Management of waste liquid and/or liquid runoff is of utmost importance in modern society. Displaced, blocked, or backed-up liquid can cause real and personal property damage, and even injury, through erosion, corrosion, or simply absorption tending towards rot or fungus invasion. For instance, extensive efforts are undertaken in the development of new residential neighborhoods and business parks to ensure that environmental runoff is directed and contained for further natural or artificial treatment. Likewise, industrial and interior liquid drains assist in managing and conveying spilled or used liquid to holding tanks or other liquid treatment systems.
Prior devices have been developed in an effort to allow liquid to pass but to block obstructive articles from entering a liquid conduit. Such devices may be referred to generally as grates, screens, covers, etc. Improvements to prior drainage devices are desirable to improve liquid drainage and attempt to minimize or eliminate blockage or obstruction thereof.
Embodiments of systems and methods according to the present invention relate generally to liquid drainage, and more particularly to improved passive liquid drainage grates.
An embodiment of a system according to the present invention includes a rain gutter defining a vertically upward facing open channel a between a first longitudinal lip affixed adjacent to a roof fascia and a second longitudinal lip disposed at least substantially parallel to the first longitudinal lip and a first drainage grate. The first drainage grate includes a first support member having a first support member length and comprising a beam leg, a second support member spaced at least substantially equidistant from the first support member along at least a majority of the first support member length, a first support beam extending along a first support beam length and spaced at least substantially equidistant from the first support member along at least a majority of the first support member length, the first support beam being located between and spaced from the first support member and the second support member, a second support beam extending along a second support beam length and spaced at least substantially equidistant from the second support member along at least a majority of the second support member length, the second support beam being located between and spaced from the first support beam and the second support member, a first plurality of drainage ribs extending from the first support member to the first support beam, a majority of the first plurality of drainage ribs having an upper surface extending from a first end coupled to the first support member to a second end coupled to the first support beam, a second plurality of drainage ribs extending from the first support beam to the second support beam, a majority of the second plurality of drainage ribs having an upper surface extending from a first end coupled to the first support beam to a second end coupled to the second support beam, and a third plurality of drainage ribs extending from the second support beam to the second support member, a majority of the third plurality of drainage ribs having an upper surface extending from a first end coupled to the second support beam to a second end coupled to the second support member. The second end of the upper surface of the majority of the first plurality of drainage ribs terminates in a knee that is positioned at a greater distance from the first support beam than the first end of the upper surface of the majority of the second plurality of drainage ribs. The second end of the upper surface of the majority of the second plurality of drainage ribs terminates in a knee that is positioned at a greater distance from the second support beam than the first end of the upper surface of the majority of the third plurality of drainage ribs.
According to another aspect of an embodiment of a system according to the present invention, the system further includes a second drainage grate that is at least substantially identical to the first drainage grate.
According to still another aspect of an embodiment of a system according to the present invention, the first support member of the first drainage grate includes a first registration tab configured to nest against and cooperate with the first support member of the second drainage grate.
According to a further aspect of an embodiment of a system according to the present invention, the second support beam of the first drainage grate includes a second registration tab configured to nest against and cooperate with the second support beam of the second drainage grate.
According to yet another aspect of an embodiment of a system according to the present invention, the second drainage grate is abutted to and in physical contact with the first drainage grate.
According to still a further aspect of an embodiment of a system according to the present invention, each rib extending from a first rib end to a second rib end and having a rib height, the rib height measured at the rib first end being different than the rib height being measured at the rib second end.
According to yet a further aspect of an embodiment of a system according to the present invention, the rib height measured at each first rib end is less than the rib height measured at each second rib end.
According to yet another aspect of an embodiment of a system according to the present invention, the first, second, and third plurality of drainage ribs are longitudinally aligned.
According to yet another aspect of an embodiment of a system according to the present invention, each drainage rib comprises a bottom surface that is coplanar with a bottom surface of every other drainage rib.
