WO2019212782A1 - Insulated structural members for insulated panels and a method for making same - Google Patents

Insulated structural members for insulated panels and a method for making same Download PDF

Info

Publication number
WO2019212782A1
WO2019212782A1 PCT/US2019/028448 US2019028448W WO2019212782A1 WO 2019212782 A1 WO2019212782 A1 WO 2019212782A1 US 2019028448 W US2019028448 W US 2019028448W WO 2019212782 A1 WO2019212782 A1 WO 2019212782A1
Authority
WO
WIPO (PCT)
Prior art keywords
core member
structural member
hybrid structural
structural
insulating material
Prior art date
Application number
PCT/US2019/028448
Other languages
French (fr)
Inventor
James M. COSTANZA
Original Assignee
Kps Global Llc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US15/967,675 external-priority patent/US20190145101A1/en
Application filed by Kps Global Llc filed Critical Kps Global Llc
Publication of WO2019212782A1 publication Critical patent/WO2019212782A1/en

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B27/00Layered products comprising a layer of synthetic resin
    • B32B27/06Layered products comprising a layer of synthetic resin as the main or only constituent of a layer, which is next to another layer of the same or of a different material
    • B32B27/065Layered products comprising a layer of synthetic resin as the main or only constituent of a layer, which is next to another layer of the same or of a different material of foam
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B13/00Layered products comprising a a layer of water-setting substance, e.g. concrete, plaster, asbestos cement, or like builders' material
    • B32B13/04Layered products comprising a a layer of water-setting substance, e.g. concrete, plaster, asbestos cement, or like builders' material comprising such water setting substance as the main or only constituent of a layer, which is next to another layer of the same or of a different material
    • B32B13/045Layered products comprising a a layer of water-setting substance, e.g. concrete, plaster, asbestos cement, or like builders' material comprising such water setting substance as the main or only constituent of a layer, which is next to another layer of the same or of a different material of foam
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B15/00Layered products comprising a layer of metal
    • B32B15/04Layered products comprising a layer of metal comprising metal as the main or only constituent of a layer, which is next to another layer of the same or of a different material
    • B32B15/046Layered products comprising a layer of metal comprising metal as the main or only constituent of a layer, which is next to another layer of the same or of a different material of foam
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B21/00Layered products comprising a layer of wood, e.g. wood board, veneer, wood particle board
    • B32B21/02Layered products comprising a layer of wood, e.g. wood board, veneer, wood particle board the layer being formed of fibres, chips, or particles, e.g. MDF, HDF, OSB, chipboard, particle board, hardboard
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B21/00Layered products comprising a layer of wood, e.g. wood board, veneer, wood particle board
    • B32B21/04Layered products comprising a layer of wood, e.g. wood board, veneer, wood particle board comprising wood as the main or only constituent of a layer, which is next to another layer of the same or of a different material
    • B32B21/047Layered products comprising a layer of wood, e.g. wood board, veneer, wood particle board comprising wood as the main or only constituent of a layer, which is next to another layer of the same or of a different material of foam
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B21/00Layered products comprising a layer of wood, e.g. wood board, veneer, wood particle board
    • B32B21/14Layered products comprising a layer of wood, e.g. wood board, veneer, wood particle board comprising wood board or veneer
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B27/00Layered products comprising a layer of synthetic resin
    • B32B27/40Layered products comprising a layer of synthetic resin comprising polyurethanes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B3/00Layered products comprising a layer with external or internal discontinuities or unevennesses, or a layer of non-planar shape; Layered products comprising a layer having particular features of form
    • B32B3/26Layered products comprising a layer with external or internal discontinuities or unevennesses, or a layer of non-planar shape; Layered products comprising a layer having particular features of form characterised by a particular shape of the outline of the cross-section of a continuous layer; characterised by a layer with cavities or internal voids ; characterised by an apertured layer
    • B32B3/30Layered products comprising a layer with external or internal discontinuities or unevennesses, or a layer of non-planar shape; Layered products comprising a layer having particular features of form characterised by a particular shape of the outline of the cross-section of a continuous layer; characterised by a layer with cavities or internal voids ; characterised by an apertured layer characterised by a layer formed with recesses or projections, e.g. hollows, grooves, protuberances, ribs
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B5/00Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts
    • B32B5/02Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by structural features of a fibrous or filamentary layer
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B5/00Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts
    • B32B5/18Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by features of a layer of foamed material
    • B32B5/20Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by features of a layer of foamed material foamed in situ
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B5/00Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts
    • B32B5/22Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed
    • B32B5/24Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer
