform radiant heat transfer from the in-floor radiant heat member to the underside of the corrugated form deck and through the corrugated form deck.
  • 2. The panel of claim 1, further comprising a sound dampener disposed between the corrugated form deck and the plurality of parallel joists.
  • 3. The panel of claim 1, further comprising a sound dampener disposed between the ceiling substrate and the plurality of parallel joists.
  • 4. The panel of claim 1, wherein: the thermal insulation has a depth that is less than the distance between the layer of material and the ceiling substrate so as to define a cavity between the thermal insulation and the ceiling substrate, andthe panel further comprises plumbing, sprinkler piping, or electrical wiring disposed in the cavity defined between the thermal insulation and the ceiling substrate.
  • 5. The panel of claim 1, wherein the in-floor radiant heat member comprises heat piping.
  • 6. The panel of claim 1, wherein the in-floor radiant heat member comprises an electrical heating element.
  • 7. The panel of claim 1, further comprising a floor material disposed above the corrugated form deck and which receives heat transferred from the corrugated form deck, wherein the floor material comprises concrete.
  • 8. A panel for use in a building, the panel comprising: a plurality of parallel joists, including a first outer joist at a first side of the panel, a second outer joist at a second side of the panel opposite to the first side of the panel, and a third inner joist positioned between the first outer joist and the second outer joist, wherein the third inner joist is formed of two C-shaped members attached back-to-back;a corrugated form deck disposed above and attached to the plurality of parallel joists;a ceiling substrate disposed below and attached to the plurality of parallel joists;a sound dampener disposed between the corrugated form deck and the plurality of parallel joists;an in-floor radiant heat member that is positioned by at least one holder within joist cavities defined by the plurality of parallel joists, wherein: the at least one holder is thermally conductive and includes a retention feature that resiliently deforms to define an opening to receive the in-floor radiant heat member and reforms to secure the in-floor radiant heat member,the in-floor radiant heat member extends transversely through a first aperture formed transversely through the first outer joist so as to extend the in-floor radiant heat member to a first panel that is adjacent to the panel at the first side,the in-floor radiant heat member extends transversely through a second aperture that is formed transversely through the second outer joist so as to extend the in-floor radiant heat member to a second panel that is adjacent to the panel at the second side, andthe in-floor radiant heat member extends transversely through a third aperture that is formed transversely through the third inner joist so that the in-floor radiant heat member extends continuously between two joist cavities defined at least in part by the third inner joist;thermal insulation disposed below the in-floor radiant heat member and disposed between the corrugated form deck and a ceiling substrate; anda layer of material disposed below and attached to an underside of the corrugated form deck and disposed as a separate layer above the thermal insulation, wherein the layer of material covers flutes of the corrugated form deck to restrict upward migration of the thermal insulation into the flutes,wherein the layer of material comprises a plurality of layer pieces each having similar length and width dimensions as a corresponding joist cavity defined by two adjacent joists so as to conceal all flutes of the corrugated form deck between the two adjacent joists, andwherein the layer of material is thermally conductive, andwherein the in-floor radiant heat member is disposed below and attached to the layer of material by the at least one holder to enable the layer of material to receive and conduct heat from the in-floor radiant heat member and such that the layer of material provides uniform radiant heat transfer from the in-floor radiant heat member to the underside of the corrugated form deck, through the corrugated form deck, and into a floor material disposed above the corrugated form deck.
  • 9. The panel of claim 8, wherein the sound dampener comprises a plurality of strips of material aligned with the plurality of parallel joists.
  • 10. The panel of claim 8, further comprising another sound dampener disposed between the ceiling substrate and the plurality of parallel joists.
  • 11. A method to construct a floor system for a building, the method comprising: attaching a first pre-assembled panel to a frame of the building, wherein the first pre-assembled panel comprises: a panel frame that includes a first plurality of parallel joists and opposing end members, wherein the first plurality of parallel joists form supporting members that span a distance between the opposing end members, and wherein the first plurality of parallel joists include a first joist at a first side of the first pre-assembled panel, a second joist at a second side of the first pre-assembled panel opposite to the first side of the first pre-assembled panel, and a third joist positioned between the first joist and the second joist;a first corrugated form deck disposed above and attached to the first plurality of parallel joists;a first ceiling substrate disposed below and attached to the first plurality of parallel joists;an in-floor radiant heat member disposed between the first corrugated form deck and the first ceiling substrate, wherein: one or more joists of the first plurality of parallel joists define a plurality of apertures that extend transversely through the one or more joists,the plurality of apertures include a first set of apertures aligned along a centerline of the one or more joists and spaced along the length of the one or more joists, and a second set of apertures offset from the centerline of the one or more joists and spaced along the length of the one or more joists between adjacent apertures of the first set of apertures, andthe in-floor radiant heat member extends through one or more apertures, of the second set of apertures, formed in the third joist, into pre-assembled panels that are adjacent to the first pre-assembled panel, wherein the pre-assembled panels include a first adjacent pre-assembled panel at the first side, anda second adjacent pre-assembled panel at the second side;thermal insulation disposed between the first corrugated form deck and the first ceiling substrate; anda layer of material disposed below and attached to an underside of the first corrugated form deck and disposed as a separate layer above the thermal insulation, wherein the layer of material covers flutes of the first corrugated form deck to restrict upward migration of the thermal insulation into the flutes,wherein the layer of material comprises a plurality of layer pieces each having similar length and width dimensions as a corresponding joist cavity defined by two adjacent joists so as to conceal all flutes of the first corrugated form deck between the two adjacent joists, andwherein the layer of material is thermally conductive, andwherein the in-floor radiant heat member is disposed below and attached to the layer of material to enable the layer of material to receive and conduct heat from the in-floor radiant heat member and such that the layer of material provides uniform radiant heat transfer from the in-floor radiant heat member to the underside of the first corrugated form deck and through the first corrugated form deck; andplacing floor material onto the first corrugated form deck, wherein the in-floor radiant heat member is separated from the floor material by the first corrugated form deck.
