WO2019090397A1 - Improvements in structural cells, matrices and methods of assembly - Google Patents
Improvements in structural cells, matrices and methods of assembly Download PDFInfo
- Publication number
- WO2019090397A1 WO2019090397A1 PCT/AU2018/051212 AU2018051212W WO2019090397A1 WO 2019090397 A1 WO2019090397 A1 WO 2019090397A1 AU 2018051212 W AU2018051212 W AU 2018051212W WO 2019090397 A1 WO2019090397 A1 WO 2019090397A1
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- WIPO (PCT)
- Prior art keywords
- structural
- cell
- frame
- leg
- legs
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Classifications
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- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04G—SCAFFOLDING; FORMS; SHUTTERING; BUILDING IMPLEMENTS OR AIDS, OR THEIR USE; HANDLING BUILDING MATERIALS ON THE SITE; REPAIRING, BREAKING-UP OR OTHER WORK ON EXISTING BUILDINGS
- E04G11/00—Forms, shutterings, or falsework for making walls, floors, ceilings, or roofs
- E04G11/36—Forms, shutterings, or falsework for making walls, floors, ceilings, or roofs for floors, ceilings, or roofs of plane or curved surfaces end formpanels for floor shutterings
- E04G11/48—Supporting structures for shutterings or frames for floors or roofs
-
- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C11/00—Details of pavings
- E01C11/16—Reinforcements
- E01C11/18—Reinforcements for cement concrete pavings
-
- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C11/00—Details of pavings
- E01C11/16—Reinforcements
- E01C11/18—Reinforcements for cement concrete pavings
- E01C11/185—Reinforcements for cement concrete pavings the reinforcements extending up to the surface, e.g. anti-slip gratings
-
- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C11/00—Details of pavings
- E01C11/22—Gutters; Kerbs ; Surface drainage of streets, roads or like traffic areas
- E01C11/224—Surface drainage of streets
- E01C11/225—Paving specially adapted for through-the-surfacing drainage, e.g. perforated, porous; Preformed paving elements comprising, or adapted to form, passageways for carrying off drainage
- E01C11/226—Coherent pavings
-
- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C3/00—Foundations for pavings
- E01C3/006—Foundations for pavings made of prefabricated single units
-
- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C3/00—Foundations for pavings
- E01C3/06—Methods or arrangements for protecting foundations from destructive influences of moisture, frost or vibration
-
- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C9/00—Special pavings; Pavings for special parts of roads or airfields
- E01C9/004—Pavings specially adapted for allowing vegetation
-
- E—FIXED CONSTRUCTIONS
- E03—WATER SUPPLY; SEWERAGE
- E03F—SEWERS; CESSPOOLS
- E03F1/00—Methods, systems, or installations for draining-off sewage or storm water
- E03F1/002—Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells
-
- E—FIXED CONSTRUCTIONS
- E03—WATER SUPPLY; SEWERAGE
- E03F—SEWERS; CESSPOOLS
- E03F1/00—Methods, systems, or installations for draining-off sewage or storm water
- E03F1/002—Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells
- E03F1/005—Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells via box-shaped elements
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04G—SCAFFOLDING; FORMS; SHUTTERING; BUILDING IMPLEMENTS OR AIDS, OR THEIR USE; HANDLING BUILDING MATERIALS ON THE SITE; REPAIRING, BREAKING-UP OR OTHER WORK ON EXISTING BUILDINGS
- E04G17/00—Connecting or other auxiliary members for forms, falsework structures, or shutterings
- E04G17/02—Connecting or fastening means for non-metallic forming or stiffening elements
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04G—SCAFFOLDING; FORMS; SHUTTERING; BUILDING IMPLEMENTS OR AIDS, OR THEIR USE; HANDLING BUILDING MATERIALS ON THE SITE; REPAIRING, BREAKING-UP OR OTHER WORK ON EXISTING BUILDINGS
- E04G9/00—Forming or shuttering elements for general use
- E04G9/02—Forming boards or similar elements
- E04G9/05—Forming boards or similar elements the form surface being of plastics
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- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01F—ADDITIONAL WORK, SUCH AS EQUIPPING ROADS OR THE CONSTRUCTION OF PLATFORMS, HELICOPTER LANDING STAGES, SIGNS, SNOW FENCES, OR THE LIKE
- E01F5/00—Draining the sub-base, i.e. subgrade or ground-work, e.g. embankment of roads or of the ballastway of railways or draining-off road surface or ballastway drainage by trenches, culverts, or conduits or other specially adapted means
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B5/00—Floors; Floor construction with regard to insulation; Connections specially adapted therefor
- E04B5/16—Load-carrying floor structures wholly or partly cast or similarly formed in situ
- E04B5/32—Floor structures wholly cast in situ with or without form units or reinforcements
- E04B5/326—Floor structures wholly cast in situ with or without form units or reinforcements with hollow filling elements
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04F—FINISHING WORK ON BUILDINGS, e.g. STAIRS, FLOORS
- E04F15/00—Flooring
- E04F15/02—Flooring or floor layers composed of a number of similar elements
- E04F15/024—Sectional false floors, e.g. computer floors
- E04F15/02405—Floor panels
- E04F15/02417—Floor panels made of box-like elements
Definitions
- Described herein is a structural cell formwork, structural cells, matrices and methods of assembly. More specifically, a formwork, structural cells and matrices using the structural cell form work/cells are described for positioning below a hardscape that define a void space therein, the formwork, structural cells, matrices using the cells and methods of assembly allowing in one embodiment the introduction of a structural fluid such as concrete in a part of parts of the formwork to alter the structural cell and matrix product characteristics.
- a structural fluid such as concrete
- Structural cells for under hardscapes that support a compressive load have been used for a number of years now.
- Art products are typically plastic mouldings using spaced apart legs and a base, top or other retraining structure to align the legs.
- the legs take up compressive loading on the cell allowing the void space inside the cell to be used for applications such as tree root growth in uncompacted soil or, water reservoir use where the void space is used to capture and retain storm water.
- structural cells or matrices using the structural cells where void space is needed in order to fill a volume and where some degree of structural strength and integrity is required - one example might be in the construction of roadside berms where structural cell matrices may provide an alternative to transporting and delivery of significant volumes of infill.
- One drawback of existing designs may be complexity. Another drawback may be in cost. A further drawback may be in structural strength achieved from plastic. Another drawback may be a perceived lack of structural capability in civil and structural applications from a material like plastic. A further drawback may be that of plastic deflection whereby plastic art cells may move elastically when placed under load which is an issue when brittle or non-elastic materials are coupled with the cells and matrices.
- Structural cell formwork, cells and matrices using the structural cell form work/cells are described herein for positioning below a hardscape that define a void space therein, the formwork, structural cells, matrices using the cells and, methods of assembly, allowing in one embodiment the introduction of a structural fluid such as concrete to provide an alternative structural cell and matrix product.
- a structural cell formwork that is configured to receive and retain a structural fluid therein, the structural cell comprising: a plurality of hollow legs integrally linked to a frame at a first frame end, the frame linking the legs together and the frame defining a generally flat plane with the legs extending substantially orthogonally away from the first frame end about the frame flat plane to a leg terminal end; and wherein the frame and hollow leg interior collectively define an internal void space that receives and retains the structural fluid placed therein; and wherein the frame links the legs together via lateral supports located about the frame end of each leg and wherein the lateral supports, leg frame end surrounds and legs collectively define a common hollow, this hollow defining an internal void space.
- a structural cell assembly comprising: a structural cell with a plurality of legs integrally linked to a frame at a first frame end, the frame linking the legs together and the frame defining a generally flat plane with the legs extending substantially orthogonally away from the first frame end to a leg terminal end; and a separate plate engaging the legs, the separate plate comprising: linked sockets, each socket engaging the leg terminal end; and/or linked sockets, each socket engaging the leg frame ends or a part thereof.
- a load bearing matrix formed from the structural cell formwork substantially as described above comprising a plurality of structural cells aligned vertically and/or horizontally.
- a structural cell formed from hardened structural fluid the structural cell formed from hardened structural fluid, the structural cell produced using the cell formwork substantially as described above wherein a structural cell free void space is defined by the frame width and depth and the leg height, less any space used within this volume for the legs or frame parts.
- a load bearing matrix comprising: a plurality of structural cells stacked vertically and/or horizontally wherein each structural cell is formed as one element from hardened structural fluid, each structural cell comprising: a plurality of solid legs linked to a frame at a first frame end, the frame defining a generally flat plane with the legs extending substantially orthogonally away from the first frame end to a leg terminal end; and wherein the structural cell defines a free void space therein, the free void space defined by the frame width and depth and the leg height, less any space used within this volume for the legs or frame parts.
