This application includes material which is subject or may be subject to copyright and/or trademark protection. The copyright and trademark owner(s) has no objection to the facsimile reproduction by any of the patent disclosure, as it appears in the Patent and Trademark Office files or records, but otherwise reserves all copyright and trademark rights whatsoever.
The invention generally relates to methods and systems to deposit gravel into waterways and rivers. More particularity, disclosed embodiments relate to a new hopper system and related components used to place gravel or rock within waterways and rivers to construct sand bars or other structures.
A bar in a river is an elevated region of sediment (such as sand or gravel) that has been deposited by the flow or current of a river. Types of bars include mid-channel bars (also called braid bars, and common in braided rivers), point bars (common in meandering rivers), and mouth bars (common in river deltas). Bars are typically found in the slowest moving, shallowest parts of rivers and streams, and are often parallel to the shore and occupy the area farthest from the deepest portion of the channel.
The locations of gravel bars in waterways are usually determined by the geometry of the river and the flow through it. Point bars form on the inside of meander bends in a meandering river because the shallow flow and low shear stresses there reduce the amount of material that can be carried there. The excess material falls out of transport and forms the bar.
Problems arise when sediment is held back by dams or other obstructions, resulting in losses of habitat for fish and other aquatic wildlife, such as riffle-pool sequences and gravel bars. Restoring gravel bars downstream from dams is an important way to improve physiological, ecological, and thermal diversity in rivers. Having these diverse rivers is important for fish, such as salmon, which require different types of habitat during various life stages. Gravel bars are also believed to function as ‘natural filters’ for particulate organic matter, nutrients, and plankton. Retaining this organic matter helps purify the river and provide primary energy resources to the river ecosystem.
Gravel is a highly mobile material which erodes in some areas and deposits in others. River gravel comprises a mixture of particles larger than sand (greater than 2 mm in diameter) but smaller than boulders (typically less than 256 mm in diameter).
Natural gravel movements create a varied river channel with deep pools, shallows and exposed accumulations of gravel. These in turn create various types of flow and so provide a mosaic of habitats for fish and other species under normal, drought and flood conditions.
Gravel provides a habitat on and within which many aquatic organisms complete one or more stages of their life cycle, and is used by them to escape hostile flood waters. Exposed accumulations of gravel are important as havens for a range of terrestrial plants and animals.
There have been efforts to ameliorate the damage to these waterways by replacing gravel deposits in rivers. However, to date these efforts have typically required large machinery and well developed roadways and access to the waterway. Unfortunately, many of the rivers damaged by dams are remote and difficult to reach with heavy machinery.
The present invention overcomes shortfalls in the related art by presenting a unique and unobvious combination, configuration and use of smaller machinery that requires less infrastructure to bring to bear on the problem. As such, this invention can be used in more remote areas, and at a fraction of the cost of existing techniques.
These and other aspects of the present invention will become apparent upon reading the following detailed description in conjunction with the associated drawings.
The following detailed description is directed to certain specific embodiments of the invention. However, the invention can be embodied in a multitude of different ways as defined and covered by the claims and their equivalents. In this description, reference is made to the drawings wherein like parts are designated with like numerals throughout.
Unless otherwise noted in this specification or in the claims, all of the terms used in the specification and the claims will have the meanings normally ascribed to these terms by workers in the art.
Unless the context clearly requires otherwise, throughout the description and the claims, the words “comprise,” “comprising” and the like are to be construed in an inclusive sense as opposed to an exclusive or exhaustive sense; that is to say, in a sense of “including, but not limited to.” Words using the singular or plural number also include the plural or singular number, respectively. Additionally, the words “herein,” “above,” “below,” and words of similar import, when used in this application, shall refer to this application as a whole and not to any particular portions of this application.
The above detailed description of embodiments of the invention is not intended to be exhaustive or to limit the invention to the precise form disclosed above. While specific embodiments of, and examples for, the invention are described above for illustrative purposes, various equivalent modifications are possible within the scope of the invention, as those skilled in the relevant art will recognize. For example, while steps are presented in a given order, alternative embodiments may perform routines having steps in a different order. The teachings of the invention provided herein can be applied to other systems, not only the systems described herein. The various embodiments described herein can be combined to provide further embodiments. These and other changes can be made to the invention in light of the detailed description.
A pair of lateral spill shields 115 are shown on either side of the top box section 120 of the hopper. A rear spill shield 117 is attached to the rear of the top box section 120. The top box section 120 is attached to a funnel assembly 130, the funnel assembly tapering down into a section of angled hopper pipe 140. As shown in
The artful combination of the angled lower edges 137 configured to terminate within an inside section or interior section 141 of an angled hopper pipe achieves excellent results in preventing system blockage and obtaining an optimal mixture of rock and water, the combination sometimes referred to as slurry. The disclosed configuration of the funnel assembly is unusual in that the contents of the entire top box section is funneled or constrained down to the width and length of an angled hopper pipe.
The use of an angled hopper pipe 140 achieves excellent results by providing the correct downhill inertia to allow gravel to flow down the angled hopper pipe 140.
In the best mode known to date, the angled hopper pipe is set at an angle of 23 degrees. The angled hopper pipe 140 may be set in a range of 10 to 40 degrees. For most applications, a range of 15 to 35 degrees works well. Angle is measured from horizontal.
