The invention relates to a system and method for fluid flow power generation. More particularly, it relates to a system and method for generating electric power from surface fluid flow in which a flexible membrane belt comprising an array of pockets or paddles is dragged along by a moving fluid such as a river or stream. The membrane is mounted on two moveable cylindrical elements or cylinders which are caused to rotate by the movement of the membrane and wherein at least one cylinder is coupled to a mechanical or hydraulic transmission system to drive an electric generator.
The invention is particularly addressed towards the creation of a new and more efficient means of electric power generation which optimizes the contact of a flexible membrane, comprising an array of pockets and or paddles, with the surface of a moving fluid wherein the moving fluid drags the flexible belt along at the speed of the fluid flow and thus causes the cylinders to rotate and wherein the mechanical rotation drives a mechanical transmission to drive an electric generator, or it drives a hydraulic fluid pump which transfers fluid to a second hydraulic pump to drive an electric generator. Moreover, in one embodiment the membrane belt and cylinder system is integrated with, and moveable along the vertical axis of, a vertical support structure and further integrated with an array of floats such that the cylinder and membrane system is caused to move with the rising or falling water level and thereby maintain the membrane belt and pockets at an optimum position with regard to the fluid surface.
Generally, water wheels have been used to generate power to drive mechanical systems for thousands of years. Such wheels are either overshot waterwheels in which water falls under gravity against the paddles of the wheel, or undershot waterwheels where a wheel is placed in the surface of a moving river and is caused to turn. In the case of overshot waterwheels, these may only be placed at a location where there is a significant change in level of the river or stream. Conversely, undershot water wheels are not very efficient because the wheel paddles are fixed and their orientation relative to the fluid flow is changing as the wheel rotates.
Unlike other forms of renewable power generation, such as wind turbines which are only efficient power generation systems over a predetermined range of wind speeds, rivers and streams offer significant untapped potential for power generation as they generally offer a constant fluid flow 24 hours per day, all the year round.
In other areas of application, pleasure boats and yachts require power for on board equipment particularly when they are sailing or at anchor in a moving current or anchored off shore in a tidal flow zone. Today, few systems are available which offer a versatile power generation system which can derive power from the river or tide.
Furthermore, the offshore tidal flow zones offer substantial opportunities for new and improved systems for electric power generation.
Further to the limitations of existing methods for fluid flow power generation, and so far as is known, no optimum system and method for fluid flow power generation is presently available which is directed towards the specific needs of this problem area as outlined.
Accordingly, it is an object of the present invention to provide an improved system and method for fluid-flow power generation in which a moveable membrane belt, comprising an array of pockets and or paddles, is mounted upon two moveable cylindrical elements linked to an electric power generation means and wherein the system is held above a moving fluid such that the pockets and or paddles project into the moving fluid thereby causing the membrane belt to be dragged along by the fluid which rotates the cylinders and generates power.
It is a further object of one embodiment of the present invention to provide a system and method for fluid-flow power generation in which a moveable membrane belt, comprising an array of pockets and or paddles, is mounted upon two moveable cylindrical elements and wherein the complete system is integrated with a support frame and wherein the support frame comprises means to be held at an optimum level relative to the level of the fluid.
It is a further object of one embodiment of the present invention to provide a system and method for fluid-flow power generation in which a moveable membrane belt, comprising an array of pockets and or paddles, is mounted upon two moveable cylindrical elements and wherein the said belt and cylindrical elements are integrated with a support frame and wherein the support frame comprises one or more flotation elements and wherein the said frame is moveably mounted on a vertical support such that the belt can be maintained at an optimum height relative to the fluid level.
It is a further object of one embodiment of the present invention to provide a system and method for fluid-flow power generation in which a moveable membrane belt, comprising an array of pockets and or paddles, is mounted upon two moveable cylindrical elements and wherein the said belt and cylindrical elements are integrated with a support frame and wherein the support frame comprises one or more flotation elements which serve to maintain the said pockets and or paddles of the belt at an optimum level in the fluid and wherein the system is anchored to provide relative movement between the fluid flow and the belt pockets and or paddles.
It is a further object of one embodiment of the present invention to provide a system and method for fluid-flow power generation in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two moveable cylindrical support elements and wherein the total system is integrated with a support structure and wherein the structure comprises a lower guide structure, or race, directly below the flexible membrane belt to provide a channel for the moving fluid.
