US20030188505A1 - Structural module - Google Patents

Structural module Download PDF

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Publication number
US20030188505A1
US20030188505A1 US10/344,775 US34477503A US2003188505A1 US 20030188505 A1 US20030188505 A1 US 20030188505A1 US 34477503 A US34477503 A US 34477503A US 2003188505 A1 US2003188505 A1 US 2003188505A1
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Prior art keywords
sub
modules
module
base layer
base
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US10/344,775
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Richard Marshall
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SITE ELECTRICAL (PH) Ltd
Permavoid Ltd
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Individual
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Application filed by Individual filed Critical Individual
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Assigned to SITE ELECTRICAL (PH) LIMITED reassignment SITE ELECTRICAL (PH) LIMITED ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MARSHALL, RICHARD GRANVILLE
Publication of US20030188505A1 publication Critical patent/US20030188505A1/en
Priority to US11/701,758 priority Critical patent/US7704011B2/en
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    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03FSEWERS; CESSPOOLS
    • E03F1/00Methods, systems, or installations for draining-off sewage or storm water
    • E03F1/002Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells
    • E03F1/005Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells via box-shaped elements
    • EFIXED CONSTRUCTIONS
    • E01CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
    • E01CCONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
    • E01C3/00Foundations for pavings
    • E01C3/006Foundations for pavings made of prefabricated single units
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D27/00Foundations as substructures
    • E02D27/01Flat foundations
    • E02D27/02Flat foundations without substantial excavation

