1. Field of the Invention
The invention relates to an apparatus for generating electric power using water wave energy.
2. Description of the Related Art
A conventional apparatus for converting ocean wave energy into electric power disclosed in Taiwanese Patent Application No. 95222759 includes a float riding on an ocean surface, and a turbine unit coupled to a generator. A gas turbine of the turbine unit is driven by air flows generated by a piston in response to upward movement of the float to rotate so as to output a mechanical rotary power output to the generator. The generator converts the mechanical rotary output into electric power.
However, in the aforesaid conventional apparatus, a one-way valve is mounted in each air inlet for preventing generation of a reverse air flow in the turbine unit during downward movement of the float. As a result, the conventional apparatus is unable to generate electric power during downward movement of the float. Therefore, the conventional apparatus has a low electric generation efficiency. Furthermore, since the conventional apparatus includes a main frame that must be anchored to a fixed position, such as the bottom of the sea, it cannot be used in a deep-water area of the sea and cannot be mounted on a moving ship.
Therefore, the object of the present invention is to provide an apparatus for generating electric power from water wave energy that can overcome the aforesaid drawbacks of the prior art.
According to the present invention, there is provided an apparatus for generating electric power using water wave energy. The apparatus comprises:
a frame unit including a main frame; and
at least one electric generating device mounted on the main frame of the frame unit, the electric generating device including
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiments with reference to the accompanying drawings, of which:
Before the present invention is described in greater detail, it should be noted that like elements are denoted by the same reference numerals throughout the disclosure.
Referring to
In this embodiment, the frame unit 20 includes a main frame 21, and a pair of upright rudder plates 23. The main frame 21 has a pair of vertically extending mounting plates 211 opposite to each other in a first direction (Y). The rudder plates 23 are connected to one side of the main frame 21 and are spaced apart from each other in the first direction (Y). The rudder plates 23 extend in a second direction (X) transverse to the first direction (Y).
The electric generating device includes a float unit 50, a transmission unit 30, an accelerating unit 40, and a generator 60.
The float unit 50 is mounted pivotally on the main frame 21, and includes a float-mounting frame 51 and a pair of floats 52 opposite to each other in the second direction (X). In this embodiment, the float-mounting frame 51 includes a pivot rod 511 extending in the first direction (Y) through the mounting plates 211 of the main frame 21 and having opposite ends that are connected pivotally and respectively to the mounting plates 211 of the main frame 21. The float-mounting frame 51 further includes a pair of first connecting rods 512, a pair of second connecting rods 513, two pairs of vertically extending third connecting rods 514, and a pair of auxiliary connecting rods 515. The first connecting rods 512 are opposite to each other in the first direction (Y), and are connected fixedly and respectively to the opposite ends of the pivot rod 511. The second connecting rods 513 extend in the second direct ion (X), are opposite to each other in the first direction (Y), are disposed under the first connecting rods 512, and interconnect the floats 52. Each pair of the third connecting rods 514 is connected pivotally between a corresponding first connecting rod 512 and a corresponding second rod 513. The third connecting rods 514 of each pair are parallel to each other. Each auxiliary connecting rod 515 is connected pivotally between a corresponding pair of the third connecting rods 514, and is disposed parallel to the corresponding first and second rods 512, 513 and between a corresponding first connecting rod 512 and a corresponding second connecting rod 513. The floats 52 are adapted to ride on a water surface, such as an ocean surface, such that the frame unit 20 is supported by the float unit 50 to float on the water. In this case, the rudder plates 23 extend into the water (see
As shown in
The driving gear 31 is disposed co-axially on and is rotatable with the pivot rod 511 of the float-mounting frame 51.
The first and second axle rods 32, 33 are connected pivotally between the mounting plates 211 of the main frame 21, and extend in the first direction (Y).
The first and second transmission gears 34, 35 are disposed co-axially on the first axle rod 32. The third and fourth transmission gears 36, 37 are disposed co-axially on the second axle rod 33. The first and third transmission gears 34, 36 mesh with the driving gear 31, and the second and fourth transmission gears 35, 37 mesh with each other so that the second axle rod 33 is rotatable with one of the third and fourth transmission gears 36, 37 in a third direction, for example, a clockwise direction or a counterclockwise direction, in response to rotation of said driving gear 31. It is noted that the third transmission gear 36 is a first one-way gear that permits the second axle rod 33 to co-rotate therewith in the third direction in response to bidirectional rotation of the driving gear 31, and that One of the first, second and fourth transmission gears 34, 35, 37 is a second one-way gear. In this embodiment, the fourth transmission gear 37 is the second one-way gear that permits the second axle rod 33 to co-rotate therewith in the third direction in response to rotation of the driving gear 31. In other embodiments, the first transmission gear 34 is the second one-way gear that permits the first axle rod 32 to co-rotate therewith in a direction opposite to the third direction, such as a counterclockwise direction or a clockwise direction, in response to rotation of the driving gear 31. Alternatively, the second transmission gear 35 is the second one-way gear that is driven by the first axle rod 32 to rotate in the direction opposite to the third direction in response to rotation of the driving gear 31.
The driven gear 38 is sleeved co-axially on the second axle rod 33. The speed-buffering member 39 is mounted on and is rotatable with the second axle rod 33. The speed-buffering member 39 is connected to the driven gear 38 for driving the driven gear 38 to rotate about the second axle rod 33 in the third direction in response to rotation of the second axle rod 33 and for buffering the rotational speed difference between the second axle rod 33 and the driven gear 38. As a result, the driven gear 38 outputs the transmitted mechanical rotary output that corresponds to a rotational speed of the driven gear 38. In this embodiment, as shown
The generator 60 is mounted on the main frame 21 and has a drive shaft 61.
