The present application is based on, and claims priority form, Taiwan Patent Application No. 105138724 filed Nov. 24, 2016 the disclosure of which is hereby incorporated by reference herein in its entirety.
The technical field generally relates to a vertical axis wind turbine (VAWT) with automatic adjustment of blade angle based on centrifugal force.
The wind turbine utilizes the wind to rotate the wind blades to drive the generator to generating power. As such, the wind blade to be rotated by the wind must be set up in a direction so that the wind can act on the wind blade to rotate. However, as the direction of the wind changes in different weathers, seasons, and other environmental factors, the conventional wind turbine is often constructed with a horizontal axis structure, whose windward side must be adjusted often due to wind change. However, the problems of large size, high setup cost and high maintenance cost are among the issues need to be addressed. On the other hand, the smaller wind turbines, while having vertical axis structure not affected by wind change, mostly have the blades with non-adjustable angles. Therefore, when the wind becomes smaller, the blades cannot utilize the Bernoulli effect and the efficiency is reduced. Although some models proposed additional adjustment function, as shown in
An embodiment of the present invention provides a vertical axis wind turbine (VAWT) with automatic adjustment of blade angle based on centrifugal force, comprising: a plurality of wind turbine assemblies, a rotational axis, and a pillar. Each wind turbine assembly comprises a blade, at least a support, and at least a swing axis. The support has a first end fixed to the rotational axis and a second end disposed with at least a swing axis. The rotational axis is disposed at the pillar, and the wind turbine assembly rotates around the pillar. The swing axis comprises an axial core element and an axis element. The axis element is fixed to the blade and uses the axial core element to engage the second end of the support to make the blade to swing on the axial core element of the swing axis, with a swinging angle within ±90°. The blade comprises a first blade area and a second blade area, with a line of center of gravity dividing the first and second blade areas. The line of center of gravity is an imaginary line passing through the center of gravity of the blade. The first blade area is smaller than the second blade area. When the blade is at 0°, the line of center of gravity must overlap with the projection of centrifugal force direction of an extension line of axis of the swing axis, but the line of center of gravity shall not actually overlap the extension line of the axis.
When the blade is at 0°, the blade is perpendicular to the centrifugal force direction; the distance between the extension line of the axis of the swing axis and the center of gravity of the blade must be greater than 0.
The vertical axis wind turbine with automatic adjustment of blade angle further comprises a stopper, disposed at an appropriate location on the blade, the support, the swing axis or the rotational axis.
When the stopper is at 45°, an optimal activation reactive force is achieved.
The blade has a front end of an arc shape, and a body of a shape of airplane wing or plate. Either way, the shape of the blade must be streamlined in accordance with fluid mechanics.
The blade is made of a frame and a soft material, wherein the soft material, such as canvas, is fixed to the left and right sides of the frame.
The support is a string suspension structure, with two ends using strings to hang the blades enabling the blade and swing under the effect of wind. The string suspension structure comprises at least an arc support or a U-shape support and at least a string suspension element. The string suspension element passes through the blade or through a suspension arm fixed to the blade to fasten the blade. The two ends of the string suspension element are fixed respectively to the arc support or the U-shaped support. The string suspension structure uses the arc shape support and the string suspension element to provide a tension force. When the wind changes direction, the tension force, in combination with the centrifugal force, adjusts the angle of the blade accordingly and rapidly.
The foregoing will become better understood from a careful reading of a detailed description provided herein below with appropriate reference to the accompanying drawings.
The embodiments can be understood in more detail by reading the subsequent detailed description in conjunction with the examples and references made to the accompanying drawings, wherein:
In the following detailed description, for purpose of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
The vertical axis wind turbine (VAWT) of the present invention utilizes the balance between the wind and the centrifugal force to change the angle of the blade with respect to the wind (i.e., upwind angle), so the wind turbine under a breeze conditions could maximize the efficiency of the wind turbine.
The VAWT can be categorized as lifting-force type and drag-force type. The lifting-force type wind turbine provides higher energy transformation efficiency, but is hard to start at low wind speed. The drag-force type wind turbine can start at low wind speed, but achieves only low energy transformation efficiency. The present invention utilizes the balance between the wind and the centrifugal force to automatically adjust the angle of the blade to achieve the ability to start at low wind speed, and utilizes Bernoulli's principle to generate lifting force to accelerate the rotation of the wind turbine at high wind speed.
The wind turbine of the present invention uses the blades which are free to swing. Because the areas on the blade before and behind the fulcrum of the blade are asymmetrical, which resulting in deflection, the deflected blade caused by wind generates a reaction force due to the rebound wind, which pushes the blade to move. When the blade moves along a circumference and generates a centrifugal force, the cut-in angle of the wind changes constantly and the blade constantly adjusts the angle facing the windward because of the balance of the wind and the centrifugal force to achieve the optimal reaction force. When the centrifugal force is large, which implies a higher rotation speed, the deflection of the blade becomes smaller. Under the Bernoulli's principle, a lifting force is generated and the wind turbine becomes a lifting-force type wind turbine, which can achieve higher energy transformation efficiency.
Wherein, the following describes how the line 211c of the center of gravity divides the first blade area 211a and the second blade area 211b. The line 211c of center of gravity extends towards the symmetrical part on the two opposite sides of the blade 211 to form a virtual cross-section 211e. The virtual cross-section 211e (shown as dash line rectangle) divides the blade 211 into two portions—a front portion and a rear portion. The outside area of the front portion (headwind) is the first blade area 211a, and the outside area of the rear portion is the second blade area 211b.
The vertical axis wind turbine with automatic adjustment of blade angle further comprises a stopper.
In summary, the VAWT utilizes the balance between the wind power and the centrifugal to change the direction of the blade so that the wind turbine can start even in a breeze environment. Also, the wind turbine can be placed in ocean with a slow ocean current to generate power. The present invention can provide industrial and commercial values.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
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105138724 | Nov 2016 | TW | national |