WO2019045511A1 - Tidal generator - Google Patents

Tidal generator Download PDF

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Publication number
WO2019045511A1
WO2019045511A1 PCT/KR2018/010124 KR2018010124W WO2019045511A1 WO 2019045511 A1 WO2019045511 A1 WO 2019045511A1 KR 2018010124 W KR2018010124 W KR 2018010124W WO 2019045511 A1 WO2019045511 A1 WO 2019045511A1
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WO
WIPO (PCT)
Prior art keywords
low
tide
weight
tension
plate
Prior art date
Application number
PCT/KR2018/010124
Other languages
French (fr)
Korean (ko)
Inventor
김상권
Original Assignee
김상권
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Filing date
Publication date
Priority claimed from KR1020180102847A external-priority patent/KR102093265B1/en
Application filed by 김상권 filed Critical 김상권
Publication of WO2019045511A1 publication Critical patent/WO2019045511A1/en

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03BMACHINES OR ENGINES FOR LIQUIDS
    • F03B13/00Adaptations of machines or engines for special use; Combinations of machines or engines with driving or driven apparatus; Power stations or aggregates
    • F03B13/12Adaptations of machines or engines for special use; Combinations of machines or engines with driving or driven apparatus; Power stations or aggregates characterised by using wave or tide energy
    • F03B13/26Adaptations of machines or engines for special use; Combinations of machines or engines with driving or driven apparatus; Power stations or aggregates characterised by using wave or tide energy using tide energy
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03BMACHINES OR ENGINES FOR LIQUIDS
    • F03B17/00Other machines or engines
    • F03B17/02Other machines or engines using hydrostatic thrust
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/20Hydro energy
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/30Energy from the sea, e.g. using wave energy or salinity gradient

Definitions

  • the present invention relates to a tidal generator which generates electricity by means of a tidal difference, more specifically, a tidal difference is generated by a high tide and a low tide, , And a tidal generator that develops using the energy generated when the weight is lifted further.
  • Prior art related to tidal power generation is exemplified by buoyancy tidal power generation in Korean Utility Model Application No. 20-1994-0003699.
  • the prior art discloses a technique related to a tidal generator that lifts a weight connected to a pulley as the water level rises as the water level rises as the water level rises, and develops when the water level rises at low water level, have.
  • the tidal power generation method is incapable of generating electricity when tide is generated, and tidal energy generated when the tide is low can not be used.
  • Patent Document 1 Korean Utility Model Utility Model No. 20-1994-0003699 (Buoyancy Tidal Power, Feb. 21, 1994)
  • the tidal generator of the present invention comprises: a column (100) having a lower end fixed to the sea floor and an upper plate (400) and an intermediate plate (300) sequentially from the upper end; An upper plate 400 attached to an upper end of the column 100; An intermediate plate 300 located below the upper plate 400 and attached to the column 100; A buoyancy plate 200 located below the intermediate plate 300 and moving up and down along the column 100 due to a difference in level due to the fresh water alone; A high tide lifting portion for lifting the high tide weight 500a by the rise of the buoyant plate 200 when the tide is tide by using the pulley structure; And a low-rise lifting section for lifting low-stream weight 500b by descending the buoyant plate 200 when the low-rise building is being ebb-flowed using a pulley structure.
  • the high tide lifting portion includes a high tide coupling bar 210a attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100 and a first lifting sheave 310
  • a high tide connecting shaft 410a installed in the upper plate 400 and a high loft top sheath 430a attached to the top plate 400 and positioned between the column 100 and the high tide connecting shaft 410a, And one end of which is connected to the high tide weight 500a and is connected to the first high tide connecting portion 410a, the high tide top sheath 430a and the first high tide connecting portion
  • the high tide connecting shaft 410a is connected to the high tide connecting shaft 410a and the high tide connecting shaft 410a is connected to the high tide connecting shaft 410a, And includes a high-tension main wheel 421a for guiding movement and a high-tension brake 411a for controlling the rotation of the high-tension main wheel 421a.
  • the high tension coupling portion 510a is engaged with the high tension coupling bar 210a so as to lift the high weight weight 500a when the buoyant plate 200 is lifted, And is not engaged with the high-tension joining bar 210a so as not to be involved in the movement of the high-strength weight 500a when the hull 200 descends.
  • the low tide lifting unit includes a low tide coupling bar 210b attached to the top of the buoyant plate 200 and extending in the direction of the column 100, a low tide connection shaft 410b installed on the top plate 400, A low tide upper plate sheave 430b attached to the upper plate 400 and positioned between the column 100 and the low tide connection axis 410b and one end connected to the low tide weight 500b, A first low-temperature connection part 520b extending through the shaft 410b and the low-speed upper loom 430b in order and a second low-temperature connection part 520b connected to the other end of the first low-temperature connection part 520b, And a low-noise generator (412b) connected to the low-noise coupling axis (410b) and generating power.
  • a low tide coupling bar 210b attached to the top of the buoyant plate 200 and extending in the direction of the column 100
  • a low tide connection shaft 410b installed on the top plate 400
  • the low tide connection axis 410b may include a low tide center axis 420b fitted to the low tide connection axis 410b and a low tide center axis 420b fitted to the low tide center axis 420b, A low-pass main wheel 421b for guiding the movement and a low-pass brake 411b for controlling the rotation of the low-pass main wheel 421b.
  • the low tension coupling portion 510b is engaged with the low tension coupling bar 210b so as to lift down the low tension weight 500b when the buoyant plate 200 descends, (210b) so as not to be involved in the movement of the low-weight weight (500b) when the upper loom (200) ascends.
  • the high tide lifting portion includes a high tide moving pillar 230a attached to the top of the buoyant plate 200 and extending in the direction of the column 100 and a high tide moving column 230a attached to the top of the high tide moving pillar 230a, A second lifting sheave 320 fixed to the intermediate plate 300, a high-tension connecting shaft 410a installed in the upper plate 400, and a second lifting sheave attached to the upper plate 400, And the other end is connected to the high tide weight 500a and the high tide connection shaft 410a, the high tide top sheave 430a, the high tide sheave 430a, A second high tide connecting portion 530a extending sequentially through the second lifting sheave 320 and the high tide moving column shear 231a and the other end fixed to the intermediate plate 300 and a high- And a high-tension generator 412a connected to the high- The.
  • the high tide connection shaft 410a is connected to the high tide connection shaft 410a and the high tide connection shaft 410a is connected to the high tide connection shaft 410a, And includes a high-tension main wheel 421a for guiding movement and a high-tension brake 411a for controlling the rotation of the high-tension main wheel 421a.
  • the high tide moving column sheave 231a is fixedly coupled to the second high tide connecting portion 530a so as to lift the high tide weight 500a when the buoyant plate 200 is lifted, When the buoyant plate 200 descends, the fixed connection between the high tide moving column sheave 231a and the second high tide connecting portion 530a is released so as not to be involved in the movement of the high tide weight 500a.
  • the low tide lifting portion includes a low tide moving column 230b attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100, a low tide moving column 230b attached to the upper end of the low tide moving column 230b, A pulley 231b, a low-speed moving column auxiliary pulley 232b fixed to a bar formed in a direction perpendicular to the height direction of the low-speed moving pillar 230b at the stop of the low-speed moving pillar 230b, A low tide joint shaft 410b attached to the upper plate 400 and a low tide upper sheave 430b located between the column 100 and the low tide connection shaft 410b, And is connected to the low tide joint shaft 410b, the low tide upper sheave pulley 430b, the low tide moving column auxiliary pulley 232b and the low tide moving column sheave 231b in order, In the intermediate plate 300, Which it claim characterized in that it includes a second low water connection (530b) and a low water
  • the low tide connection axis 410b may include a low tide center axis 420b that fits into the low tide connection axis 410b and a low tide center axis 420b that is fitted into the low tide center axis 420b, A low-pass main wheel 421b for guiding the movement and a low-pass brake 411b for controlling the rotation of the low-pass main wheel 421b.
  • the low-speed moving column sheave 231b is fixedly coupled with the second low-speed connecting section 530b so as to raise the low-speed weight 500b
  • the buoyant plate 200 is lowered, the fixed connection between the low-speed moving pillar sheave 231b and the second low-speed connecting pillar 530b is released so as not to be involved in the movement of the low-speed weight 500b.
