Flared modular drainage system with improved surface area
09809941 · 2017-11-07
Inventors
Cpc classification
E03F1/002
FIXED CONSTRUCTIONS
International classification
Abstract
A drainage unit has a plurality of modules defining channels with arced or flared surfaces longitudinally spaced from one another for installation into a ground excavation. The spaced modules may be aligned on a longitudinally support pipe that may provide a fluid connection between the channels. The adjacent surfaces of successive modules are spaced from each other a non-constant distance across the laterally transverse thickness or height. Filtration fabric that allows fluid flow therethrough while substantially filtering surrounding soil or other back fill is wrapped around each of modules. The flared and/or arced configuration of the modules defining channels allows for increased surface area interfacing between the channels and soil and a corresponding reduction in laterally transverse footprint.
Claims
1. A fluid drainage unit for installation in a ground excavation, comprising: a first channel extending transversely and a second channel extending transversely, the first channel longitudinally spaced from the second channel along the excavation, the first and second channels being concavely arced relative to each other in the same longitudinal direction, the first channel defined between a front face extending between a top and bottom edge and being arced concavely in the longitudinal direction between a left edge and a right edge and a rear face extending between a top and bottom edge and being arced concavely in the same longitudinal direction relative to the first channel front face between a left edge and a right edge, the front and rear faces of the first channel extending substantially the same distance from their respective top to bottom edges, the left edges of the front and rear faces defining a left face therebetween and the right edges of the front and rear faces defining a right face therebetween, and the rear face defining a first filtration surface; the second channel defined between a front face that is longitudinally spaced from the first channel rear face and that defines a second filtration surface, and a second channel rear face, both the second channel front face and second channel rear face extending from respective top to respective bottom edges and being arced between respective right and left edges with the respective second channel left edges defining a left face therebetween and the respective second channel right edges defining a right face therebetween, the second channel front face and the second channel rear face being concave in the same longitudinal direction; wherein the first channel right face is longitudinally spaced from the second channel right face and the first channel left face is longitudinally spaced from the second channel left face without a filtration surface positioned longitudinally between the second channel right face and the first channel, and without a filtration surface positioned longitudinally between the second channel left face and the first channel; the first channel and second channel are fluidly connected to one another; and the arc of the first channel extends between its left face and right face and extends along an angle of between approximately 60 degrees and 270 degrees, and the arc of the second channel extends between its left face and right face and extends along an angle of between approximately 60 degrees and 270 degrees.
2. The fluid drainage unit of claim 1, wherein the transverse thickness T between the first channel rear face right edge and the first channel rear face left edge is between approximately 12 and 64 inches.
3. The fluid drainage unit of claim 2, wherein the transverse thickness T between the second channel rear face right edge and the second channel rear face left edge is between approximately 12 and 64 inches.
4. The fluid drainage unit of claim 1, wherein the longitudinal distance between the first channel front face and first channel rear face is not constant along a plane that extends substantially parallel to the longitudinal direction and between the top edge and the bottom edge of the front face and rear face.
5. The fluid drainage unit of claim 1, wherein the bottom edges of the front and rear faces of the first channel and bottom edges of the left and right faces of the first channel define a first channel footprint and the bottom edges of the front and rear faces of the second channel and bottom edges of the left and right faces of the second channel define a second channel footprint, and each of the first channel footprint and the second channel footprint has an area within the range of 24-3840 square inches.
6. The fluid drainage unit of claim 1, wherein the arced shape of the first channel rear face defines an apex and the left and right edges of the second channel front face are equidistant from the apex of the arc of the first channel rear face.
7. The fluid drainage unit of claim 6, wherein the distance between the first channel rear face and the second channel front face is 1.5 inches or greater.
8. The fluid drainage unit of claim 7, wherein the distance between the first channel rear face and the second channel front face is within the range of 3-12 inches.
9. The fluid drainage unit of claim 1, wherein the first and second channels are fluidly connected via a longitudinal pipe extending through the first channel rear face and second channel front face.
10. The fluid drainage unit of claim 9, wherein the longitudinal pipe extends through both the first channel and second channel and includes at least one aperture aligned with each channel.
11. The fluid drainage unit of claim 1, wherein the first channel has a width W coinciding with the distance between its front and rear faces, and the bottom edges of the front and rear faces of the first channel and bottom edges of the left and right faces of the first channel define a first channel footprint having an area F, and the transverse thickness T between the first channel rear face left edge and the first channel rear face right edge is reduced relative to a channel with the same width W and same channel footprint area F and substantially planar front and rear surfaces extending substantially perpendicular to the longitudinal direction within the range of between approximately 10-70%.
