Polygonal drainage channel system and method
11939761 ยท 2024-03-26
Inventors
Cpc classification
International classification
Abstract
A substantially polygonal drainage channel system is provided. The drainage channel can include a substantially polygonal cross-section that can have rounded corners or edges. More specifically, the cross-section of the drainage channel can be formed to resemble an upside-down pear. The drainage channel can have a cross-sectional shape that can be created by first placing two circles of different diameters on top of one another. The top circle can be larger than the bottom circle. The two circles can then be connected with two tangential lines, one on each side, resulting in a shape in which a top of the drainage channel tapers down toward a bottom of the drainage channel. The drainage channel can also include ribs, drainage slots, and a connector-check valve. A method for installing a drainage channel is also provided.
Claims
1. A drainage channel comprising: a main body having an upside-down pear-shaped cross section with a hollow interior having an interior top surface and an interior bottom surface, the hollow interior defined by two circular areas of different diameters stacked vertically and connected by two straight lines extending tangentially from each of the two circular areas, the two straight lines including a first straight line and a second straight line, the two circular areas including a top circular area, and a bottom circular area, the top circular area having a first diameter, and the bottom circular area having a second diameter, and the second diameter being smaller than the first diameter; the main body further having a top surface, a first side surface, a second side surface, and a bottom surface, wherein the bottom surface is smooth, the top surface having a top curvature across a width of the top surface corresponding to the interior top surface that is defined by the first diameter of the top circular area, the first side surface being straight along a height of the first side surface and connecting the top surface and the bottom surface, the second side surface disposed opposite the first side surface and being straight along a height of the second side surface and connecting the top surface and the bottom surface; and the bottom surface having a bottom curvature across a width of the bottom surface corresponding to the interior bottom surface that is defined by the second diameter of the bottom circular area, the main body including a plurality of drainage holes formed through the main body in the bottom surface of the main body, the drainage holes having a size and a shape configured to militate against debris and sedimentation entering the hollow interior of the main body, and the drainage holes also spaced at a distance so as to minimize a disturbance to laminar flow within the hollow interior of the main body, and water can only enter the hollow interior of the main body through the drainage holes in the bottom surface via hydraulic pressure, and the main body further having a plurality of ribs formed on the top surface and the first and second side surfaces, the ribs providing flexibility to the drainage channel along a length of the drainage channel.
2. The drainage channel of claim 1, wherein the first diameter is about double the second diameter.
3. The drainage channel of claim 1, wherein the plurality of ribs is uniform.
4. The drainage channel of claim 1, wherein plurality of ribs is not uniform.
5. The drainage channel of claim 1, wherein each rib is U-shaped.
6. The drainage channel of claim 1, wherein the plurality of ribs is evenly spaced along the drainage channel.
7. The drainage channel of claim 1, wherein the plurality of ribs is unevenly spaced along the drainage channel.
8. The drainage channel of claim 1, wherein the plurality of drainage holes includes rectangular drainage holes.
9. The drainage channel of claim 1, wherein the drainage channel further includes a connector-check valve.
10. The drainage channel of claim 9, wherein the connector-check valve is configured to couple the drainage channel with a second drainage channel.
11. The drainage channel of claim 10, wherein the check valve is configured to stop a flow from the drainage channel to the second drainage channel when the second drainage channel is full.
12. A method of installing a drainage channel, comprising: providing the drainage channel of claim 1; and installing the drainage channel with the bottom surface oriented down.
Description
DRAWINGS
(1) The drawings described herein are for illustrative purposes only of selected embodiments and not all possible implementations, and are not intended to limit the scope of the present disclosure.
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DETAILED DESCRIPTION
(13) The following description of technology is merely exemplary in nature of the subject matter, manufacture, and use of one or more inventions, and is not intended to limit the scope, application, or uses of any specific invention claimed in this application or in such other applications as may be filed claiming priority to this application, or patents issuing therefrom. Regarding methods disclosed, the order of the steps presented is exemplary in nature, and thus, the order of the steps can be different in various embodiments, including where certain steps can be simultaneously performed, unless expressly stated otherwise. A and an as used herein indicate at least one of the item is present; a plurality of such items may be present, when possible. Except where otherwise expressly indicated, all numerical quantities in this description are to be understood as modified by the word about and all geometric and spatial descriptors are to be understood as modified by the word substantially in describing the broadest scope of the technology. About when applied to numerical values indicates that the calculation or the measurement allows some slight imprecision in the value (with some approach to exactness in the value; approximately or reasonably close to the value; nearly). If, for some reason, the imprecision provided by about and/or substantially is not otherwise understood in the art with this ordinary meaning, then about and/or substantially as used herein indicates at least variations that may arise from ordinary methods of measuring or using such parameters.