  • the tidal generator constructed as described above is formed of a high-lift unit and a low-lift unit.
  • the tide is high, the weight is lifted at the high lift, and when the low-tide is low, the weight is lifted at the low- It can be used for power generation, and the power generation efficiency is high.
  • FIG. 1 is a front view of a tidal generator according to a first embodiment of the present invention
  • FIG. 2 is a diagram illustrating an example of operation of a tidal lifting portion of a tidal generator according to a first embodiment of the present invention
  • FIG. 3 is a diagram illustrating an operation example of the low-tide lifting section of the tidal generator according to the first embodiment of the present invention
  • FIG. 4 is a diagram illustrating an example of operation of high tide weight of the tidal generator according to the first embodiment of the present invention
  • FIG. 5 is a diagram illustrating an operation example of the low-tide weight operation of the tidal generator according to the first embodiment of the present invention
  • FIG. 6 is a front view of a tidal generator according to a second embodiment of the present invention.
  • FIG. 7 is a diagram illustrating an operation example of a tidal lifting portion of a tidal generator according to a second embodiment of the present invention
  • FIG. 8 is a diagram illustrating an operation example of the low-tide lifting section of the tidal generator according to the second embodiment of the present invention
  • FIG. 9 is a diagram illustrating an example of operation of high tide weight of the tidal generator according to the second embodiment of the present invention
  • FIG. 10 is a diagram illustrating an operation example of a low-speed weight operation of a tantalum generator according to a second embodiment of the present invention
  • FIG. 11 is an enlarged perspective view of a high-tension connecting shaft of a tandem generator according to an embodiment of the present invention.
  • FIG. 12 is an enlarged perspective view of a tandem connection shaft of a tandem generator according to an embodiment of the present invention.
  • FIG. 13 is an enlarged perspective view of a connection shaft of a tantalum generator according to another embodiment of the present invention.
  • FIG. 14 is an enlarged front view of a connection portion of a tandem generator according to an embodiment of the present invention.
  • the tidal generator according to the first embodiment of the present invention includes an upper plate 400, an intermediate plate 300, and a buoyant plate 200 mounted on a column 100 fixed to the sea floor, Respectively.
  • the left side of the column 100 is referred to as a high-rise lifting portion, and the right side is referred to as a low-rise lifting portion.
  • the upper plate 400 is a portion where power generation is performed, and at least one connection shaft is installed, and a clutch, a brake, a generator, and the like are installed in the connection shaft.
  • the details of the connection axis will be described later with reference to Figs.
  • the intermediate plate 300 is installed to perform an operation when a worker needs to check the generator.
  • the buoyancy plate 200 is installed at a height of 1 m to 2 m higher than the buoyancy plate 200 desirable.
  • the first lifting sheave 310 is installed on the intermediate plate 300 on the side of the lifting section to prevent the buoyancy plate 200 from rising and lifting the high lifting weight 500a will be.
  • the lifted high tide weight 500a or the low tide weight 500b falls free on the intermediate plate 300 when power generation is finished.
  • the buoyancy plate 200 is installed so as to move up and down by the difference of the fresh water level and the high tide coupling bar 210a and the low tide coupling bar 210b are attached to the upper end of the buoyancy plate 200, .
  • the high tide coupling bar 210a and the high tide coupling portion 510a are engaged and raised to lift the high tide weight 500a.
  • the low tide coupling bar 210b and the low tide coupling portion 510b are engaged and descended The low-altitude weight 500b is lifted.
  • rails (not shown) are installed on both sides of the column 100 fixed to the seabed to facilitate upward and downward movements of the high-tension coupling bar 210a and the low-tension coupling bar 210b by tide and ebb .
  • the level of the buoyancy plate 200 increases due to the water level. Since the weight of the buoyancy plate 200 is light enough to float on the water, the descent due to the weight of the buoyancy plate 200 is slow or not easy.
  • a reservoir 220 is formed so that water can be stored at the lower end of the buoyancy plate 200. Water flows into the storage tank 220 when the tide is tide, and the buoyancy plate 200 can be easily lowered by the load of the water stored in the storage tank 220 when the tide is low.
  • the reservoir 220 may be provided with contents for providing a load.
  • the high-tension coupling portion 510a and the high-tension coupling bar 210a are normally engaged, and when the high-tension coupling bar 510a is lifted, And is not engaged when the high-tension joining bar 210a descends.
  • the low horizontal coupling portion 510b and the low horizontal coupling bar 210b are normally engaged with each other when the low horizontal coupling bar 510b descends and is lifted together with the low horizontal coupling bar 210b, It is installed in a structure that does not engage when it ascends.
  • FIG. 2 illustrates an operation example of the tidal lifting portion of the tidal generator according to the first embodiment of the present invention.
  • the buoyancy plate 200 rises.
  • the high-tension coupling bar 210a and the low-tension coupling bar 210b attached to the buoyant plate 200 also rise.
  • the high-tension joining bar 210a and the high-tension joining portion 510a are engaged and rise together.
  • One end of the high-temperature joint part 510a is connected to the first high-temperature joint part 520a.
  • first high tide connecting portion 520a is connected to the first high tune connecting portion 510a and is connected to the first lifting sheave 310 fixed to the middle plate 300.
  • the tide weight 500a is hoisted by the high-tension joining portion 510a which is engaged with the high-tension joining bar 210a and is raised together. At this time, the low- The buoyancy plate 200 can be positioned in place regardless of the rise of the buoyancy plate 200.
  • FIG. 3 is a diagram illustrating an operation example of the low-tide lifter of the tidal generator according to the first embodiment of the present invention.
  • the buoyancy plate 200 descends.
  • the high-tension coupling bar 210a and the low-tension coupling bar 210b attached to the buoyant plate 200 also descend.
  • the low-low coupling bar 210b and the low-pass coupling portion 510b are engaged and descended together.
  • One end of the low-trough coupling portion 510b is connected to the first low-tension connection portion 520b.
  • first low-temperature joint connection part 520b is connected to the first low-speed joint part 510b and is connected to the low-speed counterbalance sheave 430b provided on the upper panel 400 and the low-pass main wheel 421b coupled to the low- And the other end is joined to the low weight weight 500b.
  • the low lifting weight 500b is pulled up by the low tension joining portion 510b which is engaged with the low tension coupling bar 210b and descends together with the low lifting weight 510a. So that it can be positioned in place regardless of the descent of the buoyancy plate 200.
  • the tidal generator according to the first embodiment of the present invention is constructed in such a manner that the high tide brakes 411a and the low tide brakes 411a and 411b are opened and closed by the low tide connection shaft 410a and the low tide brakes 411b,
  • the falling weight 500a or the low-weight weight 500b can be controlled.
  • the high-speed brakes 411a and low-speed brakes 411b are always locked and the high-speed brakes 411a and low-speed brakes 411b are selectively released only when power generation is required, It is possible to develop through the dropping movement.
  • FIG. 4 is a diagram illustrating an example of operation of high tide weight of the tidal generator according to the first embodiment of the present invention.
  • the lifted high-water weight 500a when tide is fixed in the raised position because the high-speed brake 411a is always locked.
  • the high tide joint weight 510a is installed not to engage with the high tide joint bar 210a, so the high tide weight 500a does not descend but remains at the raised height.
  • the high-tension joining portion 510a and the high-tension joining bar 210a are separated from each other, and when the high-tension brake 411a is loosened, the high-tension weight 500a falls freely.
  • the high mass weight 500a freely falls and rotates the high tide main wheel 421a coupled to the high tide connection shaft 410a and the high tide power generation clutch 414a coupled to the high tide connection shaft 410a rotates the high tide main wheel 421a To the high-tension generator 412a to generate electricity.
  • the freely weighted high weight 500a of the free fall is placed on the intermediate plate 300 and the high loom weight 510a and the high loom coupling bar 210a are combined again so that the high loom weight 500a can be lifted again .
  • FIG. 5 is a diagram illustrating an example of operation of the low tide weight of the tidal generator according to the first embodiment of the present invention.
  • the low-speed low-speed weight 500b at low tide is fixed in the raised position because the low-speed brake 411b is always locked.
  • the low-altitude coupling weight 510b is installed so as not to engage with the low-low coupling bar 210b, so that the low-tide weight 500b does not descend but remains at the raised height.