According to an aspect of a method according to the present invention, the method includes providing a device including a first support member having a first support member length and comprising a beam leg, a second support member spaced at least substantially equidistant from the first support member along at least a majority of the first support member length, a first support beam extending along a first support beam length and spaced at least substantially equidistant from the first support member along at least a majority of the first support member length, the first support beam being located between and spaced from the first support member and the second support member, a second support beam extending along a second support beam length and spaced at least substantially equidistant from the second support member along at least a majority of the second support member length, the second support beam being located between and spaced from the first support beam and the second support member, a first plurality of drainage ribs extending from the first support member to the first support beam, a majority of the first plurality of drainage ribs having an upper surface extending from a first end coupled to the first support member to a second end coupled to the first support beam, a second plurality of drainage ribs extending from the first support beam to the second support beam, a majority of the second plurality of drainage ribs having an upper surface extending from a first end coupled to the first support beam to a second end coupled to the second support beam, and a third plurality of drainage ribs extending from the second support beam to the second support member, a majority of the third plurality of drainage ribs having an upper surface extending from a first end coupled to the second support beam to a second end coupled to the second support member. The second end of the upper surface of the majority of the first plurality of drainage ribs terminates in a knee that is positioned at a greater distance from the first support beam than the first end of the upper surface of the majority of the second plurality of drainage ribs. The second end of the upper surface of the majority of the second plurality of drainage ribs terminates in a knee that is positioned at a greater distance from the second support beam than the first end of the upper surface of the majority of the third plurality of drainage ribs. The method further includes the steps of placing the first device above a rain gutter, which is affixed adjacent a fascia of a building roof, securing the first support member to a mounting flange of the rain gutter, and securing the second support member to a free longitudinal lip of the rain gutter.
According to another aspect of an embodiment of a method according to the present invention, the method further includes the step of, for a second device that is substantially similar to the first device, repeating each of the providing, placing, inserting and securing steps.
According to a further aspect of an embodiment of a method according to the present invention, the method further includes the step of abutting the second device to the first device prior to the repeated securing step.
According to still another aspect of an embodiment of a method according to the present invention, the abutting step further includes the process of nesting the first registration tab of the first device against the beam leg of the second device.
According to yet another aspect of an embodiment of a method according to the present invention, the abutting step further including the process of nesting the second registration tab of the first device against the second support beam of the second device.
Although the disclosure hereof is detailed and exact to enable those skilled in the art to practice the invention, the physical embodiments herein disclosed merely exemplify the invention which may be embodied in other specific structures. While the preferred embodiment has been described, the details may be changed without departing from the invention, which is defined by the claims.
Turning now to
The first support member 104 is preferably a substantially planar plate 110 having a substantially consistent thickness 112 throughout a first support member width 114 from a mounting edge 116 to a support edge 118. Additionally or alternatively, the first support member 104 may include one or more stress riser formations 111, such as longitudinal grooves extending preferably along the entire first support member length 104a, which may assist in providing enhanced flexibility along such formations 111 to aid in installation, as later described.
The second support member 106 is preferably an angular member 120 having an L-shaped cross-section along at least a portion of (and more preferably along a majority of, and most preferably along the entire) the second support member length 106a, the cross-section including a first mounting leg 122 and a beam leg 124. The mounting leg 122 extends substantially parallel to and/or coplanar with the first support member 104. The mounting leg 122 has a free edge 123 facing radially outwardly from the remainder of the grate 100. The mounting leg 122 preferably includes one or more mounting notches, slots or apertures 106b formed therethrough. The beam leg 124 depends downwardly from the mounting leg 122, preferably at least partially supporting a plurality of drainage ribs 152 discussed below. While the second support member 106 preferably has an L-shaped cross section, it is to be understood that the mounting leg 122 and the beam leg 124 may not be joined, as the beam leg 124 may be spaced from the mounting leg 122, towards the first support member 104, or even eliminated altogether.