- a method of forming a load bearing matrix comprising the steps of: select at least one structural cell substantially as described above and a substrate on which the load bearing matrix will be formed; place separate plates on the substrate; place a first layer of structural cells on the separate plates; repeat placing of structural cell layers vertically until the desired matrix height is reached; place separate plates on top of the final structural cell layer; and optionally, placing a load on the matrix.
- Advantages of the above may include elimination of deflection of the legs or other cell parts when the cell or matrix of cells are subjected to a compressive load.
- Deflection using art products may be very low but this still may be of some importance when used beneath pavements subjected to unrestricted or dynamic vertical loads.
- the structural cell described may better withstand compressive loads and may be filled with a structural fluid like concrete in order to completely prevent any vertical deflection at all. Concrete in particular may represent a useful structural fluid since it is well understood and widely used and accepted in structural applications.
- Figure 1 illustrates an exploded perspective view of one configuration of structural cell matrix
- Figure 2 illustrates an exploded perspective view of an alternative configuration of a structural cell matrix
- Figure 3 illustrates an embodiment of a perspective view from above of a 3x3 leg configuration frame and legs
- Figure 4 illustrates the 3x3 frame and leg arrangement above in a plan view
- Figure 5 illustrates the 3x3 frame and leg arrangement above in a side view
- Figure 6 illustrates a perspective view of a free collar
- Figure 7 illustrates a perspective view of a separate frame
- Figure 8 illustrates a plan view of a matrix comprising four 3x3 frame and leg units and a detail view D;
- Figure 9 illustrates a side view of the matrix above and a detail view A
- Figure 10 illustrates a perspective view from above of a part assembled matrix
- Figure 11 illustrates detail E noted in Figure 10 above
- Figure 12 illustrates detail C noted in Figure 9 above
- Figure 13 illustrates a perspective view from above of an alternative part assembled matrix
- Figure 14 illustrates a side view of the alternative part assembled matrix of
- a structural cell formwork, cells and matrices using the structural cell form work/cells are described herein for positioning below a hardscape that define a void space therein, the formwork, structural cells, matrices using the cells and, methods of assembly, allowing in one embodiment the introduction of a structural fluid such as concrete to provide an alternative structural cell and matrix product.
- the term 'about' or 'approximately' and grammatical variations thereof mean a quantity, level, degree, value, number, frequency, percentage, dimension, size, amount, weight or length that varies by as much as 30, 25, 20, 15, 10, 9, 8, 7, 6, 5, 4, 3, 2, or 1% to a reference quantity, level, degree, value, number, frequency, percentage, dimension, size, amount, weight or length.
- substantially' or grammatical variations thereof refers to at least about 50%, for example 75%, 85%, 95% or 98%.
- the term 'matrix' and grammatical variations thereof refers to multiple structural cells aligned in a horizontal plane, aligned in a vertical plane and/or aligned in both a horizontal and vertical plane.
- the term 'structural' or grammatical variations thereof refers in the context of this specification to the ability to withstand a load force, typically being a substantially compressive load force on the object described.
- the load force may be static or dynamic such as from road, pavements, soil, stone, vehicles, pedestrians and so on.
- a structural cell formwork that is configured to receive and retain a structural fluid therein, the structural cell formwork comprising: a plurality of hollow legs integrally linked to a frame at a first frame end, the frame linking the legs together and the frame defining a generally flat plane with the legs extending substantially orthogonally away from the first frame end about the frame flat plane to a leg terminal end; and wherein the frame and hollow leg interior collectively define an internal void space that receives and retains the structural fluid placed therein; and wherein the frame links the legs together via lateral supports located about the frame end of each leg and wherein the lateral supports, leg frame end surrounds and legs collectively define a common hollow, this hollow defining an internal void space configured to receive and retain the structural fluid.
- the internal void space may be at least approximately 1, or 2, or 3, or 4, or 5, or 6, or 7, or 8, or 9, or 10, or 11, or 12, or 13, or 14, or 15, or 16, or 17, or 18, or 19, or 20, or 21, or 22, or 23, or 24, or 25% of the overall structural cell volume.
- the structural cell internal void space may be approximately 15-25%, or 10-15%, or 5-10%, or 1- 5% of the overall structural cell volume.
- the internal void space may be substantially located within the hollow legs.
- the frame may comprise lateral supports linking the legs together about open leg ends.
- the lateral supports and leg ends may together define a common hollow that forms the entire internal void space i.e. a continuous hollow so that, when a structural fluid is added to the hollow, the structural fluid forms a continuous structure without gaps or segments missing if the formwork is removed.
- the common hollow may instead be regions of the lateral supports and/or hollow leg ends.
- the common hollow may be segregated into different regions for example using at least one spar or rib in the frame lateral supports or legs.
- the structural cell may have an additional structural fluid added and the structural cell itself merely acts to retain the structural fluid and does not itself provide any significant structural load capacity to the hardscape, instead only having sufficient strength to receive and retain structural fluid until the structural fluid is set.
- the formwork may have a compressive strength of less than 150kPa alone but, a hardened cell and formwork combination or a hardened structural fluid with the formwork removed post hardening, may have a compressive strength in excess of 300kPa.
- the formwork may flex if a compression load is placed thereon in the absence of a structural fluid but, if hardened structural fluid is present in the formwork, the formwork and hardened structural fluid will not flex or elastically deform until or substantially around the maximum compressive strength of the hardened structural fluid.
- a structural cell assembly comprising: a structural cell with a plurality of legs integrally linked to a frame at a first frame end, the frame linking the legs together and the frame defining a generally flat plane with the legs extending substantially orthogonally away from the first frame end to a leg terminal end; and a separate plate engaging the legs, the separate plate comprising: linked sockets, each socket engaging the leg terminal end; and/or linked sockets, each socket engaging the leg frame ends or a part thereof.
- the structural cell may resist a compressive load imposed about the leg longitudinal axis or plurality of leg axes.
- the structural cell absent of any structural fluid may have a crush resistance or compressive strength of at least approximately 100, or 125, or 150, or 175, or 200, or 225, or 250, or 275, or 300, or 325, or 350, or 375, or 400, or 425, or 450, or 475, or 500, or 525, or 550, or 575, or 600kPa.
- the structural cell described may have a compressive strength of greater than 150kPa.
- the structural cell described may have a compressive strength of greater than 300kPa.
- the exact compressive strength may depend on the final application - low load bearing applications may for example require minimal compressive strength while high load bearing applications, such as a roadway bearing heavy vehicles, may require significantly more compressive strength.
- the use or otherwise of a structural fluid in the cell may also have some bearing on the compressive strength of the cell described herein.
- the structural cell may have an additional structural fluid added and the structural cell itself may merely act to receive and retain the structural fluid, at least until hardening or setting, and may not itself provide any significant structural load capacity to the hardscape. In this embodiment, the structural cell itself may even have a compressive strength below lOOkPa.
- art structural cells may achieve similar (or lower) compressive strength however, the inventor has found that the material volume required to form the structural cells described herein is far more efficient relative to compressive strength.
- the inventor has found that art structural cells which achieve compressive strengths of 150kPa or 300kPa using 10, or 15, or 20, or 25, or 30, or 35, or 40, or 45, or 50% more material volume than a similar structural cell described herein for the same compressive strength rating.
- This material volume (usually plastic) saving equates to significant cost benefits in terms of materials used to manufacture the cells and, also considerably faster manufacture (perhaps up to 20% faster manufacturing speed in the inventor's experience).
- the compressive strength noted above may be measured by placing a structural cell between two steel plates of a similar or greater area as the cell width and depth.
- the steel plates used may typically be 20-30mm thick.
- the steel plate weights may apply a fixed measurable force load/pressure to the cell between the steel plates. Additional force load/pressure may then be applied to the structural cell between the steel plates until at least partial collapse / plastic deformation of the structural cell occurs.
- the load or pressure at which collapse/plastic deformation occurs may be defined as being the compressive strength of the structural cell.
- compressive strength as measured above is not a perfect measure of structural cell integrity as, at least a degree of elastic deformation may occur to the structural cell prior to collapse/plastic deformation.
- the true structural strength if elastic deformation is used as a primary measure may in fact be 5, or 10, or 15, or 20, or 25, or 30%) lower than the measured compressive strength at which collapse occurs.
- the compressive strength of art plastic cells may be significantly overstated.
