1. Technical Field
The present invention relates generally to aero-power and hydropower and more specifically it relates to a Rotating Flexible Wing Power system for extracting low-cost electricity and mechanical energy from moving fluids including wind and water currents.
2. Description of Prior Art
Traditional windmills are the most common examples of devices used to capture energy from moving fluids, namely wind. The multiple blades of the windmill rotate about a horizontal axis oriented preferably in parallel with the air flow. The rigid cantilevered blades must be properly angled at each point along their length to optimize rotation. While effective, this design requires an additional mechanism to point it into the wind and it lacks the ability to easily position the blades for maximum angle of attack when the wind shifts. Moreover, traditional windmills are typically massive structures requiring considerable capital costs for construction, operation, and maintenance. Where windmills are combined with generators to produce electricity, the generators are typically located on the support structure, making access to the system and generator difficult. This tower itself must be engineered to handle wind loads and the weight of the wind system and generator. While traditional windmills have been improved upon by the use of rotatable blades for actively changing the blade angle under various wind conditions, such changes have added to the complexity and cost of the design, without addressing the inherent drawbacks of the design.
A device disclosed by Darrieus, U.S. Pat. No. 1,835,018 (Oct. 1, 1926), sought to overcome many of the deficiencies of traditional windmill design by providing for a turbine having fixed rigid blades disposed about a vertically oriented axis. Given that most fluids flow in a substantially horizontal manner, whether air currents or water currents, orienting the axis of rotation of the turbine vertically allowed the Darrieus device to capture energy of moving fluids irrespective of variances of the direction of fluid flow. Thus, a Darrieus turbine mounted on a tower would be as effective whether the wind blew from a constant direction or from shifting directions. The Darrieus device also incorporates a generator located below the wind system at a lower elevation where it can be more easily installed and maintained. However, an inherent flaw with the Darrieus design is the difficulty of building lightweight rigid blades that can handle heavy wind loads. Some prototypes have failed catastrophically in high winds with blade parts flying dangerously outwards at high speeds.
Other devices have employed novel designs to capture energy from fluid flow. For example, Savonius, U.S. Pat. No. 1,766,765 (Oct. 11, 1928), disclosed a rotating vertical axis device with cups that capture wind, causing rotation. Although the device generates high torque, the high stresses in the device require a large structural mass to unit area ratio. This and its utilization of inefficient wind drag forces rather than lift forces make it less efficient and less viable than traditional windmills.
Both Ranger, U.S. Pat. No. 6,523,781 (Feb. 25, 2003), and Webster, U.S. Pat. No. 6,914,345 (Jul. 5, 2005), disclose devices which use one or more tethered airfoils (e.g., kites) to capture wind energy, transferring said energy along the tethers to rotating mechanisms for energy generation. The fundamental feature of these devices is that the airfoil's angle to the wind is continuously increased and decreased resulting in an oscillating movement. This oscillating movement in the lifting body and tethers is converted into useful mechanical motion that can then be used to drive a power generator. These devices have the advantage of being easily oriented to the direction of wind flow for maximum energy capture during energy capture, as well as being able to reach higher elevations where the wind is stronger without the need for expensive load-bearing towers, but they have the disadvantage of requiring complicated systems for controlling and resetting the airfoils and are susceptible to complete operational shutdown when the wind velocity decreases below a minimum level. Energy captures by both devices rely upon airfoils drawing out tethers. Once the tethers have reached maximum extension they need to be retracted, which results in the airfoils being drawn against the air flow with a resulting loss of efficiency. Means are employed to manipulate the orientation of the airfoils relative to the air flow to better allow withdrawal against the air flow, but substantial energy is nevertheless wasted during airfoil retraction. These disadvantages make these designs more difficult and expensive to operate than traditional wind systems.
It is therefore evident that there is a need for a safe, low-cost system for generating power from the flow of fluids. Such system should be simple to erect, operate, and maintain, accommodate fluid flows from any direction, and be efficient in both the power stroke and the return stroke for maximum net energy capture. The present invention discloses such a system.
