WO2019173142A1 - Improved concrete sandwich panels and fabrication method - Google Patents

Improved concrete sandwich panels and fabrication method Download PDF

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Publication number
WO2019173142A1
WO2019173142A1 PCT/US2019/020306 US2019020306W WO2019173142A1 WO 2019173142 A1 WO2019173142 A1 WO 2019173142A1 US 2019020306 W US2019020306 W US 2019020306W WO 2019173142 A1 WO2019173142 A1 WO 2019173142A1
Authority
WO
WIPO (PCT)
Prior art keywords
concrete
connector pins
insulation layer
connectors
sandwich panel
Prior art date
Legal status (The legal status 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 status listed.)
Ceased
Application number
PCT/US2019/020306
Other languages
French (fr)
Inventor
Derek LAWLEY
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Illinois Tool Works Inc
Original Assignee
Illinois Tool Works Inc
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 AU2018900717A external-priority patent/AU2018900717A0/en
Priority claimed from AU2019201225A external-priority patent/AU2019201225B2/en
Application filed by Illinois Tool Works Inc filed Critical Illinois Tool Works Inc
Publication of WO2019173142A1 publication Critical patent/WO2019173142A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28BSHAPING CLAY OR OTHER CERAMIC COMPOSITIONS; SHAPING SLAG; SHAPING MIXTURES CONTAINING CEMENTITIOUS MATERIAL, e.g. PLASTER
    • B28B19/00Machines or methods for applying the material to surfaces to form a permanent layer thereon
    • B28B19/003Machines or methods for applying the material to surfaces to form a permanent layer thereon to insulating material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28BSHAPING CLAY OR OTHER CERAMIC COMPOSITIONS; SHAPING SLAG; SHAPING MIXTURES CONTAINING CEMENTITIOUS MATERIAL, e.g. PLASTER
    • B28B23/00Arrangements specially adapted for the production of shaped articles with elements wholly or partly embedded in the moulding material; Production of reinforced objects
    • B28B23/0062Arrangements specially adapted for the production of shaped articles with elements wholly or partly embedded in the moulding material; Production of reinforced objects forcing the elements into the cast material, e.g. hooks into cast concrete
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28BSHAPING CLAY OR OTHER CERAMIC COMPOSITIONS; SHAPING SLAG; SHAPING MIXTURES CONTAINING CEMENTITIOUS MATERIAL, e.g. PLASTER
    • B28B23/00Arrangements specially adapted for the production of shaped articles with elements wholly or partly embedded in the moulding material; Production of reinforced objects
    • B28B23/02Arrangements specially adapted for the production of shaped articles with elements wholly or partly embedded in the moulding material; Production of reinforced objects wherein the elements are reinforcing members
    • B28B23/028Arrangements specially adapted for the production of shaped articles with elements wholly or partly embedded in the moulding material; Production of reinforced objects wherein the elements are reinforcing members for double - wall articles
    • 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
    • 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
    • B32B3/02Layered 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 features of form at particular places, e.g. in edge regions
    • B32B3/06Layered 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 features of form at particular places, e.g. in edge regions for securing layers together; for attaching the product to another member, e.g. to a support, or to another product, e.g. groove/tongue, interlocking
    • 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
    • B32B3/02Layered 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 features of form at particular places, e.g. in edge regions
    • B32B3/08Layered 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 features of form at particular places, e.g. in edge regions characterised by added members at particular parts
    • 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
    • E04C2/288Building 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 concrete, stone or stone-like material
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C5/00Reinforcing elements, e.g. for concrete; Auxiliary elements therefor
    • E04C5/07Reinforcing elements of material other than metal, e.g. of glass, of plastics, or not exclusively made of metal
    • 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
    • B32B2266/0221Vinyl resin
    • B32B2266/0228Aromatic vinyl resin, e.g. styrenic (co)polymers
    • 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
    • B32B2266/08Closed cell 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
    • 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
    • E04B1/02Structures consisting primarily of load-supporting, block-shaped, or slab-shaped elements
    • E04B1/14Structures consisting primarily of load-supporting, block-shaped, or slab-shaped elements the elements being composed of two or more materials
    • 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
    • E04C2/04Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials of concrete or other stone-like material; of asbestos cement; of cement and other mineral fibres
    • E04C2/044Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials of concrete or other stone-like material; of asbestos cement; of cement and other mineral fibres of concrete
    • E04C2002/045Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels characterised by specified materials of concrete or other stone-like material; of asbestos cement; of cement and other mineral fibres of concrete with two parallel leaves connected by tie anchors
    • E04C2002/047Pin or rod shaped anchors

