1. Fields of the Invention
The present invention relates to a hydraulic power generation device, and more particularly, to a hydraulic power generation device which comprises multiple water passage units which are able to be maintained individually.
2. Descriptions of Related Art
The conventional hydraulic power generation device is built in those areas with plenty of water and generally comprises water passages with a high end and a low end, multiple water turbines are located above the water passages so as to be driven by the water to generate mechanical energy. An electric power generation unit is connected to and driven by each of the water turbines to transform the mechanical energy into electric energy. However, when one of the mills or the electric power generation unit needs to be maintained, in order to keep the water away from the water turbine or the electric power generation unit to avoid dangerous result, the operation of the whole hydraulic power generation device has to be stopped until the maintenance is finished. The conventional way of maintenance reduces the efficiency of the hydraulic power generation device. Frequent switching on and off will also shorten the life of use of the hydraulic power generation device.
The present invention intends to provide a hydraulic power generation device which eliminates the shortcomings mentioned above.
The present invention relates to a hydraulic power generation device and comprises a water passage unit which has a high end and a low end, and multiple water turbines are located above the water passage unit. Multiple containers are located beneath the water passage unit and located corresponding to the water turbines respectively. The water passage unit has an inlet and an outlet located corresponding to each of the containers. The inlet and the outlet communicate with the room of the container corresponding thereto. Each of the inlet and the outlet is sealed by a seal. Each water turbine is connected with an electric power generator and an electric power storage unit is connected with the electric power generators.
When one of the water turbines or the electric power generator needs to be maintained, the seal of the inlet is opened and the water flows to the water passage unit via the outlet to drive the water turbines behind the damaged water turbine. The hydraulic power generation device is still under operation while one of the water turbines is under maintenance.
The primary object of the present invention is to provide a hydraulic power generation device which does not need to stop the operation of the hydraulic power generation device while one of the water turbines or the electric power generator needs to be repaired.
The present invention will become more obvious from the following description when taken in connection with the accompanying drawings which show, for purposes of illustration only, a preferred embodiment in accordance with the present invention.
Referring to
Multiple water turbines 3 are located above the water passage unit 2, and a portion of each water turbine 3 is located within the water passage unit 2 so that the water rotates the blades of the water turbine 3. Multiple containers 4 are located beneath the water passage unit 2 and located corresponding to the water turbines 3 respectively. Each container 4 has a room 41 defined therein. The water passage unit 2 has an inlet 23 and an outlet 24 located corresponding to each of the containers 4. Each of the water turbines 3 is located between the inlet 23 and the outlet 24 of the container 4 corresponding to the water turbine 3. The inlet 23 and the outlet 24 communicate with the room 41 of the container 4 corresponding thereto. Each of the inlets 23 and the outlets 24 has a seal 25 connected thereto. Each water turbine 3 is connected with an electric power generator 5 which is connected with an electric power storage unit 6. The electric power generator 5 and the electric power storage unit 6 are located outside of the case 1. A pump 7 is located in the space 11 of the case 1. The pump 7 is connected to a first end of a pipe 71, a second end of the pipe 71 extends to a first opening 121 of the case 1 and is located high end of the water passage unit 2.
The space 11 is filled a certain height of water and the water level is higher than the pump 7. When the pump 7 is activated, the water in the space 11 is pumped to the upper portion of the space 11 via the pipe 71, and the water flows to the high end of the first passage 21. The water then flows downward along the first passage 21 and toward the low end of the first passage 21. The water flows to the high end of the second passage 22 via the low end of the first passage 21, and the water flows downward along the second passage 22 and toward the low end of the second passage 22. The water flows downward along the third passage, the fourth passage (if available) and so on. The water flows back to the initial water level in the case 1. The water is again pumped by the pump 7 to go through the cycle mentioned again.
When the water flows downward, the water turbines 3 are driven and rotated so as to activate the electric power generators 5 that are connected with the water turbines 3 so as to generate electric power which is transported to the electric power storage unit 6.
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While we have shown and described the embodiment in accordance with the present invention, it should be clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.