The first support member 104 and the second support member 106 are preferably spaced from each other along the entirety of the grate length 102 by a drainage gap 130. Spanning the drainage gap 130 is a drainage rib structure 150. The drainage rib structure 150 includes a plurality of drainage ribs 152 defining fluid passageways in the interstitial spaces 154 therebetween. The drainage ribs 152 are preferably provided in a plurality of rows 156 to span the drainage gap 130. The rows 156 extend parallel to the grate length 102, but each drainage rib 152 preferably extends along a rib length 152a that is not parallel to the grate length 102. The rib length 152a preferably extends substantially perpendicular to (or radially through) the grate length 102. In adjacent rows of drainage ribs 152, the ribs 152 are preferably not aligned along their respective rib length 152a. That is, there is preferably a rib offset 151 between a median line along a rib 152 in a first row 156 and a medial line along a rib 152 in a second row 156, the second row being adjacent to the first. A preferred rib offset 151 preferably positions ribs 152 in adjacent rows 156 substantially centered along the interstitial spaces 154 of adjacent row(s) 156, thus creating a substantially checkerboard pattern (when viewed from above, as in
Each rib 152 is preferably a solid member, preferably having an at least substantially consistent width (measured parallel to the device length 102), which extends from a rear end 152b (closer to the first support member 104) to a front end 152c (closer to the second support member 106). Each rib 152 is preferably wedge-shaped, with a shorter height provided at the rear end 152b and a taller height, or knee, provided at the front end 152c. This height differential provides a discontinuous step arrangement between the first support member 104 and the second support member 106. Though other configurations are contemplated, a top surface 152d of each rib is preferably rounded about an axis running parallel to the top surface 152d along the rib length 152a. A bottom surface 152e of each rib 152 is preferably substantially coplanar with bottom surfaces 152e of other ribs 152 in the same row 156 and/or preferably substantially coplanar with bottom surfaces 152e of ribs 152 in adjacent rows 156, if provided. The described arrangement of ribs 152 preferably provides surface disruption in three dimensions, each of which has been found to be advantageous in promoting liquid drainage. Such surface disruption may also enhance traction if the grate is intended for use in a floor drain or conduit.
While only a single row 156 of ribs 152 may be used, where more than one row 156 of ribs 152 is utilized, adjacent rows 156 are preferably supported by a support beam 160 extending along a support beam length 162. The support beam 160 is preferably spaced at least substantially equidistant from the first support member 104 and/or the second support member 106 along at least a majority of the respective first support member length 104a and/or second support member length 106a. While the support beam 160 may be indirectly coupled to the first support member 104 and the second support member 106 (e.g., through ribs 152), the support beam 160 is preferably located between and spaced from the first support member 104 and the second support member 106.
Devices 100 according to the present invention may be provided (e.g., in an installation kit package) in a single or variety of lengths 102. Preferably, however, a mating structure is provided to maintain front-to-back and lateral registration of adjacent devices 100 placed along a length of a conduit that may be longer than a single length 102. The mating structure preferably includes registration tabs 158 to nest against and cooperate with the support beam(s) 160 and/or beam leg 124 to assist in front-to-back registration and general device alignment. The mating structure preferably also includes a registration rib 152r extending from the same end 102b of the device 100 and/or a registration extension 106c of the second support member 106. The registration rib 152r and extension 106c assist in maintaining lateral registration to form a substantially uninterrupted checkerboard pattern of ribs 152 and spaces 154, as previously discussed, as between adjacent devices 100.
To use a device 100 according to the present invention, the rib structure 150 is placed over a liquid conduit, such as a drain pipe, trough or gutter. The device 100 may then be secured to the liquid conduit, itself, or other supporting structure. An example of a preferred liquid conduit to be used in conjunction with a device 100 according to the present invention is a common rain gutter fastened to a building structure, such as a house. Rain gutters are generally thought to be available in a variety of cross-sections, usually referred to as styles or types (Styles A through K, for example). Each style or type of rain gutter, however, generally has a front, rolled or bent edge or lip, and also has a rear mounting flange to be secured to a support structure, such as a roofing facia on a building, and an upward-facing channel extending therebetween of a predetermined width, such as between about 3.5 inches and about 6.5 inches. Devices according to the present invention may be utilized with a variety of gutter cross-sections.