Definitions

  • This invention relates to insulated concrete sandwich panels and methods of manufacturing such panels.
  • Prefabricated concrete panels are particularly useful for modem building construction as they allow for simplified on-site building construction by lifting, erection and installation as a single piece.
  • the concrete panels may advantageously be fabricated in an off-site factory, although in some cases, fabrication of the panels on site delivers simplicity benefits too.
  • prefabricated concrete panels may have a 'sandwich' structure in which the panel has two layers of concrete with a layer of insulative material therebetween.
  • Certain insulated panels provide an internally facing concrete wall for meeting structural requirements, an insulation layer for limiting the flow of heat energy through the panel, and an external concrete cladding which protects the insulation layer.
  • the thickness of each of these layers can be varied to achieve different structural and thermal properties, in general only one of the concrete layers provides the structural (e.g. load-bearing) requirements and, therefore, is often thicker than the other concrete layer which has a primarily protective purpose.
  • the structure of a concrete sandwich panel may typically include a plurality of connector pins that extend between the two concrete layers, through the insulation layer, to secure the layers together.
  • the connector pins are installed perpendicular to the plane of the panel at evenly spaced intervals.
  • An example of such pins is the NirvanaTM connector pins which are precision manufactured from a high strength pultruded ECR-Glass reinforced epoxy- backboned vinylester resin. This double-headed pin spans the insulation layer of the sandwich panel, with each tip securely anchored in each concrete wythe.
  • the connector pins are made from a material that is not thermally conductive, rather than metal, so as to minimise heat transfer through the insulation layer from one concrete layer to the other.
  • a concrete sandwich panel comprising first and second concrete layers with a layer of thermal insulation material therebetween, the panel including an array of first connector pins extending between the first and second concrete layers through the insulation layer substantially perpendicular to the plane of the insulation layer, and further including a plurality of second connector pins extending between the first and second concrete layers through the insulation layer at an angle to the perpendicular.
  • the second connector pins preferably form an angle to the perpendicular between 40 and 50 degrees. In one form of the invention the second connector pins form an angle of substantially 45 -degrees to the perpendicular.
  • the angle of the second connector pins may advantageously be in the vertical dimension with respect to the panel when in use.
  • Half of the second connector pins may be angled 'up' and the other half angled 'down'
  • the array of first connector pins may be arranged in a plurality of rows and columns across the plane of the panel.
  • the second connector pins may comprise additional pins arranged across one or more rows.
  • the second connector pins may be arranged across the 'top' and 'bottom' rows of the panel for greatest structural benefit.
  • a method of assembling concrete sandwich panels comprising:
  • a first layer of concrete is poured, insulation layer is placed on top and then the first and second connector pins are pushed through the insulation and into the underlying concrete before the concrete has set. Then, a second layer of concrete is poured on top of the insulation layer.
  • a concrete sandwich panel assembled according to the method of the second aspect.
  • the provision of connectors at an angle to the perpendicular connectors may allow for a reduction in thickness of the first layer of concrete by distributing the structural load over both layers of concrete, which significantly reduces material costs.
  • a conventional building panel as described above might have a first, structural concrete layer of l50mm and a second concrete layer of 50mm, whereas an embodiment of the present invention designed for the same application could have two concrete layers each having a thickness of 70mm.
  • the total thickness of the concrete sandwich panel resulting from the present invention is l90mm, as compared with a thickness of 250mm for the conventional panel.
  • the thickness of the insulation layer may be increased with the reduction of concrete wythe thickness, thereby maintaining the same overall panel thickness but with enhanced thermal properties.
  • Figure 1A is a diagrammatic illustration of a building structure incorporating a concrete sandwich panel
  • Figure 1B is a diagrammatic perspective view of the concrete sandwich panel of Figure 1A, shown in isolation;
  • Figure 1C is a sectional view through X-X of the concrete sandwich panel of Figure 1B;
  • Figure 2 shows an example of a connector pin for use in assembling concrete sandwich panels
  • Figure 3A is a diagrammatic perspective view of a concrete sandwich panel according to an embodiment of the present invention
  • Figure 3B is a sectional view through Y-Y of the concrete sandwich panel of Figure 3 A;
  • Figures 4A, 4B and 4C are diagrammatic perspective, vertical-section and horizontal-section views, respectively, of a concrete sandwich panel according to an embodiment of the invention
  • Figure 5 is a flow chart diagram of a procedure for fabricating a concrete sandwich panel according to embodiments of the invention.
  • Figures 6A and 6B are top and end elevation views, respectively, of a jig for use in fabrication of a concrete sandwich panel according to embodiments of the invention.
  • Figures 7A and 7B are side and end elevation views, respectively, of the jig of Figure 6, showing internal features thereof.
  • a building structure 10 is diagrammatically illustrated incorporating a concrete sandwich panel 20 in a vertical side wall, the panel having external facing layer 22.
  • Figure 1B shows the concrete sandwich panel 20 in isolation in horizontal orientation with the layer 22 facing upward.