    • B32B5/245Layered products characterised by the non- homogeneity or physical structure, i.e. comprising a fibrous, filamentary, particulate or foam layer; Layered products characterised by having a layer differing constitutionally or physically in different parts characterised by the presence of two or more layers which are next to each other and are fibrous, filamentary, formed of particles or foamed one layer being a fibrous or filamentary layer another layer next to it being a foam layer
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B9/00Layered products comprising a layer of a particular substance not covered by groups B32B11/00 - B32B29/00
    • B32B9/005Layered products comprising a layer of a particular substance not covered by groups B32B11/00 - B32B29/00 comprising one layer of ceramic material, e.g. porcelain, ceramic tile
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B9/00Layered products comprising a layer of a particular substance not covered by groups B32B11/00 - B32B29/00
    • B32B9/04Layered products comprising a layer of a particular substance not covered by groups B32B11/00 - B32B29/00 comprising such particular substance as the main or only constituent of a layer, which is next to another layer of the same or of a different material
    • B32B9/046Layered products comprising a layer of a particular substance not covered by groups B32B11/00 - B32B29/00 comprising such particular substance as the main or only constituent of a layer, which is next to another layer of the same or of a different material of foam
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C2/00Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels
    • E04C2/02Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials
    • E04C2/26Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials composed of materials covered by two or more of groups E04C2/04, E04C2/08, E04C2/10 or of materials covered by one of these groups with a material not specified in one of the groups
    • E04C2/284Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials composed of materials covered by two or more of groups E04C2/04, E04C2/08, E04C2/10 or of materials covered by one of these groups with a material not specified in one of the groups at least one of the materials being insulating
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C2/00Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels
    • E04C2/02Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials
    • E04C2/26Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials composed of materials covered by two or more of groups E04C2/04, E04C2/08, E04C2/10 or of materials covered by one of these groups with a material not specified in one of the groups
    • E04C2/284Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials composed of materials covered by two or more of groups E04C2/04, E04C2/08, E04C2/10 or of materials covered by one of these groups with a material not specified in one of the groups at least one of the materials being insulating
    • E04C2/296Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials composed of materials covered by two or more of groups E04C2/04, E04C2/08, E04C2/10 or of materials covered by one of these groups with a material not specified in one of the groups at least one of the materials being insulating composed of insulating material and non-metallic or unspecified sheet-material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2262/00Composition or structural features of fibres which form a fibrous or filamentary layer or are present as additives
    • B32B2262/10Inorganic fibres
    • B32B2262/101Glass fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2266/00Composition of foam
    • B32B2266/02Organic
    • B32B2266/0214Materials belonging to B32B27/00
    • B32B2266/0278Polyurethane
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2307/00Properties of the layers or laminate
    • B32B2307/30Properties of the layers or laminate having particular thermal properties
    • B32B2307/304Insulating
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2307/00Properties of the layers or laminate
    • B32B2307/70Other properties
    • B32B2307/72Density
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2419/00Buildings or parts thereof
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B1/00Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
    • E04B1/38Connections for building structures in general
    • E04B1/61Connections for building structures in general of slab-shaped building elements with each other
    • E04B1/6108Connections for building structures in general of slab-shaped building elements with each other the frontal surfaces of the slabs connected together
    • E04B1/612Connections for building structures in general of slab-shaped building elements with each other the frontal surfaces of the slabs connected together by means between frontal surfaces
    • E04B1/6183Connections for building structures in general of slab-shaped building elements with each other the frontal surfaces of the slabs connected together by means between frontal surfaces with rotatable locking means co-operating with a recess
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C2/00Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels
    • E04C2/30Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by the shape or structure
    • E04C2/38Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by the shape or structure with attached ribs, flanges, or the like, e.g. framed panels
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C2/00Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels
    • E04C2/44Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by the purpose
    • E04C2/52Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by the purpose with special adaptations for auxiliary purposes, e.g. serving for locating conduits
    • E04C2/526Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by the purpose with special adaptations for auxiliary purposes, e.g. serving for locating conduits with adaptations not otherwise provided for, for connecting, transport; for making impervious or hermetic, e.g. sealings
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C2/00Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels
    • E04C2002/001Mechanical features of panels
    • E04C2002/004Panels with profiled edges, e.g. stepped, serrated