12. The fluid drainage unit of claim 1, wherein the spacing between the first channel rear face and second channel front face is not constant along a plane that extends substantially parallel to the longitudinal direction and between the respective top edges of the first channel rear face and second channel front face and between the respective bottom edges of the first channel rear face and the second channel front face.
13. The fluid drainage unit of claim 1, wherein the angle of arc of the first channel and the angle of arc of the second channel are approximately the same.
14. The fluid drainage unit of claim 1, wherein the arc of the first channel defines a first apex and the arc of the second channel defines a second apex, the first apex and second apex being aligned with one another along a longitudinal axis.
15. The fluid drainage unit of claim 1, wherein the front, rear, left and right faces of the first channel each comprises a filtration surface, the front, rear, left and right faces of the second channel each comprises a filtration surface, and there is no filtration surface positioned longitudinally between the first channel and second channel.
16. The fluid drainage unit of claim 1, wherein each channel is defined by a module comprising at least one piece of supportive polymeric core material.
17. A fluid drainage unit for installation in a ground excavation, comprising: a longitudinally extending conduit having a plurality of openings for delivery of fluid, the conduit defining a longitudinal axis; a first channel with a top surface and a bottom surface extending in an arcuate concave direction between a right face and a left face, the right face having an outer right edge and being positioned on one side of the longitudinal axis and the left face having an outer left edge and being positioned on the opposite side of the longitudinal axis, the first channel top surface and first channel bottom surface each defining a filtration surface; a second channel with a top surface and a bottom surface extending in an arcuate concave direction between a right face and a left face, the second channel right face having an outer right edge and being positioned on one side of the longitudinal axis and the second channel left face having an outer left edge and being positioned on the opposite side of the longitudinal axis, the second channel top surface and second channel bottom surface each defining a filtration surface, the second channel being concave in the same longitudinal direction relative to the first channel; wherein the first channel is spaced longitudinally from the second channel without a filtration surface positioned longitudinally between the first channel and the second channel, the openings in the fluid delivery conduit align longitudinally with the first channel and second channel to provide a fluid connection between the first channel and second channel, and the first channel has a width W coinciding with a width of the right face and a width of the left face of the first channel, and the bottom surface of the first channel defines a first channel footprint having an area F, and the transverse thickness T between the first channel outer left edge and the first channel outer right edge is reduced relative to a channel with the same width W and same channel footprint area F and substantially planar front and rear surfaces extending substantially perpendicular to the longitudinal direction within the range of between approximately 10-70%.
18. The fluid drainage unit of claim 17, wherein the longitudinally extending conduit is a rigid pipe that extends through the first channel and second channel intermediate the respective top and bottom surfaces.
19. The fluid drainage unit of claim 17, wherein the first channel includes a front face extending from the first channel right face to the first channel left face and being spaced from a rear face extending from the first channel right face to the first channel left face, and each of the first channel front face, first channel rear face, first channel right face and first channel left face defines a filtration surface.
20. The fluid drainage unit of claim 19, wherein each of the filtration surfaces defined by the first channel front face, first channel rear face, first channel right face, first channel left face, first channel bottom surface and first channel top surface is formed of a singular unit of wrapped filtration material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Aspects of the preferred embodiment will be described in reference to the Drawings, where like numerals reflect like elements:
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DETAILED DESCRIPTION
(17) As shown with reference to
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(19) Each flared module 12 and 12′ may be constructed of a suitable sheet material. Preferably the sheet material is a polymeric core material. Recycled high impact polystyrene having a thickness of 0.24 inches has been found suitable for use as a module sheet. The module sheets are configured into flat sheets and/or egg carton shaped cuspated core sheets, which may or may not include holes therein. Cuspated sheets are described in U.S. Pat. No. 4,880,333 the contents of which are incorporated by reference and have utilized in other drainage systems. Similar sheets may be employed in the other disclosed embodiments of the drainage unit, as will be discussed in detail below. The cuspated core sheets, alone or in combination with flat sheets are aligned in face to face orientation to form a support module 12 or 12′. In embodiments comprising numerous upright polymer sheets in face-to-face orientation, the individual sheets may vary in original height dimension to account for the concave flared front face and rear face contour. For example, the opposite outermost sheets have the largest original (flat) height and successive sheets may decrease in original height as they move inward within the individual module. Alternate embodiments may include opposite sheets of one original height dimension, and numerous identical sheets on the interior of the module with no sheet material positioned in the interior of the flared portion of the module (i.e., the shaded portions of
(20) The support pipe 13 is typically a polymeric material, for example polyethylene (PE), polyvinyl chloride (PVC) or acrylonitrile-butadiene-styrene copolymer (ABS), although other materials compatible with the anticipated use may also be used. One preferred support pipe is ADS 3000© triple wall pipe available from Advanced Drainage Systems, Inc. of Hilliard, Ohio. The ADS 3000© pipe has increased stiffness and crush strength compared to other polymer pipes. The support pipe 13 can be solid or define one or more perforations, along some or all of its length. The perforations may align with the position of the support module 12 on the support pipe 13 to define a fluid path through the pipe 13 to the channel defined by the support module 12. The perforations and module spacing can be designed to allow fluid flow to any or all of the modules.