The present invention discloses a low-cost system for safely generating power from the flow of fluids by the use of a single curved flexible wing supported at each of its two ends by corresponding support structures. The wing employs a pair of rotation mechanisms interposed between the ends of the wing and the support structures, with the rotation mechanisms suitably adapted to allow the wing to rotate or swing freely around a central axis. Introduction of a flowing fluid over the wing results in lift forces which rotate the wing in a manner similar to a rigid Darrieus wind turbine. The wing continues through its rotation and is returned to the upwind position by angular momentum. Unlike a Darrieus wind turbine, however, the present invention utilizes a single flexible wing rather than a plurality of rigid wings, and the wing has an optimized mass distribution. The lift forces on the wing change the shape and position of the wing relative to the center of rotation, making the radius of rotation longer on the downwind side (when the wing is bowed out by the force of the wind on the concave inner surface of the wing) and shorter on the upwind side (when the wing is flattened by the force of the wind on the convex outer surface of the wing). The changes to the radius length correspond to a continuous change in the distance between the ends of the wing, with the distance between the ends shorter on the downwind side and longer on the upwind side, resulting in the wing creating longitudinal oscillations of its ends having a relatively large amount of force. The energy from these longitudinal oscillations is captured and may be used to drive a generator or pumping device. A fluid other than air may be used, such as a water current, with the same effect.
There has thus been outlined, rather broadly, some of the features of the invention in order that the detailed description thereof may be better understood, and in order that the present contribution to the art may be better appreciated. There are additional features of the invention that will be described hereinafter.
In this respect, before explaining at least one embodiment of the invention in detail, it is to be understood that the invention is not limited in its application to the details of the construction or to the arrangements of the components set forth in the following descriptions, illustrations or drawings. The invention is capable of other embodiments and of being practiced and carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein are for the purpose of the description and should not be regarded as limiting.
An object is to provide a Rotating Flexible Wing Power System for extracting low-cost electricity and mechanical energy from moving fluids including wind and water currents.
Another object is to provide a Rotating Flexible Wing Power System that is inexpensive to manufacture and operate.
Another object is to provide a Rotating Flexible Wing Power System that is self-starting.
Another object is to provide a Rotating Flexible Wing Power System that can convert wind energy to electrical power.
Another object is to provide a Rotating Flexible Wing Power System that can convert water currents to electrical power.
Another object is to provide a Rotating Flexible Wing Power System that can utilize wind energy to mechanically pump fluids such as water from wells.
Another object is to provide a Rotating Flexible Wing Power System mounted in a vertical or angled configuration that can extract energy from fluids flowing in any direction.
Another object is to provide a Rotating Flexible Wing Power System that mounts between natural or man-made structures so that energy is extracted from the cross sectional areas of flowing air, water, or other fluids between these structures.
Another object is to provide a Rotating Flexible Wing Power System that mounts between movable supports such that the wing can be made to face into the wind to extract an optimum amount of energy.
Another object is to provide a Rotating Flexible Wing Power System that utilizes a long flexible rotating wing to attain relatively high altitudes at the top of its trajectory extracting the larger amount of energy that exists at higher altitudes.
Another object is to provide a Rotating Flexible Wing Power System made of an array of rotating wings suspended either in vertical, angled or horizontal configurations between any combination of the following: flat ground, hills, mountains, and man-made objects like bridges, towers, and buildings.
Another object is to provide a Rotating Flexible Wing Power System that can be mounted on top of tall buildings either in vertical, angled or horizontal configurations.
Another object is to utilize the Rotating Flexible Wing Power System in place of sails on a sailboat to propel it through the water.
Other objects and advantages of the present invention will become obvious to the reader and it is intended that these objects and advantages are within the scope of the present invention. To the accomplishment of the above and related objects, this invention may be embodied in the form illustrated in the accompanying drawings. Attention is called to the fact, however, that the drawings are illustrative only, and that changes may be made in the specific construction illustrated and described within the scope of this application.