The upper end of the angled hopper pipe may be connected to a confluence pipe section 144 which in turn may be connected to one or more input pipes, such as an upper input pipe 142 and a lower input pipe 143. The input pipes may supply water from pumps and direct the water into the angled hopper pipe for mixing with gravel within the angled lower edges 137, see
A lower end of the angled hopper pipe 140 may be attached to a clean out assembly 150, the clean out assembly may comprise a main pipe 155, a clean out pipe 151, having a pivot cap 152 and a lower valve section 157. The artful combination of the clean out assembly 150, angled hopper pipe and constrained funnel assembly 130 provides excellent and unexpected results in quickly unclogging stoppages during field use. Upon a stoppage or other emergency, the lower valve section may be closed via a quick shut off valve, shown in
All the above references and U.S. patents and applications are incorporated herein by reference. Aspects of the invention can be modified, if necessary, to employ the systems, functions and concepts of the various patents and applications described above to provide yet further embodiments of the invention.
These and other changes can be made to the invention in light of the above detailed description. In general, the terms used in the following claims, should not be construed to limit the invention to the specific embodiments disclosed in the specification, unless the above detailed description explicitly defines such terms. Accordingly, the actual scope of the invention encompasses the disclosed embodiments and all equivalent ways of practicing or implementing the invention under the claims.
While certain aspects of the invention are presented below in certain claim forms, the inventors contemplate the various aspects of the invention in any number of claim forms.
Items
Disclosed embodiments may include the following items.
Item 1. A system for creating gravel bars in bodies of water, the system comprising:
a hopper 100 comprising a top box section 120, the top box section having an upper end attached to a grate system 110, a pair of lateral spill shields 115 and a rear spill shield 117:
and the top box section having a lower end attached to a funnel assembly 130;
the funnel assembly comprising a top section 132 and a constrained lower section 135,
the constrained lower section comprising a plurality of inside angled lower edges 137 all terminating within a section of an angled hopper pipe 140;
the angled hopper pipe set at an angle of between 10 to 40 degrees from horizontal and
the angled hopper pipe having a first end attached to a clean out assembly 150, the clean out assembly comprising a main pipe 155, a clean out pipe 151 with the clean out pipe attached to a pivot cap 152.
Item 2. The system of item 1 further comprising a single water input pipe 155 attached to a second end of the angled hopper pipe.
Item 3. The system of item 1 further comprising an upper input pipe 142 and a lower input pipe 143 attached to a confluence pipe section 144, the confluence pipe section attached to a second end of the angled hopper pipe.
Item 4. The system of item 1 further comprising a slurry output hose 250 attached to the main pipe 155.
Item 5. The system of item 1 further comprising a vibrator attached to the hopper.
Item 6. The system of item 3 further comprising a water input hose 242 having a first end attached to the upper input pipe and having a second end attached to a water pump, the water pump attached to a supply hose with the distal end of the supply hose in a water supply.
Item 7. The system of item 4 further comprising a buoyancy device 900 attached to a distal end of the slurry output pipe.
Item 8. A method of building sand bars and other structures in water, the method comprising:
use of a hopper 100, comprising a top box section 120, the top box section having an upper end attached to a grate system 110, a pair of lateral spill shields 115 and a rear spill shield 117:
and the top box section having a lower end attached to a funnel assembly 130;
the funnel assembly comprising a top section 132 and a constrained lower section 135,
the constrained lower section comprising a plurality of inside angled lower edges 137 all terminating within a section of an angled hopper pipe 140;
the angled hopper pipe set at an angle of between 10 to 40 degrees from horizontal and the angled hopper pipe having a first end attached to a clean out assembly 150, the clean out assembly comprising a main pipe 155, a clean out pipe 151 with the clean out pipe attached to a pivot cap 152.
Item 9. The method of time 8 further comprising the use of a single input pipe 145 attached to an end of the angled hopper pipe.
Item 10. The method of item 8 further comprising the use of an upper input pipe 142 and a lower input pipe 143 attached to a confluence pipe section 144, the confluence pipe section attached to a second end of the angled hopper pipe.
Item 11. The method of item 8 further using a slurry output pipe 250 attached to the main pipe.
Item 12. The method of item 8 further comprising the use of a vibrator attached to the hopper.
Item 13. The method of item 10 further comprising a water input hose 242 having a first end attached to the upper input pipe and having a second end attached to a water pump, the water pump attached to a supply hose with the distal end of the supply hose in a water supply.
Item 14. The method of item 8 further comprising the use of a buoyancy device 900 attached to a distal end of the slurry output pipe.
Item 15. A kit for building sand bars or other structures in fresh water, the kit comprising:
a hopper 100 comprising a top box section 120, the top box section having an upper end attached to a grate system 110, a pair of lateral spill shields 115 and a rear spill shield 117:
and the top box section having a lower end attached to a funnel assembly 130;
the funnel assembly comprising a top section 132 and a constrained lower section 135,
the constrained lower section comprising a plurality of inside angled lower edges 137 all terminating within a section of an angled hopper pipe 140;
the angled hopper pipe set at an angle of between 10 to 40 degrees from horizontal and the angled hopper pipe having a first end attached to a clean out assembly 150, the clean out assembly comprising a main pipe 155, a clean out pipe 151 with the clean out pipe attached to a cap 152.