Definitions

  • the present invention relates generally to structural insulated panels for use in custom construction, including custom-designed dwellings, walk-in refrigerator and freezer spaces, and pre-fabricated structures. More specifically, the present invention relates to hybrid structural members for the manufacture such structures, and may also be used for conventional construction.
  • Pre-fabricated buildings, and other insulated structures are typically manufactured and assembled using pre-fabricated insulated structural panels joined together to define the insulated space.
  • the structural panels provide insulation to maintain the temperature inside the structure using as little energy as possible.
  • wood has relatively poor insulative properties compared to the closed-cell insulation between the veneers of the insulated panel, and is subject to moisture absorption, warping, and decay.
  • the air inside an insulated area is often at a lower pressure than the ambient air outside of the area, the resultant pressure gradient causes warm air to attempt ingress through the joints between the panels.
  • This vulnerability can lead to some amount of warm (and moist) air moving into the joints between panels.
  • condensate may form in the joint, which in turn may freeze if the pressure gradient is such that the warm air moves quickly into the joint past the point at which freezing temperatures are found. In the case of walk-in freezer spaces, this condensation can freeze in the joint between structural insulated panels.
  • Wooden structural members particularly are susceptible to decay and, as organic materials, are inherently non-uniform in consistency and shape, which can result in variances in insulative properties, warping, and, over time, the development of weakness, shrinkage, expansion, and/or lack of overall structural integrity.
  • HDR high-density - polyurethane
  • HDR systems have much greater insulation properties than wood, and may be manufactured to 20 more precise tolerances.
  • pure HDR systems are extremely costly, and are not as structurally sound as wood, metal or rigid polycarbonate plastics. Accordingly, it would be desirable to have a structural member for structural panel-based walk-in refrigerated spaces that has improved insulation, lower cost, improved structural performance, and more precise manufacturing tolerances. Additional benefits include reducing the amount of HDR material needed for higher insulation properties of structural panels, elimination of synthetic backers that are placed between structural members and the panel insulation, and the need for additional metal backplates necessary to support the joint locking mechanisms between panels for purely HDR structural members. Hybrid HDR structural members may be therefore utilize HDR material with densities reduced by 90% or more.
  • One embodiment of the invention includes a combination rigid/HDR structural member.
  • a rigid structural member such as dimensional, metal, fiberglass, laminated beam, plywood, carbon, Kevlar, magnesium oxide, or other rigid material,
  • the core member may be placed in an injection mold, or other suitable molding form. Once placed in the mold, the mold may be filled with high density rail ("HDR") material, such as an expanding foam like polyurethane, polyisocyanurate, or other expanding insulation, such that at least two sides of the structural member are completely covered by the HDR material. In another embodiment, at least three sides of the core member are surrounded by HDR material. In yet another embodiment, the core member is completely surrounded by HDR material.
  • HDR high density rail
  • a method for manufacturing a hybrid rigid/HDR structural member is disclosed.
  • a rigid core member such as dimensional lumber, plywood, magnesium oxide, gypsum, or other metal or synthetic rigid member or the like, is placed in an injection mold.
  • the core member preferably has at least one dimension smaller than the interior dimension of the injection mold.
  • the rigid core member is secured in place.
  • the injection mold is filled with HDR material to form a hybrid structural member with a rigid core member.
  • the core member may be suspended within the injection mold by posts, clips, or fluid, as is known in the art.
  • Fig. 1 A shows traditional insulated structural panels in accordance with the prior art
  • Fig. 1 B shows traditional insulated structural panels joined together to form an insulated structural wall
  • Fig. 1 C shows a latch and latch bar mechanism used to joint together insulated structural panels
  • Fig. 2 shows an example of a structural member in accordance an embodiment of the present invention that is completely encased in HDR material
  • Figs. 3A— 3E show different examples of a structural member in accordance with embodiments of the present invention that are encased in HDR material;
  • Fig. 4 shows a portion of an injection mold for manufacturing a hybrid structural member in accordance with an embodiment of the present invention
  • Fig. 5 shows a molding form for manufacturing a hybrid structural member in accordance with an embodiment of the present invention that includes a hybrid structural member, and a hinged lid
  • Fig. 6 shows a molding form for manufacturing hybrid structural member in accordance with an embodiment of the present invention that includes a hybrid structural member, a vacuum seal attachment, and vapor seal trenches
  • Fig. 7 shows a molding form for manufacturing a hybrid structural member in accordance with an embodiment of the present invention that includes a track or rail system for holding a structural member in place in the mold.
  • FIGs 1 A and 1 B generally show a prior art insulated structural panel system that, when joined together, form a wall for a pre-defined or custom-built refrigerated space.
  • Fig. 1 A for example, two un-joined panels 20 are shown as part of an insulated structural wall 10.
  • Each structural panel 20 is constructed of vertical structural members 22 and horizontal structural members 24.
  • the structural members 22 and 24 may be constructed of wood, a composite, metal, or any other suitable structural material as would be understood by one of ordinary skill in the art.
  • Structural panels 20 are typically constructed using sheathing 26, which may be steel, aluminum, or other suitable sheathing material, which is held into place while an insulating material, such as closed-cell polyurethane foam (not shown) is blown and/or injected between the sheathing 26.
  • sheathing 26 may be steel, aluminum, or other suitable sheathing material, which is held into place while an insulating material, such as closed-cell polyurethane foam (not shown) is blown and/or injected between the sheathing 26.
  • the insulated structural panel is primarily assembled by virtue of the closed-cell polyurethane foam 28 acting as an adhesive to hold the sheathing and structural members in place.
  • a latch 30 and latch-bar 32, or other suitable connecting hardware is typically disposed within the panel to facilitate joining the panels together. When the latch 30 is actuated to engage the latch- bar 32, for example, the insulated structural panels are drawn tightly together, as shown in Figs. 1 B and 1 C.
  • the width of the structural panel may be determined by the application for which the insulated structural panels are to be used.
  • the insulated polyurethane structural panels have a typical thermal resistance ("R-value") of up to R-8 per inch.
  • Typical insulated structural panels that are 3 to 6 inches in width, accordingly have corresponding R-values of R-24 to R-48.
  • condensation formed a joint 30 can result in the formation of ice, which, when formed in, or within joint 30 can expand the joint. Expansion of this joint 30 further degrades the efficacy of the insulated structural panel system, especially at the joint 30. Additional problems with the prior art design as disclosed in Figs. 1 A and 1 B are discussed in the Background of the Invention.
  • Figure 2 shows an embodiment of a hybrid structural member for insulated panel that includes male structural member 220, high density insulating material (commonly known as High Density Rail, or "FIDR" material) 222, and core member 224.
  • Core member 224 is encapsulated within the FIDR.