  • Figure 1C illustrates the concrete sandwich panel 20 in sectional view through X-X of Figure 1B, fabricated according to conventional principles.
  • the concrete sandwich panel 20 includes a structural concrete layer 26, a non-structural concrete layer 22 and an insulation layer 24 situated between the two concrete layers.
  • the layers of the concrete sandwich panel 20 are held together with a series of regularly spaced connector pins 30, which extend normal to the plane of the concrete sandwich panel.
  • the first, structural concrete layer 26 has a greater thickness (e.g. l50mm) as compared to the second, non-structural concrete layer 22 and the insulation layer 24 (each 50mm in thickness, for example).
  • FIGS 3A and 3B, and Figures 4A-4C show a concrete sandwich panel 50 fabricated in accordance with an embodiment of the invention.
  • the panel 50 has first and second concrete layers (52, 56) with a layer of an insulative material (54) therebetween.
  • Embedded within the sandwich layer construction of the panel 50 is an array of connector pins, each of which extends through the insulation layer 54 and has respective ends secured in the concrete layers 52, 56.
  • the connector pins are generally evenly spaced from one another across the two major dimensions of the panel. Most of the connector pins (i.e. those labelled 60 in the Figures) are oriented substantially normal to the plane of the panel 50.
  • a selection of the connector pins have angled orientations, such as those indicated at 70 in the Figures.
  • the top and bottom rows of connector pins include additional pins that are angled at approximately +45° and -45°.
  • a procedure 200 for fabricating a concrete sandwich panel according to embodiments of the invention is illustrated in the form of a flow chart diagram in Figure 5.
  • the panel fabrication process begins with operation 202, wherein a formwork mold is constructed according to the desired dimensions of the panel to be fabricated.
  • the next operations 204- 210 involve preparation of the insulation layer sheet, which should be done before pouring of the first concrete layer.
  • First the sheet material that will be used for the insulation layer is cut to size for the desired panel dimensions (operation 204).
  • the insulation layer may comprise one or more of a range of insulative sheet materials, preferably a form of closed cell polymer foam such as expanded or extruded polystyrene.
  • one face of the sheet is then marked as a guide for connector pin placements (operation 206).
  • the connector pin location markings may comprise a regular grid, for example, with normal pin placings at the grid vertices.
  • the connector pins can be pressed into the sheet material at the placement locations without prior preparation.
  • a 'hard' material such as extruded polystyrene
  • pilot holes For example, for placement of the angled connector pins it is possible to first create pilot holes using a guide jig to ensure consistent spacing and angular orientation.
  • a guide jig 100 for this purpose is shown in Figures 6 and 7 and described below.
  • the jig 100 as seen in Figures 6A and 6B has a generally rectangular block-shaped body that may be made from molded or printed polymer material, for example.
  • the jig has opposed, flat top and bottom surfaces 110, 120 and spiked feet 125 centrally located at the bottom edge of each of the sides.
  • the feet 125 can be aligned with grid markings on the insulation sheet whereupon a central passage 112 will be aligned with the grid vertex.
  • spikes on the underside of the feet 125 engage the sheet material to hold the jig temporarily in place whilst pilot holes are formed.
  • the jig 100 has three passages formed through the body that extend from the top surface 110 to the bottom surface 120.
  • the centrally located passage 112 is oriented perpendicular to the flat bottom surface 120 which lies against the insulation sheet in use.
  • Two additional passages 114 and 116 are angled and offset with respect to the central passage 112, as seen best in Figures 7A and 7B which reveal the internal structure of the jig.
  • the jig 100 is placed to the sheet surface in the desired location using the feet 125 to align with grid markings and to hold the jig in place. Then, a drill or other sharp implement can be inserted into each of the passages 112, 114 and 116 in turn to bore or pierce through the insulation layer sheet underneath in line the respective passages.
  • the pilot holes thus formed will comprise a central normal hole with two angled, offset holes, one to each side.
  • pilot holes have been created in the insulation layer sheet
  • respective connector pins are inserted into the pilot holes from one side, but not extending all the way through (operation 210).
  • the first concrete layer is poured in the panel form, which may also include installation of reinforcing steel before pouring the concrete.
  • the insulation layer sheet with fitted connector pins is laid onto the top surface of the first concrete layer (operation 214). Once the insulation layer sheet is correctly positioned, the connector pins are pressed through into the wet concrete.
  • the pins 30 may have a flange 32 that provides a physical stop, or at least a visual indication of when the pin has been inserted to the correct extent.
  • the connector pins that are inserted at an angle are somewhat longer than those that are inserted perpendicular (e.g.
  • the angled pins are preferably inserted at approximately 45°, slanting in the vertical dimension of the panel when considered in its intended orientation in use.
  • the angled pins are preferably of a greater length than the pins provided perpendicular to the plane of the panel.
  • a concrete sandwich panel constructed in accordance with an embodiment of the present invention may have two concrete layers each 70mm thick on either side of an insulation layer 50mm thick, interconnected by perpendicular pins l50mm in length and angled pins 200mm in length.
  • the angled pins may be of a length such that, when installed at ⁇ 45° angles, the ends of the pins are roughly aligned with the ends of the perpendicular pins.