  • the low-tension joint weight 510b and the low-tension coupling bar 210b are separated and the low-tension weight 500b falls freely when the low-tension brake 411b is loosened.
  • the low-tension weight 500b falls freely and the low-pass main wheel 421b coupled to the low-pass connecting shaft 410b is rotated and the low-speed main drive wheel 414b coupled to the low- To the low-stage generator 412b to generate power.
  • the low weight low weight 500b of the low loom is placed on the intermediate plate 300 and the low loom weight 500b is lifted again when the low loom coupling bar 510b and the low loom coupling bar 210b are joined again .
  • FIG. 6 shows a front view of a tidal generator according to a second embodiment of the present invention.
  • the upper plate 400, the intermediate plate 300, and the buoyant plate 200 are installed on the column 100 fixed to the seabed, Respectively.
  • the left side of the column 100 is referred to as a high-rise lifting portion, and the right side is referred to as a low-rise lifting portion.
  • the upper plate 400 is a portion where power generation is performed, and at least one connection shaft is installed, and a clutch, a brake, a generator, and the like are installed in the connection shaft.
  • the details of the connection axis will be described later with reference to Figs.
  • the intermediate plate 300 is installed to perform an operation when a worker needs to check the generator.
  • the buoyancy plate 200 is installed at a height of 1 m to 2 m higher than the buoyancy plate 200 desirable.
  • the second lifting sheave 320 is installed on the intermediate plate 300 on the side of the lifting section to prevent the buoyancy plate 200 from rising and lifting the high lifting weight 500a will be.
  • the lifted high tide weight 500a or the low tide weight 500b falls free on the intermediate plate 300 when power generation is finished.
  • the level of the buoyancy plate 200 increases due to the water level. Since the weight of the buoyancy plate 200 is light enough to float on the water, the descent due to the weight of the buoyancy plate 200 is slow or not easy.
  • a reservoir 220 is formed so that water can be stored at the lower end of the buoyancy plate 200. Water flows into the storage tank 220 when the tide is tide, and the buoyancy plate 200 can be easily lowered by the load of the water stored in the storage tank 220 when the tide is low.
  • the reservoir 220 may be provided with contents for providing a load.
  • a high tide moving pillar 230a and a low tide moving pillar 230b are installed on the upper end of the buoyant plate 200 along the longitudinal direction of the column 100.
  • the high tide moving pillar 230a is a high tide lifting part, It is preferable that the column 230b is installed in the low tide lifting portion.
  • the height of the high tide moving column 230a and the height of the low tide moving column 230b may be the same or different.
  • a high tide moving column sheave 231a is provided at the upper end of the high tide moving column 230a to be coupled with the second high tide connecting portion 530a to lift the tide weight 500a when tide is high.
  • a low tide moving column sheave 231b is provided at the upper end of the low tide moving column 230b and a shelf is formed in the vertical direction of the low tide moving column 230b at the end of the low tide moving column 230b,
  • the secondary pulley 231b and the secondary pulley moving pulley auxiliary pulley 232b are engaged with the second low-speed pulley coupling portion 530b so that the low pulley weight pulley 500b can be lifted when the low-speed pulley pulley 231b and the low- .
  • FIG. 7 illustrates an operation example of a tidal lifting portion of a tidal generator according to a second embodiment of the present invention.
  • the buoyancy plate 200 rises.
  • the elevation of the buoyancy plate 200 raises the high tide moving column 230a and the low tide moving column 230b together.
  • the high tide moving column sheave 231a formed at the upper end of the high tide moving column 230a moves in conjunction with the second high tide connecting portion 530a.
  • One end of the second high tide connecting portion 530a is fixed to the second high tide connecting portion 530a accommodated in the middle plate 300 or the intermediate plate 300 and the high tide moving column sheaves 231a,
  • the lifting pulley 320, the high-tension top pulley 430a, and the high-tension main wheel 421a, and the other end is formed to be coupled to the high-tension weight 500a.
  • the high tide moving column 230a rises and moves in combination with the high tide moving column sheave 231a and the second high tide connecting portion 530a, so that the high-tide weight 500a is lifted.
  • the high tide moving column sheave 231a is controlled to rotate only in a counterclockwise direction by a separate locking device, so that the second high tide connecting portion 530a is pulled and lifts the high tide weight 500a.
  • the lock device of the high tension moving column sheave 231a is released when the lifting of the high weight lifting weights 500a is completed and that the high lifting weight of the high lifting weight pulley 500a 231a, the high-tension weight 500a does not fall.
  • the low-altitude moving column 230b also rises together with the rise of the buoyant plate 200, but the low-speed moving column sheave 231b formed at the upper end of the low-altitude moving column 230b is provided with the lock Since the low speed moving column sheave 231b rotates in the clockwise direction and pulls the second low-temperature connecting portion 530b accommodated in the intermediate plate 300 or the separate receiving portion provided in the intermediate plate 300, The second low-temperature connecting portion 530b coupled to the weight 500b is not affected by the motion of the low-altitude moving column 230b and can be held in place regardless of the rise of the buoyancy plate 200. [
  • a locking device which is installed separately in the high-tension moving column sheave 231a and controls the rotating direction of the high-tension moving column sheave 231a, is easily controlled in a clockwise or counterclockwise direction depending on the installation position of the high- .
  • FIG. 8 is a diagram illustrating an operation example of the low tide lifter of the tidal generator according to the second embodiment of the present invention.
  • the buoyancy plate 200 descends.
  • the high tide moving column 230a and the low tide moving column 230b also descend.
  • the second low-temperature connecting section 530b is coupled to the low-speed moving column sheave 231b formed at the upper end of the low-speed moving column 230b and the low-speed moving column auxiliary pulley 232b formed at the stop of the low- do.
  • the low-speed moving column sheave 231b, A column auxiliary sheave 232b, a low-altitude upper plate sheave 430b, and a low-altitude main wheel 421b, and the other end thereof is formed to be coupled to the low-altitude weight 500b.
  • the low-altitude moving column 230b descends, and the low-altitude weight column 500b is hoisted because the low-altitude moving column sheave 231b and the low-altitude moving column auxiliary pulley 232b and the second low-altitude connection portion 530b move together .
  • the low tide moving column sheave 231b is controlled to rotate only in a counterclockwise direction by a separate locking device, so that the second low-temperature connecting portion 530b is pulled and lifts the low-speed weight 500b.
  • the high-lift moving column 230a also descends due to the descent of the buoyant plate 200.
  • the pulley 231a rotates in the clockwise direction and pulls the second high tide connecting portion 530a accommodated in the intermediate plate 300 or the separate receiving portion provided in the intermediate plate 300,
  • the high-water connecting portion 530a is not affected by the movement of the high-speed moving column 230a and can be put in place regardless of the descent of the buoyant plate 200.
  • a locking device separately provided in the low-speed moving column sheave 231b for controlling the rotating direction of the low-speed moving column sheave 231b can be easily controlled in a clockwise or counterclockwise direction depending on the installation position of the low-speed moving column 230b .
  • the second low tide connecting portion 530b coupled to the low tide moving column auxiliary sheave 232b when the tide is tide, the second low tide connecting portion 530b is connected to the second low tide moving column auxiliary pulley
  • the second low-temperature connection part 530b may be accommodated in a separate receiving part provided in the intermediate plate 300.
  • the second high tide connecting portion 530a coupled to the high tide moving column sheave 231a can be constructed so that the second high tide connecting portion 530a is moved to the second high tide moving column sheave 231a It is preferable that the second high-loose connecting portion 530a is accommodated in a separate receiving portion provided in the intermediate plate 300.
  • the first and second high-loose connection portions 530a and 530b may be formed longer than the lengths of the intermediate plate 300, In the housing portion.
  • the tidal generator according to the second embodiment of the present invention is constructed in such a manner that the high tide brakes 411a and the low tide brakes 411a and 411b are opened and closed by the high tide connection shaft 410a and the low tide brakes 411b,
  • the falling weight 500a or the low-weight weight 500b can be controlled.
  • the high-speed brakes 411a and low-speed brakes 411b are always locked and the high-speed brakes 411a and low-speed brakes 411b are selectively released only when power generation is required, It is possible to develop through the dropping movement.
  • FIG. 9 is a view illustrating an example of operation of high tide weight of a tidal generator according to a second embodiment of the present invention. As shown in Fig. 9, the tall weight 500a lifted when tide is fixed at the raised position because the high-speed brake 411a is always locked.