  • the resulting hybrid structural member 220 results in 50% less polyurethane FIDR material 222 being used for the structural member 220.
  • Core member 224 may be dimensional lumber, plywood, magnesium oxide, gypsum, rigid plastic (such as polyvinyl, or other suitable rigid plastic), fiberglass, Kevlar, or other rigid composite.
  • Core member 224 may also be made of suitable metal, as the surrounding FIDR material 222 will sufficiently insulate core member 224 such that the R-value of structural member 220 is only affected negligibly, if at all.
  • Other rigid or semi-rigid materials may be substituted for core member 224 without departing from the spirit and scope of the invention.
  • a female structural member 220' which includes FIDR material 222' and core member 224'.
  • the hybrid structural member 220 and 220' have an R value of R-35.
  • a 4-inch structural insulated panel using a hybrid structural member in accordance with the embodiments shown at 220 and 222 have an overall R-value of R-28.
  • manufacturing structural insulated panels in accordance with the present invention eliminates the need for any structural backer applied between a HDR structural member and the insulation 24 shown in figures 1 A and 1 B.
  • embodiments of the present invention allow for the use of a non-butyl gasket which may be integrally formed as part of the hybrid structural member, those obviating the need for the application of field-applied vapor sealant in freezer applications.
  • the hybrid structural member 220 and 220' have a core member 224 that is completely surrounded on all sides by HDR material 222.
  • the core member 224 could be surrounded only on the longitudinal sides of core member 224, such that the core member 224 is exposed at the top and bottom of the hybrid structural member, thus providing a more stable surface for attaching the panel to restructures, or before, respectively.
  • Figures 3A and 3B show an embodiment of a hybrid structural member 320 and 320' with a core member 324 and 324' that is surrounded on at least three sides by HDR material.
  • the advantages include ease of manufacture, while still isolating the core member 324 or 324' from exposure to internal or external environment.
  • Figure 3C shows an embodiment of a hybrid structural member 320" with a core member 324" that is enclosed on at least two sides with HDR material 322".
  • Hybrid structural member 330 includes a high density insulating material 332, which may be polyurethane,
  • the core member 334 has a length L, a width W, and ends 336 (one end shown).
  • the core member 334 is configured in the shape of an I-beam, but may comprise a core member having a cross-section of any suitable shape, such as the rectangle or square 340, parallelogram 350, circle 360, trapezoid 370, hybrid oval/rectangle 380, or any other shape that includes a cross-section that defines a surface area.
  • the high density insulating material 332 may cover one, two, or more sides of the core member, according to the application. This includes covering one or both ends 336 of core member 334 as shown with respect to hybrid structural member 330' having core member 334' with end 336'.
  • the ratio of core member 334 to insulating material 332 is such that the core member presents a suitable surface for fastening the hybrid structural member to other structures, such as for use in traditional construction applications where dimensional lumber is primarily used.
  • the core member 334 may comprise dimensional lumber itself.
  • the hybrid structural member 330 may be manufactured in dimensions and lengths that correspond to traditional dimensional lumber or other construction materials, such that the hybrid structural member 330 can be used interchangeably with traditional construction materials, regardless of the shape of the core member 334.
  • Figure 4 shows an injection mold configured for manufacturing a structural member.
  • injection mold 400 includes a cavity 410, shaped in accordance with the requirements of structural member shown in figures 1 A through 3C.
  • cavity 410 shaped in accordance with the requirements of structural member shown in figures 1 A through 3C.
  • the cavity is shaped for a male hybrid structural member.
  • the cavity may include posts 420, pins 430, or screws 440.
  • the injection mold 400 may include a vacuum system (not shown) to hold a core member 460 in place during an injection mold process.
  • the hybrid structural members could be manufactured at long lengths and cut to fit specific applications, similar to dimensional lumber or traditional structural members for insulated panel manufacture.
  • one step is to insert the core member 460 into the cavity 410 of injection mold 400.
  • Core member 460 may be held in place by the posts 420, the pins 430, the screws 440, or a vacuum system (not shown).
  • FIDR material 450 is injected into the cavity 410 to surround core member 460 on at least two sides, depending on the particular embodiment being manufactured. Once the cavity is completely filled by the FIDR material 450, the hybrid structural member is allowed to cure, if necessary.
  • Figures 5 & 6 show variations of a mold 500 and 600 in accordance with embodiments of the invention.
  • Figure 5 shows a mold body 510 having a mold cavity 520, a lid 530 having a vacuum aperture 540 disposed therethrough, which may be connected to the mold body 510 by a hinge 550 or other suitable device.
  • a structural member 560 such as the aforementioned lumber, plywood, oriented strand board (OSB), magnesium oxide, or rigid polymer, or the like, may be attached to lid 530 via a vacuum operable to connect through the vacuum aperture 540.
  • a volume of expanding FIDR material 570 may be poured or injected into the mold cavity 520.
  • the FIDR material 570 expands such that it will fill the entire cavity 520, regardless of whether the mold cavity 520 is formed to have a female contour 580 or a male contour 590.
  • the amount of HDR material 570 that is introduced into the cavity 520 determines the density of the HDR material for the finished (cured) hybrid member.
  • sealant trenches 522 may be formed in mold cavity 520.
  • the sealant trenches allow for a lower-density HDR material to be introduced the sealant trenches 522 and partially cured before introduction of the hybrid member HDR material 570 into the cavity 520.
  • the resultant sealing ridges are compressible, and because they are formed of the same HDR material as HDR material 570, but at a much lower density, the resultant hybrid member has a built-in sealant feature when the male and female members are joined, regardless of whether the sealant ridges are formed as part of a hybrid member formed using the female contour 580 or the male contour 590 of mold 500.
  • Figure 6 shows a similar configuration as Figure 5, albeit with like numbers from Figure 5 (500— 590) replaced with like numbers 600-690.
  • Figure 6 additionally shows sealing trenches 692 in a possible placement adjacent to male contour 690.
  • Figure 6 also shows structural member attaching devices 642 disposed through lid 630.
  • the attaching devices 642 may be screws, nails, pins, or other suitable attachment devices to hold structural member 660 in place with respect to lid 630.
  • the mold cavity could have no contour, and therefore be flat. Additionally, the contour could be corrugated, saw-tooth, or other configuration that would allow adjacent members to interlock when abutted against one another.
  • Figure 7 shows an alternative mold design 700 in which the structural member 760 is held in place via ridges 744.
  • a structural member 760 is simply placed between the ridges 744 disposed at the bottom of cavity 720 of the mold body 710.
  • the HDR material 770 may be then poured or injected into mold cavity 720 on top of the structural member 760.
  • the lid 730 is shaped with a contour, if desired, to shape the face of the hybrid structural member 762, such as male, female, corrugated (shown), saw-tooth, or other configuration as described above. While the present invention has been described in detail, it is not intended to be limited. Accordingly, various changes, variations, and substitutions may be made without departing with the scope of the invention as disclosed.