Definitions

  • This invention relates to a structural module for use, for example, in the creation of a structural sub-base layer within a pavement, building foundation or soft landscaping area, and to sub-base layers and structures.
  • the invention provides, in one aspect, a sub-base layer for use in construction, said layer comprising a plurality of connected, substantially cuboid modules each comprising spaced-apart, substantially parallel top and bottom walls joined by a peripheral sidewall defining an enclosed volume, the connection between said modules being effected by a plurality of tie members which prevent lateral movement of the modules relative to one another.
  • the sub-base layer according to the invention provides an inexpensive, lightweight, and strong layer with particular application as a replacement for aggregate layers in foundations, pavements, roadways, carparks, and the like. Unlike aggregate layers, the sub-base layer of the invention provides an inherently level base on which to lay further materials.
  • the invention provides a sub-base structure comprising at least two sub-base layers according to the invention, said layers being disposed one above the other, and a plurality of reinforcing struts connected between the layers.
  • the invention also provides a structural module comprising spaced-apart, substantially parallel top and bottom walls joined by a peripheral sidewall defining an enclosed volume, a plurality of pillars extending within said enclosed volume substantially vertically between the top and bottom walls to resist vertical crushing of the module, and a network of bracing members extending between the pillars within said enclosed volume to resist geometric deformation of said module in a horizontal plane, said top and bottom walls, said sidewall and said network being apertured to allow fluid flow both vertically and horizontally through said module.
  • An advantage of the invention is that the modules can be fabricated off-site and a sub-base layer built up rapidly on-site from the pre-fabricated modules.
  • the modules according to the invention can be used to form a non-particulate sub-base layer under any type of surface, permeable or impermeable, porous or non-porous, and in both trafficked and non-trafficked situations, to provide the dual function of structural layer and shallow storage reservoir.
  • Inherent within the structure is a system of connectors which eliminates the potential for short-term and long-term creep of the sub-base layer. Further, their voided internal structure (typically >90%) enables the modules to be used as a lateral drainage system with integral flow control and water treatment capabilities.
  • the modules can include infill media to provide biological and/or chemical treatment of water stored in or passing through the modules. Further, they can be used for infiltration and attenuation incorporating geotextiles and geomembranes to suit the application.
  • Raised flooring systems having integral drainage, particularly for use in “wet” industrial environments.
  • the invention provides a tie member for connecting a pair of structural modules, said tie member comprising an elongate member having a substantially constant cross sectional outline of a pair of adjoined symmetrically identical trapezoids connected along the shorter of their parallel sides.
  • FIG. 1 is a perspective view of a structural module according to the embodiment of the invention.
  • FIG. 2 is a plan view of the module of FIG. 1;
  • FIG. 3 is a horizontal cross-section through the module in a plane parallel to the top wall of the module;
  • FIG. 4 illustrates the location of parabolic bracing webs extending between the pillars of the module
  • FIG. 5 is a vertical cross-section of the module taken on line 5 - 5 of FIG. 3;
  • FIG. 6 is a side elevation of an alternative embodiment of module to that shown in FIG. 1.
  • FIG. 7 is a plan view of a plurality of modules of FIG. 1 connected into a continuous sub-base layer by tie members;
  • FIG. 8 is a view, similar to FIG. 5, showing the two halves from which the complete module is assembled;
  • FIG. 9 is a perspective view of the two halves of FIG. 8;
  • FIGS. 10A and 10B are perspective end views of two alternative tie members according to the invention.
  • FIG. 11 is a plan view of the tie member of FIG. 10A;
  • FIG. 12 is a plan view of a further alternative tie member according to the invention.
  • FIG. 13 is a plan view of the tie member of FIG. 12 with a reinforcing I-bar in place.
  • FIG. 14 is a detail of two modules connected by the tie member of FIG. 10A;
  • FIGS. 15 and 16 are perspective views of a reinforcing strut used in the sub-base structure according to the invention.
  • FIG. 17 is an exploded sectional elevation of the upper and lower halves of the strut of FIGS. 15 and 16;
  • FIG. 18 is a sectional elevation similar to that of FIG. 17, showing the two halves assembled together;
  • FIGS. 19 and 20 are plan views of the upper and lower halves respectively of the strut
  • FIG. 21 is a perspective view of two modules separated by reinforcing struts
  • FIG. 22 is a sectional elevation of a sub-base structure according to the invention.
  • FIG. 23 is a schematic view of a sub-base layer according to the invention used in an infiltration mode.
  • FIG. 24 is a schematic view of a sub-base layer according to the invention used in an attenuation mode.
  • sub-base structures according to the invention can include modules disposed on their sides or ends, at right angles to their “normal” orientation.
  • a structural module 10 comprises spaced-apart, substantially parallel top and bottom walls 12 , 14 joined by a substantially vertical peripheral sidewall 16 defining an enclosed volume.
  • the top and bottom walls 12 , 14 are rectangular so that externally the module 10 has the general shape of a rectilinear box.
  • the top and bottom walls have a large number of clustered rectangular apertures 13 (those in the bottom wall are not visible in the figures but are arranged the same as those in the top wall), and likewise the peripheral sidewall 16 has a large number of clustered rectangular apertures 17 .
  • These apertures 13 , 17 allow fluid flow into and out of the module 10 in any direction, vertical or horizontal.
  • the module 10 contains a rectangular array of hollow, generally cylindrical pillars 18 extending vertically between the top and bottom walls 12 , 14 to resist vertical crushing of the module 10 .
  • the module 10 is assembled from two substantially identical integral components 10 A, 10 B (see especially FIGS. 8 and 9) moulded from a rigid plastics material and which are fitted one inverted on top of the other.
  • Each pillar 18 thus comprises two half-pillars or male and female parts 18 A, 18 B respectively, one part being integral with one component 10 A or 10 B and the other part being integral with the other component 10 A or 10 B.
  • each male part 18 A alternate with the female parts 18 B in each component 10 A and 10 B such that when the two components are fitted together the male parts 18 A of each component enter the respective female parts 18 B of the other component to form the complete pillars 18 .
  • each male part has a shoulder 18 C which abuts against the open end 18 C of the respective female part when the components 10 A and 10 B are fully engaged.
  • the module 10 also contains a network of bracing members 20 , 22 to resist geometric deformation of the module in a horizontal plane.
  • the bracing members 20 whose locations are shown in FIG. 4, extend directly or diagonally between adjacent pillars 18 and comprise vertical webs having apertures 20 C to allow fluid flow horizontally through the module 10 in any direction (since the webs 20 are orientated vertically they do not obstruct fluid flow in the vertical direction).
  • Each web 20 is formed of upper and lower halves 20 A, 20 B integral with the upper and lower components 10 A, 10 B respectively, and have facing concave edges 20 D defining the apertures 20 C. In this embodiment the edges 20 D are parabolic.
  • the bracing members 22 serve to break down voids within the box. As viewed from above in FIG. 3, they extend substantially normally between the bracing members 20 and supplement the bracing effect of the latter. As viewed in FIG. 3, members 22 are 5 mm thick and extend upward from the base (in a direction normal to the page) by 3 mm.
  • the peripheral sidewall 16 comprises a plurality of substantially vertical keyways in the form of dovetail slots 24 each for slidably receiving a respective reinforced tie member 26 (FIGS. 10 - 13 ) having a “bow tie” cross-section.
  • a single tie member 26 slidably engages two opposing keyways 24 in the two modules. This connector eliminates the potential for short-term and long-term creep of the system.
  • the rectangular shape of the modules 10 in plan view, allows the modules to be disposed closely adjacent one another along their peripheral sidewalls 16 to form an extensive, substantially continuous layer of modules of any desired area. That is to say, the layer of modules is without significant gaps between the modules.
  • the same effect can be obtained using modules of different geometrical shape in plan view, for example, the modules could be hexagonal or triangular. Either alternative will allow an extensive, substantially continuous layer of modules to be built up, with connectors eliminating short-term and long-term creep.
  • the ends of the pillars 18 are open at the top and bottom walls, as seen at 28 .
  • An example of a module 10 made as above had overall dimensions approximately 710 mm long ⁇ 355 mm wide ⁇ 250 mm deep.
  • the pillars 18 were spaced on approximately 105 mm centres, had an outside diameter of about 40 mm and a thickness of about 5 mm. All walls 12 , 14 and 16 , and webs 22 and 22 , were about 3 mm thick.