It is a further object of one embodiment of the present invention to provide a system and method for fluid-flow power generation in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two moveable cylindrical support elements and wherein the total system is integrated with a support structure and wherein the structure comprises a lower guide structure directly below the flexible membrane belt to provide a channel for the moving fluid which further comprises opening guides where the fluid enters the channel to increase the fluid flow rate through the channel.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two moveable cylindrical support elements wherein one or both cylindrical elements are integrated with a power generation means and wherein the total system is integrated with a support structure which is mounted on flotation elements or comprises buoyancy elements and or comprises a hydrodynamic design to optimise movement through the water and which may be towed behind a marine vessel and thereby provide power to the marine vessel.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation suitable for a marine vessel in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two moveable cylindrical support elements wherein one or both cylindrical elements are integrated with a hydraulic transmission which is linked via a hydraulic connection to an electric power generation means mounted on the marine vessel and wherein the total system is integrated with a support structure which is mounted on floatation elements or which comprises internal buoyancy elements and which may be towed behind a marine vessel.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation suitable for a marine vessel in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two moveable cylindrical support elements wherein one or both cylindrical elements are integrated with a geared transmission, or with a hydraulic transmission which is linked via a hydraulic connection to an electric power generation means mounted on the marine vessel, and wherein the total system is integrated into a highly hydrodynamic-shaped support structure which has optimum buoyancy to maintain the movement of the structure through the water and which may be towed behind a marine vessel.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation suitable for a marine vessel in which one or more moveable membrane belts comprising an array of pockets and or paddles is each mounted on two moveable cylindrical support elements wherein one or both cylindrical elements are integrated with a geared transmission, or with a hydraulic transmission which is linked via a hydraulic connection to an electric power generation means mounted on the marine vessel, and wherein the total system is integrated into a highly hydrodynamic-shaped support structure which has optimum buoyancy to maintain the movement of the structure through the water and which may be towed behind a marine vessel, and wherein the one or more moveable membrane belts each make contact with the water via a central channel within the hydrodynamic-shaped structure through which water flows as the structure is dragged through the water and wherein the flow of water through the central channel causes the one or more belts to move and thus generate power.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation suitable for a marine vessel in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two moveable cylindrical support elements wherein one or both cylindrical elements are integrated with a mechanical transmission which drives an electric generator, or is integrated with a hydraulic transmission which is linked via a hydraulic connection to an electric power generation means and wherein the total system is integrated with the hull of the marine vessel and thereby generates power as the vessel moves relative to the fluid.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation for marine vessels which comprises a moveable membrane belt comprising an array of pockets and or paddles mounted on two moveable elements wherein one or both elements are integrated with a hydraulic transmission which is linked to an electric power generation means or is integrated with a mechanical transmission and wherein the total system generates power as the membrane belt moves relative to the fluid and wherein the system can generate power as the belt moves in either a forward or a backward direction.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation which comprises one or more moveable membrane belts each comprising an array of pockets and or paddles mounted on two moveable elements wherein one or both moveable elements are integrated with a hydraulic transmission or a geared transmission which is linked to an electric power generation means and wherein the total system generates power as the membrane belt moves relative to the fluid and wherein the system can generate power as one or more belts is caused to move as the system is dragged through the water and wherein the hydrodynamic structure comprises hydrodynamic fins which serve to maintain the system at the optimum depth and attitude in the water.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation suitable for being located in a tidal zone in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two or more moveable cylindrical support elements wherein one or more cylindrical elements are integrated with a hydraulic transmission which is linked via a hydraulic connection to an electric power generation means mounted onshore and wherein the total system is integrated with a support structure which is mounted on flotation elements or which comprises buoyancy elements and which may be anchored in the said tidal zone.
It is a further object of one embodiment of the present invention to provide a self-contained unit for fluid-flow power generation suitable for being located in a tidal zone in which a moveable membrane belt comprising an array of pockets and or paddles is mounted on two or more moveable cylindrical support elements wherein one or more cylindrical elements are integrated with a hydraulic transmission which is linked via a hydraulic connection to an electric power generation means mounted onshore, or is integrated with a mechanical transmission which drives an electric generator, and wherein the total system is integrated into a tidal barrier structure wherein an incoming tide turns an upper belt in the structure and an outgoing tide turns a lower belt in the structure and wherein one-way valves maintain the direction of the fluid flow in the lower part of the structure.
Other objects and advantages of this invention will become apparent from the description to follow when read in conjunction with the accompanying drawings.
Certain of the foregoing and related objects are readily-attained according to the present invention by the provision of a novel system and method for fluid flow power generation which is highly suited to the market need for a highly efficient means to generate power from rivers and streams and in tidal flow areas and in offshore currents such as riptides and for a new and improved means of power generation for sailing boats and other marine craft.
In different configurations, the invention comprises a moveable flexible membrane belt which is mounted on two moveable cylindrical supports which are integrated together by way of a support structure and free to rotate around an axis tangential to the direction of movement of the belt and which are linked via a hydraulic transmission or a geared transmission to a power generation means. The belt comprises pockets and or paddles and the belt and cylinder structure is maintained above the surface of the fluid by way of a flotation means such that the pockets and or paddles project into the fluid surface and are dragged along by the fluid flow thereby causing the belt to rotate the cylinders.
One or both cylinders are connected by way of a hydraulic transmission or a geared transmission to a power generation means such that the energy of the moving fluid is transferred into movement of the belt to drive an electric generator.
The belt may comprise a flexible membrane of impermeable material or a sequence of connected rigid plates which carry an array of pockets and or paddles. A guide channel structure comprising opening guide vanes is integrated with the support structure to provide a closed channel for the fluid directly below the belt under the water to improve the power transfer between the fluid flow and the belt. The guide vanes serve to increase the fluid flow beneath the belt.