- the structural cell described herein may be designed, even without a structural fluid, to minimise elastic deformation or deflection so that the structural cell resists elastic deformation / deflection up to a point around 20, or 15, or 10, or 5% below the final compressive strength when collapse / plastic deformation occurs. Whilst not wanting to be bound to theory, it is understood that at least in part, this additional resistance to deflection may be due to way the frame of the structural cell described herein is arranged relative to the legs and/or the circular/conical leg shape acting to efficiently transfer a load to the frame/cell.
- the structural cell such as the formwork described above may be designed so that, without a structural fluid present in the formwork for example, the cell/formwork may elastically deform at least to some extent if a structural load is placed thereon.
- One reason for this embodiment may be to reduce the amount of material needed to produce the cell/formwork to a point sufficient to receive and retain a structural fluid therein but not in itself sufficient for the final structural application, the structural fluid in his case, once added, providing the desired structural strength and rigidity.
- the structural cell may at least partly bear the load of a hardscape placed on the structural cell.
- the structural cell may at least partly bear a load applied by an object on a hardscape placed over the structural cell.
- the structural cell may bear the load of a structural fluid poured therein.
- the overall structural cell/formwork shape may be substantially defined by the extent of the frame width, depth and the leg length. There may be no other items or parts present about the structural cell/formwork height other than the legs. When viewed side on, each structural cell/formwork may present unobstructed openings or void space completely through the structural cell/formwork between the legs.
- the overall structural cell formwork and/or cell volume may be defined by a free void space, an internal void space and a portion of structural cell/formwork material itself.
- the free void space may be the space defined by the frame width and depth and the leg height less any space used within this volume for the legs or frame parts and any internal void space within the legs and frame.
- the internal void space may be defined by any volume of space within the legs or frame not accessible from within the free void space.
- none of the leg volume may be accessible from the free void space if the legs are continuous in form along their length, for example being solid legs or alternatively being hollow legs but without any openings accessible from inside the free void space.
- at least some of the leg volume may be accessible to the free void space if the leg or legs are hollow internally and if an opening existed in the leg sides for example. Either option may be possible depending on the desired end configuration and outcome.
- the free void space may be at least approximately 75, or 76, or 77, or 78, or
- the structural cell/formwork free void space may be approximately 75-85%, or 80-85%), or 85-90%) of the overall structural cell/formwork volume.
- This free void space may be continuous. That is, the free void space may not be segmented from other free void spaces and a fluid or solid placed into the free void space may evenly flow and fill all of the available free void space.
- the internal void space may be at least approximately 1, or 2, or 3, or 4, or 5, or 6, or 7, or 8, or 9, or 10, or 11, or 12, or 13, or 14, or 15, or 16, or 17, or 18, or 19, or 20, or 21, or 22, or 23, or 24, or 25%> of the overall structural cell/formwork volume.
- the structural cell/formwork internal void space may be approximately 15-25%, or 10-15%), or 5-10%, or 1- 5%> of the overall structural cell/formwork volume.
- This internal void space may be continuous. That is, the internal void space may not be segmented from other internal void spaces and a fluid such as a structural fluid placed into the internal void space may evenly flow and fill all of the available internal void space.
- the structural cell may have multiple legs, the legs arranged relative to each other in regular or even patterns that collectively spread a compressive load placed on the structural cell frame.
- the structural cell may have two legs.
- the two legs may be arranged beside each other in a common vertical plane.
- the structural cell may have three legs.
- the three legs may be arranged beside each other in a common vertical plane.
- the three legs may alternatively be arranged to form a triangular shape about a horizontal plane.
- the structural cell may have four legs.
- the four legs may be arranged beside each other in a common vertical plane.
- the four legs may alternatively be arranged to form a square shape about a horizontal plane.
- the structural cell may have five legs.
- the five legs may be arranged beside each other in a common vertical plane.
- the five legs may alternatively be arranged to form a pentagon shape about a horizontal plane.
- the structural cell may have six legs.
- the six legs may be arranged beside each other in a common vertical plane.
- the six legs may alternatively be arranged to form a rectangular shape about a horizontal plane.
- the six legs may alternatively be arranged to form a triangular shape about a horizontal plane.
- the six legs may alternatively be arranged to form a hexagon shape about a horizontal plane.
- the structural cell may have nine legs.
- the nine legs may be arranged beside each other in a common vertical plane.
- the nine legs may alternatively be arranged to form a square shape about a horizontal plane.
- the structural cell may have ten or more legs, the legs arranged in repeating patterns that evenly spread a compressive load placed thereon.
- Leg Shape
- the legs may be substantially round or elliptical in cross-section and tubular in length.
- the tubular legs may be conical.
- the tubular legs may alternatively be at least in part frustoconical along the leg length.
- the legs may be polygonal in cross-section at least in part along the leg length.
- the polygonal leg cross-section may be triangular, square, pentagonal, hexagonal, octagonal and so on.
- the structural cell legs may have a common cross-sectional form along the leg length.
- the structural cell legs may have a varying cross-sectional form along the leg length.
- the legs may be widest about the first frame end and narrowest at the terminal end.
- the widest leg diameter may be less than 12, or 11, or 10, or 9, or 8 inches and the narrowest leg diameter may be less than 8, or 7, or 6 inches.
- the widest diameter may be around 7.5 inches and the narrowest diameter may be around 5.5 inches however the exact dimensions may vary considerably between designs.
- the legs may be at least partly hollow.
- the legs may be at least partially open at: the leg frame end; the leg terminal end; both the leg frame end and the leg terminal end.
- the legs may be generally straight although, non-straight e.g. bent legs could also be used. Straight legs may be useful to efficiently transfer a compressive load force along the leg length.
- the structural cell legs may have a common length.
- the leg length may be fixed, each leg being a continuous integral component.
- the structural cell leg length may alternatively be adjustable. Leg length may for example be adjusted using a telescoping assembly. Leg length may alternatively be adjusted by fitting an additional leg section to a first leg section.
- the structural cell leg length may be approximately 150, or 175, or 200, or
- the structural cell leg length may be approximately 5, or 6, or 7, or 8, or 9, or 10, or 11, or 12, or 13, or 14, or 15, or 16, or 17, or 18, or 19, or 20, or 21, or 22, or 23, or 24, or 25, or 26, or 27, or 28, or 29, or 30 inches long.
- the structural cell leg may for example be 5- 30 inches long. In one embodiment, the structural cell leg length may be approximately 5-15, or 8-12, or around 10 inches long. In an alternatively embodiment, the leg length may be approximately 15-25, or 16-23, or 17-21, or around 20 inches long.
- the structural cell legs and frame may be one material formed together i.e. integral.
- the legs may be moulded with the frame as one element.
- the frame may link the legs together via lateral supports located about the first frame end of each leg.
- the frame may have a top forming a substantially flat plane that may be generally in a horizontal orientation in anticipated applications but may be angled relative to a horizontal plane if desired (e.g. by up to 1, or 2, or 3, or 4, or 5 degrees), for example to account for substrate angle variations such as uneven ground.
- the frame may define the position of each leg relative to each other leg, fixing the leg in position within the overall structural cell volume.
- the frame may spread a compressive point load across the structural cell legs.
- the frame may provide greater rigidity to a structural cell matrix when multiple structural cells are used together.
- the greater rigidity may prevent the structural cell legs from deforming or moving such as splaying or buckling when under a compressive load.
- each frame lateral support may meet each leg frame end at approximately 180 degrees to each other lateral support.
- each frame lateral support may meet each leg frame end at right angles to each other lateral support.
- each frame lateral support may meet each leg frame end at approximate right angles - usually within the range of 70-110 degrees to each other lateral support.
- Each lateral support may be elongated and narrower in width than first frame end leg diameter size.
- Each lateral support may be linear and straight along the elongated length.
- Each lateral support may be non-linear and varies in straightness along the elongated length.
- Each lateral support may have an arc shape along the elongated length.
- Each lateral support may have a width that is approximately 25, or 30, or 35, or 40, or 45, or 50, or 55, or 60, or 65 or 70, or 75% of the diameter of the first frame end of the leg.
- the lateral support width may be from 25-75%, or 40-60%), or 45-55%) or approximately 50% of the diameter of the first frame end of the leg.
- Each lateral support may have a length from leg frame side to leg frame side that is approximately 50, or 55, or 60, or 65, or 70, or 75, or 80, or 85, or 90, or 95, or 100, or 105, or 110, or 115, or 120, or 125, or 130, or 135, or 140, or 145, or 150% that of the diameter of the first frame end of the leg.
- the lateral support length from leg frame side to leg frame side may be approximately 50-150%), or 75-125%), or 90-110%), or approximately 100%) of the diameter of the first frame end of the leg.
- the frame width may be approximately 30, or 31, or 32, or 33, or 34, or 35, or 36, or 37, or 38, or 39, or 40 inches wide and deep.