  • FIG. 6 shows an alternative embodiment of a module according to the invention, in which the pattern of apertures 17 in the sidewall 16 is more open, to allow greater lateral fluid flow between adjoining modules and out of the outermost edges of a sub-base layer formed of a plurality of adjoined modules.
  • the larger apertures can be incorporated without significantly compromising the strength of the modules due to the fact that when used as a structural sub-base the lateral compressive forces are significantly less than the vertical forces, and most of the vertical strength is derived from the pillars rather than the sidewalls.
  • FIGS. 10A and 11 show an embodiment of tie member in perspective view from one end, and in plan view, respectively.
  • the tie member 26 has a substantially constant “bow-tie” cross-section, i.e. the shape is that of two symmetrically identical trapezoids 40 , 42 , sharing a common side 44 , which is the shorter of the two parallel sides 44 , 46 of each trapezoid.
  • the tie member of FIG. 10B is identical in outline, but the shared wall is omitted.
  • FIG. 12 shows the cross-section of a further embodiment of tie-member in which the shorter shared side of the trapezoids has a gap 48 to accommodate a reinforcing I-bar section of steel 50 (FIG. 13).
  • the ends 52 of the I-bar abut against a pair of ridges 54 running down the longer of each of the parallel trapezoid sides 46 , to hold the I-bar firmly in place in the tie member.
  • FIG. 14 shows the tie member 26 of FIG. 10A in position in a pair of keyways 24 to hold two adjacent modules 10 a , 10 b in position relative to one another.
  • the keyways 24 which extend through the height of the peripheral sidewall (see FIG. 1, for example), may incorporate a slight taper narrowing from the top and bottom surfaces towards the centreline.
  • a pair of tie members each having a length equal to the height of one of the halves making up the module, may be inserted from the top and from the bottom.
  • the taper grips them more tightly, and thereby holds them firmly in place without allowing any play between the tie members and the modules.
  • reinforcing and separating struts can be used to define a void between layers of modules in a sub-base structure.
  • a reinforcing strut is shown in FIGS. 15 - 20 .
  • the strut 60 comprises a generally hollow cylindrical body 62 having a central support post 64 therein which extends above and below the ends of the cylinder.
  • a plurality of planar supports 66 extend radially from the support post 64 to the body 62 .
  • These planar supports define generally wedge-shaped hollows 68 running through the length of the strut, allowing fluid flow through the strut.
  • the strut is formed in two halves 70 , 72 (shown in plan view in FIGS. 19 and 20).
  • the planar surfaces within upper half 70 terminate at an end edge 74 against which the end edge 76 of the corresponding planar surface in the lower half 72 abuts.
  • This upper end edge 76 fits into a collar 78 of the upper half 70 , thereby enabling the two halves to fit together as seen in FIG. 18.
  • the length of the strut (and hence the distance between the layers separated by the strut) can be varied.
  • the upper half could be used, making a male connection with the module above it and a female connection with a peg fitted into the module below it, or the full strut (FIG. 18) could be used to make a male connection with the modules above and below. It will be appreciated that the strut can be extended as required.
  • the wedge-shaped hollows 68 can advantageously be used to retain infill or filtration media of any suitable type (e.g. simple physical strainers, or chemical or biological purifiers), to treat water or other liquid passing down through the strut from an upper module to a lower module.
  • suitable type e.g. simple physical strainers, or chemical or biological purifiers
  • FIG. 21 illustrates how the struts 60 may be disposed between an upper module 10 a , and a lower module 10 b (both shown in simplified form as a pair of connected box sections) separated by a plurality of struts 60 .
  • a more extensive structure will be formed from two or more stacked layers (such as the layer of FIG. 7 extended outwards), with struts 60 between these layers.
  • FIG. 22 shows such a structure.
  • three sub-base layers 80 , 82 , 84 each comprising a plurality of modules 10 connected by tie members (not shown) are disposed one above the other.
  • Struts 60 separate the upper layer 80 from the middle layer 82 , and the middle layer 82 from the lower layer 84 .
  • the structure is shown in section but will extend in three dimensions, with struts disposed periodically across the extent of each layer.
  • the edges of the structure are bounded by a series of modules 10 ′ which are identical to the modules 10 of the layers but which are disposed on their sides.
  • the modules and struts are dimensioned so that the height of the strut equals the width of a module, i.e. when disposed on their sides, modules 10 ′ have a “height” which exactly fills the gap between the peripheries of the layers.
  • a “cage” structure can be created which defines an internal void 86 (or with more than two layers a number of such voids 86 ) in which the struts are located.
  • the cage provides a large open volume to receive waste water or other fluids, and the structure is sufficiently strong to support constructions such as building foundations and paved surfaces.
  • the structure will generally be disposed in the earth so that the modules 10 ′ are prevented from falling outwards by the lateral inward pressure exerted by the surrounding soil.
  • the positions of the struts are chosen so that the modules 10 ′ cannot move into the cage since they abut against struts 60 , and in this way the cage structure is maintained in use.
  • a sub-base layer of modules 10 is placed on a sub-grade 90 .
  • This sub-base layer takes the place of aggregate such as gravel which is often used as a sub-base layer.
  • Surface layers 92 , 94 are then laid on top of the modules in conventional manner to provide a finished surface 96 which receives precipitation 98 and surface water.
  • top wall 12 and bottom wall 14 of the modules are covered by a pervious geotextile which acts to filter water entering the modules and to prevent soil fines from migrating through the modules.
  • a pervious geotextile which acts to filter water entering the modules and to prevent soil fines from migrating through the modules.
  • the geotextile is preferably provided above and below the layer, one or both of these geotextiles may be omitted as appropriate.
  • the sub-base layer provides a temporary storage tank for holding and dissipating large volumes of water. It also enables water to be redistributed away from localised areas where a lot of water collects.
  • infill media in the modules, filtration and/or chemical or biological treatment of the water may be achieved before it reaches the local water table or watercourses via the sub-grade.
  • the single layer of modules 10 shown in FIG. 23 can be replaced by a number of stacked layers or by a multi-layer sub-base structure of the type shown in FIG. 22.
  • water can arrive at the modules laterally from a section of the layer which lies under pervious layers, or 10 via pipes, gullies and the like.
  • FIG. 24 shows another application, in which the modules 10 are again disposed in a layer above a sub-grade 90 and below surface layers 92 , 94 which may be pervious or impervious as discussed above.
  • the bottom wall 14 is covered by an impermeable geomembrane which prevents water from flowing out of the bottom of the layer.
  • the layer acts to store water and channel it to a suitable drainage structure by lateral drainage. This arrangement may be required if local geological conditions or environmental regulations preclude the direct drainage of water into the sub-grade.
  • the top surface 12 can also be covered by an impermeable geomembrane (if water arrives via conduits, pipes or gullies) or by a permeable geotextile (if water is to seep directly into the modules from above). Again, the single layer of modules can be replaced by a multi-layer structure.
  • FIG. 22 a further modification of the structure can be described for use in such applications as those described for FIGS. 23 and 24.
  • the cage structure in this variation, is covered above and below by a permeable geotextile (not shown). Water arrives into the structure by seeping from above into the top layer 80 of modules 10 .
  • the bottom wall 14 of this top layer is covered externally by an impermeable membrane (not shown) which is held in place by being clamped between the struts 60 and the modules 10 . This prevents water from draining directly through the apertures 13 (FIG. 1) in the bottom wall 14 into the void 86 .
  • the impermeable membrane is provided with apertures in the region 100 where it is covered by the cylindrical struts abutting against the bottom wall 14 . These apertures in the impermeable membrane provide the sole means of water draining from the upper layer 80 , i.e. all of the water draining from the upper layer does so via the hollow struts. Water drains through the wedge-shaped channels in the struts which are filled with filtration and/or water treatment infill media. The treated or filtered water reaches the middle layer 82 from where it can drain into the bottom layer either from the bottom wall 14 of the middle layer 82 or via the struts 60 supporting the middle layer 82 .
  • the bottom wall of the middle layer may be provided with a similarly apertured impermeable membrane, in which case the lower set of struts can provide a second stage treatment.
  • a coarse filtration medium could be provided in the upper set of struts and a fine filtration medium in the lower set of struts. Water entering the top layer 80 would be coarsely filtered and could flow at high rates into the middle layer 82 .