  • 12. The method of claim 11, further comprising: attaching the first adjacent pre-assembled panel and the second adjacent pre-assembled panel to the frame of the building, wherein at least one of the first adjacent pre-assembled panel and the second adjacent pre-assembled panel comprises: a second plurality of parallel joists, a second corrugated form deck disposed above and attached to the second plurality of parallel joists, and a second ceiling substrate disposed below and attached to the second plurality of parallel joists; andattaching the first pre-assembled panel, the first adjacent pre-assembled panel, and the second adjacent pre-assembled panel together with a strip of material to cover a seam between the panels.
  • 13. The method of claim 11, wherein the first pre-assembled panel complies with a two-hour fire rating.
  • 14. The method of claim 11, wherein the thermal insulation has a depth that is less than the distance between the layer of material and the first ceiling substrate so as to define a cavity between the thermal insulation and the first ceiling substrate.
  • 15. The method of claim 11, wherein the third joist is formed of two C-shaped members attached back-to-back.
  • 16. The panel of claim 1, wherein the third inner joist is formed of two C-shaped members attached back-to-back.
  • 17. The panel of claim 1, wherein: one or more joists of the plurality of parallel joists define a plurality of apertures that extend transversely through the one or more joists,the plurality of apertures include a first set of apertures aligned along a centerline of the one or more joists and spaced along the length of the one or more joists, and a second set of apertures offset from the centerline of the one or more joists and spaced along the length of the one or more joists between adjacent apertures of the first set of apertures, andthe second set of apertures include the first aperture, the second aperture, and the third aperture, through which the in-floor radiant heat member extends transversely.
  • 18. The panel of claim 8, wherein the panel is configured to comply with a two-hour fire rating.
  • 19. The panel of claim 8, wherein: one or more joists of the plurality of parallel joists define a plurality of apertures that extend transversely through the one or more joists,the plurality of apertures include a first set of apertures aligned along a centerline of the one or more joists and spaced along the length of the one or more joists, and a second set of apertures offset from the centerline of the one or more joists and spaced along the length of the one or more joists between adjacent apertures of the first set of apertures, andthe second set of apertures include the first aperture, the second aperture, and the third aperture, through which the in-floor radiant heat member extends transversely.
  • 20. The panel of claim 8, wherein the thermal insulation has a depth that is less than the distance between the layer of material and the ceiling substrate so as to define a cavity between the thermal insulation and the ceiling substrate.
CROSS-REFERENCE TO RELATED APPLICATIONS

The present application is a U.S. National Stage filing under 35 U.S.C. § 371 of International Application No. PCT/US2015/047383, filed on Aug. 28, 2015, which claims priority as a non-provisional application under 35 U.S.C. § 119(e) to U.S. Provisional Application No. 62/044,193, filed on Aug. 30, 2014, entitled “FLOOR AND CEILING PANEL FOR USE IN BUILDINGS.” U.S. Provisional Application No. 62/044,193 is incorporated herein by reference in its entirety.

PCT Information
Filing Document Filing Date Country Kind
PCT/US2015/047383 8/28/2015 WO 00
Publishing Document Publishing Date Country Kind
WO2016/033429 3/3/2016 WO A
US Referenced Citations (467)
Number Name Date Kind
1168556 Robinson et al. Jan 1916 A
1501288 Morley Jul 1924 A
1876528 Walters Sep 1932 A
1883376 Meier et al. Oct 1932 A
2160161 Marsh May 1939 A