  • the high-tension weight 500a drops freely when the high-speed brake 411a is released.
  • the high mass weight 500a freely falls and rotates the high tide main wheel 421a coupled to the high tide connection shaft 410a and the high tide power generation clutch 414a coupled to the high tide connection shaft 410a rotates the high tide main wheel 421a To the high-tension generator 412a to generate electricity.
  • the separate locking device for controlling the rotating direction of the high tide moving column sheave 231a since the separate locking device for controlling the rotating direction of the high tide moving column sheave 231a is in the unlocked state, the high tide moving column sheave 231a rotates in the clockwise direction and the high tide weight 500a can drop.
  • FIG. 10 is a diagram illustrating an example of operation of the low tide weight of the tidal generator according to the second embodiment of the present invention. As shown in Fig. 10, the low-lying low-altitude weight 500b at low tide is fixed in the raised position because the low-tide brakes 411b are always locked.
  • the low-tension low-speed weight 500b is released when the low-tension brake 411b is loosened.
  • the low-tension weight 500b falls freely and the low-pass main wheel 421b coupled to the low-pass connecting shaft 410b is rotated and the low-speed main drive wheel 414b coupled to the low- To the low-stage generator 412b to generate power.
  • the separate locking device for controlling the rotating direction of the low-speed moving column sheave 231b since the separate locking device for controlling the rotating direction of the low-speed moving column sheave 231b is in the unlocked state, the low-speed moving column sheave 231b rotates in the clockwise direction, so that the low-speed secondary weight 500b can fall.
  • FIG. 11 is an enlarged perspective view of a high-speed connection shaft of a tidal generator according to an embodiment of the present invention.
  • a high-tension generator 411a, a high-tension generator clutch 414a, a high-tension generator clutch 414a, and a high-tension generator 412a are connected to a high-speed connecting shaft 410a of the upper plate 400, And a high-tension main wheel 421a is fitted in the high-tension center shaft 420a.
  • the high-rise lifting clutch 413a is constituted by a high-lift lifting clutch 413a lifting the high lifting weight 500a while the high-tension brake 411a is locked.
  • the high-rise lifting clutch 413a is formed of two clutch plates, and is preferably installed in a state where the clutch plates are coupled to each other, but is shown as being separated to show the structure.
  • the high power generation clutch 414a is also formed of two clutch plates, one of which is attached to one end of the high center shaft 420a and the other is fitted to the high speed connection shaft 410a.
  • the high weight weight 500a falls and the high clutch main shaft 421a and the high clutch center shaft 420a and the high clutch connecting shaft 410a are rotated and the two clutch plates formed by the high torque clutch 414a And transmits the rotational motion of the high-tension connecting shaft 410a to the high-tension generator 412a to generate the high-tension generator 412a.
  • the tide weight 500a is salvaged.
  • the high weight weight 500a is hoisted by the high lift clutch 413a and the high speed brake 411a prevents the high weight weight 500a from descending.
  • FIG. 12 is an enlarged perspective view of a low-tide connection axis of a tidal generator according to an embodiment of the present invention.
  • the low-speed shaft 411b, the low-speed lifting clutch 413b, the low-speed generator clutch 414b and the low-speed generator 412b are fitted and connected to the low-speed connection shaft 410b of the upper plate 400, And a low tide main wheel 421b is fitted to the low tide center axis 420b.
  • the low-temperature relief clutch 413b is constituted by a low-temperature lifting clutch 413b lifting the low-speed weight 500b while the low-lift brake 411b is locked.
  • the low-temperature relief clutch 413b is formed of two clutch plates, and is preferably installed in a state where the clutch plates are coupled to each other, but is shown as being separated to show the structure.
  • the low-temperature power generation clutch 414b is also formed of two clutch plates, one of which is attached to one end of the low-tension center shaft 420b and the other is fitted to the low-tension coupling shaft 410b.
  • the low-tension weight 500b falls and the low-tension main shaft 421b and the low-tension center shaft 420b and the low-tension connection shaft 410b are rotated, and the two clutch plates formed by the low- And transmits the rotational motion of the low-stage connecting shaft 410b to the low-stage generator 412b to generate the low-stage generator 412b.
  • the low-altitude weight 500b When the buoyant plate 200 descends at low tide, the low-altitude weight 500b is salvaged.
  • the low-altitude weight 500b is lifted by the low-lift lifting clutch 413b, and the low-altitude brakes 411b serve to prevent the low-altitude weight 500b from descending.
  • connection shaft 600 is an enlarged perspective view of a connection shaft of a tantalum generator according to a modification of the embodiment of the present invention.
  • the connecting shaft 600 installed in the upper plate 400 is not separately formed as the high-tension connecting shaft 410a and the low-tension connecting shaft 410b as shown in FIGS. 11 and 12, And may be formed as a connection shaft 600.
  • the first generator clutch 620, the first main wheel 680, the first lifting clutch 640, and the first brake 660 are coupled to the connecting shaft 600 through the high- And the second power generation clutch 630, the second main wheel 690, the second lifting clutch 650, and the second brake 670 are included in the low-temperature lifting portion.
  • the first brake 660 is a high-speed brake 411a
  • the second brake 670 is a low-speed brake 411b
  • the first main wheel 680 is a high-speed main wheel 421a
  • the second main wheel 690 plays the same role as the low-pass main wheel 421b.
  • connection shaft 600 is formed to be long enough to be provided with a plurality of lifting clutches, a power generation clutch, a central shaft, a main wheel, and brakes corresponding to a single high lifting portion, a low lifting portion
  • a single connecting shaft 600 can lift a plurality of high weight 500a or low 500b weight and a plurality of high weight 500a or low weight 500b, can do.
  • the connecting shaft 600 is installed on the column 100
  • the first main wheel 680 and the second main wheel 690 are installed at the center of the upper plate 400.
  • the high-altitude upper plate sheave 430a and the low-altitude upper plate sheave 430b are further moved toward both ends of the upper plate 400.
  • FIG. 14 is an enlarged front view of a connection portion of the tidal generator according to an embodiment of the present invention.
  • the first high-temperature joint 520a of the tidal generator of the present invention may be formed in the form of a chain chain as shown in FIG. 14 (a) And may be applied to the first high-temperature connection portion 520a of the tidal generator as long as the strength is high and can be formed to extend to a sufficient length.
  • the first low-temperature connection portion 520a, the second low-temperature connection portion 530a, and the second low-temperature connection portion 530b as well as the first high-temperature connection portion 520a can be easily selected and applied from the ordinary skilled in the art.
  • the tidal generator according to the first embodiment or the second embodiment of the present invention generates a difference only in the tide interval due to the attraction of the moon, the difference in level due to the tide interval is small on the day when the lunar attraction is weak, There may be a case where the height of the low weight 500b is too low to be used for power generation.
  • the high tide joining portion 510a is engaged with the high tide joining bar 210a to raise the weight tile 500a.
  • the height of the high-water weight 500a is judged to be a low height to be used for power generation, when the tide comes in again, it can be raised to a level higher than the initial elevation.
  • the buoyancy coupling portion 510a can not maintain the position of the lifted weight 500a because the buoyancy plate 200 is not engaged when the high-tension coupling bar 210a descends
  • the height of the column 100 is sufficiently high and the height of the first loft connection part 210a is increased because the buoyancy plate 200 rises and the loft coupling bar 210a and the loft coupling part 510a are engaged with each other.
  • 520a are sufficiently extended, the high weight 500a can be lifted up to a desired height.
  • the low-altitude weight 500b that is lifted when the tide is low can be lifted to a desired height by the same method.
  • the high tide moving column sheave 231a rises with the second high tide connecting portion 530a and raises the high tide weight 500a.
  • the height of the high-water weight 500a is judged to be a low height to be used for power generation, when the tide comes in again, it can be raised to a level higher than the initial elevation.
  • the high tide moving column sheave 231a and the second high tide connecting portion 530a do not participate in the position of the high tide weight 500a and are lifted up by the high tide brake 411a The position of the high-water weight 500a can be maintained.
  • the buoyancy plate 200 is lifted and the second high tide connecting portion 530a coupled to the high tide moving column shear 231a and the high tide moving column shear 231a rises again, If the height of the high tide moving pillar 230a is sufficiently high and the second high tide connecting portion 530a is sufficiently extended, the high tide weight 500a can be lifted up to a desired height.