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Abstract

A sub-base layer for use in construction, comprises a plurality of connected substantially cuboid modules each having spaced-apart, substantially parallel top and bottom walls joined by a peripheral sidewall defining an enclosed volume. The connection between the modules is effected by a plurality of tie members which prevent lateral movement of the modules relative to one another. The layer is particularly useful as a lightweight replacement for aggregate sub-base layers in foundations, roadways, pavement, carparks, and the like.

Description

    TECHNICAL FIELD
  • This invention relates to a structural module for use, for example, in the creation of a structural sub-base layer within a pavement, building foundation or soft landscaping area, and to sub-base layers and structures. [0001]
  • BACKGROUND ART
  • Traditional forms of sub-base layers have comprised particulate materials (usually natural aggregates) to provide the necessary structural and drainage characteristics within a pavement construction. For example, in GB2294077 a bed of gravel is used. [0002]
  • DISCLOSURE OF INVENTION
  • The invention provides, in one aspect, a sub-base layer for use in construction, said layer comprising a plurality of connected, substantially cuboid modules each comprising spaced-apart, substantially parallel top and bottom walls joined by a peripheral sidewall defining an enclosed volume, the connection between said modules being effected by a plurality of tie members which prevent lateral movement of the modules relative to one another. [0003]
  • The sub-base layer according to the invention provides an inexpensive, lightweight, and strong layer with particular application as a replacement for aggregate layers in foundations, pavements, roadways, carparks, and the like. Unlike aggregate layers, the sub-base layer of the invention provides an inherently level base on which to lay further materials. [0004]
  • In a further aspect the invention provides a sub-base structure comprising at least two sub-base layers according to the invention, said layers being disposed one above the other, and a plurality of reinforcing struts connected between the layers. [0005]
  • The invention also provides a structural module comprising spaced-apart, substantially parallel top and bottom walls joined by a peripheral sidewall defining an enclosed volume, a plurality of pillars extending within said enclosed volume substantially vertically between the top and bottom walls to resist vertical crushing of the module, and a network of bracing members extending between the pillars within said enclosed volume to resist geometric deformation of said module in a horizontal plane, said top and bottom walls, said sidewall and said network being apertured to allow fluid flow both vertically and horizontally through said module. [0006]
  • An advantage of the invention is that the modules can be fabricated off-site and a sub-base layer built up rapidly on-site from the pre-fabricated modules. [0007]
  • The modules according to the invention can be used to form a non-particulate sub-base layer under any type of surface, permeable or impermeable, porous or non-porous, and in both trafficked and non-trafficked situations, to provide the dual function of structural layer and shallow storage reservoir. Inherent within the structure is a system of connectors which eliminates the potential for short-term and long-term creep of the sub-base layer. Further, their voided internal structure (typically >90%) enables the modules to be used as a lateral drainage system with integral flow control and water treatment capabilities. [0008]
  • The modules can include infill media to provide biological and/or chemical treatment of water stored in or passing through the modules. Further, they can be used for infiltration and attenuation incorporating geotextiles and geomembranes to suit the application. [0009]
  • While the primary application of the modules is envisioned to be in the construction of structural sub-base layers as described above, other uses are possible. [0010]
  • A non-exclusive list of examples of other uses might include the following, all of which are provided in the scope of the invention: [0011]
  • a) Load bearing systems in general for fluid containment, transportation and/or treatment; [0012]
  • b) Lightweight load distribution systems for weak sub-grades, capping layers and floating pontoons; [0013]
  • c) Structural retaining wall systems; [0014]
  • d) Lightweight raft formations for foundations; [0015]
  • e) Channel line drainage systems [0016]
  • f) Temporary structural formwork systems; [0017]
  • g) Acoustic and thermal insulation systems; [0018]
  • h) Structural cavity forming systems; [0019]
  • i) Temporary structural flooring and seating systems; [0020]
  • j) Leak detection systems; [0021]
  • k) Hydraulic flow control and energy dissipation systems; [0022]
  • l) Cable ducting and troughing systems; [0023]
  • m) Air conditioning ventilation formers; [0024]
  • n) Raised flooring systems having integral drainage, particularly for use in “wet” industrial environments. [0025]
  • In a further aspect the invention provides a tie member for connecting a pair of structural modules, said tie member comprising an elongate member having a substantially constant cross sectional outline of a pair of adjoined symmetrically identical trapezoids connected along the shorter of their parallel sides.[0026]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • An embodiment of the invention will now be described, by way of example, with reference to the accompanying drawings, in which: [0027]
  • FIG. 1 is a perspective view of a structural module according to the embodiment of the invention; [0028]
  • FIG. 2 is a plan view of the module of FIG. 1; [0029]
  • FIG. 3 is a horizontal cross-section through the module in a plane parallel to the top wall of the module; [0030]
  • FIG. 4 illustrates the location of parabolic bracing webs extending between the pillars of the module; [0031]
  • FIG. 5 is a vertical cross-section of the module taken on line [0032] 5-5 of FIG. 3;
  • FIG. 6 is a side elevation of an alternative embodiment of module to that shown in FIG. 1. [0033]
  • FIG. 7 is a plan view of a plurality of modules of FIG. 1 connected into a continuous sub-base layer by tie members; [0034]
  • FIG. 8 is a view, similar to FIG. 5, showing the two halves from which the complete module is assembled; [0035]
  • FIG. 9 is a perspective view of the two halves of FIG. 8; [0036]
  • FIGS. 10A and 10B are perspective end views of two alternative tie members according to the invention; [0037]
  • FIG. 11 is a plan view of the tie member of FIG. 10A; [0038]
  • FIG. 12 is a plan view of a further alternative tie member according to the invention; [0039]
  • FIG. 13 is a plan view of the tie member of FIG. 12 with a reinforcing I-bar in place. [0040]
  • FIG. 14 is a detail of two modules connected by the tie member of FIG. 10A; [0041]
  • FIGS. 15 and 16 are perspective views of a reinforcing strut used in the sub-base structure according to the invention; [0042]
  • FIG. 17 is an exploded sectional elevation of the upper and lower halves of the strut of FIGS. 15 and 16; [0043]
  • FIG. 18 is a sectional elevation similar to that of FIG. 17, showing the two halves assembled together; [0044]
  • FIGS. 19 and 20 are plan views of the upper and lower halves respectively of the strut; [0045]
  • FIG. 21 is a perspective view of two modules separated by reinforcing struts; [0046]
  • FIG. 22 is a sectional elevation of a sub-base structure according to the invention; [0047]
  • FIG. 23 is a schematic view of a sub-base layer according to the invention used in an infiltration mode; and [0048]
  • FIG. 24 is a schematic view of a sub-base layer according to the invention used in an attenuation mode.[0049]
  • DESCRIPTION OF PREFERRED EMBODIMENTS
  • In the present specification expressions of orientation such as top, bottom, vertical, etc., are used for convenience only and refer to the normal orientation of the module as seen in the accompanying drawings. However, such expressions are not to be regarded as limiting the orientation of the module in use, and indeed, as will be described below, sub-base structures according to the invention can include modules disposed on their sides or ends, at right angles to their “normal” orientation. [0050]
  • Referring to the drawings, a [0051] structural module 10 comprises spaced-apart, substantially parallel top and bottom walls 12, 14 joined by a substantially vertical peripheral sidewall 16 defining an enclosed volume. In the present embodiment the top and bottom walls 12, 14 are rectangular so that externally the module 10 has the general shape of a rectilinear box. The top and bottom walls have a large number of clustered rectangular apertures 13 (those in the bottom wall are not visible in the figures but are arranged the same as those in the top wall), and likewise the peripheral sidewall 16 has a large number of clustered rectangular apertures 17. These apertures 13, 17 allow fluid flow into and out of the module 10 in any direction, vertical or horizontal.
  • Internally, the [0052] module 10 contains a rectangular array of hollow, generally cylindrical pillars 18 extending vertically between the top and bottom walls 12, 14 to resist vertical crushing of the module 10. In this embodiment the module 10 is assembled from two substantially identical integral components 10A, 10B (see especially FIGS. 8 and 9) moulded from a rigid plastics material and which are fitted one inverted on top of the other. Each pillar 18 thus comprises two half-pillars or male and female parts 18A, 18B respectively, one part being integral with one component 10A or 10B and the other part being integral with the other component 10A or 10B. The male parts 18A alternate with the female parts 18B in each component 10A and 10B such that when the two components are fitted together the male parts 18A of each component enter the respective female parts 18B of the other component to form the complete pillars 18. To avoid over-insertion of the male parts into the female parts, and to maintain the top and bottom walls 12 and 14 at their correct separation, each male part has a shoulder 18C which abuts against the open end 18C of the respective female part when the components 10A and 10B are fully engaged.
  • Internally, the [0053] module 10 also contains a network of bracing members 20, 22 to resist geometric deformation of the module in a horizontal plane. The bracing members 20, whose locations are shown in FIG. 4, extend directly or diagonally between adjacent pillars 18 and comprise vertical webs having apertures 20C to allow fluid flow horizontally through the module 10 in any direction (since the webs 20 are orientated vertically they do not obstruct fluid flow in the vertical direction). Each web 20 is formed of upper and lower halves 20A, 20B integral with the upper and lower components 10A, 10B respectively, and have facing concave edges 20D defining the apertures 20C. In this embodiment the edges 20D are parabolic.
  • The bracing members [0054] 22 serve to break down voids within the box. As viewed from above in FIG. 3, they extend substantially normally between the bracing members 20 and supplement the bracing effect of the latter. As viewed in FIG. 3, members 22 are 5 mm thick and extend upward from the base (in a direction normal to the page) by 3 mm.
  • To allow a plurality of [0055] modules 10 to be rigidly connected together to form a layer of such modules, for example, for use as a structural sub-base layer, the peripheral sidewall 16 comprises a plurality of substantially vertical keyways in the form of dovetail slots 24 each for slidably receiving a respective reinforced tie member 26 (FIGS. 10-13) having a “bow tie” cross-section. As seen in FIG. 7, when connecting two modules 10 together, a single tie member 26 slidably engages two opposing keyways 24 in the two modules. This connector eliminates the potential for short-term and long-term creep of the system.
  • As seen in FIG. 7, the rectangular shape of the [0056] modules 10, in plan view, allows the modules to be disposed closely adjacent one another along their peripheral sidewalls 16 to form an extensive, substantially continuous layer of modules of any desired area. That is to say, the layer of modules is without significant gaps between the modules. However, the same effect can be obtained using modules of different geometrical shape in plan view, for example, the modules could be hexagonal or triangular. Either alternative will allow an extensive, substantially continuous layer of modules to be built up, with connectors eliminating short-term and long-term creep.