- the frame width and depth may be approximately 30-40 inches, or 32-38 inches, or 35-37 inches, or approximately 36 inches square.
- the overall cell height from the terminal end of a leg to the top of the planar form defined by the top of the frame such as a frame lip or lips may be approximately 150, or 175, or 200, or 225, or 250, or 275, or 300, or 325, or 350, or 375, or 400% of the cell leg frame end diameter.
- the cell height may be approximately 5, or 6, or 7, or 8, or 9, or 10, or 11, or 12, or 13, or 14, or 15, or 16, or 17, or 18, or 19, or 20, or 21, or 22, or 23, or 24, or 25, or 26, or 27, or 28, or 29, or 30 inches high.
- the structural cell height may for example be 5- 30 inches high. In one embodiment, the structural cell height may be approximately 5-15, or 8-12, or around 10 inches high. In an alternatively embodiment, the structural cell height may be approximately 15-25, or 16-23, or 17-21, or around 20 inches high.
- the structural cell described herein may be proportionately larger than some art products. Whilst not being limited to the larger sizes noted, a larger structural cell size may be beneficial as this may speed manufacture through fewer units being required, larger more accessible tooling, faster installation on site, and potentially a reduction in the amount of plastic needed for a given matrix volume.
- the frame lateral supports, leg frame end surrounds and legs may collectively define a common hollow, this hollow defining an internal void space.
- the hollow may be bound by an extended lip or lips about the lateral supports and/or leg frame end surrounds.
- the common hollow may be the entire volume within all of the lateral supports and leg ends.
- the common hollow may instead be regions of the lateral supports and/or leg frame ends.
- the common hollow may be segregated into different regions for example using at least one spar or rib.
- each leg may open into the legs themselves, the hollow then defined by both the leg opening as well as any hollows defined by the leg frame end and lateral supports.
- the hollow or hollows may define a volume configured to receive and retain a stmctural fluid therein.
- the extended lip or lips of the frame may terminate at a common point so as to form a substantially planar finish.
- the extended lip or lips may follow the perimeter of all of the frame lateral supports and leg frame endings.
- the hollow may open in a direction opposite the direction in which the legs extend orthogonally away from the frame.
- the structural cell may be configured to receive and retain a structural fluid.
- the structural fluid may be placed into the structural cell internal void space or hollow as noted above.
- the structural fluid may be poured as a liquid or semi-liquid into the common socket or sockets and the structural fluid sets to a solid over time.
- the structural fluid may only attain structural capabilities once it becomes a solid or 'sets' .
- the structural fluid may be concrete.
- the structural fluid may be a thermoset polymer.
- the structural fluid may give the structural cell its structural capabilities and resistance to compressive load.
- the structural fluid may at least partly bear the load of a hardscape placed on the structural cell.
- the structural fluid may at least partly bear a load applied by an object on a hardscape placed over the structural cell.
- the structural cell may be separated from the structural fluid once the fluid has set, the structural fluid taking the same form as the structural cell defining a similar free void space within the set structural fluid shape.
- a load bearing matrix formed from the structural cell formwork substantially as described above comprising a plurality of structural cells aligned vertically and/or horizontally.
- the load bearing matrix may comprise a plurality of separate plates, each separate plate being approximately the same width and length as each structural cell, the separate plates located on top of the plurality of structural cells and/or below the plurality of structural cells; and each structural cell may comprise a plurality of legs integrally linked to a frame at a first leg frame end, the frame defining a generally flat plane with the legs extending substantially orthogonally away from the first leg frame end to a leg terminal end; and each separate plate comprises plate sockets linked together via lateral connectors that engage with either an opening in the first leg frame end of a first structural cell, or the leg terminal end of a second structural cell.
- the overall matrix volume may be defined by a free void space, an internal void space and a portion of structural cell material itself, wherein: the free void space of the matrix is the sum of each structural cell free void space, this structural cell free void space being the space defined by the frame width and depth and the leg height less any space used within this volume for the legs or frame parts and the internal volume defined by the legs and frame; and the internal void space of the matrix is the sum of each structural cell internal void space, this structural cell internal void space being any volume of space within the legs or frame not accessible from the matrix free void space.
- the matrix free void space may be at least approximately 75, or 76, or 77, or
- the matrix free void space may be approximately 75-85%, or 80- 85%, or 85-90% of the overall matrix volume.
- the matrix internal void space may be at least approximately 1, or 2, or 3, or
- the structural cell internal void space may be approximately 15-25%, or 10-15%), or 5-10%, or l-5%> of the overall matrix volume.
- the frame may form a horizontal plane structural cell top and the legs extend substantially orthogonally from the structural cell frame in a substantially vertical plane to provide the structural cell height.
- the structural cells may be aligned vertically with each structural cell frame being located above the legs ('leg down orientation').
- the frame may form a horizontal plane cell bottom and the legs extend substantially orthogonally from the cell frame in a vertical plane to provide the structural cell height, the legs terminating at a point above the frame ('leg up orientation'), this termination point being the top of the structural cell.
- this leg up orientation may be one where the structural cells are aligned vertically with each structural cell frame being located below the legs.
- the structural cells may be aligned in alternate orientation to form a matrix.
- the structural cells may be aligned vertically with each structural cell frame alternating in orientation from a first layer of structural cells in a frame located below the legs configuration (leg up orientation) to a second layer of structural cells in a frame located above the legs configuration (leg down orientation) and optionally, further alternating layers following the same alternating arrangement.
- the at least one separate plate may also be fitted intermediate first and second vertically stacked structural cells vertically as well on the base or top of a matrix.
- the choice of orientation of cell and matrix may be a combination of factors however, one governing factor may be the load to be taken by the cells and matrix and/or whether a structural fluid is used or not.
- one governing factor may be the load to be taken by the cells and matrix and/or whether a structural fluid is used or not.
- the load to be taken by the cells and matrix may be a leg down orientation.
- the substrate facing side of the cells do not spread a load as much as the reverse leg up orientation hence the lower loading scenario.
- leg down configuration or alternating leg up base layer and leg down next layer configurations may be useful where a structural fluid is used since the structural fluid can be poured into the wider frame end and the structural fluid pours down into the narrower legs and, in the case of an alternating matrix, the structural fluid may pass through leg openings at the leg distal ends and fill out the leg up cell frame region of the lower cell so as to give a larger substrate facing surface.
- One advantage of the cell shape described herein and the ability to orientate the cells in different ways is the ability of the matrix to deal with less than ideal substrates.
- Art products may depend on the substrate having been prepared, for example through compaction or through placement of a concrete surface, so that the art cell is applied to an already hard and level surface. This may be to address point load problems where an unprepared surface may lead to unwanted sagging or movement of the cell matrix about weaker or uneven regions.
- the cells described herein may, for example through leg up orientation do not require special substrate preparation since the frame of the cell has sufficient load spreading capability to avoid or minimise point loading.
- the separate plate may be substantially planar comprising plate sockets and plate lateral supports linking the plate sockets together in a desired configuration.
- the separate plate may be used to impart rigidity to a structural cell, for example retaining the leg terminal ends in a desired configuration even when under compressive loading.
- the separate plate may comprise linkages that may be used to link to other separate plates and the thereby help confer greater rigidity and strength to a matrix of structural cells.
- the position of the plate sockets and plate lateral supports may substantially mirror the configuration of the frame lateral supports and frame ends of the legs.
- each plate lateral support may meet each plate socket at 180 degrees to each other plate lateral support; in a generally square or rectangular arrangement, each plate lateral support may meet each leg end (frame or terminal leg end) at right angles to each other plate lateral support; each plate lateral support may be elongated and narrower in width than the plate socket diameter; each plate lateral support may have a width and/or depth that is approximately 25, or 30, or 35, or 40, or 45, or 50, or 55, or 60, or 65 or 70, or 75% of the diameter of the plate socket; each plate lateral support may have a length from plate socket to plate socket that is approximately 50, or 55, or 60, or 65, or 70, or 75, or 80, or 85, or 90, or 95, or 100, or 105, or 110, or 115, or 120, or 125, or 130, or 135, or 140, or 145, or 150% that of the diameter of the plate socket.
- the plate lateral supports may be ribbed elongated members.
- the plate lateral supports may have a U-shaped or H-shaped cross section.
- Each plate lateral support may be linear and straight along the support elongated length.
- each plate lateral support may be non-linear and vary in path along the support elongated length.
- Each plate lateral support may have an arc shape along the support elongated length.