2419319 Lankton Apr 1947 A
2495862 Osborn Jan 1950 A
2562050 Lankton Jul 1951 A
2686420 Youtz Aug 1954 A
2722724 Miller Nov 1955 A
2758467 Brown et al. Aug 1956 A
2871544 Youtz Feb 1959 A
2871997 Simpson et al. Feb 1959 A
2877990 Goemann Mar 1959 A
2946413 Weismann Jul 1960 A
3017723 Von Heidenstam Jan 1962 A
3052449 Long et al. Sep 1962 A
3053015 Graham Sep 1962 A
3053509 Haupt et al. Sep 1962 A
3065575 Ray Nov 1962 A
3079652 Wahlfeld Mar 1963 A
3090164 Nels May 1963 A
3184893 Booth May 1965 A
3221454 Togni Dec 1965 A
3235917 Skubic Feb 1966 A
3236014 Edgar Feb 1966 A
3245183 Tessin, II Apr 1966 A
3281172 Kuehl Oct 1966 A
3315424 Smith Apr 1967 A
3324615 Zinn Jun 1967 A
3324617 Knight et al. Jun 1967 A
3355853 Wallace Dec 1967 A
3376919 Agostino Apr 1968 A
3388512 Newman Jun 1968 A
3392497 Cushman Jul 1968 A
3411252 Boyle, Jr. Nov 1968 A
3460302 Cooper Aug 1969 A
3469873 Glaros Sep 1969 A
3490191 Ekblom Jan 1970 A
3533205 Pestel et al. Oct 1970 A
3568380 Stucky et al. Mar 1971 A
3579935 Regan et al. May 1971 A
3590393 Hollander et al. Jul 1971 A
3594965 Saether Jul 1971 A
3601937 Campbell Aug 1971 A
3604174 Nelson, Jr. Sep 1971 A
3608258 Spratt Sep 1971 A
3614803 Matthews Oct 1971 A
3638380 Perri Feb 1972 A
3707165 Stahl Dec 1972 A
3713265 Wysocki et al. Jan 1973 A
3721056 Toan Mar 1973 A
3722169 Boehmig Mar 1973 A
3727753 Starr et al. Apr 1973 A
3742666 Antoniou Jul 1973 A
3750366 Rich, Jr. et al. Aug 1973 A
3751864 Berger et al. Aug 1973 A
3755974 Berman Sep 1973 A
3762115 McCaul, III et al. Oct 1973 A
3766574 Smid, Jr. Oct 1973 A
3821818 Alosi Jul 1974 A
3823520 Ohta et al. Jul 1974 A
3845601 Kostecky Nov 1974 A
3853452 Delmonte Dec 1974 A
3885367 Thunberg May 1975 A
3906686 Dillon Sep 1975 A
3921362 Ortega Nov 1975 A
3926486 Sasnett Dec 1975 A
3971605 Sasnett Jul 1976 A
3974618 Cortina Aug 1976 A
3990202 Becker Nov 1976 A
4018020 Sauer et al. Apr 1977 A
4038796 Eckel Aug 1977 A
4050215 Fisher Sep 1977 A
4059936 Lukens Nov 1977 A
4065905 Lely et al. Jan 1978 A
4078345 Piazzalunga Mar 1978 A
4107886 Ray et al. Aug 1978 A
4112173 Roudebush et al. Sep 1978 A
4114335 Carroll Sep 1978 A
4142255 Togni Mar 1979 A
4161087 Levesque Jul 1979 A
4170858 Walker Oct 1979 A
4171545 Kann Oct 1979 A
4176504 Huggins Dec 1979 A
4178343 Rojo, Jr. Dec 1979 A
4205719 Norell Jun 1980 A
4206162 Vanderklaauw Jun 1980 A
4214413 Gonzalez Espinosa de Los Monteros Jul 1980 A
4221441 Bain Sep 1980 A
4226061 Day, Jr. Oct 1980 A
4227360 Balinski Oct 1980 A
4248020 Zielinski et al. Feb 1981 A
4251974 Vanderklaauw Feb 1981 A
4280307 Griffin Jul 1981 A
4314430 Farrington Feb 1982 A
4325205 Salim et al. Apr 1982 A
4327529 Bigelow, Jr. et al. May 1982 A
4341052 Douglass, Jr. Jul 1982 A
4361994 Carver Dec 1982 A
4389831 Baumann Jun 1983 A
4397127 Mieyal Aug 1983 A
4435927 Umezu et al. Mar 1984 A
4441286 Skvaril Apr 1984 A
4447987 Lesosky May 1984 A
4447996 Maurer, Jr. et al. May 1984 A
4477934 Salminen Oct 1984 A
4507901 Carroll Apr 1985 A
4513545 Hopkins, Jr. Apr 1985 A
4528793 Johnson Jul 1985 A
4531336 Gartner Jul 1985 A
4592175 Werner Jun 1986 A
4646495 Chalik Mar 1987 A
4648228 Kiselewski Mar 1987 A
4655011 Borges Apr 1987 A
4688750 Teague et al. Aug 1987 A
4712352 Low Dec 1987 A
4757663 Kuhr Jul 1988 A
4813193 Altizer Mar 1989 A
4856244 Clapp Aug 1989 A
4862663 Krieger Sep 1989 A
4893435 Shalit Jan 1990 A
4910932 Honigman Mar 1990 A
4918897 Luedtke Apr 1990 A
4919164 Barenburg Apr 1990 A
4974366 Tizzoni Dec 1990 A
4991368 Amstutz Feb 1991 A
5009043 Kurrasch Apr 1991 A
5010690 Geoffrey Apr 1991 A
5036638 Kurtz, Jr. Aug 1991 A
5076310 Barenburg Dec 1991 A
5079890 Kubik et al. Jan 1992 A
5127203 Paquette Jul 1992 A
5127760 Brady Jul 1992 A
5154029 Sturgeon Oct 1992 A
5185971 Johnson, Jr. Feb 1993 A
5205091 Brown Apr 1993 A
5212921 Unruh May 1993 A
5228254 Honeycutt, Jr. Jul 1993 A
5233810 Jennings Aug 1993 A
5254203 Corston Oct 1993 A
5307600 Simon, Jr. et al. May 1994 A
5359816 Iacouides Nov 1994 A
5359820 McKay Nov 1994 A
5361556 Menchetti Nov 1994 A