  • Finally, to allow a layer of connected modules to be built up which is more than one module thick, the ends of the [0057] pillars 18 are open at the top and bottom walls, as seen at 28. This allows reinforced pegs 30 (FIG. 1) to be inserted partially into the open pillar ends 28 in the top wall 12 of one module and partially into the open pillar ends 28 in the bottom wall 14 of a module overlying and in register with the first module, to maintain them against relative lateral displacement.
  • An example of a [0058] module 10 made as above had overall dimensions approximately 710 mm long×355 mm wide×250 mm deep. The pillars 18 were spaced on approximately 105 mm centres, had an outside diameter of about 40 mm and a thickness of about 5 mm. All walls 12, 14 and 16, and webs 22 and 22, were about 3 mm thick.
  • FIG. 6 shows an alternative embodiment of a module according to the invention, in which the pattern of [0059] apertures 17 in the sidewall 16 is more open, to allow greater lateral fluid flow between adjoining modules and out of the outermost edges of a sub-base layer formed of a plurality of adjoined modules. The larger apertures can be incorporated without significantly compromising the strength of the modules due to the fact that when used as a structural sub-base the lateral compressive forces are significantly less than the vertical forces, and most of the vertical strength is derived from the pillars rather than the sidewalls.
  • FIGS. 10A and 11 show an embodiment of tie member in perspective view from one end, and in plan view, respectively. The [0060] tie member 26 has a substantially constant “bow-tie” cross-section, i.e. the shape is that of two symmetrically identical trapezoids 40,42, sharing a common side 44, which is the shorter of the two parallel sides 44,46 of each trapezoid.
  • The tie member of FIG. 10B is identical in outline, but the shared wall is omitted. [0061]
  • FIG. 12 shows the cross-section of a further embodiment of tie-member in which the shorter shared side of the trapezoids has a [0062] gap 48 to accommodate a reinforcing I-bar section of steel 50 (FIG. 13). The ends 52 of the I-bar abut against a pair of ridges 54 running down the longer of each of the parallel trapezoid sides 46, to hold the I-bar firmly in place in the tie member.
  • FIG. 14 shows the [0063] tie member 26 of FIG. 10A in position in a pair of keyways 24 to hold two adjacent modules 10 a, 10 b in position relative to one another.
  • Advantageously the [0064] keyways 24 which extend through the height of the peripheral sidewall (see FIG. 1, for example), may incorporate a slight taper narrowing from the top and bottom surfaces towards the centreline. In this way, a pair of tie members, each having a length equal to the height of one of the halves making up the module, may be inserted from the top and from the bottom. As they move into the keyways, the taper grips them more tightly, and thereby holds them firmly in place without allowing any play between the tie members and the modules.
  • Instead of stacking modules directly on top of one another as previously described, reinforcing and separating struts can be used to define a void between layers of modules in a sub-base structure. A reinforcing strut is shown in FIGS. [0065] 15-20. As seen in FIGS. 15 and 16, the strut 60 comprises a generally hollow cylindrical body 62 having a central support post 64 therein which extends above and below the ends of the cylinder. A plurality of planar supports 66 extend radially from the support post 64 to the body 62. These planar supports define generally wedge-shaped hollows 68 running through the length of the strut, allowing fluid flow through the strut.
  • As seen in FIGS. 17 and 18, the strut is formed in two [0066] halves 70,72 (shown in plan view in FIGS. 19 and 20). The planar surfaces within upper half 70 terminate at an end edge 74 against which the end edge 76 of the corresponding planar surface in the lower half 72 abuts. This upper end edge 76 fits into a collar 78 of the upper half 70, thereby enabling the two halves to fit together as seen in FIG. 18.
  • By manufacturing the strut in two halves, the length of the strut (and hence the distance between the layers separated by the strut) can be varied. Thus, only the upper half could be used, making a male connection with the module above it and a female connection with a peg fitted into the module below it, or the full strut (FIG. 18) could be used to make a male connection with the modules above and below. It will be appreciated that the strut can be extended as required. [0067]
  • The wedge-shaped [0068] hollows 68 can advantageously be used to retain infill or filtration media of any suitable type (e.g. simple physical strainers, or chemical or biological purifiers), to treat water or other liquid passing down through the strut from an upper module to a lower module.
  • FIG. 21 illustrates how the [0069] struts 60 may be disposed between an upper module 10 a, and a lower module 10 b (both shown in simplified form as a pair of connected box sections) separated by a plurality of struts 60. In practice, rather than just two modules, a more extensive structure will be formed from two or more stacked layers (such as the layer of FIG. 7 extended outwards), with struts 60 between these layers. FIG. 22 shows such a structure.
  • As seen in FIG. 22, three [0070] sub-base layers 80,82,84 each comprising a plurality of modules 10 connected by tie members (not shown) are disposed one above the other. Struts 60 separate the upper layer 80 from the middle layer 82, and the middle layer 82 from the lower layer 84. The structure is shown in section but will extend in three dimensions, with struts disposed periodically across the extent of each layer.
  • The edges of the structure are bounded by a series of [0071] modules 10′ which are identical to the modules 10 of the layers but which are disposed on their sides. The modules and struts are dimensioned so that the height of the strut equals the width of a module, i.e. when disposed on their sides, modules 10′ have a “height” which exactly fills the gap between the peripheries of the layers. In this way a “cage” structure can be created which defines an internal void 86 (or with more than two layers a number of such voids 86) in which the struts are located.
  • The cage provides a large open volume to receive waste water or other fluids, and the structure is sufficiently strong to support constructions such as building foundations and paved surfaces. [0072]
  • The structure will generally be disposed in the earth so that the [0073] modules 10′ are prevented from falling outwards by the lateral inward pressure exerted by the surrounding soil. The positions of the struts are chosen so that the modules 10′ cannot move into the cage since they abut against struts 60, and in this way the cage structure is maintained in use.
  • Referring to FIG. 23, a first application of the sub-base layer according to the invention is shown. A sub-base layer of [0074] modules 10 is placed on a sub-grade 90. This sub-base layer takes the place of aggregate such as gravel which is often used as a sub-base layer. Surface layers 92,94 are then laid on top of the modules in conventional manner to provide a finished surface 96 which receives precipitation 98 and surface water.
  • The [0075] top wall 12 and bottom wall 14 of the modules are covered by a pervious geotextile which acts to filter water entering the modules and to prevent soil fines from migrating through the modules. Although the geotextile is preferably provided above and below the layer, one or both of these geotextiles may be omitted as appropriate.
  • If the surface layers [0076] 92,94 are both pervious, then precipitation 98 falling on the surface can seep through the surface layers into the sub-base layer and from there into the underlying sub-grade 90. In addition to providing structural strength and a level top surface, the sub-base layer provides a temporary storage tank for holding and dissipating large volumes of water. It also enables water to be redistributed away from localised areas where a lot of water collects.
  • Furthermore, by including infill media in the modules, filtration and/or chemical or biological treatment of the water may be achieved before it reaches the local water table or watercourses via the sub-grade. [0077]
  • The single layer of [0078] modules 10 shown in FIG. 23 can be replaced by a number of stacked layers or by a multi-layer sub-base structure of the type shown in FIG. 22.
  • If one or more of the surface layers is impervious, then water can arrive at the modules laterally from a section of the layer which lies under pervious layers, or [0079] 10 via pipes, gullies and the like.
  • FIG. 24 shows another application, in which the [0080] modules 10 are again disposed in a layer above a sub-grade 90 and below surface layers 92,94 which may be pervious or impervious as discussed above. In this embodiment, the bottom wall 14 is covered by an impermeable geomembrane which prevents water from flowing out of the bottom of the layer. Instead, the layer acts to store water and channel it to a suitable drainage structure by lateral drainage. This arrangement may be required if local geological conditions or environmental regulations preclude the direct drainage of water into the sub-grade. The top surface 12 can also be covered by an impermeable geomembrane (if water arrives via conduits, pipes or gullies) or by a permeable geotextile (if water is to seep directly into the modules from above). Again, the single layer of modules can be replaced by a multi-layer structure.
  • Referring back to FIG. 22, a further modification of the structure can be described for use in such applications as those described for FIGS. 23 and 24. The cage structure, in this variation, is covered above and below by a permeable geotextile (not shown). Water arrives into the structure by seeping from above into the [0081] top layer 80 of modules 10. The bottom wall 14 of this top layer is covered externally by an impermeable membrane (not shown) which is held in place by being clamped between the struts 60 and the modules 10. This prevents water from draining directly through the apertures 13 (FIG. 1) in the bottom wall 14 into the void 86.
  • The impermeable membrane is provided with apertures in the [0082] region 100 where it is covered by the cylindrical struts abutting against the bottom wall 14. These apertures in the impermeable membrane provide the sole means of water draining from the upper layer 80, i.e. all of the water draining from the upper layer does so via the hollow struts. Water drains through the wedge-shaped channels in the struts which are filled with filtration and/or water treatment infill media. The treated or filtered water reaches the middle layer 82 from where it can drain into the bottom layer either from the bottom wall 14 of the middle layer 82 or via the struts 60 supporting the middle layer 82.
  • The bottom wall of the middle layer may be provided with a similarly apertured impermeable membrane, in which case the lower set of struts can provide a second stage treatment. In this way, a coarse filtration medium could be provided in the upper set of struts and a fine filtration medium in the lower set of struts. Water entering the [0083] top layer 80 would be coarsely filtered and could flow at high rates into the middle layer 82. Since the only egress from the middle layer to the bottom layer 84 is through the lower set of struts and since these struts may be provided with low flow-rate fine filters, large volumes of water could be temporarily held in the middle layer and in the void 86 between the middle and upper layers (this void being in free communication with the apertures in the top wall of the middle layer modules). After collecting in the middle layer and upper void, the coarsely filtered water can then seep more slowly through the fine filters into the lower layer 84 and the void 86 between the lower and middle layers, before finally seeping out of the lower layer into the sub-grade, or laterally from the lower layer through drainage channels (not shown). A combination of filters and chemical/biological treatment media could also be used as required.
  • The invention is not limited to the embodiments described herein which may be modified or varied without departing from the scope of the invention. [0084]