- the plate sockets may have a cross-sectional shape that substantially complements and snugly fits the shape of the terminal end of each leg and/or the shape of the frame end of each leg. Reference is made above to a socket diameter implying a circular socket shape. As should be appreciated, the plate socket shape may vary from circular and reference to the term 'diameter' should not be seen as limiting.
- the sockets may be collar shaped with a substantially circular cross-section.
- the socket collar height may be approximately 10, or 15, or 20, or 25, or 30, or 35, or 40, or 45, or 50, or 55, or 60, or 65, or 70, or 75% that of the leg terminal end diameter.
- the socket collar height may be approximately 10-75%, or 20-75%), or 40-60%), or approximately 50% that of the leg terminal end diameter.
- the socket collar height may be approximately 10, or 15, or 20, or 25, or 30, or 35, or 40, or 45, or 50, or 55, or 60, or 65, or 70, or 75% that of the leg frame end diameter.
- the socket collar height may be approximately 10-75%, 20-75%, or 40-60%), or approximately 50% that of the leg frame end diameter.
- the socket collar height may be approximately 2, or 2.5, or 3, or 3.5, or 4, or 4.5, or 5, or 5.5, or 6 inches tall. In one embodiment the height may be approximately 2-6, or 3-5, or around 4 inches tall.
- the socket collar height may be approximately the same irrespective of use or otherwise of the plate at the leg terminal ends or frame ends.
- the plate sockets may have an open configuration so that, if a structural fluid is used, the structural fluid may pass through the plate sockets.
- Each plate socket may, if fitted to the frame, fit as a snug male fitting partly into a top female side of an opening in the leg frame end of a first structural cell.
- the opposing leg terminal end of a second structural cell may fit as a male fitting into the opening of the top female side of the plate socket.
- Reverse male/female configurations to the above may also be used.
- the socket collar may have frustroconical interior walls that allow the leg terminal end and/or leg frame end to mate snugly with the socket collar interior or exterior walls depending on the male/female orientation used.
- Each socket collar may be formed in two halves for example comprising: a first female half with frustroconical interior walls cambered so as to move from a wider opening diameter to a narrower mid-diameter and; a second male half with frustroconical exterior walls cambered so as to move from a narrower opening diameter to a wider mid-diameter.
- the socket collar exterior or interior may include friction modifying features to increase the retention such as keying or roughened surfaces or features to decrease the retention such as smoothed surfaces or material choices.
- The, or each, separate plate may optionally have at least one lateral connector used to link multiple plates across a common (e.g. horizontal) plane.
- the separate plates When used with the structural cell described above, the separate plates may be used to provide a cell matrix with horizontal plane stability acting to align the cells.
- These lateral connectors may be used in practice to connect abutting structural cells together. The connection may be about a substantially horizontal plane with no or minimal separation distance between the structural cells in the matrix other than the distance defined by the lateral connectors shape and form.
- the lateral connectors may, in one embodiment, have a shape and form that enables the legs of each structural cell in a matrix to be substantially equidistant to each other.
- the at least one lateral connector may extend from the separate plate laterally about a plane defined by the separate plate planar face.
- Each separate plate may comprise a plurality of lateral connectors.
- the separate plate lateral connectors may be integrally formed with other separate plate parts such as the plate lateral supports and/or plate sockets.
- the separate plate lateral connectors may not be separate parts.
- Each separate plate may have at least one lateral connector extending outwardly from a plate perimeter.
- the at least one lateral connector may extend outwardly in an orthogonal direction from a plate lateral support.
- a single lateral connector may extend from each plate lateral support between plate sockets.
- Each lateral connector may extend outwardly from a plate lateral support approximately 25, or 30, or 35, or 40, or 45, or 50, or 55, or 60, or 65, or 70, or 75% the diameter of a plate socket.
- Each lateral connector may terminate about the widest point of each plate socket so that the lateral connector ending is approximately level with a separate plate edge defined by the maximum socket outer face position.
- Each lateral connector may terminate with either a T-shaped member or a C- shaped member, the T-shape and C-shape substantially complementing each other so as to join together.
- the separate frame may comprise a 3x3 socket square shape and each outward facing plate lateral support comprises a lateral connector extending therefrom.
- the terminal end of each lateral connector may alternate between a T-shaped ending and a C-shaped ending on a first separate plate so as to complement alternating T-shaped or C-shaped endings of a further separate plate located alongside the first separate plate.
- a cell or cells may have lateral connectors extending from the cell side(s) to allow connection between abutting cells, typically about a horizontal plane.
- the cell lateral connectors may extend for example from the leg frame end.
- the cell lateral connection may as noted above be about a substantially horizontal plane with no or minimal separation distance between the structural cells in the matrix other than the distance defined by the cell lateral connector shape and form.
- the cell lateral connectors may, in one embodiment, have a shape and form that enables the legs of each structural cell in a matrix to be substantially equidistant to each other.
- the at least one lateral connector may extend from the cell frame laterally about a plane defined by the upper planar surface of the frame.
- Each cell may comprise a plurality of cell lateral connectors.
- the cell lateral connectors may be integrally formed with the cell and may extend the line generally defined by the connectors used to link the legs of the frame.
- the cell lateral connectors may not be separate parts.
- Each cell may have at least one lateral connector extending outwardly from a cell frame perimeter.
- the at least one cell lateral connector may extend outwardly in an orthogonal direction from a cell frame.
- Each cell lateral connector may extend outwardly from a cell frame approximately 25, or 30, or 35, or 40, or 45, or 50, or 55, or 60, or 65, or 70, or 75% the diameter of a plate socket.
- Each cell lateral connector may terminate with either a T-shaped member or a C-shaped member, the T-shape and C-shape substantially complementing each other so as to join together.
- the cell frame may comprise a 3x3 socket square shape and each outward portion of the frame comprises a cell lateral connector extending therefrom.
- the terminal end of each cell lateral connector may alternate between a T-shaped ending and a C-shaped ending so as to complement alternating T-shaped or C-shaped endings of a further cell located alongside the first cell.
- separate free sockets may be used alone with no separate plate or plate lateral supports linking the free sockets.
- the free socket or free sockets may be used between cells vertically so as to locate structural cells together.
- the free sockets may also provide a common spacing between structural cells.
- the free sockets may align multiple structural cells vertically and prevent movement of a structural cell matrix.
- the free sockets may be separate parts mated to the structural cells as required.
- the matrix may further comprise at least one free socket placed intermediate vertically spaced structural cells, each free socket linking together an opening in the frame end of a leg in a first structural cell with the terminal end of a leg in a second structural cell.
- each free socket may fit as a snug male fitting partly into the top female side of an opening in the frame end of a leg in a first cell.
- the opposing terminal end of a leg in a second cell may fit as a male fitting into the opening (female side) of the socket.
- the reverse male/female configuration may also be possible.
- the dimensions, form and function of the free socket may be largely identical to the plate socket and further details on this are provided above and not repeated here.
- the free sockets may, when placed inside the frame end of a leg, act to provide a footing or stop inside a leg opening that the exterior of a terminal end of a next cell leg abuts and is supported on. [0173]
- the free sockets may have an open configuration so that, if a structural fluid is used, the structural fluid may pass through the free sockets.
- the materials used to produce the structural cell above, the separate plate(s), and the free sockets may be selected from: plastics, composites, metals, metal alloys, and combinations thereof.
- Plastics if used may optionally be reinforced.
- the plastics may be reinforced using fibres such as glass fibres.
- Plastics if used may be at least in part recycled plastic.
- the structural cells, separate plates and free sockets may be moulded items.
- the structural cells, separate plates and free sockets may form a kit of parts with or without a set of instructions.
- the kit of parts may be stored and transported in a disassembled form and assembled in situ.
- the structural cells may nest together, the legs of one structural cell nesting into frame openings of the legs in a subsequent structural cell.
- the separate plates may be stacked on top of each other.
- each structural cell may be approximately 1, or 1.5, or 2, or 2.5, or 3, or 3.5, or 4, or 4.5, or 5, or 5.5, or 6, or 6.5, or 7, or 7.5, or 8, or 8.5, or 9, or 9.5, or 10kg each.
- each structural cell may weigh approximately 2 to 8kg.
- each structural cell may weigh approximately 3 to 5kg. If concrete is poured into the structural cells as described further below, the structural fluid taking up the load imposed on the cell, the amount of structural cell material may be reduced, potentially to only that needed to retain the structural fluid in place prior to hardening. As a result, the basic structural cell weight could be further reduced if desired.
- the different parts may be assembled toolessly. That is, the parts do not require the use of separate fasteners, hand tools such as hammers or screw drivers or power tools such as cordless drills in order to be assembled. Assembly uses a minimum of parts and can be completed with minimal training and experience.