  • the low weight 500b lifted at the time of low tide can be lifted to a desired height by the same method.

Abstract

The present invention relates to a tidal generator and provides a tidal generator which uses the tidal energy of a rising tide and the tidal energy of a falling tide to raise a weight and use the weight to generate power. An openable and closeable brake is installed in the tidal generator and the brake is released to allow the weight to free-fall when power generation is needed, and thus the tidal generator has a high power generation efficiency.

Description

간만 발전기Tidal generator
본 발명은 조수 간만의 차에 의해 발전을 하는 간만 발전기에 관한 것으로, 더욱 상세하게는 만조와 간조에 의해 조수 간만의 차가 발생하며, 조수 간만의 차에 의해 부력판이 상하 운동하며 무게추를 인양하고, 인양된 무게추가 낙하할 때 발생하는 에너지를 이용해 발전하는 간만 발전기에 관한 것이다.More particularly, the present invention relates to a tidal generator which generates electricity by means of a tidal difference, more specifically, a tidal difference is generated by a high tide and a low tide, , And a tidal generator that develops using the energy generated when the weight is lifted further.
한정된 지하자원과 환경오염 문제로 인해 화석 연료를 대체할 에너지 개발의 필요성을 느끼고, 대체 에너지 개발에 힘쓰고 있다. 대체 에너지 중 태양열 에너지와 풍력 에너지가 가장 많이 이용되고 있지만, 태양열 에너지는 해가 안 뜨면 발전할 수 없는 단점이 있으며, 풍력 에너지 또한 바람이 항상 불지 않기 때문에 발전 효율이 낮다는 단점이 있다.Due to limited underground resources and environmental pollution problems, it is necessary to develop energy to replace fossil fuels, and is making efforts to develop alternative energy. Solar energy and wind energy are among the most used alternative energy, but solar energy has a disadvantage that it can not develop if the sun goes down, and wind power energy has a disadvantage that the generation efficiency is low because the wind is not always blowing.
달의 인력에 의해 만조와 간조가 반복되어 조수 간만의 차가 발생하고, 조수 간만의 차를 이용하여 발전하는 조력 발전은 조수 간만의 차가 있는 곳이라면 발전이 가능하기 때문에, 태양열과 풍력과 달리 항상 발전할 수 있다는 장점이 있다.As the tidal power and tidal current are repeated by the manpower of the moon, and the tidal difference is generated, and the tidal power generation which uses only the tidal current is generated, There is an advantage to be able to do.
조력 발전에 관한 선행기술은 한국공개실용신안공보 제 20-1994-0003699호 부력조력발전을 예로 들 수 있다. 상기 선행기술은 밀물일 때 수위가 높아짐에 따라 부력판이 상승하며 도르래에 연결된 추를 인양하고, 썰물일 때 수위가 낮아짐에 따라 추가 중력에 의해 자유 낙하할 때 발전하는 조력 발전기에 관한 기술을 개시하고 있다. Prior art related to tidal power generation is exemplified by buoyancy tidal power generation in Korean Utility Model Application No. 20-1994-0003699. The prior art discloses a technique related to a tidal generator that lifts a weight connected to a pulley as the water level rises as the water level rises as the water level rises, and develops when the water level rises at low water level, have.
상기 조력 발전 방법은 밀물일 때는 발전할 수 없으며, 썰물일 때 발생하는 조력 에너지도 이용할 수 없으므로 발전 시간에 비해 발전량이 충분하지 못해 발전 효율이 낮다는 문제점이 있다.The tidal power generation method is incapable of generating electricity when tide is generated, and tidal energy generated when the tide is low can not be used.
[선행기술문헌][Prior Art Literature]
[특허문헌][Patent Literature]
(특허문헌 1) 한국공개실용신안공보 제 20-1994-0003699호 (부력조력발전, 1994.02.21.)(Patent Document 1) Korean Utility Model Utility Model No. 20-1994-0003699 (Buoyancy Tidal Power, Feb. 21, 1994)
본 발명은 상기한 문제점을 해결하기 위하여 안출된 것으로서, 본 발명의 목적은 밀물과 썰물에 의해 발생하는 조력 에너지를 모두 이용함으로써, 발전 효율이 높은 조력 발전기를 제공하는 데에 있다.SUMMARY OF THE INVENTION It is an object of the present invention to provide a tidal generator having high power generation efficiency by utilizing all the tidal energy generated by tide and ebb.
그러나 본 발명의 목적은 상기에 언급된 목적으로 제한되지 않으며, 언급되지 않은 또 다른 목적들은 아래의 기재로부터 당업자에게 명확하게 이해될 수 있을 것이다.However, the object of the present invention is not limited to the above-mentioned objects, and other objects not mentioned can be clearly understood by those skilled in the art from the following description.
본 발명의 간만 발전기는, 하단이 해저에 고정되어 상단으로부터 차례로 상판(400), 중간판(300)이 부착되는 기둥(100); 상기 기둥(100)의 상단부에 부착되는 상판(400); 상기 상판(400)의 아래쪽에 위치하고, 상기 기둥(100)에 부착되는 중간판(300); 상기 중간판(300) 아래에 위치하며, 조수간만에 의한 수위차로 인해 상기 기둥(100)을 따라 상하 운동하는 부력판(200); 도르래 구조를 이용하여 밀물일 때, 상기 부력판(200)의 상승에 의해 만조 무게추(500a)를 인양하는 만조 인양부; 및 도르래 구조를 이용하여 썰물일 때, 상기 부력판(200)의 하강에 의해 간조 무게추(500b)를 인양하는 간조 인양부;를 포함하는 것을 특징으로 한다.The tidal generator of the present invention comprises: a column (100) having a lower end fixed to the sea floor and an upper plate (400) and an intermediate plate (300) sequentially from the upper end; An upper plate 400 attached to an upper end of the column 100; An intermediate plate 300 located below the upper plate 400 and attached to the column 100; A buoyancy plate 200 located below the intermediate plate 300 and moving up and down along the column 100 due to a difference in level due to the fresh water alone; A high tide lifting portion for lifting the high tide weight 500a by the rise of the buoyant plate 200 when the tide is tide by using the pulley structure; And a low-rise lifting section for lifting low-stream weight 500b by descending the buoyant plate 200 when the low-rise building is being ebb-flowed using a pulley structure.
또한, 상기 만조 인양부는, 상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 만조 결합바(210a), 상기 중간판(300)에 고정된 제 1 인양 도르래(310), 상기 상판(400)에 설치된 만조 연결 축(410a), 상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 만조 연결 축(410a) 사이에 위치하는 만조 상판 도르래(430a), 일측 끝단이 상기 만조 무게추(500a)에 연결되며, 상기 만조 연결 축(410a), 상기 만조 상판 도르래(430a) 및 상기 제 1 인양 도르래(310)를 순차적으로 통과하여 연장되는 제 1 만조 연결부(520a), 상기 제 1 만조 연결부(520a)의 타측 끝단에 연결되며, 상기 만조 결합바(210a)와 결합하는 만조 결합부(510a) 및 상기 만조 연결 축(410a)에 연결되어 발전하는 만조 발전기(412a)를 포함하는 것을 특징으로 한다.The high tide lifting portion includes a high tide coupling bar 210a attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100 and a first lifting sheave 310 A high tide connecting shaft 410a installed in the upper plate 400 and a high loft top sheath 430a attached to the top plate 400 and positioned between the column 100 and the high tide connecting shaft 410a, And one end of which is connected to the high tide weight 500a and is connected to the first high tide connecting portion 410a, the high tide top sheath 430a and the first high tide connecting portion A high tide joint portion 510a connected to the other end of the first high tide joint portion 520a and coupled to the high tide joint bar 210a and a high tide joint generator 510a connected to the high tide joint shaft 410a, 412a.
또한, 상기 만조 연결 축(410a)은, 상기 만조 연결 축(410a)에 끼움 결합하는 만조 중심 축(420a), 상기 만조 중심 축(420a)에 끼움 결합하며, 상기 제 1 만조 연결부(520a)의 이동을 가이드하는 만조 메인 휠(421a) 및 상기 만조 메인 휠(421a)의 회전을 제어하는 만조 브레이크(411a)를 포함하는 것을 특징으로 한다.The high tide connecting shaft 410a is connected to the high tide connecting shaft 410a and the high tide connecting shaft 410a is connected to the high tide connecting shaft 410a, And includes a high-tension main wheel 421a for guiding movement and a high-tension brake 411a for controlling the rotation of the high-tension main wheel 421a.