Claims (31)

1. A sub-base layer for use in construction, said layer comprising a plurality of connected, substantially cuboid modules each comprising spaced-apart, substantially parallel top and bottom walls joined by a peripheral sidewall defining an enclosed volume, the connection between said modules being effected by a plurality of tie members which prevent lateral movement of the modules relative to one another.
2. A sub-base layer according to claim 1, wherein each module is formed from a top half which includes said top wall and the upper part of said peripheral sidewall, and a bottom half defining said bottom wall and the lower part of said peripheral sidewall.
3. A sub-base layer according to claim 2, wherein the top and bottom halves are each provided with a set of half-pillars extending within the enclosed volume towards one another, whereby the two sets of half-pillars co-operate with one another to form pillars extending between the top and bottom walls to resist vertical crushing of the module.
4. A sub-base layer according to claim 2 or 3, wherein the top and bottom halves are two substantially identical integral plastics moulded components which are fitted one inverted on top of the other.
5. A sub-base layer according to any preceding claims, wherein the height of the peripheral sidewalls is substantially less than both the width and the length of the top and bottom walls.
6. A sub-base layer according to any preceding claims, wherein each module further comprises a network of bracing members extending between the pillars within said enclosed volume to resist geometric deformation of said module in a horizontal plane.
7. A sub-base layer according to claim 6, wherein said sidewall and said network are apertured to allow fluid flow both vertically and horizontally through said module.
8. A sub-base layer according to any preceding claim, further comprising an infill medium disposed within the enclosed volume of one or more of said modules.
9. A sub-base layer according to claim 8, wherein said infill medium is a medium which provides biological and/or chemical treatment of water stored in or passing through the modules.
10. A sub-base layer according to any preceding claims, wherein said tie members are adapted to clamp together abutting sidewalls of a pair of adjacent modules.
11. A sub-base layer according to claim 10, wherein the peripheral sidewall of each module is provided with a keyway for receiving one half of a tie member.
12. A sub-base layer according to claim 11, wherein said keyway is in the form of a female dovetail groove extending through the height of the sidewall.
13. A sub-base layer according to claim 12, wherein each tie member is an elongate member having a cross sectional outline of a pair of adjoined symmetrically identical trapezoids connected along the shorter of their parallel sides.
14. A sub-base layer according to claim 13, wherein an elongate reinforcing member is disposed within the interior of the tie member.
15. A sub-base structure comprising at least two sub-base layers according to any preceding claim, said layers being disposed one above the other, and a plurality of reinforcing struts connected between the layers.
16. A sub-base structure according to claim 15, wherein each strut is hollow to provide a fluid passageway through the strut.
17. A sub-base structure according to claim 16, wherein said struts extend between opposed surfaces of two sub-base layers, and wherein said opposed surfaces are provided with formations to engage the struts and retain them in position relative to the modules.
18. A sub-base structure according to claim 17, wherein said opposed faces of the modules are provided with fluid ports in the vicinity of the struts whereby the enclosed volumes in the two levels are in communication via the interior of the hollow struts.
19. A sub-base structure according to claim 17 or 18, wherein each strut is in the form of a hollow cylinder having a central support post and a plurality of planar supports extending radially between the support post and the internal surface of the cylinder.
20. A sub-base structure according to any one of claims 15-19, wherein said at least two sub-base layers define upper and lower faces of a cage structure having an internal space in which said struts are located, and further comprising one or more side modules disposed perpendicular to the modules in said layers and extending between said upper and lower faces at the periphery of said layers, whereby said side modules define at least a part of a side of said cage structure.
21. A sub-base structure according to any preceding claims, wherein one or more surfaces of the modules are at least partially covered by a geomembrane or geotextile.
22. A structural module comprising spaced-apart, substantially parallel top and bottom walls joined by a peripheral sidewall defining an enclosed volume, a plurality of pillars extending within said enclosed volume substantially vertically between the top and bottom walls to resist vertical crushing of the module, and a network of bracing members extending between the pillars within said enclosed volume to resist geometric deformation of said module in a horizontal plane, said top and bottom walls, said sidewall and said network being apertured to allow fluid flow both vertically and horizontally through said module.
23. A module according to claim 22, wherein the geometrical shape of the module is such that a plurality of such modules may be disposed closely adjacent one another along their sidewalls to form an extensive, substantially continuous layer of modules, the module further including means for rigid connection of said module to adjacent modules in said continuous layer.
24. A module according to claim 22 or 23, wherein the module is made of two substantially identical integral plastics moulded components which are fitted one inverted on top of the other.
25. A module according to any one of claims 22-24, further comprising an infill medium disposed within the enclosed volume
26. A module according to claim 25, wherein said infill medium is a medium which provides biological and/or chemical treatment of water stored in or passing through the modules.
27. A module according to claim 23, wherein said means for rigid connection comprises a keyway in said peripheral sidewall for receiving one half of a tie member.
28. A module according to claim 27, wherein said keyway is in the form of a female dovetail groove extending through the height of the sidewall.
29. A module according to claim 27 or 28, wherein said keyway is tapered along its length to provide a progressively tighter fit for said tie member as it moved into the keyway.
30. A tie member for connecting a pair of structural modules, said tie member comprising an elongate member having a substantially constant cross sectional outline of a pair of adjoined symmetrically identical trapezoids connected along the shorter of their parallel sides.
31. A sub-base layer according to claim 30, wherein an elongate reinforcing member is disposed within the interior of the tie member.
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Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080276557A1 (en) * 2007-05-09 2008-11-13 Antonio Rapaz Construction panel
US20080276567A1 (en) * 2007-05-09 2008-11-13 Antonio Rapaz Construction panel