- each structural cell in the matrix may approximately abut the other structural cell about a horizontal plane with no or minimal separation distance between the structural cells in the matrix.
- Each structural cell in the matrix may approximately abut the other structural cell about a horizontal plane so that the legs of each structural cell may be substantially equidistant to each other.
- Equidistant spacing may be achieved through use of extensions or widened frame construction or the lateral connectors noted above so as to still allow structural cell abutment but also impose a distance of separation between the structural cell legs.
- Separate linking members could also be used and reference to integral connectors or the lateral connectors noted earlier in this specification should not be seen as limiting.
- the matrix may further comprise at least one free socket placed intermediate vertical spaced structural cells, each free socket linking together an opening in the frame end of a leg in a first structural cell with the terminal end of a leg in a second structural cell.
- a structural cell formed from hardened structural fluid the structural cell formed from hardened structural fluid, the structural cell produced using the cell formwork substantially as described above wherein a structural cell free void space is defined by the frame width and depth and the leg height, less any space used within this volume for the legs or frame parts.
- a load bearing matrix comprising: a plurality of structural cells stacked vertically and/or horizontally wherein each structural cell is formed as one element from hardened structural fluid, each structural cell comprising: a plurality of solid legs linked to a frame at a first frame end, the frame defining a generally flat plane with the legs extending substantially orthogonally away from the first frame end to a leg terminal end; and wherein the structural cell defines a free void space therein, the free void space defined by the frame width and depth and the leg height, less any space used within this volume for the legs or frame parts.
- the structural fluid used to form the structural cell may be poured into a structural cell formwork and the structural cell formwork remains with the structural cell.
- the formwork may instead be removed once the structural fluid hardens.
- the structural fluid in the above cell and matrix may be concrete.
- the structural fluid in the above cell and matrix may be a thermoset polymer.
- the structural fluid in the above cell and matrix may give the structural cell/matrix its structural capabilities and resistance to compressive load.
- pouring of the structural fluid into the structural cell formwork may occur in situ at or about the final structural cell or matrix position.
- the structural cell and/or matrix described in the aspects above may have a compressive strength in excess of 300, or 400, or 500, or 600kPa.
- the structural cell and/or matrix described in the above aspects may have substantially no elastic deformation/deflection prior to the compressive strength being reached.
- a cell or matrix may be fitted with a blank or blanks.
- a blank may be configured to cover part or all of the hollow in the cell frame and legs, the hollow being a fluid holding portion e.g. internal void space, of the cell.
- a blank may be configured to cover part or all of the openings leading to the free void space inside the cell or matrix and block access to the internal void space.
- a blank may be configured to block access from the top of the cell into either the free or internal void scape of the cell or matrix.
- the blank or blanks may be used for example to segregate the different void spaces for example to allow the structural fluid to enter the internal void space but be excluded from the free void space.
- the blank prevents substrate such as water or soil entering the internal void space and only allows access to the free void space.
- the blank may also be used to support foot traffic on the cell or matrix and other items such as bar chairs for concrete placement.
- the cell(s) may be inserted into a pit or built above ground.
- Side panels may be erected around the cell/matrix to provide a solid wall or walls around the cell/matrix and hence provide a boundary for where substrate such as soil or water may extend to from the free void space inside the cell or matrix.
- a cell or matrix of cells may comprise a base panel or similar footing or footings that are placed on a substrate and on which the cell/cells are placed thereon.
- the base panel or footing(s) may have sufficient structural properties to prevent movement of the cell(s) or part thereof, particularly the cell(s) legs, when a compression load is placed on the cell(s).
- the base panel or footing may also have sufficient structural properties to prevent localised displacement of a part or all of a cell or cells into the substrate or ground on which the cell(s) are placed.
- the structural properties noted may be strength to support a compressive load and rigidity to prevent or minimise relative displacement about the base panel or footing area.
- the above described structural cell or matrices may have service lines running through at least one structural cell or at least part of the structural cell free void space.
- the at least one structural cell or at least part of the matrix may have a permeable or non-permeable wrap or barrier beneath, around or above the structural cell/matrix.
- This may be a geotextile, plastic wrap or other layer to separate the structural cell or matrix from the surrounding environment.
- the at least one structural cell or at least part of the structural cell free void space may be at least partly back filled with a substrate.
- the substrate may be selected from: soil or plant rooting media; filtration media; aggregate; and combinations thereof.
- the soil if used may act as a growing medium for rooting plants.
- the soil may be uncompacted.
- the soil may be partly compacted.
- the at least one structural cell or at least part of the matrix may bear a load thereon.
- the load may be a static or dynamic load.
- the load may be a hardscape.
- the hardscape may be a road or pavement.
- the hardscape may have a load placed thereon such as people, vehicles, machinery and so forth.
- the at least one structural cell or at least part of the matrix free void space may be left open and clear of any other materials.
- the matrix may allow ingress of water into at least part of the structural cell free void space. Egress of water from the structural cell/matrix free void space or a part thereof may also be prevented or slowed. Ingress and prevention of egress may be a way to catch and store storm water run off for alternative uses such as irrigation. This application and others are described in more detail below.
- the legs of one structural cell in a matrix may substantially align with the legs of a second and subsequent vertically stacked structural cell so as to provide a common transfer of compressive load down a single leg column from the top of a matrix to the bottom of the matrix. That is, there is a continuous alignment of the legs and transfer of compressive load across successive structural cells.
- Openings in the free void space of the matrix may be substantially continuous from top to bottom or side to side of the matrix. That is, the openings in the free void space of one structural cell may substantially align with the openings in any additional structural cells used.
- a cell matrix described may also comprise at least one aeration line.
- the aeration line may extend vertically through the matrix spanning some or all of the structural cells therein.
- a method of forming a load bearing matrix comprising the steps of: select at least one structural cell substantially as described above and a substrate on which the load bearing matrix will be formed; place separate plates on the substrate; place a first layer of structural cells on the separate plates; repeat placing of structural cell layers vertically until the desired matrix height is reached; place separate plates on top of the final structural cell layer; and optionally, placing a load on the matrix.
- the linking the cells and/or separate plates may be linked together via at least one lateral connector during the method above.
- barrier material may be positioned in the pit base or sides before the first separate plate layer is placed onto the pit substrate.
- free sockets and/or separate plates may be fitted to the lower layer of structural cells before placement of a further layer of structural cells thereon.
- the structural fluid may be poured into the at least one structural cell during matrix assembly.
- the cells and cell matrices described above may be used in a variety of ways both like traditional structural cells, as well as in new applications, such as those where leg or other part deflection was an issue or limiting factor.
- One example typical application may be to fill the cell void space with uncompacted soil so as to allow for tree root growth within the cell under a hardscape such as a road or pavement.
- the cells and matrices described may perform this function with or without concrete infill and thereby act in this traditional manner.
- An advantage though of the cell design described over the art is that the material requirements of the design described are, in the inventor's experience, lower than art designs meaning a lower overall cell cost.
- An alternative application may be to use the cell void space as a water reservoir where the void space is used to capture and retain, or at least partly retain, storm water.
- Retention of water may be indefinite or, alternatively for a predetermined period of time.
- Retention may be to provide a buffer, for example in stormwater drains, thereby reducing the impact of flash flood events on stormwater treatment systems by limiting the flow of water to a stormwater system.
- the limited flow may be pre-set to a volume that the system can cope with and thereby avoiding flooding, unwanted outfall or other undesirable events.
- Full retention may be used to store water for a future time when water is needed e.g. for irrigation.
- Liquid egress from the structural cell or matrix may be through the cell or matrix base or walls or even through an orifice. Retention may be achieved using impermeable layers around the outside of a structural cell volume or the outside of a matrix.
- the impermeable layer may have areas that are open e.g. to an orifice or through a filter so as to direct egress of liquid from the matrix.
- the cells or matrices may also be used as filters.
- stormwater run off may enter cells/matrices and the cells/matrices may contain filtration media.
- the stormwater in this example may pass through the filter material and be purified or screened prior to release into the ground or to a transport system post filtration.
- the same principle could be used for bunding for example around petrochemical storage tanks (or used in the ground surrounding petrochemical storage tanks) as a means to capture and even treat a spill.
- structural cells or matrices using the structural cells where void space is needed in order to fill a volume and where some degree of structural strength and integrity is required.
- One example might be in the construction of roadside berms, over bridges and the like where structural cell matrices may provide an alternative to transporting and delivery of significant volumes of infill.
- Another example may be in the construction of bunding around tanks, hill screening for privacy and security and so on.
- Another cell/matrix volume fill application may be about firewalls or partitions between building levels.