The system may be integrated into a hydrodynamic-shaped structure and towed behind a marine vessel to provide a means of power generation.
The system may be integrated into a tidal zone structure and generate power as the tide comes in or goes out.
The system may be integrated into a hydrodynamic-shaped structure comprising material of low density and be anchored to the seabed such that the structure is positioned directly in an offshore current or rip current. This application makes possible the placement of the system at the optimum depth. Electrical cables or hydraulic lines transfer the power generated to onshore equipment.
Other objects and features of the present invention will become apparent from the following detailed description considered in connection with the accompanying drawings, which disclose one key embodiment of the invention. It is to be understood, however, that the drawings are designed for the purpose of illustration only and that the particular descriptions of the fluid flow power generation system for the river application and the separate marine vessel application are given by way of example only and do not limit the scope of the invention.
The following description makes full reference to the features of the different embodiments as outlined in the objects of the invention.
Referring now in detail to the drawings and in particular
The two cylindrical elements are supported on two base structures (6,8) of appropriate density such as concrete which may be placed on a river bed or other submerged structure. Each of the base structures comprise vertical supports (4) which each carry a moveable element (5) which enables each cylindrical element to move up or down along a vertical axis and thereby maintain the lower part of the belt at an optimum height with respect to the fluid surface. The optimum height is determined by the optimum power generation of the system where the pockets of the belt are immersed into the moving fluid thereby minimising resistance to the belt motion.
A flotation structure (11) maintains the cylindrical elements at the optimum height above the moving fluid.
At the top of the vertical supports is shown a hole in the linking structure through which one or more fixing lines (7) can be attached. The other end of each fixing line can be fixed to the river or stream bed or alternatively, the system can be tethered to the banks of a river or stream. This also makes possible the deployment of this power generation means in places where the river is very deep or unsuitable for the supports (6,8) wherein the fixing lines can serve to provide a means to anchor the structure.
In
This design is far simpler and cheaper to produce and to set up. It also limits the amount by which the machine needs to be calibrated upon installation to ensure an accurate rotation.
Referring now in detail to
Guide supports (9) are fixed to the flotation device (11) and integrated with the moveable element (5) which supports each cylindrical element (3) allowing the cylindrical element to move in a vertical direction up and down along the vertical supports (4). The flotation device (11) floats in the fluid (10) and thus the cylindrical elements and belt system is maintained at an optimum height relative to the fluid surface.
The power generation system and method according to the invention has ideal application to form the basis for a highly efficient power generation device for marine vessels. With reference now to
In a separate embodiment, the hydrodynamic-shaped structure may comprise low density material and thereby be buoyant, and be tethered or anchored to the seabed at the optimum depth in a rip current. In this way the power generation system can generate power from submerged currents. In different embodiments the power generated can be used to power lights on the structure which thus renders the structure useful for undersea lighting applications for aesthetic or for practical purposes such as navigation or to warn of undersea dangers. Electric cables or hydraulic lines can connect the power generation system to equipment on shore.
With reference to
With reference to
In the lower part of
The invention also has direct application to power generation in tidal zones.
The orientation of the structure and the width of the flexible membrane belts are variables of design which will be chosen according to the fluid flow conditions of the specific tidal zone. The tidal zone structure will be manufactured from appropriate materials such as concrete. The height of the guide structure (21) and the separation in height between the top of the structure and the lower channel will also be chosen according to the tidal conditions of the specific location.
In one embodiment, incoming tides pass through one-way valve (22) thereby driving water through the lower channel (24) and out one-way valve (23). The structure comprises sloping sides (25,26) which serve to guide the fluid flow into the structure (25) or over the structure (26).
In different embodiments the flexible membrane belt may comprise rigid paddles or rigid pockets. Alternatively, separate belt systems may be linked to only one channel, or in the case of the upper part of the tidal zone barrier, only one area of surface fluid flow. Furthermore, the invention anticipates and includes the application of many separate belt systems which drive separate transmissions at different rates. This facilitates the changing and dynamic nature of the tidal fluid flow which can be moving in different directions even though the tide may be coming in or going out. Hydraulic transmission is ideally suited to combine the power generated by separate belt systems.
In other embodiments the tidal zone barrier may comprise additional control means wherein the one-way valves of the lower channel are maintained closed until a large volume of water from an incoming tide is held behind the structure. At a certain moment when sufficient water exists behind the structure, the one-way valves are opened and the head of water forces water into the lower channel (24).
These particular embodiments of the use of a flexible membrane belt to generate power are given as examples only.
In different embodiments the pockets or paddles on the membrane belt structure may comprise asymmetrical shapes, and be spaced apart with a regular spacing or with an irregular spacing.
It should be understood however, that the present disclosure is for the purpose of illustration only and does not include all modifications or improvements obvious to the man skilled in the art which may fall within the scope of the appended claims.
Number | Date | Country | Kind |
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0910118.9 | Jun 2009 | GB | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/GB2010/000275 | 2/16/2010 | WO | 00 | 2/1/2012 |