US20120163911A1 (en) * 2009-07-13 2012-06-28 Permavoid Limited Surfaces Using Structural Modules
US9010060B2 (en) 2007-05-09 2015-04-21 Antonio Rapaz Construction panel
US20150334980A1 (en) * 2012-09-07 2015-11-26 Permavoid Limited Cattle Floor
US20160031645A1 (en) * 2014-08-04 2016-02-04 Black Diamond Eco Solutions, Llc Underground water-storage vault and method for installing same
US20160097175A1 (en) * 2013-03-26 2016-04-07 Alton F. Parker Aggregate replacement
US20160312427A1 (en) * 2013-12-10 2016-10-27 Hisses Blocks (Pty) Ltd Embankment Support
US9631328B2 (en) 2014-03-12 2017-04-25 Permavoid Limited Sports field structure and modules and method for forming the same
US20170292260A1 (en) * 2014-09-19 2017-10-12 Wavin B.V. A plastic infiltration unit, a system comprising a plurality of plastic infiltration units, a method of manufacturing an injection molded plastic pillar for an infiltration unit, a plastic base plate for use with a plastic infiltration unit, and a plastic infiltration system for deployment underground comprising a plastic infiltration unit
US9986693B2 (en) 2012-07-05 2018-06-05 Permavoid Limited Plant surface structure and modules and method for forming the same
US10106980B2 (en) * 2016-04-16 2018-10-23 Lazaro A. Martinez Block interlocking module and system to build architectural structures
US10132069B2 (en) * 2014-09-19 2018-11-20 Wavin B.V. Plastic infiltration unit, a system comprising a plurality of plastic infiltration units
US10208434B2 (en) 2014-03-12 2019-02-19 Permavoid Limited Sports field structure and method for forming the same
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Families Citing this family (56)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2399567B (en) * 2003-03-15 2006-10-25 Permavoid Ltd Storage module
GB0326929D0 (en) 2003-11-19 2003-12-24 Permavoid Ltd Drainage element
US7748177B2 (en) 2004-02-25 2010-07-06 Connor Sport Court International, Inc. Modular tile with controlled deflection
US8407951B2 (en) * 2004-10-06 2013-04-02 Connor Sport Court International, Llc Modular synthetic floor tile configured for enhanced performance
US8397466B2 (en) * 2004-10-06 2013-03-19 Connor Sport Court International, Llc Tile with multiple-level surface
US20090235605A1 (en) * 2004-10-06 2009-09-24 Thayne Haney Method of Making A Modular Synthetic Floor Tile Configured For Enhanced Performance
USD656250S1 (en) 2005-03-11 2012-03-20 Connor Sport Court International, Llc Tile with wide mouth coupling
US20060285920A1 (en) * 2005-04-22 2006-12-21 Andrew Gettig Synthetic support base for modular flooring
DE202006008981U1 (en) * 2006-06-06 2006-09-07 Heitker, Martin Seepage- and drainage body for use in e.g. private sector, has system units designed as plate sections, where each unit is designed from four frame parts that are separated from each other
GB0614158D0 (en) * 2006-07-17 2006-08-23 Haute Future Ltd Support member or reinforcement for use in earthworks
EP1970504A1 (en) 2007-03-16 2008-09-17 ABB Technology AG Modular foundation for a transformer station
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GB2464930B (en) * 2008-10-28 2013-07-24 Environmental Prot Group Ltd Methane Venting system
DE102009004915A1 (en) * 2009-01-16 2010-07-22 Rehau Ag + Co. Rigolensystem with at least one Versickerbox
DE102009004914A1 (en) * 2009-01-16 2010-07-22 Rehau Ag + Co. Versickerbox for a rigging system
GB0903130D0 (en) 2009-02-24 2009-04-08 Equaflow Ltd Areas for equestrian activities using structural modules
US8770890B2 (en) * 2009-03-05 2014-07-08 Stormtrap Llc Module and assembly for managing the flow of water
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GB0912173D0 (en) 2009-07-13 2009-08-26 Permavoid Ltd Activity surfaces using structural modules
GB2475551B (en) * 2009-11-23 2012-12-26 Polypipe Civils Ltd Drainage cell
US8881482B2 (en) 2010-01-22 2014-11-11 Connor Sport Court International, Llc Modular flooring system
EP2525881A4 (en) 2010-01-22 2015-09-09 Connor Sport Court International Inc Modular sub-flooring system
US8505256B2 (en) * 2010-01-29 2013-08-13 Connor Sport Court International, Llc Synthetic floor tile having partially-compliant support structure
DE102010045001A1 (en) 2010-09-10 2012-03-15 Auer Packaging Gmbh Drainage system, process for its manufacture and components therefor
EP2687642A1 (en) * 2012-07-17 2014-01-22 Sell Kunststoffen B.V. Irrigation and/or drainage assembly
CA2904083C (en) 2013-03-14 2022-08-23 Charles R. White Permeable paving system
CN203938946U (en) 2013-04-04 2014-11-12 斯特拉塔创新有限公司 Modular unit and the matrix that is positioned at load-supporting part below
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FR3011855B1 (en) * 2013-10-16 2017-12-22 Nidaplast-Honeycombs HALF-STORAGE MODULE FOR RETENTION BASIN
US10053853B2 (en) 2015-05-12 2018-08-21 Pre-Con Products Cell for stormwater management system
US9732509B2 (en) * 2015-05-12 2017-08-15 Pre-Con Products Underground system adapted for retaining or detaining stormwater
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NL2016344B1 (en) 2016-03-01 2017-09-11 Permavoid Ltd Support structure for a surface area provided with at least one connecting plug.
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US10415225B2 (en) 2016-11-16 2019-09-17 Pre-Con Products Stormwater management system
DE202016107114U1 (en) * 2016-12-19 2018-03-21 Rehau Ag + Co Rigolenhalbelement
DE102017105011A1 (en) * 2017-03-09 2018-09-13 ACO Severin Ahlmann GmbH & Co Kommanditgesellschaft Rigolenkörper and middle plate
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US10415260B2 (en) 2017-11-13 2019-09-17 Strata Innovations Pty Limited Structural cells, matrices and methods of assembly
NL2021404B1 (en) 2018-07-27 2020-01-31 Wavin Bv A system and a method for building a road
PL3656919T3 (en) 2018-11-20 2023-09-25 Dutchblue World B.V. Sports field and methods for forming and operating the same
DE102019200257A1 (en) * 2019-01-10 2020-07-16 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung eingetragener Verein Road body and traffic area equipped with it
US11492793B2 (en) 2019-03-08 2022-11-08 Brentwood Industries, Inc. Storm water drain tank and assembly
WO2020190452A1 (en) 2019-03-15 2020-09-24 Dow Global Technologies Llc Moduluar water-retaining tiles and green/blue roof structures containing an assembly of such tiles
CA3033298A1 (en) * 2019-03-20 2020-09-20 Bowers, Dustin T. Six sided interlocking construction blocks and corresponding components made from recycled material
WO2021012016A1 (en) * 2019-07-25 2021-01-28 Southern Geosynthetics Supplies Pty Ltd Module for drainage and method of assembly
WO2021043778A1 (en) 2019-09-02 2021-03-11 Glavloc Build Systems Limited A building raft foundation system
US11352785B2 (en) 2020-01-31 2022-06-07 B & B Flying Service, Inc. Construction block units
US11186987B2 (en) * 2020-01-31 2021-11-30 B&B Flying Service, Inc. Construction block units
WO2022040815A1 (en) * 2020-08-31 2022-03-03 Plaex Building Systems Inc. Interlocking building blocks and mortarless interlocking building system
TWI759843B (en) * 2020-09-02 2022-04-01 淨斯人間志業股份有限公司 Interlocking paving brick assembly
DE102020005908A1 (en) 2020-09-28 2022-03-31 Optigrün international AG ROOF LIFT SYSTEM, ROOF LIFT AND ROOF LIFT INSTALLATION PROCEDURE
GB2603783A (en) 2021-02-12 2022-08-17 Twelve Trading Ltd Void forming modules and uses thereof
PE20240908A1 (en) * 2021-08-23 2024-04-29 Oscar Larach UNDERGROUND WATER TANKS USING MODULAR CRANES