또한, 상기 만조 결합부(510a)는, 상기 부력판(200)이 상승할 때, 상기 만조 무게추(500a)를 인양할 수 있도록, 상기 만조 결합바(210a)와 맞물려서 상승하고, 상기 부력판(200)이 하강할 때는 만조 무게추(500a)의 이동에 관여하지 않도록 만조 결합바(210a)와 맞물리지 않도록 설치하는 것을 특징으로 한다.The high tension coupling portion 510a is engaged with the high tension coupling bar 210a so as to lift the high weight weight 500a when the buoyant plate 200 is lifted, And is not engaged with the high-tension joining bar 210a so as not to be involved in the movement of the high-strength weight 500a when the hull 200 descends.
또한, 상기 간조 인양부는, 상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 간조 결합바(210b), 상기 상판(400)에 설치된 간조 연결 축(410b), 상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 간조 연결 축(410b) 사이에 위치하는 간조 상판 도르래(430b), 일측 끝단이 상기 간조 무게추(500b)에 연결되며, 상기 간조 연결 축(410b), 상기 간조 상판 도르래(430b)를 순차적으로 통과하여 연장되는 제 1 간조 연결부(520b), 상기 제 1 간조 연결부(520b)의 타측 끝단에 연결되며, 상기 간조 결합바(210b)와 결합하는 간조 결합부(510b) 및 상기 간조 연결 축(410b)에 연결되어 발전하는 간조 발전기(412b)를 포함하는 것을 특징으로 한다.The low tide lifting unit includes a low tide coupling bar 210b attached to the top of the buoyant plate 200 and extending in the direction of the column 100, a low tide connection shaft 410b installed on the top plate 400, A low tide upper plate sheave 430b attached to the upper plate 400 and positioned between the column 100 and the low tide connection axis 410b and one end connected to the low tide weight 500b, A first low-temperature connection part 520b extending through the shaft 410b and the low-speed upper loom 430b in order and a second low-temperature connection part 520b connected to the other end of the first low-temperature connection part 520b, And a low-noise generator (412b) connected to the low-noise coupling axis (410b) and generating power.
또한, 상기 간조 연결 축(410b)은, 상기 간조 연결 축(410b)에 끼움 결합하는 간조 중심 축(420b), 상기 간조 중심 축(420b)에 끼움 결합하며, 상기 제 1 간조 연결부(520b)의 이동을 가이드하는 간조 메인 휠(421b) 및 상기 간조 메인 휠(421b)의 회전을 제어하는 간조 브레이크(411b)를 포함하는 것을 특징으로 한다.The low tide connection axis 410b may include a low tide center axis 420b fitted to the low tide connection axis 410b and a low tide center axis 420b fitted to the low tide center axis 420b, A low-pass main wheel 421b for guiding the movement and a low-pass brake 411b for controlling the rotation of the low-pass main wheel 421b.
또한, 상기 간조 결합부(510b)는, 상기 부력판(200)이 하강할 때, 상기 간조 무게추(500b)를 인양할 수 있도록, 상기 간조 결합바(210b)와 맞물려서 하강하고, 상기 부력판(200)이 상승할 때는 간조 무게추(500b)의 이동에 관여하지 않도록 간조 결합바(210b)와 맞물리지 않도록 설치하는 것을 특징으로 한다.The low tension coupling portion 510b is engaged with the low tension coupling bar 210b so as to lift down the low tension weight 500b when the buoyant plate 200 descends, (210b) so as not to be involved in the movement of the low-weight weight (500b) when the upper loom (200) ascends.
또한, 상기 만조 인양부는, 상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 만조 움직 기둥(230a), 상기 만조 움직 기둥(230a)의 상단에 부착된 만조 움직 기둥 도르래(231a), 상기 중간판(300)에 고정된 제 2 인양 도르래(320), 상기 상판(400)에 설치된 만조 연결 축(410a), 상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 만조 연결 축(410a) 사이에 위치하는 만조 상판 도르래(430a), 일측 끝단이 상기 만조 무게추(500a)에 연결되며, 상기 만조 연결 축(410a), 상기 만조 상판 도르래(430a), 상기 제 2 인양 도르래(320) 및 상기 만조 움직 기둥 도르래(231a)를 순차적으로 통과하여 연장되며 타측 끝단이 상기 중간판(300)에 고정되는 제 2 만조 연결부(530a) 및 상기 만조 연결 축(410a)에 연결되어 발전하는 만조 발전기(412a)를 포함하는 것을 특징으로 한다.The high tide lifting portion includes a high tide moving pillar 230a attached to the top of the buoyant plate 200 and extending in the direction of the column 100 and a high tide moving column 230a attached to the top of the high tide moving pillar 230a, A second lifting sheave 320 fixed to the intermediate plate 300, a high-tension connecting shaft 410a installed in the upper plate 400, and a second lifting sheave attached to the upper plate 400, And the other end is connected to the high tide weight 500a and the high tide connection shaft 410a, the high tide top sheave 430a, the high tide sheave 430a, A second high tide connecting portion 530a extending sequentially through the second lifting sheave 320 and the high tide moving column shear 231a and the other end fixed to the intermediate plate 300 and a high- And a high-tension generator 412a connected to the high- The.
또한, 상기 만조 연결 축(410a)은, 상기 만조 연결 축(410a)에 끼움 결합하는 만조 중심 축(420a), 상기 만조 중심 축(420a)에 끼움 결합하며, 상기 제 2 만조 연결부(530a)의 이동을 가이드하는 만조 메인 휠(421a) 및 상기 만조 메인 휠(421a)의 회전을 제어하는 만조 브레이크(411a)를 포함하는 것을 특징으로 한다.The high tide connection shaft 410a is connected to the high tide connection shaft 410a and the high tide connection shaft 410a is connected to the high tide connection shaft 410a, And includes a high-tension main wheel 421a for guiding movement and a high-tension brake 411a for controlling the rotation of the high-tension main wheel 421a.
또한, 상기 만조 움직 기둥 도르래(231a)는, 상기 부력판(200)이 상승할 때, 상기 만조 무게추(500a)를 인양할 수 있도록 상기 제 2 만조 연결부(530a)와 고정 결합되어 상승하고, 상기 부력판(200)이 하강할 때는 만조 무게추(500a)의 이동에 관여하지 않도록 상기 만조 움직 기둥 도르래(231a)와 상기 제 2 만조 연결부(530a)의 고정 결합을 해제하는 것을 특징으로 한다.The high tide moving column sheave 231a is fixedly coupled to the second high tide connecting portion 530a so as to lift the high tide weight 500a when the buoyant plate 200 is lifted, When the buoyant plate 200 descends, the fixed connection between the high tide moving column sheave 231a and the second high tide connecting portion 530a is released so as not to be involved in the movement of the high tide weight 500a.
또한, 상기 간조 인양부는, 상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 간조 움직 기둥(230b), 상기 간조 움직 기둥(230b)의 상단에 부착된 간조 움직 기둥 도르래(231b), 상기 간조 움직 기둥(230b)의 중단에 상기 간조 움직 기둥(230b)의 높이 방향에 수직 방향으로 형성되는 바에 고정 설치되는 간조 움직 기둥 보조 도르래(232b), 상기 상판(400)에 설치된 간조 연결 축(410b), 상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 간조 연결 축(410b) 사이에 위치하는 간조 상판 도르래(430b), 일측 끝단이 상기 간조 무게추(500b)에 연결되며, 상기 간조 연결 축(410b), 상기 간조 상판 도르래(430b), 상기 간조 움직 기둥 보조 도르래(232b) 및 상기 간조 움직 기둥 도르래(231b)를 순차적으로 통과하여 연장되며 타측 끝단이 상기 중간판(300)에 고정되는 제 2 간조 연결부(530b) 및 상기 간조 연결 축(410b)에 연결되어 발전하는 간조 발전기(412b)를 포함하는 것을 특징으로 한다.The low tide lifting portion includes a low tide moving column 230b attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100, a low tide moving column 230b attached to the upper end of the low tide moving column 230b, A pulley 231b, a low-speed moving column auxiliary pulley 232b fixed to a bar formed in a direction perpendicular to the height direction of the low-speed moving pillar 230b at the stop of the low-speed moving pillar 230b, A low tide joint shaft 410b attached to the upper plate 400 and a low tide upper sheave 430b located between the column 100 and the low tide connection shaft 410b, And is connected to the low tide joint shaft 410b, the low tide upper sheave pulley 430b, the low tide moving column auxiliary pulley 232b and the low tide moving column sheave 231b in order, In the intermediate plate 300, Which it claim characterized in that it includes a second low water connection (530b) and a low water generator (412b) for power generation are connected to the low water connecting shaft (410b).