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  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Chemical & Material Sciences (AREA)
  • Ceramic Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Structural Engineering (AREA)
  • Manufacturing & Machinery (AREA)
  • Civil Engineering (AREA)
  • Laminated Bodies (AREA)

Abstract

A method of assembling a concrete sandwich (50) panel includes inserting a plurality of first connectors (60) through an insulation layer (54) such that the first connectors (60) are installed perpendicular to the insulation layer (54), and inserting further connectors (70) through the insulation layer (54) adjacent the first connectors (60) and oriented at angles relative to the first connectors (60). The insulation layer (54) with the first (60) and further (70) connectors is installed between two layers (52, 56) of poured concrete such that opposed ends of each of the first (60) and further (70) connectors are embedded in the two layers (52, 56) of concrete. A concrete sandwich panel (50) formed with connectors (60, 70) as disclosed demonstrates improved structural characteristics for a given panel thickness.

Description

IMPROVED CONCRETE SANDWICH PANELS AND FABRICATION METHOD
Priority
This application claims priority to and the benefit of Australian Patent Application No. 2018900717, filed March 6, 2018, and Australian Patent Application No. 2019201225, filed February 21, 2019, the entire contents of each of which are incorporated herein by reference.
This invention relates to insulated concrete sandwich panels and methods of manufacturing such panels.
Prefabricated concrete panels are particularly useful for modem building construction as they allow for simplified on-site building construction by lifting, erection and installation as a single piece. The concrete panels may advantageously be fabricated in an off-site factory, although in some cases, fabrication of the panels on site delivers simplicity benefits too. For improved thermal insulation properties, prefabricated concrete panels may have a 'sandwich' structure in which the panel has two layers of concrete with a layer of insulative material therebetween. Certain insulated panels provide an internally facing concrete wall for meeting structural requirements, an insulation layer for limiting the flow of heat energy through the panel, and an external concrete cladding which protects the insulation layer. Although the thickness of each of these layers can be varied to achieve different structural and thermal properties, in general only one of the concrete layers provides the structural (e.g. load-bearing) requirements and, therefore, is often thicker than the other concrete layer which has a primarily protective purpose.
The structure of a concrete sandwich panel may typically include a plurality of connector pins that extend between the two concrete layers, through the insulation layer, to secure the layers together. The connector pins are installed perpendicular to the plane of the panel at evenly spaced intervals. An example of such pins is the Nirvana™ connector pins which are precision manufactured from a high strength pultruded ECR-Glass reinforced epoxy- backboned vinylester resin. This double-headed pin spans the insulation layer of the sandwich panel, with each tip securely anchored in each concrete wythe. The connector pins are made from a material that is not thermally conductive, rather than metal, so as to minimise heat transfer through the insulation layer from one concrete layer to the other. Following further analysis, it has been found that by altering the orientation of some of the pins, it is possible to substantially improve the composite action of the assembled panel, such that both of the concrete layers work as one panel to resist loads.
According to a first aspect of the present invention, there is provided a concrete sandwich panel comprising first and second concrete layers with a layer of thermal insulation material therebetween, the panel including an array of first connector pins extending between the first and second concrete layers through the insulation layer substantially perpendicular to the plane of the insulation layer, and further including a plurality of second connector pins extending between the first and second concrete layers through the insulation layer at an angle to the perpendicular.
The second connector pins preferably form an angle to the perpendicular between 40 and 50 degrees. In one form of the invention the second connector pins form an angle of substantially 45 -degrees to the perpendicular. The angle of the second connector pins may advantageously be in the vertical dimension with respect to the panel when in use. Half of the second connector pins may be angled 'up' and the other half angled 'down'
The array of first connector pins may be arranged in a plurality of rows and columns across the plane of the panel. The second connector pins may comprise additional pins arranged across one or more rows. In embodiments, the second connector pins may be arranged across the 'top' and 'bottom' rows of the panel for greatest structural benefit.
According to a second aspect of the present invention, there is provided a method of assembling concrete sandwich panels, comprising:
inserting a plurality of first connectors through an insulation layer such that the first connectors are installed perpendicular to the insulation layer;
inserting further connectors through the insulation layer adjacent the first connectors and oriented at angles relative to the first connectors; and
installing the insulation layer with the first and further connectors between two layers of poured concrete such that opposed ends of each of the first and further connectors are embedded in the two layers of concrete.
According to one embodiment of the invention, a first layer of concrete is poured, insulation layer is placed on top and then the first and second connector pins are pushed through the insulation and into the underlying concrete before the concrete has set. Then, a second layer of concrete is poured on top of the insulation layer.
According to a third aspect of the present invention, there is provided a concrete sandwich panel assembled according to the method of the second aspect.
There is also disclosed herein a device for forming pilot holes in the insulation layer for use in the method of the second aspect of the invention.
Advantageously, the provision of connectors at an angle to the perpendicular connectors may allow for a reduction in thickness of the first layer of concrete by distributing the structural load over both layers of concrete, which significantly reduces material costs. For example, a conventional building panel as described above might have a first, structural concrete layer of l50mm and a second concrete layer of 50mm, whereas an embodiment of the present invention designed for the same application could have two concrete layers each having a thickness of 70mm. Considering the same 50mm insulation layer between the two concrete layers, the total thickness of the concrete sandwich panel resulting from the present invention is l90mm, as compared with a thickness of 250mm for the conventional panel. Alternatively, the thickness of the insulation layer may be increased with the reduction of concrete wythe thickness, thereby maintaining the same overall panel thickness but with enhanced thermal properties.
The invention may be better understood from the following detailed description of embodiments thereof, presented by way of example only, and with reference to the accompanying drawings, in which:
Figure 1A is a diagrammatic illustration of a building structure incorporating a concrete sandwich panel;
Figure 1B is a diagrammatic perspective view of the concrete sandwich panel of Figure 1A, shown in isolation;
Figure 1C is a sectional view through X-X of the concrete sandwich panel of Figure 1B;
Figure 2 shows an example of a connector pin for use in assembling concrete sandwich panels;
Figure 3A is a diagrammatic perspective view of a concrete sandwich panel according to an embodiment of the present invention; Figure 3B is a sectional view through Y-Y of the concrete sandwich panel of Figure 3 A;
Figures 4A, 4B and 4C are diagrammatic perspective, vertical-section and horizontal-section views, respectively, of a concrete sandwich panel according to an embodiment of the invention;
Figure 5 is a flow chart diagram of a procedure for fabricating a concrete sandwich panel according to embodiments of the invention;
Figures 6A and 6B are top and end elevation views, respectively, of a jig for use in fabrication of a concrete sandwich panel according to embodiments of the invention; and
Figures 7A and 7B are side and end elevation views, respectively, of the jig of Figure 6, showing internal features thereof.
With reference to Figure 1A, a building structure 10 is diagrammatically illustrated incorporating a concrete sandwich panel 20 in a vertical side wall, the panel having external facing layer 22. Figure 1B shows the concrete sandwich panel 20 in isolation in horizontal orientation with the layer 22 facing upward. Figure 1C illustrates the concrete sandwich panel 20 in sectional view through X-X of Figure 1B, fabricated according to conventional principles. As shown, the concrete sandwich panel 20 includes a structural concrete layer 26, a non-structural concrete layer 22 and an insulation layer 24 situated between the two concrete layers. In the sectional view (Figure 1C) it can be seen that the layers of the concrete sandwich panel 20 are held together with a series of regularly spaced connector pins 30, which extend normal to the plane of the concrete sandwich panel. In a concrete sandwich panel of this form the first, structural concrete layer 26 has a greater thickness (e.g. l50mm) as compared to the second, non-structural concrete layer 22 and the insulation layer 24 (each 50mm in thickness, for example).
Surprisingly, it has been found that by fabricating a concrete sandwich panel in which some of the connector pins have a different orientation, it is possible to produce a concrete sandwich panel with substantially improved composite action properties compared to conventional panels, particularly if pins with different orientation are located in rows close to the edges of the panel. In other words, the modified panel construction facilitates both of the concrete layers to work in unified fashion to resist loads, with the result that a panel of the same total thickness will be stronger, or a panel of the same strength may be thinner.