Landscapes

  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Structural Engineering (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Wood Science & Technology (AREA)
  • Civil Engineering (AREA)
  • Ceramic Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Refrigerator Housings (AREA)
  • Building Environments (AREA)

Abstract

A hybrid structural member for an insulated structural panel includes a core member surrounded on at least two sides by a high-density structural foam. The hybrid structural member may be manufactured by placing a core member in a cavity of an injection mold and surrounding the core member by insulating foam on at least two sides. The core member may be held in place by screws, posts, pins, a vacuum, or other suitable means.

Description

INSULATED STRUCTURAL MEMBERS FOR INSULATED PANELS AND A METHOD FOR
MAKING SAME
1. Field of the Invention:
The present invention relates generally to structural insulated panels for use in custom construction, including custom-designed dwellings, walk-in refrigerator and freezer spaces, and pre-fabricated structures. More specifically, the present invention relates to hybrid structural members for the manufacture such structures, and may also be used for conventional construction.
2. Background of the Invention:
Pre-fabricated buildings, and other insulated structures, such as walk-in refrigerator and freezer spaces are typically manufactured and assembled using pre-fabricated insulated structural panels joined together to define the insulated space. The structural panels provide insulation to maintain the temperature inside the structure using as little energy as possible. In conventional construction, as well as the applications discussed above, the most vulnerable areas of the insulated space or located at the location of the structural members, such as studs, joists, and the joints of structural panels. Frequently, those studs, joists, and joints are made of wood, based on cost and ease of manufacture. However, wood has relatively poor insulative properties compared to the closed-cell insulation between the veneers of the insulated panel, and is subject to moisture absorption, warping, and decay. Additionally, and especially in the case of walk-in refrigerators and freezers, the air inside an insulated area is often at a lower pressure than the ambient air outside of the area, the resultant pressure gradient causes warm air to attempt ingress through the joints between the panels. This vulnerability can lead to some amount of warm (and moist) air moving into the joints between panels. As the warm air cools to at or below the dew point as it moves closer to the enclosed refrigerated area, condensate may form in the joint, which in turn may freeze if the pressure gradient is such that the warm air moves quickly into the joint past the point at which freezing temperatures are found. In the case of walk-in freezer spaces, this condensation can freeze in the joint between structural insulated panels. In cases where the iced portions between the panels thaw and re-freeze, degradation of the wood joints may occur through vapor infiltration, condensate absorption, icing of joint spaces and wood fibers, and joint separation and/or failure. This degradation can result in a dramatic increase in the amount of energy required to maintain the refrigerated walk-in at a suitable temperature for storing perishable goods, a shortened lifespan of the insulated panel, and ultimately increased costs to consumers.
In addition to the problem with existing structural panel systems noted above, over time the structural panels lose insulative properties around the edges of the structural members as a function of the type of structural and insulation materials used. Wooden structural members particularly are susceptible to decay and, as organic materials, are inherently non-uniform in consistency and shape, which can result in variances in insulative properties, warping, and, over time, the development of weakness, shrinkage, expansion, and/or lack of overall structural integrity. Several attempts have been made to address the deficiencies of wooden structural members. The most effective comprises a high-density - polyurethane "rail" ("HDR") that is injection molded to the shape of the necessary structural members for an insulated panel.
These HDR systems have much greater insulation properties than wood, and may be manufactured to 20 more precise tolerances. However, pure HDR systems are extremely costly, and are not as structurally sound as wood, metal or rigid polycarbonate plastics. Accordingly, it would be desirable to have a structural member for structural panel-based walk-in refrigerated spaces that has improved insulation, lower cost, improved structural performance, and more precise manufacturing tolerances. Additional benefits include reducing the amount of HDR material needed for higher insulation properties of structural panels, elimination of synthetic backers that are placed between structural members and the panel insulation, and the need for additional metal backplates necessary to support the joint locking mechanisms between panels for purely HDR structural members. Hybrid HDR structural members may be therefore utilize HDR material with densities reduced by 90% or more.
SUMMARY OF THE INVENTION
One embodiment of the invention includes a combination rigid/HDR structural member.
In such an embodiment, a rigid structural member, such as dimensional, metal, fiberglass, laminated beam, plywood, carbon, Kevlar, magnesium oxide, or other rigid material,
dimensionally smaller than the entire structural member, may be used as a core, or central structure, for a hybrid structural member. The core member may be placed in an injection mold, or other suitable molding form. Once placed in the mold, the mold may be filled with high density rail ("HDR") material, such as an expanding foam like polyurethane, polyisocyanurate, or other expanding insulation, such that at least two sides of the structural member are completely covered by the HDR material. In another embodiment, at least three sides of the core member are surrounded by HDR material. In yet another embodiment, the core member is completely surrounded by HDR material.
In another embodiment, a method for manufacturing a hybrid rigid/HDR structural member is disclosed. In one step, a rigid core member, such as dimensional lumber, plywood, magnesium oxide, gypsum, or other metal or synthetic rigid member or the like, is placed in an injection mold. The core member preferably has at least one dimension smaller than the interior dimension of the injection mold. In another step, the rigid core member is secured in place. In another step, the injection mold is filled with HDR material to form a hybrid structural member with a rigid core member. The core member may be suspended within the injection mold by posts, clips, or fluid, as is known in the art.
Other embodiments in accordance with the spirit and scope of the invention will become apparent to those of skill in the art.
BRIEF DESCRIPTION OF THE DRAWINGS
Fig. 1 A shows traditional insulated structural panels in accordance with the prior art;