(21) With reference to
(22) The relative alignment of the longitudinal support pipe 13 and modules is not limited to a longitudinally flared configuration, like that shown in
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(24) Additional characteristics of the flared modular system are identified below: Separate individual modules Each module has front face 14 and rear face 16 which extend and transition between an upper face 18 with surface area A, and a lower face 20 with surface area A′ that is greater than A. Surface area A′ is typically between 25% and 300% greater than surface area A (see for example Table 1 below). Shaded areas 22 in
(25) Examples of flared modular units like those depicted as reference numerals 12 and 12′ are shown in Table 1 below, indicating the substantial increase in surface area achieved by the inventive flared configuration:
(26) TABLE-US-00001 TABLE 1 Increase in total Module Upper face Upper face Lower face Lower face increase in surface area lateral longitudinal surface longitudinal surface lower:upper face lower:upper for 6 width - W thickness - T.sub.u area - A thickness -T.sub.1 area - A′ surface area module system Example (inches) (inches) (inches.sup.2) (inches) (inches.sup.2) (%) (inches.sup.2) 1 24 3 72 5 120 67 288 2 24 3 72 6 144 100 432 3 24 3 72 7 168 133 288 4 24 4 96 6 144 50 288 5 24 4 96 8 192 100 576 6 24 4 96 10 240 150 864 7 24 4 96 12 288 200 1152
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(30) With reference to
(31) As noted above, embodiments of the arced drainage unit 100 comprise arced modules of varying characteristics. All embodiments of the disclosed drainage units have been shown to be effective for distributing effluent to an external environment, such as soil or other backfill, while substantially reducing the overall footprint of the excavation required to accommodate the drainage units. The reduction in overall excavation footprint is accomplished via the arced contour that reduces the lateral thickness T of each module relative to a rectangular or other transversely straight module having the same lower footprint area.
(32) For example, a module comprising core sheets having dimensions of 36 inches long by 18 inches high, and having a width W of 4 inches has a lower footprint area of 144 square inches interfacing the lower surface of the excavation, and a rear surface footprint of 648 square inches. A module comprising core sheets with the same dimensions, and having the same width W formed into an arc circumferentially spanning approximately 180° has equal lower footprint and rear face areas, but a transverse thickness T of only 23 inches. Consequently, the transverse thickness of the representative drainage unit that employs 180° arced modules is reduced by approximately 36% relative to the flat modular unit, while maintaining the same area of the lower footprint and front and rear surface interfacing with the excavation. Embodiments of the drainage unit exist that reduce the transverse thickness relative to a planar module having substantially the same lower footprint by between 10-70%, and more preferably between about 20-50%. Moreover, the varying longitudinal distance between successive spaced surfaces (and thus the shape of backfill) has been shown to be particularly effective at accommodating significant volumes of drainage fluid.
(33) Embodiments of the arced modules exist spanning circumferential angles within the range of between 60° and 270°, with especially preferred embodiments within the range of 120. Exemplary arced units have a width W within an approximate range of 2-24 inches; a height H within an approximate range of 6-36 inches; and a transverse thickness T within an approximate range of 12-64 inches. The circumferential distance of the rear faces of the modules typically varies from approximately 12-160 inches. The modules 100 according to the herein disclosure may be spaced from each other in the excavation by 1.5 inches or more, and more preferably by approximately 3-12 inches at the position with the spaced surfaces being the closest to one another. For example, the depicted embodiment of the drainage unit 100 in
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(39) A subsoil drainage and fluid absorption system is formed by placing one or more modular units 10, 10′ or 100 in an excavation with the respective bottom faces downward usually abutting the excavation floor acting as a base, followed by backfilling the excavation with soil or another aggregate or suitable porous media so that the outer filtration surfaces of the modules are in contact with the backfill. Each module defines a channel between the respective front, rear, top and bottom faces for receipt of drainage fluid flow from the support pipe itself or a secondary conduit, for example a conduit positioned above or on top of the top surface of the module. The channel may fill with drainage fluid that slowly infiltrates into the surrounding absorbent soil or similar material, the rate of which is improved with increased surface area of the outer filtration fabric surfaces interfacing with the external environment.