In particular, it has been found that by placing two additional pins at equal and opposite angles (e.g. 45°) relative to selected perpendicularly installed pins, composite action of up to 100% can be achieved.
Figures 3A and 3B, and Figures 4A-4C show a concrete sandwich panel 50 fabricated in accordance with an embodiment of the invention. As with a conventional sandwich panel, the panel 50 has first and second concrete layers (52, 56) with a layer of an insulative material (54) therebetween. Embedded within the sandwich layer construction of the panel 50 is an array of connector pins, each of which extends through the insulation layer 54 and has respective ends secured in the concrete layers 52, 56. The connector pins are generally evenly spaced from one another across the two major dimensions of the panel. Most of the connector pins (i.e. those labelled 60 in the Figures) are oriented substantially normal to the plane of the panel 50. A selection of the connector pins, however, have angled orientations, such as those indicated at 70 in the Figures. As seen best in Figures 4A and 4B, in the panel 50 the top and bottom rows of connector pins (with respect to how the panel will be oriented in use) include additional pins that are angled at approximately +45° and -45°.
Due to the improved resistance to differential axial and rotational displacement using the angled pins, it is possible to reduce the thickness of the first, structural concrete layer (e.g. layer 56) to 70mm (as compared to l50mm for layer 26 in the conventional panel structure), and increase the thickness of the other concrete layer (52) to 70mm (as compared to 50mm for conventional structure layer 22) while maintaining approximately the same load bearing capacity of the panel. In other words, using this arrangement both concrete layers act as structural layers and the panel can be made significantly thinner, saving on material and cost.
A procedure 200 for fabricating a concrete sandwich panel according to embodiments of the invention is illustrated in the form of a flow chart diagram in Figure 5. The panel fabrication process begins with operation 202, wherein a formwork mold is constructed according to the desired dimensions of the panel to be fabricated. The next operations 204- 210 involve preparation of the insulation layer sheet, which should be done before pouring of the first concrete layer. First the sheet material that will be used for the insulation layer is cut to size for the desired panel dimensions (operation 204). The insulation layer may comprise one or more of a range of insulative sheet materials, preferably a form of closed cell polymer foam such as expanded or extruded polystyrene. With the insulation layer sheet cut to appropriate size, one face of the sheet is then marked as a guide for connector pin placements (operation 206). For ease of fabrication the connector pin location markings may comprise a regular grid, for example, with normal pin placings at the grid vertices.
For some 'soft' insulation layer materials the connector pins can be pressed into the sheet material at the placement locations without prior preparation. However, where a 'hard' material is used, such as extruded polystyrene, it may be desirable to first create pilot holes at the placement locations for the pins to be inserted into (operation 208). For example, for placement of the angled connector pins it is possible to first create pilot holes using a guide jig to ensure consistent spacing and angular orientation. One particular example of a guide jig 100 for this purpose is shown in Figures 6 and 7 and described below.
The jig 100 as seen in Figures 6A and 6B has a generally rectangular block-shaped body that may be made from molded or printed polymer material, for example. The jig has opposed, flat top and bottom surfaces 110, 120 and spiked feet 125 centrally located at the bottom edge of each of the sides. In use, the feet 125 can be aligned with grid markings on the insulation sheet whereupon a central passage 112 will be aligned with the grid vertex. When the jig located on the insulation sheet and pressed into the surface, spikes on the underside of the feet 125 engage the sheet material to hold the jig temporarily in place whilst pilot holes are formed. The jig 100 has three passages formed through the body that extend from the top surface 110 to the bottom surface 120. The centrally located passage 112 is oriented perpendicular to the flat bottom surface 120 which lies against the insulation sheet in use. Two additional passages 114 and 116 are angled and offset with respect to the central passage 112, as seen best in Figures 7A and 7B which reveal the internal structure of the jig.
To create pilot holes for pins in the insulation layer sheet, the jig 100 is placed to the sheet surface in the desired location using the feet 125 to align with grid markings and to hold the jig in place. Then, a drill or other sharp implement can be inserted into each of the passages 112, 114 and 116 in turn to bore or pierce through the insulation layer sheet underneath in line the respective passages. The pilot holes thus formed will comprise a central normal hole with two angled, offset holes, one to each side.