(14) Although the open-ended term comprising, as a synonym of non-restrictive terms such as including, containing, or having, is used herein to describe and claim embodiments of the present technology, embodiments may alternatively be described using more limiting terms such as consisting of or consisting essentially of Thus, for any given embodiment reciting materials, components, or process steps, the present technology also specifically includes embodiments consisting of, or consisting essentially of, such materials, components, or process steps excluding additional materials, components or processes (for consisting of) and excluding additional materials, components or processes affecting the significant properties of the embodiment (for consisting essentially of), even though such additional materials, components or processes are not explicitly recited in this application. For example, recitation of a composition or process reciting elements A, B and C specifically envisions embodiments consisting of, and consisting essentially of, A, B and C, excluding an element D that may be recited in the art, even though element D is not explicitly described as being excluded herein.
(15) As referred to herein, disclosures of ranges are, unless specified otherwise, inclusive of endpoints and include all distinct values and further divided ranges within the entire range. Thus, for example, a range of from A to B or from about A to about B is inclusive of A and of B. Disclosure of values and ranges of values for specific parameters (such as amounts, weight percentages, etc.) are not exclusive of other values and ranges of values useful herein. It is envisioned that two or more specific exemplified values for a given parameter may define endpoints for a range of values that may be claimed for the parameter. For example, if Parameter X is exemplified herein to have value A and also exemplified to have value Z, it is envisioned that Parameter X may have a range of values from about A to about Z. Similarly, it is envisioned that disclosure of two or more ranges of values for a parameter (whether such ranges are nested, overlapping or distinct) subsume all possible combination of ranges for the value that might be claimed using endpoints of the disclosed ranges. For example, if Parameter X is exemplified herein to have values in the range of 1-10, or 2-9, or 3-8, it is also envisioned that Parameter X may have other ranges of values including 1-9,1-8,1-3,1-2,2-10,2-8,2-3,3-10,3-9, and so on.
(16) When an element or layer is referred to as being on, engaged to, connected to, or coupled to another element or layer, it may be directly on, engaged, connected or coupled to the other element or layer, or intervening elements or layers may be present. In contrast, when an element is referred to as being directly on, directly engaged to, directly connected to or directly coupled to another element or layer, there may be no intervening elements or layers present. Other words used to describe the relationship between elements should be interpreted in a like fashion (e.g., between versus directly between, adjacent versus directly adjacent, etc.). As used herein, the term and/or includes any and all combinations of one or more of the associated listed items.
(17) Although the terms first, second, third, etc. may be used herein to describe various elements, components, regions, layers and/or sections, these elements, components, regions, layers and/or sections should not be limited by these terms. These terms may be only used to distinguish one element, component, region, layer or section from another region, layer or section. Terms such as first, second, and other numerical terms when used herein do not imply a sequence or order unless clearly indicated by the context. Thus, a first element, component, region, layer or section discussed below could be termed a second element, component, region, layer or section without departing from the teachings of the example embodiments.
(18) Spatially relative terms, such as inner, outer, beneath, below, lower, above, upper, and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. Spatially relative terms may be intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is turned over, elements described as below or beneath other elements or features would then be oriented above the other elements or features. Thus, the example term below can encompass both an orientation of above and below. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly.
(19) The present technology provides a drainage channel 100 that can effectively and efficiently drain groundwater and is shown generally in the accompanying
(20) As shown in
(21) As a non-limiting example, the first diameter (D1) can range from about 2 inches to about 18 inches. As disclosed hereinabove, in a preferred embodiment, the first diameter (D1) can be double the second diameter (D2) therefore using a dimension ratio of 2:1. As such, the second diameter (D2) can be less than about 18 inches to allow for the first diameter (D1) to be less than the second diameter (D2). More specifically, the first diameter (D1) can be about 3 inches and the second diameter (D2) can be about 1.5 inches. Most particularly, the first diameter (D1) can be about 4 inches and the second diameter (D2) can be about 2 inches. Further common examples include a first diameter (D1) of about 8 inches and a second diameter (D2) of about 4 inches, a first diameter (D1) of about 10 inches and a second diameter (D2) of about 5 inches, a first diameter (D1) of about 12 inches and a second diameter (D2) of about 6 inches, and a first diameter (D1) of about 18 inches and a second diameter (D2) of about 9 inches. However, those skilled in the art can select a suitable first diameter (D1) and, therefore, a second diameter (D2) less than the first diameter (D1). One of ordinary skill in the art can select a suitable first diameter (D1) and second diameter (D2) such that drainage is optimized within the scope of the present disclosure.