5402612 diGirolamo et al. Apr 1995 A
5412913 Daniels et al. May 1995 A
5426894 Headrick Jun 1995 A
5452552 Ting Sep 1995 A
5459966 Suarez et al. Oct 1995 A
5471804 Winter, IV Dec 1995 A
5483773 Parisien Jan 1996 A
5493838 Ross Feb 1996 A
5509242 Rechsteiner et al. Apr 1996 A
5519971 Ramirez May 1996 A
5528877 Franklin Jun 1996 A
5531539 Crawford Jul 1996 A
5584142 Spiess Dec 1996 A
5592796 Landers Jan 1997 A
5593115 Lewis Jan 1997 A
5611173 Headrick et al. Mar 1997 A
5628158 Porter May 1997 A
5640824 Johnson et al. Jun 1997 A
5660017 Houghton Aug 1997 A
5678384 Maze Oct 1997 A
5697189 Miller et al. Dec 1997 A
5699643 Kinard Dec 1997 A
5706607 Frey Jan 1998 A
5724773 Hall Mar 1998 A
5735100 Campbell Apr 1998 A
5743330 Bilotta Apr 1998 A
5746034 Luchetti et al. May 1998 A
5755982 Strickland et al. May 1998 A
5850686 Mertes Dec 1998 A
5867964 Perrin Feb 1999 A
5870867 Mitchell Feb 1999 A
5921041 Egri, II Jul 1999 A
5970680 Powers Oct 1999 A
5987841 Campo Nov 1999 A
5992109 Jonker Nov 1999 A
5997792 Gordon Dec 1999 A
6000194 Nakamura Dec 1999 A
6055787 Gerhaher et al. May 2000 A
6073401 Iri et al. Jun 2000 A
6073413 Tongiatama Jun 2000 A
6076319 Hendershot et al. Jun 2000 A
6086350 Del Monte Jul 2000 A
6128877 Goodman et al. Oct 2000 A
6151851 Carter Nov 2000 A
6154774 Furlong et al. Nov 2000 A
6170214 Treister et al. Jan 2001 B1
6199336 Poliquin Mar 2001 B1
6240704 Porter Jun 2001 B1
6243993 Swensson Jun 2001 B1
6244002 Martin Jun 2001 B1
6244008 Miller Jun 2001 B1
6260329 Mills Jul 2001 B1
6289646 Watanabe Sep 2001 B1
6301838 Hall Oct 2001 B1
6308465 Galloway et al. Oct 2001 B1
6308491 Porter Oct 2001 B1
6340508 Frommelt et al. Jan 2002 B1
6371188 Baczuk et al. Apr 2002 B1
6393774 Fisher May 2002 B1
6421968 Degelsegger Jul 2002 B2
6427407 Wilson Aug 2002 B1
6430883 Paz et al. Aug 2002 B1
6446396 Marangoni et al. Sep 2002 B1
6481172 Porter Nov 2002 B1
6484460 VanHaitsma Nov 2002 B2
6571523 Chambers Jun 2003 B2
6625937 Parker et al. Sep 2003 B1
6651393 Don et al. Nov 2003 B2
6688056 Von Hoyningen Huene et al. Feb 2004 B2
6729094 Spencer et al. May 2004 B1
6748709 Sherman et al. Jun 2004 B1
6807790 Strickland et al. Oct 2004 B2
6837013 Foderberg et al. Jan 2005 B2
6922960 Sataka Aug 2005 B2
6935079 Julian et al. Aug 2005 B1
6964410 Hansen Nov 2005 B1
7007343 Weiland et al. Mar 2006 B2
7059017 Rosko et al. Jun 2006 B1
7143555 Miller Dec 2006 B2
RE39462 Brady Jan 2007 E
7389620 McManus Jun 2008 B1
7395999 Walpole Jul 2008 B2
7444793 Raftery et al. Nov 2008 B2
7467469 Wall Dec 2008 B2
7484329 Levy Feb 2009 B2
7484339 Fiehler Feb 2009 B2
7493729 Semmes Feb 2009 B1
7546715 Roen Jun 2009 B2
7574837 Hagen, Jr. et al. Aug 2009 B2
7640702 Termohlen Jan 2010 B2
7658045 Elliott et al. Feb 2010 B2
7676998 Lessard Mar 2010 B2
7694462 O'Callaghan et al. Apr 2010 B2
7721491 Appel May 2010 B2
7748193 Knigge et al. Jul 2010 B2
7908810 Payne, Jr. et al. Mar 2011 B2
7921965 Surace Apr 2011 B1
7941985 Simmons May 2011 B2
7966778 Klein Jun 2011 B2
8051623 Loyd Nov 2011 B2
D652956 Tanaka et al. Jan 2012 S
8096084 Studebaker et al. Jan 2012 B2
8109058 Miller Feb 2012 B2
8127507 Bilge Mar 2012 B1
8166716 Macdonald et al. May 2012 B2
8234827 Schroeder, Sr. et al. Aug 2012 B1
8234833 Miller Aug 2012 B2
8251175 Englert et al. Aug 2012 B1
8276328 Pépin Oct 2012 B2
8322086 Weber Dec 2012 B2
8359808 Stephens, Jr. Jan 2013 B2
8424251 Tinianov Apr 2013 B2
8490349 Lutzner et al. Jul 2013 B2
8505259 Degtyarev Aug 2013 B1
8539732 Leahy Sep 2013 B2
8555581 Amend Oct 2013 B2
8555589 Semmens et al. Oct 2013 B2
8555598 Wagner et al. Oct 2013 B2
8621806 Studebaker et al. Jan 2014 B2
8621818 Glenn Jan 2014 B1
8631616 Carrion et al. Jan 2014 B2
8733046 Naidoo May 2014 B2
8769891 Kelly Jul 2014 B2
8826613 Chrien Sep 2014 B1
8833025 Krause Sep 2014 B2
8950132 Collins et al. Feb 2015 B2
8966845 Ciuperca Mar 2015 B1
8978324 Collins et al. Mar 2015 B2
8991111 Harkins Mar 2015 B1
8997424 Miller Apr 2015 B1
9027307 Collins et al. May 2015 B2
9382709 Collins et al. Jul 2016 B2