(40) A typical installation of the disclosed treatment system includes the sequential steps of: 1. Preparing an excavation, usually in a soil environment. The excavation should be sized and shaped to receive a modular unit. Of course, the size and configuration of the modular unit can also be varied as necessary to accommodate an excavation or environment. 2. Modular drainage units, including at least a plurality of modules and a support or fluid conduit pipe are placed within the excavation. Units can be assembled within the excavation or prior to placement therein. Adjacent support pipe pieces may be connected via appropriate connector and/or adhesive, depending on regulatory requirements if any. As indicated above, the plan layout of the modular system can be specified and configured as necessary for the particular environment with use of appropriate connectors. 3. In some embodiments, a fluid permeable fabric overcover may be employed, typically laid over the modular unit to improve subsoil breathability of the system. 4. The excavation is backfilled by hand shoveling or sloughing clean backfill material along the sides, between adjacent spaced modules and the top of the modular units. Backfill material can be clean and porous fill material, such as native soil, pearlite, septic fill, preferably devoid of large rocks. Appropriate seed may be laid over the excavated areas to protect against erosion and improve aesthetics.
(41) As discussed, all of the embodiments of the drainage unit with flared or arced channels may have a fluid-permeable geotextile fabric wrapping around the front and rear faces, top and bottom faces, and/or side faces of the support module. The bottoms may be wrapped or may be left uncovered to contact the excavation floor and facilitate fluid transfer to the soil. The fabric can be sewn into a formed cover and fitted over the support module. The cover, or separate fabric sections, can also be fastened to the support module by any other suitable method, for example by adhesive bonding, heat welding, stapling or banding.
(42) The disclosed modules (12, 12′ and 112) can optionally include additional layer(s) of fluid permeable geotextile fabric positioned between the front faces and rear faces to aid fluid flow control and filtration within the channels. The modular system disclosed herein is versatile and adaptable as needed to satisfy different fluid flow rates and source locations, as well as different drainage system regulatory requirements or ordinances.
(43) The exemplified modular units are general linear, traversing at least part of an excavation longitudinally with the support pipe, which is a non-limiting characteristic. In other embodiments the support pipes may be connected with angle fittings to provide a nonlinear subsoil fluid absorption system comprising multiple modular units.
(44) The disclosed flared and arced modular units provide significantly more surface contact area between the surfaces of individual modules and the surrounding media environment per linear foot of land compared to known systems.
(45) The disclosed modules (12, 12′ and 112) are all generally self-supporting and self-contained, and comprise generally non-absorbent materials, while allowing fluid flow into the surrounding environment (backfill). As shown in the Figures, individual modules (12, 12′ and 112) are typically positioned spaced apart from each other along a length of a longitudinal support pipe 13 within an excavation. The interior of the modules may be fluidly connected to each other via the support pipe (via apertures in the support pipe). Additional embodiments exist without the support pipe 13 providing a fluid path between module interior areas. For example, a fluid conduit can be positioned above the modules configured to deliver fluid to the modular system proximate the top edge of the modules, while the support pipe is employed to physically connect spaced apart modules. Still, further embodiments can include one or more fluid conduits positioned within a support pipe for delivering fluid to the modular system. Appropriate fluid conduits can be rigid (i.e., PVC pipe) or a flexible tubing. Flexible tube conduits can also be employed to deliver fluid to or from a module in virtually any direction, thereby improving versatility of the modular drainage system.
(46) The distance that modules are separated from each other can be varied as required for particular objectives or conditions. Spacing between respective modules does not have to be uniform along the length of the support pipe, thus further improving the versatility of the drainage system. The spatial distance between adjacent edges of the module faces is typically 1.5 inches or more at the closest position, and more preferably approximately 3-12 inches. As shown in
(47) While preferred embodiments of the foregoing invention have been set forth for purposes of illustration, the foregoing description should not be deemed a limitation of the invention herein. Accordingly, various modifications, adaptations and alternatives may occur to one skilled in the art without departing from the spirit and scope of the present invention.