The presently disclosed subject matter relates generally to the installation and performance of erosion control products and more particularly to an erosion control securing apparatus and method.
Erosion control is important to the environment and its inhabitants. Not only does severe erosion threaten plant and animal life, economic concerns are triggered when commercial and infrastructure facilities are disrupted or harmed.
On land areas that are susceptible to erosion, therefore, it may be necessary to provide some kind of erosion control system. In one example, erosion control matting or blankets may be laid out over the land area. One issue is keeping this material in place in areas having slopes and channels The erosion control matting or blankets may be secured in place by the use of securing devices, such as pins, pegs, or staples. However, a drawback of such devices is that they can be easily removed, may not be reliable and/or may not be able to be easily installed, which can lead to failure of the erosion control system.
Accordingly, there remains a need for improved erosion protection that is reliable and convenient.
The following presents a simplified summary of the invention in order to provide a basic understanding of some aspects of the invention. This summary is not an extensive overview of the invention. It is not intended to identify key or critical elements of the invention or to delineate the scope of the invention; its sole purpose is to present concepts of the invention in a simplified form as a prelude to the more detailed description that is subsequently presented.
In some embodiments, the presently disclosed subject matter may provide an erosion control securing apparatus and method. For example, an erosion control securing device may be provided that includes a main shaft with a hexagonal-shaped head portion at its proximal end and a coil portion at its distal end. In one example, the coil portion of the erosion control securing device may include three turns. Further, a main feature of the presently disclosed erosion control securing device may be that the hexagonal-shaped head portion is sized and shaped to engage with a standard hexagonal shaped drive tool, such as a standard hex socket that may be driven by a drill and/or socket wrench.
In some embodiments, the presently disclosed erosion control securing apparatus and method provide a coil portion that may include three turns and wherein the beginning of the coil portion (i.e., beginning of the first turn) may have a starting radius, then the radius of the coil portion may symmetrically increase to a maximum radius at the second turn, and then the radius may symmetrically decrease back to the starting radius at the ending of the coil portion (i.e., ending of the third turn).
In some embodiments, the presently disclosed erosion control securing apparatus may include a main shaft having a main shaft proximal end and a main shaft distal end; a head portion at the main shaft proximal end, the head portion being substantially hexagonal in shape; and a coil portion at the main shaft distal end.
In one example, the erosion control securing apparatus may include a coil portion having three turns, with the first of the three turns having a first radius, the second of the three turns having a radius larger than the first radius, and the third of the three turns having a radius about the same as the first radius.
In one example, the main shaft, the head portion, and the coil portion of the erosion control securing apparatus may be connected in a substantially continuous matter. Further, the main shaft, the head portion, and the coil portion may be substantially tubular or rod-like.
In one example, a head transition segment may be between the head portion and the main shaft proximal end, and the main shaft may be arranged substantially normal to the plane of the head portion.
In one example, a coil transition segment may be between the main shaft distal end and the proximal end of the coil portion, a tip may be at the distal end of the coil portion, and a tip transition segment may be between the distal end of the coil portion and the proximal end of the tip.
In one example, the head portion may be formed by adjoining segments, the adjoining segments may include a terminal end segment next to four central segments next to a head transition segment, the head transition segment may be connected to the main shaft, wherein the head transition segment may be spaced apart from the terminal end segment.
In one example, the head transition segment may include three adjoining segments, the first of the three adjoining segments may be connected to one of the four central segments, the second of the three adjoining segments may be about the same length and the first of the three adjoining segments, and the last of the three adjoining segments may be connected to the main shaft.
In some embodiments, the presently disclosed erosion control securing system and kit may include an erosion control securing kit may include a securing device having a main shaft having a main shaft proximal end and a main shaft distal end; a head portion at the main shaft proximal end, the head portion being substantially hexagonal in shape; and a coil portion at the main shaft distal end; and a rotational drive mechanism for installing the securing device.
In one example, the rotational drive mechanism may include a socket with a body having a recess on one side, and the recess may be substantially hexagonal in shape and dimensioned to receive the head portion. In one example, the body has a socket wrench receiver on the side opposing the one side
In one example, the substantially hexagonal recess may include a central recess that is substantially circular. In one example, an arrangement of engaging features may be provided within the substantially hexagonal recess and surrounding the central recess. In one example, a magnet may be provided within the central recess.
In some embodiments, the presently disclosed method for using an erosion control securing system may include the steps of: providing a securing device comprising: a main shaft having a main shaft proximal end and a main shaft distal end; a head portion at the main shaft proximal end, the head portion being substantially hexagonal in shape; and a coil portion at the main shaft distal end; providing a matting material; laying out the matting material over an area; and installing the securing device into the matting material to secure the matting material to the area, wherein the head portion is on one side of the matting material and the main shaft and coil portion are on the opposing side of the matting material.
Other features will be readily apparent to those skilled in the arts, techniques and equipment relevant to the present invention from a review of the Drawings and Detailed Description.
Having thus described the presently disclosed subject matter in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
The presently disclosed subject matter now will be described more fully hereinafter with reference to the accompanying drawings, in which some, but not all embodiments of the presently disclosed subject matter are shown. Like numbers refer to like elements throughout. The presently disclosed subject matter may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. Indeed, many modifications and other embodiments of the presently disclosed subject matter set forth herein will come to mind to one skilled in the art to which the presently disclosed subject matter pertains having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the presently disclosed subject matter is not to be limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the present subject matter.
In some embodiments, the presently disclosed subject matter provides an erosion control securing apparatus and method. For example, an erosion control securing device is provided that includes a main shaft with a hexagonal-shaped head portion at its proximal end and a coil portion at its distal end. In one example, the coil portion of the erosion control securing device includes three turns. Further, a main feature of the presently disclosed erosion control securing device is that the hexagonal-shaped head portion may be sized and shaped to engage with a standard hexagonal shaped drive tool, such as a standard hex socket that may be driven by a drill and/or socket wrench.