(22) As shown in
(23) With reference to
(24) With continued reference to
(25) The ribs 118 can be shaped in any configuration known to those of skill in the art. As a non-limiting example, the shape of the ribs 118 can include a U-shape with respect to a cross section along the longitudinal axis, shown in
(26) The ribs 118 can be spaced in any configuration known to those of skill in the art. With reference to
(27) In an alternative embodiment, the drainage channel 100 can be smooth without ribs. Where the surface of the drainage channel 100 does not contain ribs, the drainage channel 100 can be manufactured of a polymer that eliminates the need for ribs along the drainage channel 100. One of ordinary skill in the art can select a suitable polymer such that the need for ribs is eliminated within the scope of the present disclosure.
(28) As shown in
(29) The inclusion of the ribs 118 on the top surface 110 and side surfaces 114, 116, shown in
(30) As described hereinabove, the bottom surface 112 can be smooth, thereby allowing for laminar flow with minimal turbulence. The smooth bottom surface 112 can improve flow rate and increase water flow velocity. Desirability, this can also help minimize sedimentation build up within the drainage channel. At the same time, the bottom surface 112 can contain drainage apertures, openings, or slots 120 that can allow water to enter the pipe via hydraulic pressure. This incoming water can help suspend any sediment that might enter the drainage channel 100. Since the water can only enter through the bottom surface via hydraulic pressure, the drainage channel can be effectively self-cleaning since sediment drops to the bottom of the drainage channel due to gravity.
(31) The drain holes 120 can be formed as a single unit with the drainage channel 100. The substantially polygonal shape of the drainage channel 100 can ensure that the drainage channel 100 does not rotate during installation and therefore, the drain holes 120 remain on the portion of the drainage channel 100 that is on the bottom. The drain holes 120 can be sized to militate against debris and sedimentation, such as silt or clay, entering the drainage channel 100. The drain holes 120 can be spaced at a distance such that the laminar flow of the liquid in the drainage channel 100 is not disturbed. The size and spacing of the drainage holes 120 can vary depending on soil types as can be readily understood and adjusted by one of skill in the art. As a non-limiting example, the drain holes 120 can be circular, oblong, or rectangular in shape, as shown in
(32) With reference to
(33) The drainage channel 100 can be manufactured using the same technology as currently used for forming corrugated pipe. The drainage channel 100 can be manufactured by injection molding plastic, via an extruder, into a moving set of dies that form the outside wall of the desired shape. The product can then be cooled, usually with water. After the drainage channel 100 is formed, the drainage holes 120 can be formed onto the bottom surface of the drainage channel 100. The drainage channel 100 can then be rolled up into a roll containing the amount of drainage channel needed, as shown in
(34) The drainage channel 100 can be installed at a set depth and grade depending on field contour. One end of the drainage channel can be connected to a main drainage channel 126 with a specially designed connector as shown in
(35) Any method known to those of skill in the art can be used for installing the drainage channel 100. One non-limiting example can include installation using a wheel machine 128, shown in
(36) The present disclosure further contemplates a method 200 for installing a drainage channel 100. In a step 202, a drainage channel can be provided. The drainage channel 100, as described hereinabove, can include a substantially polygonal cross section, a top surface 110, a plurality of side surfaces 114, 116 and a plurality of ribs 118 formed on the top surface 110 and the plurality of side surfaces 114, 116. A bottom surface 112 can include a plurality of drainage holes 120. In a step 204, the drainage channel 100 can be installed with the bottom surface 112 oriented down in the ground.
(37) Example embodiments are provided so that this disclosure will be thorough, and will fully convey the scope to those who are skilled in the art. Numerous specific details are set forth such as examples of specific components, devices, and methods, to provide a thorough understanding of embodiments of the present disclosure. It will be apparent to those skilled in the art that specific details need not be employed, that example embodiments may be embodied in many different forms, and that neither should be construed to limit the scope of the disclosure. In some example embodiments, well-known processes, well-known device structures, and well-known technologies are not described in detail. Equivalent changes, modifications and variations of some embodiments, materials, compositions and methods can be made within the scope of the present technology, with substantially similar results.