The accelerating unit 40 is mounted on the mounting plates 211 of the main frame 21, and is coupled between the transmission unit 30 and the drive shaft 61 of the generator 60. The accelerating unit 40 receives the single directional mechanical rotary power output from the transmission unit 30 to accelerate a rotational speed of the drive shaft 61 of the generator 60 such that the generator 60 converts rotary power corresponding to the rotational speed of the drive shaft 61 into electric power. In this embodiment, the accelerating unit 40 includes a transmission gear set that is in the form of a gear box and that consists of a plurality of transmission gears with different sizes, one of which meshes the driven gear 38 of the transmission unit 30, and another one of which is disposed co-axially and fixedly on the drive shaft 61 of the generator 60.
In sum, when waves move up and down, the generator 60 can continuously generate electric power based on clockwise or counterclockwise rotation of the pivot rod 511. Therefore, the apparatus 200 of the present invention has a high electric generation efficiency. Furthermore, since the frame unit 20 can freely float on the water, the apparatus 200 of the present invention can be used in a deep-water area of the sea.
The main frame 21 includes a plurality of pairs of the mounting plates 211 for the electric generating devices.
In this embodiment, each electric generating device includes three float units 50 arranged in the first direction (Y) and connected pivotally and respectively to the pairs of the mounting plates 211, and three transmission units 30 corresponding respectively to the float units 50. In other embodiments, the number of the float units 50 is not limited to three. Each electric generating device further includes an auxiliary transmission unit 70 mounted on the main frame 21 and coupled among the transmission units 30 and the accelerating unit 40 for receiving the single directional mechanical rotary power output from each of the transmission units 30 and for transmitting the single directional mechanical rotary power output received thereby to the accelerating unit 40.
In this embodiment, the auxiliary transmission unit 70 includes a transmission rod 71, three first one-way gears 72, and a second gear 73. The transmission rod 71 extends through the mounting plates 211 of the main frame 21 in the first direction (Y), and is mounted rotatably on the main frame 21. The first one-way gears 72 are disposed co-axially on and are rotatable with the transmission rod 71. Each first one-way gear 72 meshes with the driven gear 38 of a corresponding one of the transmission units 30 such that the transmission rod 71 is rotatable in response to the single directional mechanical rotary power output from any one of the transmission units 30. The second gear 73 is disposed co-axially on and is rotatable with the transmission rod 71, and meshes with the transmission gear set of the accelerating unit 40. It is noted that the auxiliary transmission unit 70 further includes a plurality of one-way bearings (not shown) sleeved on the transmission rod 71. Each one-way bearing is disposed between the transmission rod 71 and a corresponding first one-way gear 72 to permit the transmission rod 71 to rotate with the corresponding first one-way gear 72 in a fourth direction opposite to the third direction, such as a counterclockwise direction or a clockwise direction. Thus, even though one transmission unit 30 or one float unit 50 malfunctions, the auxiliary transmission unit 70 can still transmit the single directional mechanical rotary power outputs from the other transmission units 30 to the accelerating unit 40.
In this embodiment, the main frame 21″ is adapted to be mounted on the side of a ship 90 (see
In this embodiment, the float-mounting frame 51″ of the float unit 50″ includes the pivot rod 511″, a first connecting rod 516, a second connecting rod 517, a third connecting rod 518, and a pair of fourth connecting rods 519.
The pivot rod 511″ has a first rod portion 5111 and a second rod portion 5112. The first rod portion 5111 is movable relative to the first frame portion 24 of the main frame 21″ in the first direction (Y), is connected pivotally to the first frame portion 24 of the main frame 21″, and is adapted to extend outwardly of the ship 90. In addition, the first rod portion 5111 is provided with the driving gear 31 of the transmission unit 30 thereon. In this embodiment, the driving gear 31 is formed with a central engaging hole 311 permitting extension of the first rod portion 5111 therethrough, as best shown in
The first connecting rod 516 is transverse to and is connected fixedly to the second rod portion 5112 of the pivot rod 511″, and is mounted pivotally on the second frame portion 25 of the main frame 21″.
The second connecting rod 517 is spaced vertically apart from the first connecting rod 516, and is mounted pivotally on the second frame portion 25 of the main frame 21″.
The third connecting rod 518 is spaced vertically apart from the first connecting rod 516 such that the first connecting rod 516 is disposed between the second and third connecting rods 517, 518. The third connecting rod 518 interconnects the floats 52″. In addition, the third connecting rod 518 is formed with a plurality of positioning holes 5181, and a pair of positioning bolts 5182. Each positioning bolt 5182 extends through a corresponding float 52″ and a desired positioning hole such that the corresponding float 52″ is connected to the third connecting rod 518, as best shown in
The fourth connecting rods 519 are opposite to each other in the second direction (X). Each fourth connecting rod 519 is connected pivotally to the first, second and third connecting rods 516, 517, 518 such that the first, second and third connecting rods 516, 517, 518 are parallel to each other. In addition, each fourth connecting rod 519 is adjustable to have a desired length corresponding to the size of the ship 90 so that the floats 52″ are capable of riding on the water surface. In this embodiment, as shown in
In this embodiment, as shown in
In such a configuration, the apparatus 200″ of the present invention is also applicable to a moving ship.
While the present invention has been described in connection with what are considered the most practical and preferred embodiments, it is understood that this invention is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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201010226336.1 | Jul 2010 | CN | national |