Fig. 1 B shows traditional insulated structural panels joined together to form an insulated structural wall;
Fig. 1 C shows a latch and latch bar mechanism used to joint together insulated structural panels;
Fig. 2 shows an example of a structural member in accordance an embodiment of the present invention that is completely encased in HDR material;
Figs. 3A— 3E show different examples of a structural member in accordance with embodiments of the present invention that are encased in HDR material;
Fig. 4 shows a portion of an injection mold for manufacturing a hybrid structural member in accordance with an embodiment of the present invention;
Fig. 5 shows a molding form for manufacturing a hybrid structural member in accordance with an embodiment of the present invention that includes a hybrid structural member, and a hinged lid; Fig. 6 shows a molding form for manufacturing hybrid structural member in accordance with an embodiment of the present invention that includes a hybrid structural member, a vacuum seal attachment, and vapor seal trenches; and
Fig. 7 shows a molding form for manufacturing a hybrid structural member in accordance with an embodiment of the present invention that includes a track or rail system for holding a structural member in place in the mold.
DETAILED DESCRIPTION OF THE INVENTION
The present invention is directed to systems and methods of for hybrid structural members for insulated structural panels. Figures 1 A and 1 B generally show a prior art insulated structural panel system that, when joined together, form a wall for a pre-defined or custom-built refrigerated space. In Fig. 1 A, for example, two un-joined panels 20 are shown as part of an insulated structural wall 10. Each structural panel 20 is constructed of vertical structural members 22 and horizontal structural members 24. The structural members 22 and 24 may be constructed of wood, a composite, metal, or any other suitable structural material as would be understood by one of ordinary skill in the art. Structural panels 20 are typically constructed using sheathing 26, which may be steel, aluminum, or other suitable sheathing material, which is held into place while an insulating material, such as closed-cell polyurethane foam (not shown) is blown and/or injected between the sheathing 26.
The insulated structural panel is primarily assembled by virtue of the closed-cell polyurethane foam 28 acting as an adhesive to hold the sheathing and structural members in place. Insulated structural panels 20 or further typically design such that vertical structural members 22 include a tongue-in-groove, corrugated, saw-tooth, or other interlocking design on at least one face thereof. A latch 30 and latch-bar 32, or other suitable connecting hardware is typically disposed within the panel to facilitate joining the panels together. When the latch 30 is actuated to engage the latch- bar 32, for example, the insulated structural panels are drawn tightly together, as shown in Figs. 1 B and 1 C.
The width of the structural panel may be determined by the application for which the insulated structural panels are to be used. The insulated polyurethane structural panels have a typical thermal resistance ("R-value") of up to R-8 per inch. Typical insulated structural panels that are 3 to 6 inches in width, accordingly have corresponding R-values of R-24 to R-48. The structural members 22 and 24, however, when constructed of wood, only have a total R-value of R-3 to R-8, depending on the thickness and density of the wood. Because of the poor insulative properties of structural panels manufactured with wood structural members 22, more warm air moves toward the lower-pressure refrigerated space predominantly at joint 30, and along frame members 22, 24. Over time, as the relatively warm and moist outside air travels to the frame & joint 30, condensation may form. In the case of an insulated structural panel system used for refrigeration, this condensation may remain in liquid form and become a source of potential mold or bacterial growth. In the case of insulated structural panel freezer systems, condensation formed a joint 30 can result in the formation of ice, which, when formed in, or within joint 30 can expand the joint. Expansion of this joint 30 further degrades the efficacy of the insulated structural panel system, especially at the joint 30. Additional problems with the prior art design as disclosed in Figs. 1 A and 1 B are discussed in the Background of the Invention.
Figure 2 shows an embodiment of a hybrid structural member for insulated panel that includes male structural member 220, high density insulating material (commonly known as High Density Rail, or "FIDR" material) 222, and core member 224. Core member 224 is encapsulated within the FIDR. The resulting hybrid structural member 220 results in 50% less polyurethane FIDR material 222 being used for the structural member 220. Core member 224 may be dimensional lumber, plywood, magnesium oxide, gypsum, rigid plastic (such as polyvinyl, or other suitable rigid plastic), fiberglass, Kevlar, or other rigid composite. Core member 224 may also be made of suitable metal, as the surrounding FIDR material 222 will sufficiently insulate core member 224 such that the R-value of structural member 220 is only affected negligibly, if at all. Other rigid or semi-rigid materials may be substituted for core member 224 without departing from the spirit and scope of the invention. Also shown in figure 2 is a female structural member 220', which includes FIDR material 222' and core member 224'.
Several additional benefits from those disclosed in the background and summary of the invention include the ability to reduce the thickness of the structural member while
simultaneously increasing the insulative properties of the overall panel. For example, a 5-inch- thick structural insulated freezer panel with a standard wood frame as an overall all panel R value of R 28. With a pure FIDR structural member, the R-value of the structural panel increases to R-37. The hybrid structural member 220 and 220' have an R value of R-35. Similarly, a 4-inch structural insulated panel using a hybrid structural member in accordance with the embodiments shown at 220 and 222 have an overall R-value of R-28. Additionally, manufacturing structural insulated panels in accordance with the present invention eliminates the need for any structural backer applied between a HDR structural member and the insulation 24 shown in figures 1 A and 1 B. Also, embodiments of the present invention allow for the use of a non-butyl gasket which may be integrally formed as part of the hybrid structural member, those obviating the need for the application of field-applied vapor sealant in freezer applications. In the embodiment shown in figure 2, the hybrid structural member 220 and 220' have a core member 224 that is completely surrounded on all sides by HDR material 222. Alternatively, the core member 224 could be surrounded only on the longitudinal sides of core member 224, such that the core member 224 is exposed at the top and bottom of the hybrid structural member, thus providing a more stable surface for attaching the panel to restructures, or before, respectively.