9637911 Doupe et al. May 2017 B2
9683361 Timberlake et al. Jun 2017 B2
10260250 Collins et al. Apr 2019 B2
10273686 Lake Apr 2019 B2
10323428 Collins et al. Jun 2019 B2
10370851 Bodwell et al. Aug 2019 B2
10501929 Henry Dec 2019 B2
10731330 Petricca Aug 2020 B2
20020059763 Wong May 2002 A1
20020092703 Gelin Jul 2002 A1
20020134036 Daudet et al. Sep 2002 A1
20020184836 Takeuchi et al. Dec 2002 A1
20030056445 Cox Mar 2003 A1
20030084629 Strickland et al. May 2003 A1
20030101680 Lee Jun 2003 A1
20030140571 Muha et al. Jul 2003 A1
20030167712 Robertson Sep 2003 A1
20030167719 Alderman Sep 2003 A1
20030200706 Kahan et al. Oct 2003 A1
20030221381 Ting Dec 2003 A1
20040065036 Capozzo Apr 2004 A1
20040103596 Don et al. Jun 2004 A1
20040221518 Westra Nov 2004 A1
20050081484 Yland et al. Apr 2005 A1
20050108957 Quesada May 2005 A1
20050188626 Johnson Sep 2005 A1
20050188632 Rosen Sep 2005 A1
20050198919 Hester Sep 2005 A1
20050204697 Rue Sep 2005 A1
20050204699 Rue Sep 2005 A1
20050210764 Foucher et al. Sep 2005 A1
20050210798 Burg et al. Sep 2005 A1
20050235571 Ewing et al. Oct 2005 A1
20050235581 Cohen et al. Oct 2005 A1
20050262771 Gorman Dec 2005 A1
20060021289 Elmer Feb 2006 A1
20060070321 Au Apr 2006 A1
20060090326 Corbett May 2006 A1
20060096202 DelZotto May 2006 A1
20060117689 Onken et al. Jun 2006 A1
20060137293 Klein Jun 2006 A1
20060143856 Rosko et al. Jul 2006 A1
20060150521 Henry et al. Jul 2006 A1
20060179764 Ito Aug 2006 A1
20060248825 Garringer Nov 2006 A1
20060277841 Majusiak Dec 2006 A1
20070000198 Payne, Jr. et al. Jan 2007 A1
20070074464 Eldridge et al. Apr 2007 A1
20070107349 Erker May 2007 A1
20070151196 Boatwright Jul 2007 A1
20070163197 Payne et al. Jul 2007 A1
20070209306 Andrews et al. Sep 2007 A1
20070234657 Speyer et al. Oct 2007 A1
20070251168 Turner Nov 2007 A1
20070283640 Shivak et al. Dec 2007 A1
20070294954 Barrett et al. Dec 2007 A1
20080000177 Siu Jan 2008 A1
20080057290 Guevara et al. Mar 2008 A1
20080092472 Doerr et al. Apr 2008 A1
20080098676 Hutchens May 2008 A1
20080099283 Reigwein May 2008 A1
20080104901 Olvera May 2008 A1
20080168741 Gilgan et al. Jul 2008 A1
20080178542 Williams Jul 2008 A1
20080178642 Sanders Jul 2008 A1
20080190053 Surowiecki Aug 2008 A1
20080202048 Miller et al. Aug 2008 A1
20080222981 De Gobbi Sep 2008 A1
20080229669 Abdollahzadeh et al. Sep 2008 A1
20080245007 McDonald Sep 2008 A1
20080279620 Berg Nov 2008 A1
20080282626 Powers, Jr. Nov 2008 A1
20080295443 Simmons Dec 2008 A1
20080295450 Yogev Dec 2008 A1
20090031652 Ortega Gatalan Feb 2009 A1
20090038764 Pilz Feb 2009 A1
20090064611 Hall et al. Mar 2009 A1
20090077916 Scuderi et al. Mar 2009 A1
20090090074 Klein Apr 2009 A1
20090100760 Ewing Apr 2009 A1
20090100769 Barrett et al. Apr 2009 A1
20090100796 Denn et al. Apr 2009 A1
20090107065 LeBlang Apr 2009 A1
20090113820 Deans May 2009 A1
20090134287 Klosowski May 2009 A1
20090165399 Campos Gines Jul 2009 A1
20090188192 Studebaker et al. Jul 2009 A1
20090188193 Studebaker et al. Jul 2009 A1
20090205277 Gibson Aug 2009 A1
20090249714 Combs et al. Oct 2009 A1
20090277122 Howery et al. Nov 2009 A1
20090282766 Roen Nov 2009 A1
20090283359 Ravnaas Nov 2009 A1
20090293395 Porter Dec 2009 A1
20090313931 Porter Dec 2009 A1
20100050556 Burns Mar 2010 A1
20100058686 Henriquez Mar 2010 A1
20100064590 Jones et al. Mar 2010 A1
20100064601 Napier Mar 2010 A1
20100146874 Brown Jun 2010 A1
20100146893 Dickinson Jun 2010 A1
20100186313 Stanford et al. Jul 2010 A1
20100212255 Lesoine Aug 2010 A1
20100218443 Studebaker et al. Sep 2010 A1
20100229472 Malpas Sep 2010 A1
20100235206 Miller et al. Sep 2010 A1
20100263308 Olvera Oct 2010 A1
20100275544 Studebaker et al. Nov 2010 A1
20100313518 Berg Dec 2010 A1
20100325989 Leahy Dec 2010 A1
20110041411 Aragon Feb 2011 A1
20110056147 Beaudet Mar 2011 A1
20110113709 Pilz et al. May 2011 A1
20110113715 Tonyan et al. May 2011 A1
20110126484 Carrion et al. Jun 2011 A1
20110146180 Klein et al. Jun 2011 A1
20110154766 Kralic et al. Jun 2011 A1