또한, 상기 간조 연결 축(410b)은, 상기 간조 연결 축(410b)에 끼움 결합하는 간조 중심 축(420b), 상기 간조 중심 축(420b)에 끼움 결합하며, 상기 제 2 간조 연결부(530b)의 이동을 가이드하는 간조 메인 휠(421b) 및 상기 간조 메인 휠(421b)의 회전을 제어하는 간조 브레이크(411b)를 포함하는 것을 특징으로 한다.The low tide connection axis 410b may include a low tide center axis 420b that fits into the low tide connection axis 410b and a low tide center axis 420b that is fitted into the low tide center axis 420b, A low-pass main wheel 421b for guiding the movement and a low-pass brake 411b for controlling the rotation of the low-pass main wheel 421b.
또한, 상기 간조 움직 기둥 도르래(231b)는, 상기 부력판(200)이 상승할 때, 상기 간조 무게추(500b)를 인양할 수 있도록 상기 제 2 간조 연결부(530b)와 고정 결합되어 상승하고, 상기 부력판(200)이 하강할 때는 간조 무게추(500b)의 이동에 관여하지 않도록 상기 간조 움직 기둥 도르래(231b)와 상기 제 2 간조 연결부(530b)의 고정 결합을 해제하는 것을 특징으로 한다.In addition, when the buoyant plate 200 is lifted up, the low-speed moving column sheave 231b is fixedly coupled with the second low-speed connecting section 530b so as to raise the low-speed weight 500b, When the buoyant plate 200 is lowered, the fixed connection between the low-speed moving pillar sheave 231b and the second low-speed connecting pillar 530b is released so as not to be involved in the movement of the low-speed weight 500b.
상기와 같은 구성에 의한 간만 발전기는, 만조 인양부와 간조 인양부로 형성되며, 밀물일 때는 만조 인양부에서 무게추를 인양하고 썰물일 때는 간조 인양부에서 무게추를 인양하기 때문에 만조와 간조 모두 조력 발전에 이용할 수 있어 발전 효율이 높다는 효과가 있다.The tidal generator constructed as described above is formed of a high-lift unit and a low-lift unit. When the tide is high, the weight is lifted at the high lift, and when the low-tide is low, the weight is lifted at the low- It can be used for power generation, and the power generation efficiency is high.
아울러, 개폐 가능한 브레이크를 설치하여 인양된 무게추가 낙하하지 않도록 할 수 있으며, 발전이 필요할 때 브레이크를 풀어 무게추가 자유 낙하하도록 해 무게추가 낙하할 때 발생하는 에너지를 이용해 발전하는 간만 발전기를 제공할 수 있다.In addition, it is possible to install a brake that can be opened and closed so that the weight can be prevented from dropping further, and when the power generation is required, the brake can be released and the weight can be freely dropped. have.
도 1은 본 발명의 제 1 실시예에 따른 간만 발전기의 정면도1 is a front view of a tidal generator according to a first embodiment of the present invention;
도 2는 본 발명의 제 1 실시예에 따른 간만 발전기의 만조 인양부 작동 예시도2 is a diagram illustrating an example of operation of a tidal lifting portion of a tidal generator according to a first embodiment of the present invention
도 3은 본 발명의 제 1 실시예에 따른 간만 발전기의 간조 인양부 작동 예시도3 is a diagram illustrating an operation example of the low-tide lifting section of the tidal generator according to the first embodiment of the present invention
도 4는 본 발명의 제 1 실시예에 따른 간만 발전기의 만조 무게추 작동 예시도FIG. 4 is a diagram illustrating an example of operation of high tide weight of the tidal generator according to the first embodiment of the present invention
도 5는 본 발명의 제 1 실시예에 따른 간만 발전기의 간조 무게추 작동 예시도5 is a diagram illustrating an operation example of the low-tide weight operation of the tidal generator according to the first embodiment of the present invention
도 6은 본 발명의 제 2 실시예에 따른 간만 발전기의 정면도6 is a front view of a tidal generator according to a second embodiment of the present invention;
도 7은 본 발명의 제 2 실시예에 따른 간만 발전기의 만조 인양부 작동 예시도7 is a diagram illustrating an operation example of a tidal lifting portion of a tidal generator according to a second embodiment of the present invention
도 8은 본 발명의 제 2 실시예에 따른 간만 발전기의 간조 인양부 작동 예시도8 is a diagram illustrating an operation example of the low-tide lifting section of the tidal generator according to the second embodiment of the present invention
도 9는 본 발명의 제 2 실시예에 따른 간만 발전기의 만조 무게추 작동 예시도FIG. 9 is a diagram illustrating an example of operation of high tide weight of the tidal generator according to the second embodiment of the present invention
도 10은 본 발명의 제 2 실시예에 따른 간만 발전기의 간조 무게추 작동 예시도FIG. 10 is a diagram illustrating an operation example of a low-speed weight operation of a tantalum generator according to a second embodiment of the present invention
도 11은 본 발명의 하나의 실시예에 따른 간만 발전기의 만조 연결 축 확대 사시도FIG. 11 is an enlarged perspective view of a high-tension connecting shaft of a tandem generator according to an embodiment of the present invention.
도 12은 본 발명의 하나의 실시예에 따른 간만 발전기의 간조 연결 축 확대 사시도FIG. 12 is an enlarged perspective view of a tandem connection shaft of a tandem generator according to an embodiment of the present invention;
도 13은 본 발명의 또 다른 실시예에 따른 간만 발전기의 연결 축 확대 사시도13 is an enlarged perspective view of a connection shaft of a tantalum generator according to another embodiment of the present invention.
도 14는 본 발명의 하나의 실시예에 따른 간만 발전기의 연결부 확대 정면도FIG. 14 is an enlarged front view of a connection portion of a tandem generator according to an embodiment of the present invention;
이하, 상기와 같은 본 발명의 실시예에 대하여 도면을 참조하여 상세히 설명한다.Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.
<제 1 실시예>&Lt; Embodiment 1 >
도 1은 본 발명의 제 1 실시예에 따른 간만 발전기의 정면도를 도시하고 있다. 도 1에 도시된 바와 같이 본 발명의 제 1 실시예에 따른 간만 발전기는 해저에 고정된 기둥(100)에 상판(400), 중간판(300), 부력판(200)이 기둥(100) 상단으로부터 차례로 위치하고 있다.1 is a front view of a tidal generator according to a first embodiment of the present invention. 1, the tidal generator according to the first embodiment of the present invention includes an upper plate 400, an intermediate plate 300, and a buoyant plate 200 mounted on a column 100 fixed to the sea floor, Respectively.
이때, 설명의 편의를 위해 기둥(100)을 기준으로 좌측은 만조 인양부라고 하며, 우측은 간조 인양부라고 하도록 한다.At this time, for the sake of convenience of description, the left side of the column 100 is referred to as a high-rise lifting portion, and the right side is referred to as a low-rise lifting portion.
상판(400)은 발전이 이루어지는 부분으로, 연결 축이 적어도 하나 이상 설치되어 있으며 연결 축에는 클러치, 브레이크, 발전기 등이 설치되어 있다. 연결 축에 관한 내용은 도 11 내지 13을 참조하여 후술하도록 한다.The upper plate 400 is a portion where power generation is performed, and at least one connection shaft is installed, and a clutch, a brake, a generator, and the like are installed in the connection shaft. The details of the connection axis will be described later with reference to Figs.
중간판(300)은 작업자가 발전기의 점검이 필요할 때, 작업을 수행하기 위해 설치되는 것으로 밀물이 들어와 부력판(200)이 최대로 상승했을 때 부력판(200)보다 1m ~ 2m 높게 설치되는 것이 바람직하다.The intermediate plate 300 is installed to perform an operation when a worker needs to check the generator. When the buoyant plate 200 rises to the maximum when tide comes in, the buoyancy plate 200 is installed at a height of 1 m to 2 m higher than the buoyancy plate 200 desirable.