- the cell void space could be filled with flame retardant, service lines and so on.
- a yet further application may be to provide a spacing between a building roof top and garden on the roof top, the cells and matrix formed from the cells providing both a structural level that can be walked on as well as at least in part, a growing medium for trees or other larger rootball plants.
- a yet further application of the cells and matrix described may be to replace and/or supplement other load bearing materials in building foundations.
- domestic house foundations are constructed using so-called 'rib raft' or 'raft' foundations that have load bearing members amongst polystyrene or other high volume materials as a filler.
- the cells and matrices described herein may perform a similar function to the load bearing members and polystyrene fillers all from one matrix and, for example, only filling selected cells with concrete.
- Figures 1-14 illustrate various embodiments of one form of structural cell and matrix.
- a structural cell generally indicated by arrow 1 may be a combination of a plurality of legs 2 integrally linked to a frame 3 at a first frame end 4, the frame 3 linking the legs 2 together and defining a generally flat plane with the legs 2 extending substantially orthogonally away from the frame 3 plane to a leg 2 terminal end 5.
- the structural cell 1 may also comprise a separate plate 6 engaging the legs 2, the separate plate 6 comprising sockets 7 linking via plate lateral supports 14, each socket 7 engaging the leg 2 terminal ends 5.
- the sockets 7 engage the leg 2 frame 3 ends 4.
- Figure 1 illustrates one matrix arrangement starting with a separate plate 6 as a base, a cell 1 with legs 2 and a frame 3, then another separate plate 6, then a subsequent cell 1 with legs 2 and a frame 3, then topped with a further separate plate 6.
- Figure 2 illustrates an alternative arrangement where the separate plate 6 is used again on the base and top of the matrix however, intermediate the cells lie free sockets 8, one socket 8 for each leg 2 frame end 4. Note that a specific view of the free socket 8 is shown in Figure 6.
- the bottom side 9 of each free socket 8 engages the top of a leg 2 at the frame 3 end 4 of a leg 2. Engagement is by a male /female fitting, the free socket 8 lower end fitting as a male fitting into the female opening of the leg 2.
- the upper cell terminal leg 2 ends 5 fit again via a male/female connection, in this case, the leg 2 terminal ends 5 fit as male fittings into the top side 10 of the free socket 8.
- each structural cell may present openings completely through the structural cell or matrix between the legs 2.
- the overall structural cell 1 volume is defined by a free void space e.g. that between the cell 1 legs 2, an internal void space such as the open space inside the legs 2 and frame 3 and a portion of structural cell 1 material itself.
- the free void space is the space defined by the frame 3 width W and depth D and the leg 2 height H shown in Figure 3, Figure 4 and Figure 5 less any space used within this volume for the legs 2 or frame 3 parts and any internal void space within the legs 2 and frame3.
- the internal void space may be defined by any volume of space within the legs 2 or frame 3 not accessible from within the free void space.
- leg 2 volume may be accessible from the free void space if the legs 2 are continuous in form along their height H for example being solid legs (not shown) or alternatively being hollow legs 2 as shown in the Figures but without any openings accessible from inside the free void space.
- at least some of the leg 2 volume may be accessible to the free void space if the leg 2 or legs 2 are hollow internally and if an opening exists in the leg sides (not shown).
- the hardscape (not shown) may be a road or pavement laid over the top of a matrix, typically over the top of an uppermost separate plate 6.
- the structural cell may have multiple legs 2, the legs 2 arranged relative to each other in regular or even patterns that collectively spread a compressive load placed thereon.
- the Figures illustrate cells 1 with a total of nine legs 2 arranged in a 3x3 grid or square shape. This should not be seen as limiting since a variety of other leg 2 numbers and configurations may also be used.
- the legs 2 shown in the Figures are substantially round in cross-section and tubular in length having a frustroconical shape.
- the legs 2 may take other shapes and forms not shown.
- the tubular legs 2 are widest about the frame 3 end 4 and narrowest at the terminal end 5.
- the legs 2 shown in the Figures are hollow and open at the frame 3 end 4 with the terminal end 5 being closed. This may be a useful configuration when structural fluid hereafter referred to as being concrete is poured into the cells 1.
- the legs 2 have a common length or height H.
- the leg 2 height H may vary, in the embodiments illustrated being approximately 16-20 inches long although this dimension may be varied depending on the desired design and end applications.
- the structural cell 1 legs 2 and frame 3 as shown in the Figures are one material formed together i.e. integral.
- the frame 3 comprises lateral supports 11 linking the frame 3 end 4 of each leg 2, the frame 3 as a whole defining a generally flat plane.
- the frame 3 flat plane is in a horizontal orientation but this orientation may be angled (not shown) relative to a horizontal plane if desired (e.g. by up to 1, or 2, or 3, or 4, or 5 degrees), for example to account for substrate angle variations such as uneven ground.
- each frame 3 lateral support 11 meets each leg 2 frame 3 end 4 at approximately right angles (90 degrees) to each other lateral support 11.
- Each lateral support 11 is elongated and narrower in width than frame 3 end 4 leg 2 diameter size. Each lateral support 11 is linear and straight along the elongated length.
- Each lateral support 11 has a width that is approximately 50% of the diameter of the first frame 3 end 4 of the leg 2 however this width may be varied.
- Each lateral support 11 has a length from leg 2 frame 3 side to leg 2 frame 3 side that is approximately 100% of the diameter of the frame 3 end 4 of the leg 2.
- the frame 3 width and depth may be approximately 35-37 inches, or approximately 36 inches square.
- the overall cell 1 height H from the terminal end of a leg 2 to the top of the planar form defined by the top of the frame 3 such as a frame lip or lips 12 may be approximately 150 to 400% of the cell 1 leg 2 frame 3 end 4 diameter. In the Figures, the overall cell 1 height is around 16-19 inches or approximately 18 inches high.
- the frame 3 lateral supports 11 and leg 2 frame 3 end 4 surrounds may collectively define a common hollow generally shown by arrow 13 in Figure 3, this hollow 13 being equivalent to the internal void space noted above.
- the hollow 13 is bound in the Figures by an extended lip or lips 12 about the lateral supports 11 and/or leg 2 frame 3 end 4 surrounds.
- the common hollow 13 as shown in the Figures is the entire volume within all of the lateral supports 11 and leg 2 ends 4.
- the hollow 13 or hollows 13 define a volume that is capable of receiving and retaining concrete (not shown) therein.
- the extended lip or lips 12 of the frame 3 may end at a common point so as to form the frame 3 substantially planar finish.
- the extended lip or lips 12 follow the perimeter of all of the frame 3 lateral supports 11 and leg 2 frame 3 endings 4.
- the concrete (not shown) may be poured as a liquid or semi-liquid into the hollow or hollows 13 optionally through the plate sockets 7 or free sockets 8 if used and the concrete sets to a solid over time.
- the cells 1 may be orientated to have the cell 1 frame 3 at the top with the legs 2 extending below the frame 3. Multiple structural cells 1 are stacked vertically using this same orientation with each structural cell frame 3 being located above the legs 2.
- the frame 3 may form the cell base and the legs extend substantially upwardly from the cell 1 frame 3. Multiple structural cells 1 may be stacked using this same orientation with each structural cell 1 frame 3 being located beneath the legs 2.
- first structural cell 1 may be laid onto a substrate or separate plate 6 frame 3 side down with the legs 2 extending vertically upwards.
- a second structural cell 1 may then be placed onto the first structural cell 1, the second structural cell 1 terminal leg 2 ends 5 abutting and aligning with the first structural cell 1 terminal leg 2 ends and the second structural cell 1 then finishing at a highest point about the structural cell 1 frame 3.
- Figure 11 has lateral supports 14 may be ribbed elongated members.
- the plate 6 lateral supports 14 may have a U-shaped or H-shaped cross section best seen in Figure 7.
- Each plate 6 lateral support 14 is linear and straight along the support 14 elongated length.
- the plate 6 sockets 7 may have a cross-sectional shape that substantially complements and snugly fits the shape of the terminal end 5 of each leg 2 and/or the shape of the frame 3 end 4 of each leg 2.
- the plate sockets 7 and free sockets 8 have substantially similar shapes, the shape best seen in Figure 6 (a free socket 8 is shown however the only difference is the presence of plate lateral supports in the plate socket 7).
- Each socket 7, 8 is collar shaped with a substantially circular cross-section.
- the socket 7, 8 collar height may be approximately 25- 75%, or 40-60%, or approximately 50% that of the leg 2 terminal end 5 diameter.
- the socket 7, 8 collar height may be approximately 25-75%, or 40-60%), or approximately 50% that of the leg 2 frame 3 end 4 diameter.