Various other objects, features and attendant advantages of the present invention will become fully appreciated as the same becomes better understood when considered in conjunction with the accompanying drawings, in which like reference characters designate the same or similar parts throughout the several views, and wherein:
Turning now descriptively to the drawings, in which similar reference characters denote similar elements throughout the several views, the figures illustrate a single long flexible wing 10 supported at its ends 12,14 so that it can rotate or swing around a central axis 18. See
The long flexible wing 10 is designed to withstand large tensile, oscillating, longitudinal forces that result as the wing 10 rotates in a flowing fluid. These forces are transmitted either directly or through the force transfer member 40 to an electrical generator 110 or pumping device. See
The long flexible wing 10 can be composed of high tensile strength, low elasticity fibers that run longitudinally from one end of the wing 10 to the other. These handle the large forces that occur in the wing 10 while it is rotating about the central axis 18. The fibers can be bound in position by a material that will withstand various environmental conditions depending on the application. The fibers can be bonded or attached to the end points 12,14 of the wing 10 in such a way that the tethers 70,80 or rotation mechanisms 62,64 can be connected to these points. In other embodiments the elasticity of the fibers may be increased or decreased, as appropriate, provided the wing 10 retains its flexibility. In other embodiments the wing 10 may be composed of other materials and structures, not involving fibers, provided the wing 10 retains its strength and flexibility.
The entire wing 10 is flexible so that it can form a curved shape that changes shape as it rotates around a central axis 18 in a flowing fluid. See
A design for maximum energy extraction as shown in
Rotation mechanisms 62,64 are defined here as any mechanical structure that allow the wing 10 to rotate freely with respect to its support structures 100,102, including but not limited to bearings, in a magnetic, electromagnetic, pressured, dry or lubricated medium; swivels with and without ball or other shaped bearings; or any other structure which permits the rotation of an object about an axis. The rotation mechanisms 62,64 allow the wing 10 to rotate about the center axis 18 of the wing 10 while transmitting the longitudinal forces through a force transfer member 40 to an electrical generator 110 or pumping device. The position of the rotation mechanisms 62,64 at the endpoints 12,14 of the wing 10, or at the distal ends 72,82 of tethers 70,80 if such are used, depends on the application. See
The retraction device 30 is defined as any energy storage device that will allow the wing distance (radius) to the central rotation axis 18 to oscillate back and forth in the flowing fluid without a significant loss of energy. The retraction device 30 may be a spring, a metal plate having memory, a weight, a magnetic restoring force from a coil or permanent magnet, or any other structure or mechanism having the characteristic of being capable of changing its relative position upon the application of a force and returning to its prior position upon the removal of the force. The retraction device 30 assists in lengthening the wing 10 at the upwind position. In one embodiment a coiled spring is employed, attached to an end of the force transfer member 40. When the wing 10 rotates to the downwind position and its longitudinal length is shortened, the spring is extended, storing some of the longitudinal energy. When the wing 10 rotates to the upwind position, the force on the spring diminishes and the spring retracts, increasing the longitudinal length of the wing 10. See
A force transfer member 40 is suitably adapted to transmit the longitudinal forces generated by the rotation and radial oscillation of the wing 10. It may be made of high tensile strength, low-elasticity material. Alternatively, it may be made of a more rigid material. The retraction device 30 may be integrated with the force transfer member 40. In applications where the rotating wing 10 is located remotely from the generator 110 or pumping device the force transfer member 40 is used. See
The long flexible wing 10 is attached to the rotation mechanisms 62,64 either directly or through tethers 70,80 depending on the application. See
The rotating single wing 10 can be used in various configurations. Like a Darreius wind turbine, a vertical configuration of the rotating single wing 10 will rotate and generate forces to drive a generator 110 or pumping device from wind from any direction. Unlike the Darreius turbine, the flexible wing system 1 has the ability to self-start. Since power can be transmitted through the force transfer member 40 to a ground-based generator 110 or pumping device, the wing 10 can be located on a high tower where winds are stronger without need to also maintain the generator 110 at a high elevation.