20110162167 Blais Jul 2011 A1
20110219720 Strickland et al. Sep 2011 A1
20110247281 Pilz et al. Oct 2011 A1
20110268916 Pardue, Jr. Nov 2011 A1
20110296769 Collins et al. Dec 2011 A1
20110296778 Collins et al. Dec 2011 A1
20110296789 Collins et al. Dec 2011 A1
20110300386 Pardue, Jr. Dec 2011 A1
20120073227 Urusoglu Mar 2012 A1
20120096800 Berg Apr 2012 A1
20120137610 Knight et al. Jun 2012 A1
20120151869 Miller Jun 2012 A1
20120167505 Krause Jul 2012 A1
20120186174 LeBlang Jul 2012 A1
20120210658 Logan Aug 2012 A1
20120291378 Schroeder et al. Nov 2012 A1
20120297712 Lutzner et al. Nov 2012 A1
20120317923 Herdt et al. Dec 2012 A1
20130025222 Mueller Jan 2013 A1
20130025966 Nam et al. Jan 2013 A1
20130036688 Gosain Feb 2013 A1
20130067832 Collins et al. Mar 2013 A1
20130111840 Bordener May 2013 A1
20130133277 Lewis May 2013 A1
20130232887 Donnini Sep 2013 A1
20140013678 Deverini Jan 2014 A1
20140013684 Kelly et al. Jan 2014 A1
20140013695 Wolynski et al. Jan 2014 A1
20140047780 Quinn et al. Feb 2014 A1
20140059960 Cole Mar 2014 A1
20140069035 Collins Mar 2014 A1
20140069040 Gibson Mar 2014 A1
20140069050 Bolin Mar 2014 A1
20140083046 Yang Mar 2014 A1
20140090323 Glancy Apr 2014 A1
20140130441 Sugihara et al. May 2014 A1
20140317841 Dejesus et al. Oct 2014 A1
20140338280 Tanaka et al. Nov 2014 A1
20150007415 Kalinowski Jan 2015 A1
20150093184 Henry Apr 2015 A1
20150096251 McCandless et al. Apr 2015 A1
20150121797 Brown et al. May 2015 A1
20150128518 Knight et al. May 2015 A1
20150136361 Gregory May 2015 A1
20150152634 Unger Jun 2015 A1
20150233108 Eggleston, II et al. Aug 2015 A1
20150252558 Chin Sep 2015 A1
20150284950 Stramandinoli Oct 2015 A1
20150297926 Dzegan Oct 2015 A1
20150308096 Merhi et al. Oct 2015 A1
20160002912 Doupe et al. Jan 2016 A1
20160053475 Locker et al. Feb 2016 A1
20160122996 Timberlake et al. May 2016 A1
20160145933 Condon et al. May 2016 A1
20160258160 Radhouane et al. Sep 2016 A1
20160290030 Collins et al. Oct 2016 A1
20160319534 Bernardo Nov 2016 A1
20170037613 Collins et al. Feb 2017 A1
20170284095 Collins et al. Oct 2017 A1
20170299198 Collins et al. Oct 2017 A1
20170306624 Graham et al. Oct 2017 A1
20170306625 Collins et al. Oct 2017 A1
20170342735 Collins et al. Nov 2017 A1
20180038103 Neumayr Feb 2018 A1
20180148926 Lake May 2018 A1
20180209136 Aylward et al. Jul 2018 A1
20180223521 Uno et al. Aug 2018 A1
20180328056 Collins et al. Nov 2018 A1
20190032327 Musson Mar 2019 A1
20190119908 Petricca Apr 2019 A1
20190136508 Chaillan May 2019 A1
20190249409 Boyd et al. Aug 2019 A1
20200224407 Ng Jul 2020 A1
Foreign Referenced Citations (128)
Number Date Country
2005200682 May 2005 AU
2012211472 Feb 2014 AU
1313921 Sep 2001 CN
1234087 Nov 2002 CN
1742144 Mar 2006 CN
201037279 Mar 2008 CN
101426986 May 2009 CN
101821462 Sep 2010 CN
101831963 Sep 2010 CN
102105642 Jun 2011 CN
201952944 Aug 2011 CN
202117202 Jan 2012 CN
102459775 May 2012 CN
102587693 Jul 2012 CN
202299241 Jul 2012 CN
202391078 Aug 2012 CN
102733511 Oct 2012 CN
205024886 Feb 2016 CN
206070835 Apr 2017 CN
108487464 Sep 2018 CN
4205812 Sep 1993 DE
9419429 Feb 1995 DE
20002775 Aug 2000 DE
19918153 Nov 2000 DE
20315506 Nov 2004 DE
202008007139 Oct 2009 DE
0612896 Aug 1994 EP
1045078 Oct 2000 EP
1375804 Jan 2004 EP
1568828 Aug 2005 EP
2128353 Dec 2009 EP
2213808 Aug 2010 EP
2238872 Oct 2010 EP
1739246 Jan 2011 EP
2281964 Feb 2011 EP
3133220 Feb 2017 EP
1317681 May 1963 FR
2988749 Oct 2013 FR
2765906 Jan 2019 FR
898905 Jun 1962 GB
2481126 Dec 2011 GB
S46-006980 Dec 1971 JP
S49-104111 Sep 1974 JP
S5215934 Apr 1977 JP
S53000014 Jan 1978 JP
53-156364 Dec 1978 JP
S5484112 Jun 1979 JP
S54-145910 Nov 1979 JP
56-131749 Oct 1981 JP
S57158451 Sep 1982 JP
S59-065126 May 1984 JP
S60-019606 Feb 1985 JP
61-144151 Sep 1986 JP
S61-201407 Dec 1986 JP
S6358035 Mar 1988 JP
H01-153013 Oct 1989 JP
H0310985 Jan 1991 JP
H049373 Mar 1992 JP
6-12178 Feb 1994 JP
06-212721 Aug 1994 JP
H06-220932 Aug 1994 JP
H07-173893 Jul 1995 JP
H0752887 Dec 1995 JP