Figures 3A and 3B show an embodiment of a hybrid structural member 320 and 320' with a core member 324 and 324' that is surrounded on at least three sides by HDR material. In such a configuration, the advantages include ease of manufacture, while still isolating the core member 324 or 324' from exposure to internal or external environment. Figure 3C shows an embodiment of a hybrid structural member 320" with a core member 324" that is enclosed on at least two sides with HDR material 322".
Figure 3D shows alternative embodiments of the hybrid structural members suitable for construction of insulated panels, as well as construction generally. Hybrid structural member 330 includes a high density insulating material 332, which may be polyurethane,
polyisocyanurate, or other suitable rigid insulating foam, and a core member 334. The core member 334 has a length L, a width W, and ends 336 (one end shown). In the embodiment shown in Figure 3C, the core member 334 is configured in the shape of an I-beam, but may comprise a core member having a cross-section of any suitable shape, such as the rectangle or square 340, parallelogram 350, circle 360, trapezoid 370, hybrid oval/rectangle 380, or any other shape that includes a cross-section that defines a surface area.
The high density insulating material 332 may cover one, two, or more sides of the core member, according to the application. This includes covering one or both ends 336 of core member 334 as shown with respect to hybrid structural member 330' having core member 334' with end 336'. Preferably, the ratio of core member 334 to insulating material 332 is such that the core member presents a suitable surface for fastening the hybrid structural member to other structures, such as for use in traditional construction applications where dimensional lumber is primarily used. To that end, the core member 334 may comprise dimensional lumber itself. Additionally, the hybrid structural member 330 may be manufactured in dimensions and lengths that correspond to traditional dimensional lumber or other construction materials, such that the hybrid structural member 330 can be used interchangeably with traditional construction materials, regardless of the shape of the core member 334.
Figure 4 shows an injection mold configured for manufacturing a structural member. In one embodiment, injection mold 400 includes a cavity 410, shaped in accordance with the requirements of structural member shown in figures 1 A through 3C. In the particular
embodiment shown in figure 4, the cavity is shaped for a male hybrid structural member. The cavity may include posts 420, pins 430, or screws 440. Alternatively, the injection mold 400 may include a vacuum system (not shown) to hold a core member 460 in place during an injection mold process.
It should be understood that other suitable methods and apparatuses could be used in accordance with the present disclosure. For example, the hybrid structural members could be manufactured at long lengths and cut to fit specific applications, similar to dimensional lumber or traditional structural members for insulated panel manufacture.
Manufacture a hybrid structural panel in accordance with an embodiment of the present invention, one step is to insert the core member 460 into the cavity 410 of injection mold 400. Core member 460 may be held in place by the posts 420, the pins 430, the screws 440, or a vacuum system (not shown). With a core member 460 position within the cavity 410 of injection mold 400, FIDR material 450 is injected into the cavity 410 to surround core member 460 on at least two sides, depending on the particular embodiment being manufactured. Once the cavity is completely filled by the FIDR material 450, the hybrid structural member is allowed to cure, if necessary.
Figures 5 & 6 show variations of a mold 500 and 600 in accordance with embodiments of the invention. Figure 5 shows a mold body 510 having a mold cavity 520, a lid 530 having a vacuum aperture 540 disposed therethrough, which may be connected to the mold body 510 by a hinge 550 or other suitable device. In operation, a structural member 560, such as the aforementioned lumber, plywood, oriented strand board (OSB), magnesium oxide, or rigid polymer, or the like, may be attached to lid 530 via a vacuum operable to connect through the vacuum aperture 540. A volume of expanding FIDR material 570 may be poured or injected into the mold cavity 520. The FIDR material 570 expands such that it will fill the entire cavity 520, regardless of whether the mold cavity 520 is formed to have a female contour 580 or a male contour 590. The amount of HDR material 570 that is introduced into the cavity 520 determines the density of the HDR material for the finished (cured) hybrid member. Once the HDR material 570 is introduced into the mold cavity 520, the lid 530 with the structural member 560 is closed so that the HDR material 570 expands around the structural member 560 and fills all, or substantially all, of the cavity 520.
Additionally, sealant trenches 522 may be formed in mold cavity 520. The sealant trenches allow for a lower-density HDR material to be introduced the sealant trenches 522 and partially cured before introduction of the hybrid member HDR material 570 into the cavity 520. The resultant sealing ridges are compressible, and because they are formed of the same HDR material as HDR material 570, but at a much lower density, the resultant hybrid member has a built-in sealant feature when the male and female members are joined, regardless of whether the sealant ridges are formed as part of a hybrid member formed using the female contour 580 or the male contour 590 of mold 500.
Figure 6 shows a similar configuration as Figure 5, albeit with like numbers from Figure 5 (500— 590) replaced with like numbers 600-690. Figure 6 additionally shows sealing trenches 692 in a possible placement adjacent to male contour 690. Figure 6 also shows structural member attaching devices 642 disposed through lid 630. The attaching devices 642 may be screws, nails, pins, or other suitable attachment devices to hold structural member 660 in place with respect to lid 630.
It should be understood that in addition to the male and female contours 580/680 and 590/690, respectively, the mold cavity could have no contour, and therefore be flat. Additionally, the contour could be corrugated, saw-tooth, or other configuration that would allow adjacent members to interlock when abutted against one another.
Figure 7 shows an alternative mold design 700 in which the structural member 760 is held in place via ridges 744. In a mold 700 in accordance with Figure 7, a structural member 760 is simply placed between the ridges 744 disposed at the bottom of cavity 720 of the mold body 710. The HDR material 770 may be then poured or injected into mold cavity 720 on top of the structural member 760. The lid 730 is shaped with a contour, if desired, to shape the face of the hybrid structural member 762, such as male, female, corrugated (shown), saw-tooth, or other configuration as described above. While the present invention has been described in detail, it is not intended to be limited. Accordingly, various changes, variations, and substitutions may be made without departing with the scope of the invention as disclosed.