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2392551A (en) * 1943-05-10 1946-01-08 Albert Kahn Interlocking building block
US3881571A (en) * 1973-10-19 1975-05-06 Michael Maldwyn Moulton Building unit for scaffolding or a trestle
US4678192A (en) * 1986-01-02 1987-07-07 Campbell Bruce E Manually assembled puzzle apparatus
US5437698A (en) * 1992-04-24 1995-08-01 Yugen Kaisha Clean Up System Particularly, a structured body for the drainage treatment for the preparation for tree-planting ground, and its impounding and flushing system
US6050044A (en) * 1998-07-27 2000-04-18 Kitsilano Industries Inc. Building block
US20030118404A1 (en) * 2000-01-17 2003-06-26 Lee Alan Sian Ghee Structural modular interconnectable subsoil drainage cell

Family Cites Families (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US69297A (en) * 1867-09-24 Improved pavement
US1636114A (en) * 1926-05-24 1927-07-19 Henry D Streator Pavement
CH631764A5 (en) * 1978-07-20 1982-08-31 Kueng Peter Sportfoerderung Ag Base plate for a covering element for producing a sports ground
US4850739A (en) * 1988-01-26 1989-07-25 Gargollo Roberto L Method and apparatus for constructing an articulated pavement system
DK89291D0 (en) * 1991-05-13 1991-05-13 Frank Bentzon FLOORING SYSTEM WITH LINKABLE TILE ELEMENTS, NAMELY PLASTIC TILES
US5549418A (en) * 1994-05-09 1996-08-27 Benchmark Foam, Inc. Expanded polystyrene lightweight fill
GB2294077B (en) 1994-10-14 1998-12-09 Univ Coventry Paving system for spillage and flood management
FR2744154B1 (en) * 1996-01-30 1998-04-30 Boissie Chantal INSULATION AND FLOOR DRAINAGE SYSTEM
US5735640A (en) * 1996-04-03 1998-04-07 Nicolon Corporation Geo textiles and geogrids in subgrade stabilization and base course reinforcement applications
FR2747705B1 (en) * 1996-04-18 1998-05-29 Screg LIGHT FILL
NL1008627C2 (en) * 1998-03-18 1999-09-21 Wavin Bv Irrigation and / or drainage tray.
US6739797B1 (en) * 1999-12-22 2004-05-25 Thomas W. Schneider Interlocking erosion control block with integral mold
US6468942B1 (en) * 2000-11-16 2002-10-22 John J. Sansalone Absorptive-filtration media for the capture of waterborne or airborne constituents
US6688808B2 (en) * 2002-06-12 2004-02-10 Hee Jang Lee Prefabricated cement concrete slab for road pavement
US20050224690A1 (en) * 2004-04-12 2005-10-13 Hobbs George J Water-permeable concrete pad and form
US7344334B2 (en) * 2006-05-16 2008-03-18 Vast Enterprises Llc Paver system
US7429144B1 (en) * 2007-12-07 2008-09-30 Huo-Mu Lai Paving brick assembly

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2392551A (en) * 1943-05-10 1946-01-08 Albert Kahn Interlocking building block
US3881571A (en) * 1973-10-19 1975-05-06 Michael Maldwyn Moulton Building unit for scaffolding or a trestle
US4678192A (en) * 1986-01-02 1987-07-07 Campbell Bruce E Manually assembled puzzle apparatus
US5437698A (en) * 1992-04-24 1995-08-01 Yugen Kaisha Clean Up System Particularly, a structured body for the drainage treatment for the preparation for tree-planting ground, and its impounding and flushing system
US6050044A (en) * 1998-07-27 2000-04-18 Kitsilano Industries Inc. Building block
US20030118404A1 (en) * 2000-01-17 2003-06-26 Lee Alan Sian Ghee Structural modular interconnectable subsoil drainage cell

Cited By (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9540811B2 (en) * 2007-05-09 2017-01-10 Antonio Rapaz Construction panel
US20080276567A1 (en) * 2007-05-09 2008-11-13 Antonio Rapaz Construction panel
US8464490B2 (en) 2007-05-09 2013-06-18 Antonio Rapaz Construction panel
US9010060B2 (en) 2007-05-09 2015-04-21 Antonio Rapaz Construction panel
US20080276557A1 (en) * 2007-05-09 2008-11-13 Antonio Rapaz Construction panel
US20120163911A1 (en) * 2009-07-13 2012-06-28 Permavoid Limited Surfaces Using Structural Modules
US8790037B2 (en) * 2009-07-13 2014-07-29 Permavoid Limited Surfaces using structural modules
US10973175B2 (en) 2012-07-05 2021-04-13 Airborne International B.V. Plant surface structure and modules and method for forming the same
US9986693B2 (en) 2012-07-05 2018-06-05 Permavoid Limited Plant surface structure and modules and method for forming the same
US10238084B2 (en) * 2012-09-07 2019-03-26 Permavoid Limited Cattle floor
US20150334980A1 (en) * 2012-09-07 2015-11-26 Permavoid Limited Cattle Floor
US20160097175A1 (en) * 2013-03-26 2016-04-07 Alton F. Parker Aggregate replacement
US20160312427A1 (en) * 2013-12-10 2016-10-27 Hisses Blocks (Pty) Ltd Embankment Support
US10844552B2 (en) 2014-03-12 2020-11-24 Permavoid Limited Sports field structure and method for forming the same
US11505901B2 (en) 2014-03-12 2022-11-22 Permavoid Limited Sports field structure and method for forming the same
US9631328B2 (en) 2014-03-12 2017-04-25 Permavoid Limited Sports field structure and modules and method for forming the same
US10208434B2 (en) 2014-03-12 2019-02-19 Permavoid Limited Sports field structure and method for forming the same
US9522784B2 (en) * 2014-08-04 2016-12-20 Black Diamond Eco Solutions Llc Underground water-storage vault and method for installing same
US20160031645A1 (en) * 2014-08-04 2016-02-04 Black Diamond Eco Solutions, Llc Underground water-storage vault and method for installing same
US10808390B2 (en) * 2014-09-19 2020-10-20 Wavin B.V. Plastic infiltration unit and system
US10132069B2 (en) * 2014-09-19 2018-11-20 Wavin B.V. Plastic infiltration unit, a system comprising a plurality of plastic infiltration units
US20170292260A1 (en) * 2014-09-19 2017-10-12 Wavin B.V. A plastic infiltration unit, a system comprising a plurality of plastic infiltration units, a method of manufacturing an injection molded plastic pillar for an infiltration unit, a plastic base plate for use with a plastic infiltration unit, and a plastic infiltration system for deployment underground comprising a plastic infiltration unit
US10106980B2 (en) * 2016-04-16 2018-10-23 Lazaro A. Martinez Block interlocking module and system to build architectural structures
US10273685B2 (en) * 2016-04-16 2019-04-30 Lazaro Martinez Block interlocking module and system to build architectural structures
US11041297B2 (en) * 2019-11-15 2021-06-22 Pre-Con Products Water management system and methods
US20220023778A1 (en) * 2020-07-27 2022-01-27 Pre-Con Products Double-Filter Basket for StormWater Retention System Drain
US11980835B2 (en) * 2020-07-27 2024-05-14 Foley Products Company, Llc Double-filter basket for stormwater retention system drain

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CA2457135C (en) 2009-03-17
US7704011B2 (en) 2010-04-27
AU2001282408B2 (en) 2007-05-24
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PT1311727E (en) 2008-09-10
EP1311727A1 (en) 2003-05-21
US20070186499A1 (en) 2007-08-16
DK1311727T3 (en) 2008-10-13
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ATE397694T1 (en) 2008-06-15
AU8240801A (en) 2002-02-25

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