In some embodiments, the presently disclosed erosion control securing apparatus and method provide a coil portion that includes three turns and wherein the beginning of the coil portion (i.e., beginning of the first turn) has a starting radius, then the radius of the coil portion symmetrically increases to a maximum radius at the second turn, and then the radius symmetrically decreases back to the starting radius at the ending of the coil portion (i.e., ending of the third turn).
In some embodiments, the presently disclosed erosion control securing apparatus and method provide a head portion of any shape that may be engaged with a standard hexagonal shaped drive tool, such as a standard hex socket. For example, the head portion may be hexagonal-shaped, rectangular-shaped, or bowtie-shaped as long as it is sized to engage in driving fashion to a standard hexagonal shaped drive tool, such as a standard hex socket.
In some embodiments, the presently disclosed erosion control securing apparatus and method provide a custom drive mechanism, such as a custom hex socket that may be designed to receive the hexagonal-shaped head portion of the erosion control securing device and that may include a magnet for holding the hexagonal-shaped head portion of the erosion control securing device within the drive mechanism by magnet forces.
Referring now to
In one example, shown in
The members forming erosion control securing device 100 connect one to another in a substantially continuous manner. Further, the members forming erosion control securing device 100 may be substantially tubular or rod-like members having a radius, for example, of about 0.156 inches. Erosion control securing device 100 may be formed of any rigid, strong, and durable material that is able to withstand installation in the soil for an extended period of time. Erosion control securing device 100 may be formed, for example, of metal; galvanized metal; plastic; and biodegradable materials.
Referring now to
In one example, the dimensions of HEX head portion 112 are shown in
The overall dimensions of erosion control securing device 100 may vary. For example, the 4.25-inch length of main shaft 110 and/or the 3-inch length of coil portion 116 may vary. Accordingly, the overall 8.156-inch length of erosion control securing device 100 may vary. A main feature of erosion control securing device 100 is that HEX head portion 112 is sized and shaped to engage with a standard hexagonal shaped drive tool, such as a “HEX socket” (see
However, the configuration of erosion control securing device 100 shown in
Referring now to
Referring now to
At a step 310, certain erosion control products along with a plurality of the presently disclosed erosion control securing devices are provided. For example, one or more erosion control mattings 200 (see
At a step 315, one or more erosion control products are laid out at an installation job site. For example, one or more erosion control mattings 200 (see
At a step 320, a plurality of the presently disclosed erosion control securing devices are installed into the erosion control products. For example, a plurality of erosion control securing devices 100 as shown in
Referring now to
Further, head portion 112 of drive erosion control securing device 100 is not limited to hexagonal shape only and still be driven by a standard hex socket. For example,
Referring now to
Referring now to
HEX socket 500 may include, for example, a body 510 that has a hex-shaped recess 512 in one, top side (see
Referring now to
Further,
Referring now again to
Following long-standing patent law convention, the terms “a,” “an,” and “the” refer to “one or more” when used in this application, including the claims. Thus, for example, reference to “a subject” includes a plurality of subjects, unless the context clearly is to the contrary (e.g., a plurality of subjects), and so forth.
Throughout this specification and the claims, the terms “comprise,” “comprises,” and “comprising” are used in a non-exclusive sense, except where the context requires otherwise. Likewise, the term “include” and its grammatical variants are intended to be non-limiting, such that recitation of items in a list is not to the exclusion of other like items that can be substituted or added to the listed items.
For the purposes of this specification and appended claims, unless otherwise indicated, all numbers expressing amounts, sizes, dimensions, proportions, shapes, formulations, parameters, percentages, quantities, characteristics, and other numerical values used in the specification and claims, are to be understood as being modified in all instances by the term “about” even though the term “about” may not expressly appear with the value, amount or range. Accordingly, unless indicated to the contrary, the numerical parameters set forth in the following specification and attached claims are not and need not be exact, but may be approximate and/or larger or smaller as desired, reflecting tolerances, conversion factors, rounding off, measurement error and the like, and other factors known to those of skill in the art depending on the desired properties sought to be obtained by the presently disclosed subject matter. For example, the term “about,” when referring to a value can be meant to encompass variations of, in some embodiments ±100%, in some embodiments ±50%, in some embodiments ±20%, in some embodiments ±10%, in some embodiments ±5%, in some embodiments ±1%, in some embodiments ±0.5%, and in some embodiments ±0.1% from the specified amount, as such variations are appropriate to perform the disclosed methods or employ the disclosed compositions.
Further, the term “about” when used in connection with one or more numbers or numerical ranges, should be understood to refer to all such numbers, including all numbers in a range and modifies that range by extending the boundaries above and below the numerical values set forth. The recitation of numerical ranges by endpoints includes all numbers, e.g., whole integers, including fractions thereof, subsumed within that range (for example, the recitation of 1 to 5 includes 1, 2, 3, 4, and 5, as well as fractions thereof, e.g., 1.5, 2.25, 3.75, 4.1, and the like) and any range within that range.
Although the foregoing subject matter has been described in some detail by way of illustration and example for purposes of clarity of understanding, it will be understood by those skilled in the art that certain changes and modifications can be practiced within the scope of the present subject matter.
The presently disclosed subject matter is related to and claims priority to U.S. Provisional Patent Application No. 63/031,768 entitled “Erosion Control Securing Apparatus and Method” filed on May 29, 2020; the entire disclosure of which is incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/US2021/034727 | 5/28/2021 | WO |
Number | Date | Country | |
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63031768 | May 2020 | US |