Referring again to Figure 5, once the pilot holes have been created in the insulation layer sheet, respective connector pins are inserted into the pilot holes from one side, but not extending all the way through (operation 210).
In operation 212 the first concrete layer is poured in the panel form, which may also include installation of reinforcing steel before pouring the concrete. Before the concrete has set, the insulation layer sheet with fitted connector pins is laid onto the top surface of the first concrete layer (operation 214). Once the insulation layer sheet is correctly positioned, the connector pins are pressed through into the wet concrete. Referring to Figure 2, the pins 30 may have a flange 32 that provides a physical stop, or at least a visual indication of when the pin has been inserted to the correct extent. Preferably the connector pins that are inserted at an angle (e.g. pins 70) are somewhat longer than those that are inserted perpendicular (e.g. pins 60) so that the ends are embedded to the same overall depth into the concrete layer. After the connector pins have all been fully seated into the first concrete layer, including those inserted at respective angles to the perpendicular, the equivalent extent of the pins remain projecting from the top surface of the insulation layer. Reinforcing steel (if necessary) can then be installed on top of the insulation layer and the second concrete layer is poured (operation 216). When the concrete has sufficiently cured, the completed concrete sandwich panel can be removed from the form.
The angled pins are preferably inserted at approximately 45°, slanting in the vertical dimension of the panel when considered in its intended orientation in use. The angled pins are preferably of a greater length than the pins provided perpendicular to the plane of the panel. For example, a concrete sandwich panel constructed in accordance with an embodiment of the present invention may have two concrete layers each 70mm thick on either side of an insulation layer 50mm thick, interconnected by perpendicular pins l50mm in length and angled pins 200mm in length. The angled pins may be of a length such that, when installed at ±45° angles, the ends of the pins are roughly aligned with the ends of the perpendicular pins.
Although the embodiments of the invention described hereinabove utilise rows of angled pins 70 at the top and bottom of the panel, it is also possible to distribute the locations of the angled panels across the height and width of the panel in different patterns.
Experiment results
Comprehensive testing of panels fabricated according to embodiments of the present invention has been conducted by Dr. Marc Maguire at Utah State University, with pertinent results outlined below.
Eight full-scale precast concrete sandwich panels were tested to failure in flexure. The purpose of the testing was to obtain the composite action of the panels with connectors arranged in a“star pattern”, where one connector is placed perpendicular to the plane of the panel and two connectors are placed adjacent the perpendicular connector at 45° angles. The“star pattern” was concentrated on the outer edges of each panel. The goal was to determine if an arrangement using perpendicular and angled connectors could create a partially composite sandwich panel.
Eight full scale concrete sandwich panels were cast in two lengths, two concrete wythe thicknesses and two insulating wythe thicknesses. Concrete wythe thicknesses were 70 and 90mm. Insulating wythe thicknesses were 50mm and lOOmm. Panel lengths were 3.3 and 4.2m. All panels were l.8m in width.
Analysis of the test results compared observed ultimate moment from the testing with a fully composite and non-composite ultimate moment calculation for the tested panels. From this analysis it has been determined that nominal strength composite action was found to be between 90% and 142% for the panels tested. These calculated moments neglect strain hardening of the steel, to which may be attributed the measured percentage composite action results above 100%
While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example only, and not by way of limitation. It will be apparent to a person skilled in the relevant art that various changes in form and detail can be made therein without departing from the spirit and scope of the invention. Thus, the present invention should not be limited by any of the above described exemplary embodiments.
Throughout this specification and the claims which follow, unless the context requires otherwise, the word "comprise", and variations such as "comprises" and "comprising", will be understood to imply the inclusion of a stated integer or step or group of integers or steps but not the exclusion of any other integer or step or group of integers or steps. The reference in this specification to any prior publication (or information derived from it), or to any matter which is known, is not, and should not be taken as an acknowledgment or admission or any form of suggestion that that prior publication (or information derived from it) or known matter forms part of the common general knowledge in the field of endeavour to which this specification relates.