8-189078 Jul 1996 JP
H08-189078 Jul 1996 JP
2576409 Jan 1997 JP
H09-228510 Sep 1997 JP
10234493 Sep 1998 JP
H10245918 Sep 1998 JP
11-117429 Apr 1999 JP
H11-100926 Apr 1999 JP
2000-34801 Feb 2000 JP
2000144997 May 2000 JP
2000-160861 Jun 2000 JP
3137760 Feb 2001 JP
3257111 Feb 2002 JP
2002-309691 Oct 2002 JP
2002536615 Oct 2002 JP
2002364104 Dec 2002 JP
2003-505624 Feb 2003 JP
2003-278300 Oct 2003 JP
2003-293493 Oct 2003 JP
2003278300 Oct 2003 JP
2004108031 Apr 2004 JP
2004-344194 Dec 2004 JP
3664280 Jun 2005 JP
2006-161406 Jun 2006 JP
3940621 Jul 2007 JP
2008-063753 Mar 2008 JP
2008073434 Apr 2008 JP
2008110104 May 2008 JP
2009-257713 Nov 2009 JP
2010-185264 Aug 2010 JP
2010185264 Aug 2010 JP
2011032802 Feb 2011 JP
3187449 Nov 2013 JP
2015-117502 Jun 2015 JP
1019990052255 Jul 1999 KR
1019990053902 Jul 1999 KR
100236196 Dec 1999 KR
102000200413000 Oct 2000 KR
20060066931 Jun 2006 KR
20080003326 Aug 2008 KR
101481790 Jan 2015 KR
20180092677 Aug 2018 KR
9107557 May 1991 WO
9722770 Jun 1997 WO
235029 May 2000 WO
200046457 Aug 2000 WO
0058583 Oct 2000 WO
2002035029 May 2002 WO
2006091864 Aug 2006 WO
2007059003 May 2007 WO
2007080561 Jul 2007 WO
2008113207 Sep 2008 WO
2010030060 Mar 2010 WO
2010037938 Apr 2010 WO
2011015681 Feb 2011 WO
2011116622 Sep 2011 WO
2015050502 Apr 2015 WO
2016032537 Mar 2016 WO
2016032537 Mar 2016 WO
2016032538 Mar 2016 WO
2016032539 Mar 2016 WO
2016032540 Mar 2016 WO
2016033429 Mar 2016 WO
2016033429 Mar 2016 WO
2016033525 Mar 2016 WO
Non-Patent Literature Citations (56)
Entry
US 8,701,371 B2, 04/2014, Collins et al. (withdrawn)
Extended European Search Report for European Patent Application No. 14900469 dated Mar. 20, 2018, pp. 8.
Non-Final Office Action in U.S. Appl. No. 151507,654 dated Apr. 11, 2018, 67 pages.
Extended European Search Report for European Patent Application No. 15836516.3 dated Jun. 22, 2018, pp. 5.
“Beam to column connection,” TATA Steel, accessed at https://web.archive.org/web/20140706075634/http://www.tatasteelconstruction.com/en/reference/teaching_resources/architectural_studio_reference/elements/connections/beam_to_column_connections, accessed on Mar. 1, 2017, pp. 3.
“Emerging Trends in real estate,” Urban Land Institute, accessed at https://web.archive.org/web/20140813084823/http://pwc.com.au/industry/real-estate/assets/Real-Estate-2012-Europe-Jan12.pdf, pp. 60 (2012).
“FC EW 1—12mm Fibre Cement Sheet+ 9mm MgO Board Wall Assembly”, FRAMECAD, pp. 2 (2013).
“How to Soundproof a Ceiling—Soundproofing Ceilings,” accessed at https://web.archive.org/web/20140829130523/http://www.soundproofingcompany.com/soundproofing-solutions/soundproof-a-ceiling, accessed on Mar. 1, 2017, pp. 7.
“Structural Insulated Panel,” Wikipedia, accessed at https://web.archive.org/web/20131207165431/http://en.wikipedia.org/wiki/Structural_insulated_panel, last modified on Nov. 20, 2013, pp. 3.
“Structural Insulated Panels,” Whole Building Design Guide, accessed at https://web.archive.org/web/20140828133136/http://www.wbdg.org/resources/sips.php, accessed on Mar. 1, 2017, pp. 8.
Azari, R., et al., “Modular Prefabricated Residential Construction—Constraints and Opportunities”, PNCCRE Technical Report #TR002, pp. 90 (Aug. 2013).
Borzouie, J., and Mahdizadeh, A., “Seismic Assessment and Rehabilitation of Diaphragms—Technical report,” pp. 1-86 (2011).
European Search Report for Patent Application No. 14891125.8, dated Jul. 8, 2016, pp. 4.
Giles, H. and Lara, F., “Innovations in the Development of Industrially Designed and Manufactured Modular Concepts for Low-Energy, Multi-story, High-Density, Prefabricated Affordable Housing,” accessed at http://sitemaker.umich.edu/path-nsf giles/files/giles_and_lara_final.pdf, accessed on Jun. 16, 2015, pp. 1-15.
Gonchar, J., “Paradigm Shift,” accessed at https://web.archive.org/web/201303261544/14/http://continuingeducation.construction.com/article.php?L=5&C=943&P=2, Posted on Oct. 2012, pp. 2.
Insulspan Installation Guide, Installation Guide, pp. 58 (Apr. 25, 2008).