Claims

What is claimed is:
1. A hybrid structural member, comprising:
a core member having first and second planar surfaces, wherein the first and second planar surfaces define a length of the core member;
at least one additional surface disposed adjacent to the first or second planar surfaces along its respective length to define a cross-sectional area of the core member; and
high density insulating material;
wherein the high density insulating material is disposed on the core member such that at least two of the first and second planar surfaces and the additional surface are covered by the high density insulating material.
2. The hybrid structural member of claim 1 , wherein the core member has a rectangular cross-section, wherein the first and second planar surfaces define a length and width of the core member, and wherein the at least one additional surface comprises third and fourth planar surfaces that are respectively parallel to the first and second planar surfaces, and wherein the core member has substantially uniform dimensions throughout its length.
3. The hybrid structural member of claim 1 or 2, wherein the high density insulating material covers the first, second, third and fourth planar surfaces.
4. The hybrid structural member of any one of claims 1 through 3, wherein the high density insulating material covers at least one end of the core member.
5. The hybrid structural member of any one of claims through 4, wherein the core member is comprised of dimensional lumber.
6. The hybrid structural member of any one of claims through 5, wherein the core member is comprised of plywood.
7. The hybrid structural member of any one of claims through 6, wherein the core member is comprised of glue-laminated wood fibers.
8. The hybrid structural member of any one of claims 1 through 7, wherein the core member has the shape of an I-beam.
9. The hybrid structural member of claim 8, wherein the high density insulating material covers exterior surfaces of the I-beam along its length.
10. The hybrid structural member of claim 8 or 9, wherein the high density insulating material covers at least one end of the I-beam.
1 1 . The hybrid structural member of any one of claims through 10, wherein the core member is comprised of wood materials comprising at least one of wood, plywood, oriented strand board, and glue-laminated wood fibers.
12. The hybrid structural member of any one of claims 1 through 1 1 , wherein the core member is comprised of a metal.
13. The hybrid structural member of any one of claims 1 through 12, wherein the core member is comprised of gypsum.
14. The hybrid structural member of any one of claims 1 through 13, wherein the core member is comprised of a rigid plastic.
15. The hybrid structural member of any one of claims 1 through 14, wherein the core member is comprised of a ceramic.
16. The hybrid structural member of any one of claims 1 through 15, wherein the core member is magnesium oxide.
17. The hybrid structural member of claims of any one of claims 1 through 16, wherein the high density insulating material comprises one of polyurethane or polyisocyanurate.
18. The hybrid structural member of any one of claims 1 through 17, wherein a density of the high density insulating material is at least 2.2 lb/ft3.
19. A hybrid structural member, comprising:
a core member having at least one non-planar surface, wherein the non-planar surface extends the length of the core member; and
high density insulating material having a density of at least 2 lb/ft3 comprising at least one of polyurethane and polyisocyanurate;
wherein the core member is surrounded by the high density insulating material along its entire length.
PCT/US2019/028448 2018-05-01 2019-04-22 Insulated structural members for insulated panels and a method for making same WO2019212782A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US15/967,675 US20190145101A1 (en) 2017-11-16 2018-05-01 Insulated Structural Members for Insulated Panels and a Method For Making Same
US15/967,675 2018-05-01

Publications (1)

Publication Number Publication Date
WO2019212782A1 true WO2019212782A1 (en) 2019-11-07

Family

ID=68386587

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2019/028448 WO2019212782A1 (en) 2018-05-01 2019-04-22 Insulated structural members for insulated panels and a method for making same

Country Status (1)

Country Link
WO (1) WO2019212782A1 (en)

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060179749A1 (en) * 2005-02-01 2006-08-17 Brandt Gregory A High density polyurethane and polyisocyanurate construction boards and composite boards
US20160305126A1 (en) * 2004-11-09 2016-10-20 Johns Manville Roofing systems and methods
US20160369936A1 (en) * 2013-07-05 2016-12-22 Amogreentech Co., Ltd. Thermal insulation sheet, hybrid thermal insulation sheet, and thermal insulation panel
US9556615B1 (en) * 2015-10-13 2017-01-31 The Dragon Group, LLC Encapsulated panel systems

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20160305126A1 (en) * 2004-11-09 2016-10-20 Johns Manville Roofing systems and methods
US20060179749A1 (en) * 2005-02-01 2006-08-17 Brandt Gregory A High density polyurethane and polyisocyanurate construction boards and composite boards
US20160369936A1 (en) * 2013-07-05 2016-12-22 Amogreentech Co., Ltd. Thermal insulation sheet, hybrid thermal insulation sheet, and thermal insulation panel
US9556615B1 (en) * 2015-10-13 2017-01-31 The Dragon Group, LLC Encapsulated panel systems

Similar Documents

Publication Publication Date Title
US10246873B1 (en) Insulated structural members for insulated panels and a method of making same
US20190145101A1 (en) Insulated Structural Members for Insulated Panels and a Method For Making Same
US10494813B2 (en) System and method for affixing insulated panels
US8286399B2 (en) Structural insulated panel system
US20180073797A1 (en) Butyl-Free Multi-Gasket Panel Joint
JPH11159693A (en) Vacuum heat insulating panel and manufacture therefor and heat insulating box body using it
US3230681A (en) Spline joint for expanded thermoplastic panels
MX2014006503A (en) Wall insulation panel.
JPH1122050A (en) Heat insulating panel
US20200299960A1 (en) Structurally reinforced insulated panel
WO2019212782A1 (en) Insulated structural members for insulated panels and a method for making same
US4844975A (en) Reinforced composite sandwich panel assembly
KR102002312B1 (en) Bracket for install of Window and preparing method for thereof
JP4567407B2 (en) Construction method of high thermal insulation structure of building
JP2004270200A (en) Double-sided heat insulating concrete wall structure
JPH01163018A (en) Manufacture of insulated panel
WO2021206572A1 (en) Method of manufacturing vapor-permeable insulating panel and vapor-permeable insulating panel
CZ25986U1 (en) Thermally insulating backing, load-bearing section underneath window and/or door frames
EP3507442B1 (en) Structural element for installation of doors and windows
CA2655466A1 (en) The hybrid sip wall system: structural steel & eps thermal-efficient wall panel pre-fabricated, pre-engineered, expandable polystyrene solid core and steel reinforced exoskeleton wall panel
RU219576U1 (en) Door leaf
CN211524524U (en) Heat-insulation sliding door and window profile
KR101486044B1 (en) Panel for refrigerator-freezer
JPH0861835A (en) Floor member in refrigerator/freezer
CN209760475U (en) Cast-in-place concrete composite insulation board

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 19796379

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 19796379

Country of ref document: EP

Kind code of ref document: A1