Referring now to
The bending of the first support member 104, discussed above, may be avoided, such as when a roofing material proximate to or overhanging the gutter 10 allows for underlayment or overlayment of the first support member 104 relative thereto. For instance, on a structure including asphalt shingles, it may be possible to insert the first support member 104 between those shingles and another roofing layer (e.g., tar paper, roofing substrate (e.g., plywood or oriented strand board (OSB), or another shingle layer), and then fasten only the second support member 106 to the gutter 10, as previously described. In this way, the first support member 104 (or a portion of it) can be held in place (e.g., sandwiched) between one layer of roofing material and another without the need for additional fasteners, though additional fasteners could be used. If the first support member 104 is overlayed (i.e., on top of) all layers of roofing material,
To continue installation along a length of gutter 10 that is longer (e.g., between capped gutter ends) than the first installed device 100, a second device 100 according to the present invention may be positioned over the gutter and next to the first device 100, preferably in an abutting relationship, with cooperation of mating registration tabs 158, support beams 160, and/or registration rib(s) 152r. The securement of the second device 100 relative to the gutter may then be repeated as was performed for the first device 100. This installation process may be repeated for subsequent devices 100, until a complete longitudinal length of the gutter is covered by one or more devices 100. It may be desirable to trim the length 102 of one of the devices 100 to be installed over the gutter 10, so as to eliminate overhang in the event that the gutter length is not substantially equal to a multiple of the device length 102. Trimming of the length may be performed with a power tool (e.g., cutoff wheel, band saw, etc.) or with hand tools (e.g., aviation snips, side cutters, utility knife, etc.), and may be done at a mitered angle so as to provide an apparent continuous device 100 along an entire length of gutter 10 between capped ends thereof.
Once installed, liquid is free to run either directly into the interstitial spaces 154 (e.g., falling rain directly through grate) or liquid may be received by and flow at least partially across the first support member 104 (e.g., roof or floor runoff) or by ribs 152, and then may flow into the interstitial spaces 154. The surface disruptions caused by the features of devices according to the present invention improve liquid drainage. Additionally, such disruptions may provide additional air passageways to increase likelihood that debris that may come to rest on the device (e.g., on one or more rib top surface(s) 152d) is dislodged due to ambient air currents or wind.
Turning now to
Each spacing rib 253 is preferably a solid member having an at least substantially consistent width (measured perpendicular to the device length (e.g., 102)) along its length (measured parallel to the device length (e.g., 102)). Though other configurations are contemplated, a top surface 253b of each spacing rib is preferably rounded (or has rounded edges) about an axis or axes running parallel to the top surface 253b, substantially perpendicular to a drainage rib 252. A bottom surface 253c of each spacing rib 253 is preferably substantially coplanar with bottom surfaces 253c of other spacing ribs 253 in the same row 256 of drainage ribs 252 and/or preferably substantially coplanar with bottom surfaces 253c of spacing ribs 253 in adjacent rows 256, if provided.
Liquid drainage devices according to the present invention may be formed of any material suitable to withstand continued exposure to a liquid to be drained. For instance, if water is a primary liquid to be drained, such as water received from a shingled roof, a preferred material may be a high-density polyethylene copolymer having a preferred durometer, such as a Shore D rating of greater than zero to about 80, and more preferably about 65. Whereas, if a liquid to be received by drainage devices according to the present invention are oils, gels, etc., such as in a manufacturing setting, materials such as polyethylene, polypropylene, or polytetrafluoroethylene (PTFE) may be desirable. Drainage devices according to the present invention may be injection molded, cast, CNC machined, etc., as is known in the art.
The foregoing is considered as illustrative only of the principles of the invention. Furthermore, because numerous modifications and changes will readily occur to those skilled in the art, it is not desired to limit the invention to the exact construction and operation shown and described. While the preferred embodiment has been described, the details may be changed without departing from the invention, which is defined by the claims.
This application is a continuation of U.S. Non-Provisional patent application Ser. No. 17/840,091, filed 14 Jun. 2022, and entitled “Systems and Methods Related to Liquid Drainage,” which claims the benefit of U.S. Non-Provisional patent application Ser. No. 17/188,484, filed 1 Mar. 2021, and entitled, “Systems and Methods Related to Liquid Drainage,” which issued as U.S. Pat. No. 11,359,378 on 14 Jun. 2022 and which claims the benefit of now expired U.S. Provisional Patent Application Ser. No. 62/983,942, filed 2 Mar. 2020, and entitled “Systems and Methods for Related to Liquid Drainage,” all of which are incorporated herein by reference in their entireties.
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20240102290 A1 | Mar 2024 | US |
Number | Date | Country | |
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62983942 | Mar 2020 | US |
Number | Date | Country | |
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Parent | 17840091 | Jun 2022 | US |
Child | 18529104 | US | |
Parent | 17188484 | Mar 2021 | US |
Child | 17840091 | US |