International Search Report and Written opinion for International Application No. PCT/US/2014/053613 dated Dec. 18, 2014, pp. 13.
International Search Report and Written opinion for International Application No. PCT/US/2014/053614 dated Dec. 18, 2014, pp. 11.
International Search Report and Written opinion for International Application No. PCT/US/2014/053615 date Dec. 17, 2014, pp. 11.
International Search Report and Written opinion for International Application No. PCT/US/2014/053616 dated Dec. 17, 2014, pp. 9.
International Search Report and Written opinion for International Application No. PCT/US15/47536 dated Dec. 4, 2015, pp. 17.
International Search Report and Written Opinion for International Application No. PCT/US2011/001039 dated Oct. 5, 2011, pp. 14.
International Search Report and Written opinion for International Application No. PCT/US2015/047383 dated Jan. 12, 2016, pp. 14.
Kerin, J. and Nadji , H., “National Apartment Report—2013”,pp. 1-62 (2013).
Mcilwain, J., “Housing in America—The Next Decade,” Urban Land Institute, pp. 36 (2010).
Mcilwain, J., “The Rental Boost From Green Design,” Urban Land, accessed at http://urbanland.uli.org/sustainability/the-rental-boost-from-green-design/, Jan. 4, 2012, pp. 7.
Riusillo, M.A., “Lift Slab Construction: Its History, Methodology, Economics, and Applications,” International Concrete Abstracts Portal, Special Publication, vol. 107, pp. 59-68 (Jun. 1, 1988).
“Shashaty, A., “Housing Demand,” Sustainable Communities, pp. 3 (Mar./Apr. 2011)”.
Sichelman, L., “NAHB/Orlando: Severe Apartment Shortage Looms,” accessed at http://urbanland.uli.org/capital-markets/nahb-orlando-severe-apartment-shortage-looms/, Urban Land, Jan. 13, 2011, pp. 2.
Stiemer, S F., “Bolted Beam-Column Connections (Design and Cost Estimation),” Steel Design, pp. 1-16 (Nov. 11, 2007).
EPO, Communication Pursuant to Article 94(3) EPC mailed for European patent application No. 14900469.9, dated Jun. 18, 2019, 5 pages.
EPO, Communication Pursuant to Article 94(3) EPC mailed for EP application No. 15836516.3, dated Apr. 25, 2019, 4 pages.
WIPO, International Search Report for International Patent Application No. PCT/US2017/021174, dated Jun. 26, 2017, 11 pages.
WIPO, Written Opinion for International Patent Application No. PCT/US2017/021174, dated Jun. 26, 2017, 6 pages.
WIPO, International Search Report of International Patent Application No. PCT/US2017/021177, dated Jun. 5, 2017, 8 pages.
WIPO, Written Opinion of International Patent Application No. PCT/US2017/021177, dated Jun. 5, 2017, 8 pages.
WIPO, International Search Report for International Patent Application No. PCT/US2017/021168, dated May 19, 2017, 5 pages.
WIPO, Written Opinion for International Patent Application No. PCT/US2017/021168, dated May 19, 2017, 8 pages.
WIPO, International Search Report for International Patent Application No. PCT/US2017/021179, dated May 25, 2017, 7 pages.
WIPO, Written Opinion for International Patent Application No. PCT/US2017/021179, dated May 25, 2017, 7 pages.
WIPO, International Search Report and Written Opinion mailed for International application No. PCT/US2014/053614 dated Dec. 18, 2014, 11 pages.
WIPO, International Search Report and Written Opinion mailed for International application No. PCT/US2014/053615 dated Dec. 17, 2014, 11 Pages.
WIPO, International Search Report and Written Opinion mailed for International application No. PCT/US2014/053613 dated Dec. 18, 2014, 13 pages.
WIPO, International Search Report and Written Opinion mailed for International application No. PCT/US2015/047536 dated Dec. 4, 2015, 17 Pages.
WIPO, International Search Report and Written Opinion mailed for International application No. PCT/US2014/053616 dated Dec. 17, 2014, 9 Pages.
EPO, Extended European Search Report for European Patent Application No. 17763910.1, dated Jan. 28, 2020, 13 pages.
EPO, Communication Pursuant to Article 94(3) EPC for European Patent Application No. 15836516.3, dated Aug. 2, 2019, 4 pages.
EPO, Extended European Search Report for European Patent Application No. 17763914.3, dated Nov. 19, 2019, 10 pages.
EPO, Extended European Search Report for European Patent Application No. 17763913.5, dated Oct. 16, 2019, 8 pages.
EPO, Partial European Search Report for European Patent Application No. 17763910.1, dated Oct. 17, 2019, 16 pages.
EPO, Extended European Search Report for European Patent Application No. 17763907.7, dated Sep. 13, 2019, 13 pages.
IPO of Singapore, Written Opinion for Singapore Patent Application No. 11201807218S, dated Nov. 8, 2019, 6 pages.
IPOS, Written Opinion for Singapore Patent Application No. 11201807196R, dated Nov. 18, 2019, 12 pages.
WIPO, International Search Report and Written Opinion mailed for International application No. PCT/US2019/031370, dated Aug. 7, 2019, 11 pages.
WIPO, “International Search Report and Written Opinion for PCT Application No. PCT/US2019/038557”, dated Sep. 4, 2019, 67 pages.
EPO, Extended European Search Report for European Patent Application No. 20201601.0, dated Mar. 16, 2021, 10 pages.
Related Publications (1)
Number Date Country
20170299198 A1 Oct 2017 US
Provisional Applications (1)
Number Date Country
62044193 Aug 2014 US