- Each plate 6 socket 7 or free socket 8 fits to the frame 3 as a snug male fitting partly into the top female side of an opening in the frame 3 end 4 of a leg 2 in a first cell 1.
- the opposing terminal end of a leg 2 in a second cell 1 may fit as a male fitting into the opening (female side) of the plate 6 socket 7 or free socket 8.
- Reverse male/female configurations to the above may also be used.
- the socket 7, 8 collar may have frustroconical interior walls that allow the leg
- Each socket 7, 8 collar may be formed in two halves best seen in Figure 6 for example comprising:
- a second male half 10 with frustroconical exterior walls cambered so as to move from a narrower opening diameter to a wider mid-diameter.
- the internal mid-point between the socket 7, 8 halves may include a shoulder or narrowed diameter rib 15.
- the shoulder may run fully around the interior circumference of the socket 7, 8.
- the separate plate 6 also comprises lateral connectors 16.
- the lateral connectors 16 are used to link multiple plates 6 across a common (e.g. horizontal) plane.
- the separate plates 6 may be used to provide a cell matrix with horizontal plane stability acting to align the cells 1.
- the lateral connectors 16 extend orthogonally from the separate plate 6 perimeter about a plane defined by the separate plate 6 planar face.
- Each lateral connector 16 terminates about the widest point of each plate 6 socket 7 so that the lateral connector 16 ending is approximately level with a separate plate 6 edge defined by the maximum socket 7 outer face position marked X in Figure 7.
- Each lateral connector may terminate with either a T-shaped member 16A or a C-shaped member 16B, the T-shape 16A and C-shape 16B substantially complementing each other so as to join together when fitted together.
- the separate frame 6 may comprise a 3x3 socket 7 square shape and each outward facing plate 6 lateral support 14 comprises a lateral connector 16 extending therefrom.
- the terminal end 16A, 16B of each lateral connector 16 may alternate between a T-shaped ending 16A and a C-shaped ending 16B on a first separate plate 6 so as to complement alternating T-shaped 16A or C-shaped 16B endings of a further separate plate 6 located alongside the first separate plate 6.
- the lateral connectors 16 may instead or in addition be located on the cell 1 frame 3 (not shown). In this embodiment, the lateral connectors 16 may extend from the frame 3 frame end 4 outwardly to allow direct connection between cells 1.
- the materials used to produce the structural cell 1, separate plate 6 and free sockets 8 if used shown in the Figures may be plastic although other materials may be used.
- the Figures illustrate a structural cell 1 that may be regarded as being a preformed formwork cell ready to receive concrete therein, this in the main being due to the presence of hollows 13 in the frame and legs that are open at the frame end to receive and retain concrete poured therein.
- the structural cells shown could instead be closed with no hollows 13 for example and the embodiments shown in the Figures should not be seen as limiting.
- the structural cell may be formed as one element from hardened concrete for placement below a hardscape.
- the concrete structural cell may take on the form provided by the structural cell 1 prescribed by the form work shown in the Figures, the resulting concrete cell having a plurality of solid concrete legs linked to a concrete frame at a first frame end, the concrete frame defining a generally flat plane with the legs extending substantially orthogonally away from the concrete frame plane to a concrete leg terminal ending; and wherein the concrete cell defines a free void space therein defined by the concrete frame width and depth and the leg height less any space used within this volume for the legs or frame parts.
- the legs 2 of one structural cell 1 in a matrix may substantially align with the legs 2 of a second and subsequent vertically stacked structural cell 1 so as to provide a common transfer of compressive load down a single leg 2 column from the top of a cell 1 matrix to the bottom of the cell 1 matrix. That is, there is a continuous alignment of the legs 2 and transfer of compressive load across successive structural cells 1.
- Openings in the free void space of the matrix may be substantially continuous from top to bottom or side to side of the matrix. That is, the openings in the free void space of one structural cell may substantially align with the openings in any additional structural cells 1 used.
- a matrix may be rapidly assembled as follows:
- the concrete may be poured into the at least one structural cell 1 during matrix assembly, for example as each structural cell layer is fitted or once the whole matrix is assembled, the concrete being poured through the top most separate plate 6 sockets 7 and running down each cell 1 layer assuming openings are present, usually between the structural cell 1 legs 2 to allow flow of concrete across multiple structural cell 1 layers.
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- Engineering & Computer Science (AREA)
- Architecture (AREA)
- Civil Engineering (AREA)
- Structural Engineering (AREA)
- Mechanical Engineering (AREA)
- Life Sciences & Earth Sciences (AREA)
- Hydrology & Water Resources (AREA)
- Public Health (AREA)
- Water Supply & Treatment (AREA)
- Health & Medical Sciences (AREA)
- Bridges Or Land Bridges (AREA)
- Moulds, Cores, Or Mandrels (AREA)
- Apparatus Associated With Microorganisms And Enzymes (AREA)
- Revetment (AREA)
Abstract
Description
Claims
Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2018363887A AU2018363887B2 (en) | 2017-11-13 | 2018-11-13 | Improvements in structural cells, matrices and methods of assembly |
| CA3081411A CA3081411C (en) | 2017-11-13 | 2018-11-13 | Improvements in structural cells, matrices and methods of assembly |
| NZ764155A NZ764155B2 (en) | 2018-11-13 | Improvements in structural cells, matrices and methods of assembly | |
| EP18876667.9A EP3697965B1 (en) | 2017-11-13 | 2018-11-13 | Structural cell formworks and matrices |
| SG11202004081YA SG11202004081YA (en) | 2017-11-13 | 2018-11-13 | Improvements in structural cells, matrices and methods of assembly |
| AU2024211000A AU2024211000B2 (en) | 2017-11-13 | 2024-08-20 | Improvements in structural cells, matrices and methods of assembly |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15/811,043 US10415260B2 (en) | 2017-11-13 | 2017-11-13 | Structural cells, matrices and methods of assembly |
| US15/811,043 | 2017-11-13 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2019090397A1 true WO2019090397A1 (en) | 2019-05-16 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/AU2018/051212 Ceased WO2019090397A1 (en) | 2017-11-13 | 2018-11-13 | Improvements in structural cells, matrices and methods of assembly |
Country Status (5)
| Country | Link |
|---|---|
| US (5) | US10415260B2 (en) |
| EP (1) | EP3697965B1 (en) |
| AU (2) | AU2018363887B2 (en) |
| SG (1) | SG11202004081YA (en) |
| WO (1) | WO2019090397A1 (en) |
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2018
- 2018-11-13 WO PCT/AU2018/051212 patent/WO2019090397A1/en not_active Ceased
- 2018-11-13 AU AU2018363887A patent/AU2018363887B2/en active Active
- 2018-11-13 EP EP18876667.9A patent/EP3697965B1/en active Active
- 2018-11-13 SG SG11202004081YA patent/SG11202004081YA/en unknown
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2019
- 2019-08-13 US US16/540,047 patent/US10718122B2/en active Active
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2020
- 2020-07-15 US US16/929,126 patent/US11008766B2/en active Active
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2021
- 2021-05-17 US US17/322,783 patent/US11634917B2/en active Active
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2023
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2024
- 2024-08-20 AU AU2024211000A patent/AU2024211000B2/en active Active
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB2603783A (en) * | 2021-02-12 | 2022-08-17 | Twelve Trading Ltd | Void forming modules and uses thereof |
| GB2603783B (en) * | 2021-02-12 | 2024-12-25 | Water Products Ltd | Void forming modules and uses thereof |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3697965A4 (en) | 2021-06-23 |
| US20200347619A1 (en) | 2020-11-05 |
| US11821222B2 (en) | 2023-11-21 |
| US20190383043A1 (en) | 2019-12-19 |
| US11634917B2 (en) | 2023-04-25 |
| AU2018363887B2 (en) | 2024-09-19 |
| US10718122B2 (en) | 2020-07-21 |
| EP3697965A1 (en) | 2020-08-26 |
| US11008766B2 (en) | 2021-05-18 |
| US10415260B2 (en) | 2019-09-17 |
| US20210270049A1 (en) | 2021-09-02 |
| CA3081411A1 (en) | 2019-05-16 |
| SG11202004081YA (en) | 2020-05-28 |
| AU2018363887A1 (en) | 2020-05-21 |
| NZ764155A (en) | 2024-07-05 |
| AU2024211000A1 (en) | 2024-09-05 |
| AU2024211000B2 (en) | 2025-08-28 |
| EP3697965B1 (en) | 2026-01-21 |
| US20190145112A1 (en) | 2019-05-16 |
| US20230220688A1 (en) | 2023-07-13 |
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