1. Field of the Invention
The present invention relates to a transforming module, and more particularly to a kinetic energy transforming module that effectively uses wind power to drive a generator.
2. Description of Related Art
Conventional ways for generating electric power usually use thermal energy, kinetic energy from water or nuclear energy. However, thermal power exhausts great carbon dioxide (CO2), nuclear energy produces nuclear waste that can not be decomposed and water energy needs to build a dam. Consequently, the conventional ways for generating electric power not only damage environment but also cost lots of money. As a result, windmills are used to drive a generator. However, the blades of the conventional windmills are fixed and uniformed such that the conventional windmills can not effectively use the wind power and the generating rate accordingly becomes low.
The present invention has arisen to mitigate and/or obviate the disadvantages of the conventional windmills that are provided for generating electric power.
The main objective of the present invention is to provide an improved kinetic energy transforming module that effectively uses wind power to drive a generator.
To achieve the objective, the kinetic energy transforming module in accordance with the present invention comprises a main shaft perpendicularly and rotatably standing on supporting surface. At least one blade structure is horizontally mounted on the main shaft for driving the main shaft via wind power and keeping the upper and lower fan blades rotating and accelerating to achieve higher wind power efficiency. The blade structure includes multiple shafts horizontally and radially extending from the main shaft. Each shaft has a curve upper groove and a curve lower groove respectively and transversely defined in an outer periphery thereof, wherein the upper groove has two opposite sides respectively formed with a lower stopper and an upper stopper. A first includes angle is formed between the lower stopper and the horizontal plane being greater than 0 degree, and a second included angle is formed between the upper stopper and the horizontal plane being smaller than 90 degrees. The lower groove has a lower side formed with a stopper that is vertical relative to the horizontal plane. An upper fan blade and a lower fan blade respectively have a hinged side pivotally sleeved on the shaft such that the upper fan blade and the lower fan blade can be freely rotated relative to the shaft within the upper groove and the lower groove.
Further benefits and advantages of the present invention will become apparent after a careful reading of the detailed description with appropriate reference to the accompanying drawings.
Referring to the drawings and initially to
The blade structure (20) includes multiple shafts (21) horizontally and radially extending from the main shaft (10), an upper fan blade (22) and a lower fan blade (23) respectively having a hinged side pivotally sleeved on the shaft (21) such that the upper fan blade (22) and the lower fan blade (23) can be freely rotated relative to the shaft (21). In addition, the rotation angle of the upper fan blade (22) is limited within 5 to 90 degrees and the rotation angle of the lower fan blade (23) is limited within −15 to −90 degrees. Hence, the blade structure (20) in accordance with the present invention is able to keep the upper and lower fan blades (22, 23) rotating and accelerating to achieve higher wind power efficiency.
The shaft (21) has a curve upper groove (211) and a curve lower groove (214) respectively and transversely defined in an outer periphery thereof, wherein the upper groove (211) has two opposite sides respectively formed with a lower stopper (212) and an upper stopper (213). A first includes angle (θ1) formed between the lower stopper (212) and the horizontal plane is greater than 0 degree, and a second included angle θ2) formed between the upper stopper (213) and the horizontal plane is smaller than 90 degrees. The lower groove (214) has a lower side formed with a stopper (215) that is vertical relative to the horizontal plane.
The upper fan blade (22) has a lower side movably received in the upper groove (211) and moved along the upper groove (211), and the lower fan blade (23) has an upper side movably received in the lower groove (214) and moved along the lower groove (214).
The upper fan blade (22) has a back side moved to abut against the upper stopper (213) of the upper groove (211) and the lower fan blade (23) has a back side abutting against the stopper (21.5) of the lower groove (214) for driving the main shaft (10) via the shaft (21) when the upper fan blade (22) and the lower fan blade (23) face the wind. The upper fan blade (22) is moved to abut against the lower stopper (212) of the upper groove (211) due to its gravity and the wind power, and the lower fan blade (23) moved toward the upper fan blade (22) due to the wind power for reducing the leeward area and enhancing the use rate of the wind power when the upper fan blade (22) and the lower fan blade (23) are in a condition of leeward.
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The driving unit (40) includes a cam (41) sleeved on the main shaft (10) and the main shaft (10) is rotatable relative to the can (41). The cam (41) has an upper surface divided into a concave portion (411) and convex portion (412), and an annular groove (413) defined along the concave portion (411) and the convex portion (412). The linkage set (50) includes an upper linkage (51), a lower linkage (52) and a drive linkage (53) pivotally connected to one another. The upper linkage (51) and the lower linkage (52) respectively have a first end pivotally connected to a back of the upper fan blade (22) and a back of the lower fan blade (23), and a second end pivotally connected to each other. The drive linkage (53) has a first end pivotally connected to the second ends of the upper linkage (51) and the lower linkage (52), and a second slidably received in the annular groove (413). A guide rod (54) is horizontally connected to the shaft (21) and has a groove (541) longitudinally defined therein for slidably receiving the first end of the drive linkage (53) and two second ends of the upper linkage (51) and the lower linkage (52).
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On the other hand, the second end of the drive linkage (53) is moved in the annular groove (413) within the concave portion (411) when the upper fan blade (22) and the lower fan blade (23) face the wind. As a result, the drive linkage (53) downward and inward drags the upper linkage (51) and the lower linkage (52) to make the upper fan blade (22) and the lower fan blade (23) being openly moved relative to each other for reducing the coefficient of drag and enhancing the use rate of the wind.
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Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.