A fixed horizontal configuration can be utilized in air if the wind direction is constant. A fixed horizontal configuration will generate energy within 15 degrees of the prevailing wind direction. A variation of the horizontal configuration utilizes a circular tracking system 130 to make the horizontal rotating wing 10 face into the wind regardless of shifting directions. See
By controlling when energy is extracted from the wing 10, or changing the shape of the wing 10, stabilizing mass 20 shape, stabilizing mass 20 position, and/or tether positions on the wing 10, or actively controlling the wing angle, the horizontal wing 10 can be made to climb higher and reach the more energy laden winds that exist at higher altitudes. See
The invention can also be used in water currents in a stream, river, or tidal flow, where the generator 110 or pumping device is on shore or on a fixed platform. See
An angled configuration of the invention can be used on a boat 150 where the flexing wings 10 are mounted on a mast. See
A curved long flexible wing 10 supported at its ends 12,14 by rotation mechanisms 62,64 will rotate or swing around a central axis 18 that intersects those endpoints 12,14 in a flowing fluid due to forces similar to those of a Darrieus wind system. A wing rotating in still air without a headwind will experience an effective wind due to the rotation as shown in
The changes in the wing length along the central axis 18 drives the generator 110 or pumping device. Since power can only be extracted while the wing 10 is pulling, a retraction device 30 is used to retract the force transfer member 40 and keep the wing 10 taut while it resets for the next power cycle. In the case of a generator 110, a linear motion to rotating motion mechanism like the ratcheting sprocket on a bicycle wheel can be used. A specialized linear type of generator 110 can also be used. A pumping device that uses a one way valve moving up and down in a well can be used to pump water out of a well. These devices are widely available and numerous designs exist and have been described in the literature, so they will not be described here.
The shape of the long flexible wing 10 and the location of the stabilizing mass 20 and endpoints 12,14 are important factors in maximizing the efficiency of the system 1. Lift forces act at 25% from the leading edge 16 of the wing 10. See
The invention extracts energy from the wind on both the upwind side (see
Since the angle of attack of the wing 10 into the effective wind vector is less than a few degrees when rotating, drag forces are negligible and lift forces dominate. The maximum efficiency in Darrieus turbines and propeller systems where lift forces are dominant is approximately 40%. This approaches the theoretical maximum Betz limit of 59%. The rotating flexible wing 10 efficiency should also approach 40% efficiency since there are no dissipative elements in the design and energy is stored in the spring or in the rotational energy of the wing 10 until it can be extracted later in the cycle.
As with all similar systems the overall efficiency is dependent on many factors. Energy is stored in the spring and the rotating flexible wing's 10 kinetic energy during its rotation. Computer simulations show how the rotational kinetic energy and the spring potential energy cycle as the wing 10 rotates in the wind. With minimal energy lost due to drag forces, excess energy is stored in the spring and the angular velocity of the stabilizing mass 20 until it is extracted from the system 1 as the wing 10 pulls on a generator 110 or pumping device. The efficiency of the flexible rotating wing system 1 and the ease of manufacturing, operating, and maintaining both small and large systems allow it to extract energy and produce power at low cost.
The flexible wing 10 is capable of self starting because the wing 10 can be in only three states, two of which are unstable and a third stable state that is the desired rotating state. The first unstable state is where the wing 10 is in a fixed motionless position downwind where lift, drag, and constraining forces are in balance. The slightest variations in wind make this state unstable. The second unstable state is where the wing 10 rotates backwards with the trailing edge 17 acting as the leading edge 16. This state is also unstable since the lift, centrifugal “force”, and constraining force do not act on one point on the wing 10 cross-sectional surface. The resultant forces exert a torque on the wing 10 causing the wing 10 to turn, resulting in the wing 10 having an erratic, unstable, oscillating, and sometimes backward rotating trajectory. An optimum designed wing 10 self starts after randomly going through the various states, eventually finding the optimum rotating state that is stable. It remains in this state and produces the optimum flexing forces for driving a generator 110 or pump.
What has been described and illustrated herein is a preferred embodiment of the invention along with some it its variations. The terms, descriptions and figures used herein are set forth by way of illustration only and are not meant as limitations. Those skilled in the art will recognize that many variations are possible within the spirit and scope of the invention in which all terms are meant in their broadest, reasonable sense unless otherwise indicated. Any headings utilized within the description are for convenience only and have no legal or limiting effect.
This application claims priority to a provisional application, U.S. Ser. No. 61/053,569, filed May 15, 2008, entitled Rotating Flexible Wing Power System, by Labrecque, David, which is hereby incorporated by reference.
| Number | Date | Country | |
|---|---|---|---|
| 61053569 | May 2008 | US |