Claims

1. A method of assembling a concrete sandwich panel, comprising:
inserting a plurality of first connectors through an insulation layer such that the first connectors are installed perpendicular to the insulation layer;
inserting further connectors through the insulation layer adjacent the first connectors and oriented at angles relative to the first connectors; and
installing the insulation layer with the first and further connectors between two layers of poured concrete such that opposed ends of each of the first and further connectors are embedded in the two layers of concrete.
2. The method of claim 1 wherein a first of said concrete layers is poured, the insulation layer is placed on top of the first concrete layer, the first and further connector pins are pushed through the insulation and into the underlying concrete before the concrete has set, and then a second layer of concrete is poured on top of the insulation layer.
3. The method of claim 1 or claim 2, wherein the further connectors are oriented at substantially 45° relative to the first connectors.
4. The method of claim 1, 2 or 3 including forming pilot holes in the insulation layer corresponding to the respective locations and angles for insertion of the first and further connector pins.
5. The method of claim 4 wherein a pin placement jig is utilised for forming the pilot holes, the pin placement jig having predefined apertures therein corresponding to relative placement and angles of first and further connector pins.
6. A concrete sandwich panel constructed according to the method of any one of claims 1 to 5.
7. A concrete sandwich panel comprising first and second concrete layers with a layer of thermal insulation material therebetween, the panel including an array of first connector pins extending between the first and second concrete layers through the insulation layer substantially perpendicular to the plane of the insulation layer, and further including a plurality of second connector pins extending between the first and second concrete layers through the insulation layer at an angle to the perpendicular.
8. A concrete sandwich panel according to claim 7, wherein the second connector pins form an angle to the perpendicular between 40 and 50 degrees.
9. A concrete sandwich panel according to claim 8, wherein the second connector pins form an angle of substantially 45 -degrees to the perpendicular.
10. A concrete sandwich panel according to claim 7, 8 or 9 wherein the second connector pins are angled in the vertical dimension with respect to the panel when in use.
11. A concrete sandwich panel according to claim 10 wherein some of the second connector pins are angled 'up' others of the second connector pins are angled 'down'.
12. A concrete sandwich panel according to any one of claims 7 to 11 wherein the array of first connector pins is arranged in a plurality of rows and columns across the plane of the panel, and the second connector pins comprise additional pins arranged across one or more rows.
13. A concrete sandwich panel according to claim 12 wherein the second connector pins are arranged across the 'top' and 'bottom' rows of the panel.
14. A concrete sandwich panel according to any one of claims 7 to 11 wherein the array of first connector pins is arranged in a plurality of rows and columns across the plane of the panel, and the second connector pins comprise additional pins distributed in a selected pattern across the array.
PCT/US2019/020306 2018-03-06 2019-03-01 Improved concrete sandwich panels and fabrication method Ceased WO2019173142A1 (en)

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AU2018900717A AU2018900717A0 (en) 2018-03-06 Improved concrete sandwich panels and fabrication method
AU2019201225A AU2019201225B2 (en) 2018-03-06 2019-02-21 Improved Concrete Sandwich Panels and Fabrication Method
AU2019201225 2019-02-21

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Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0322923A2 (en) * 1987-12-31 1989-07-05 Thermomass Technology, Inc. Connecting rod mechanism for an insulated wall construction
CN102505776A (en) * 2011-10-19 2012-06-20 上海利物宝建筑科技有限公司 Sandwich heat insulation connecting piece
US9534384B2 (en) * 2015-03-27 2017-01-03 Keith N. Homenko Concrete and insulation composite structural building panels including angled shear connectors

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0322923A2 (en) * 1987-12-31 1989-07-05 Thermomass Technology, Inc. Connecting rod mechanism for an insulated wall construction
CN102505776A (en) * 2011-10-19 2012-06-20 上海利物宝建筑科技有限公司 Sandwich heat insulation connecting piece
US9534384B2 (en) * 2015-03-27 2017-01-03 Keith N. Homenko Concrete and insulation composite structural building panels including angled shear connectors

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