또한, 만조 인양부 측의 중간판(300)에는 제 1 인양 도르래(310)가 설치되어 있는데, 이는 밀물이 들어올 때, 부력판(200)이 상승하며 만조 무게추(500a)가 인양되도록 하기 위한 것이다.The first lifting sheave 310 is installed on the intermediate plate 300 on the side of the lifting section to prevent the buoyancy plate 200 from rising and lifting the high lifting weight 500a will be.
아울러, 인양된 만조 무게추(500a) 또는 간조 무게추(500b)가 자유 낙하하며 발전을 끝냈을 때 중간판(300) 위에 놓이는 것이 바람직하다.In addition, it is preferable that the lifted high tide weight 500a or the low tide weight 500b falls free on the intermediate plate 300 when power generation is finished.
부력판(200)은 조수 간만의 차에 의해 상하 운동하도록 설치되며, 만조 결합바(210a)와 간조 결합바(210b)가 부력판(200)의 상단에 부착되어 기둥(100)의 길이 방향을 따라 연장되어 설치된다.The buoyancy plate 200 is installed so as to move up and down by the difference of the fresh water level and the high tide coupling bar 210a and the low tide coupling bar 210b are attached to the upper end of the buoyancy plate 200, .
밀물일 때는 만조 결합바(210a)와 만조 결합부(510a)가 맞물려서 상승하며 만조 무게추(500a)를 인양하고, 썰물일 때는 간조 결합바(210b)와 간조 결합부(510b)가 맞물려서 하강하며 간조 무게추(500b)를 인양한다.When the tide is high, the high tide coupling bar 210a and the high tide coupling portion 510a are engaged and raised to lift the high tide weight 500a. When the tide is low, the low tide coupling bar 210b and the low tide coupling portion 510b are engaged and descended The low-altitude weight 500b is lifted.
이때, 해저에 고정된 상기 기둥(100)의 양측에는 상기 만조 결합바(210a)와 상기 간조 결합바(210b)가 밀물과 썰물에 의해 상하 운동을 용이하게 하도록 하기 위한 레일(미도시)이 설치되는 것이 바람직하다.At this time, rails (not shown) are installed on both sides of the column 100 fixed to the seabed to facilitate upward and downward movements of the high-tension coupling bar 210a and the low-tension coupling bar 210b by tide and ebb .
밀물일 때는 수위가 높아지기 때문에 부력판(200)이 수위에 의해 상승한다. 썰물일 때는 수위가 낮아지는데, 부력판(200)은 물에 뜰 수 있도록 무게가 가볍기 때문에 부력판(200)의 자중에 의한 하강이 느리거나 용이하지 않다.When the tide is high, the level of the buoyancy plate 200 increases due to the water level. Since the weight of the buoyancy plate 200 is light enough to float on the water, the descent due to the weight of the buoyancy plate 200 is slow or not easy.
이를 해결하기 위해, 상기 부력판(200)의 하단에 물이 저장될 수 있도록 저장조(220)가 형성되어 있다. 밀물일 때 저장조(220)에 물이 유입되며, 썰물일 때 저장조(220)에 저장된 물의 하중에 의해 부력판(200)이 용이하게 하강할 수 있다.To solve this problem, a reservoir 220 is formed so that water can be stored at the lower end of the buoyancy plate 200. Water flows into the storage tank 220 when the tide is tide, and the buoyancy plate 200 can be easily lowered by the load of the water stored in the storage tank 220 when the tide is low.
이때, 저장조(220)에는 하중을 주기 위한 내용물이 별도로 수용되어 있을 수도 있다.At this time, the reservoir 220 may be provided with contents for providing a load.
본 발명의 제 1 실시예에 따른 간만 발전기는 만조 결합부(510a)와 만조 결합바(210a)는 평소 결합 상태이며, 만조 결합바(510a)가 상승할 때 만조 결합부(210a)와 맞물려서 함께 상승하고, 만조 결합바(210a)가 하강할 때는 맞물리지 않는 구조로 설치되어 있다.In the tidal generator according to the first embodiment of the present invention, the high-tension coupling portion 510a and the high-tension coupling bar 210a are normally engaged, and when the high-tension coupling bar 510a is lifted, And is not engaged when the high-tension joining bar 210a descends.
또한, 간조 결합부(510b)와 간조 결합바(210b)는 평소 결합 상태이며, 간조 결합바(510b)가 하강할 때 간조 결합부(210b)와 맞물려서 함께 상승하고, 만조 결합바(210b)가 상승할 때는 맞물리지 않는 구조로 설치되어 있다.The low horizontal coupling portion 510b and the low horizontal coupling bar 210b are normally engaged with each other when the low horizontal coupling bar 510b descends and is lifted together with the low horizontal coupling bar 210b, It is installed in a structure that does not engage when it ascends.
본 발명의 제 1 실시예에 따른 간만 발전기의 만조 인양부와 간조 인양부의 동작을 도 2 및 도 3을 참조하여 보다 자세히 설명하도록 한다.The operation of the high tide lifting part and the low tide lifting part of the tantalum generator according to the first embodiment of the present invention will be described in more detail with reference to FIG. 2 and FIG.
도 2는 본 발명의 제 1 실시예에 따른 간만 발전기의 만조 인양부 작동 예시도를 도시하고 있다. 도 2에 도시된 바와 같이 밀물일 때 수위가 높아지면 부력판(200)이 상승한다. 부력판(200)이 상승할 때, 부력판(200)에 부착된 만조 결합바(210a)와 상기 간조 결합바(210b)도 상승한다.FIG. 2 illustrates an operation example of the tidal lifting portion of the tidal generator according to the first embodiment of the present invention. As shown in FIG. 2, when the water level becomes high when the tide is high, the buoyancy plate 200 rises. When the buoyant plate 200 rises, the high-tension coupling bar 210a and the low-tension coupling bar 210b attached to the buoyant plate 200 also rise.
만조 결합바(210a)와 만조 결합부(510a)는 맞물려서 함께 상승한다. 만조 결합부(510a)의 일단은 제 1 만조 연결부(520a)와 연결되어 있다.The high-tension joining bar 210a and the high-tension joining portion 510a are engaged and rise together. One end of the high-temperature joint part 510a is connected to the first high-temperature joint part 520a.
제 1 만조 연결부(520a)의 일단은 제 1 만조 결합부(510a)와 연결되고 중간판(300)에 고정되어 설치된 제 1 인양 도르래(310), 상판(400)에 설치된 만조 상판 도르래(430a) 및 만조 연결축(410a)에 결합된 만조 메인 휠(421a)을 순차적으로 통과하도록 연장되어 형성되며 타단이 만조 무게추(500a)와 결합된다.One end of the first high tide connecting portion 520a is connected to the first high tune connecting portion 510a and is connected to the first lifting sheave 310 fixed to the middle plate 300. The high lifting sheath 430a, And a high-tension main wheel 421a coupled to the high-speed connection shaft 410a, and the other end is coupled to the high-tension weight 500a.
만조 결합바(210a)와 맞물려 함께 상승하는 만조 결합부(510a)에 의해 만조 무게추(500a)가 인양되며, 이때, 간조 결합부(510b)는 간조 결합바(210b)가 상승할 때 맞물리지 않도록 설치되기 때문에 부력판(200)의 상승과 관계없이 제자리에 위치할 수 있다.The tide weight 500a is hoisted by the high-tension joining portion 510a which is engaged with the high-tension joining bar 210a and is raised together. At this time, the low- The buoyancy plate 200 can be positioned in place regardless of the rise of the buoyancy plate 200.
도 3은 본 발명의 제 1 실시예에 따른 간만 발전기의 간조 인양부 작동 예시도를 도시하고 있다. 도 3에 도시된 바와 같이 썰물일 때 수위가 높아지면 부력판(200)이 하강한다. 부력판(200)이 하강할 때, 부력판(200)에 부착된 만조 결합바(210a)와 상기 간조 결합바(210b)도 하강한다.3 is a diagram illustrating an operation example of the low-tide lifter of the tidal generator according to the first embodiment of the present invention. As shown in FIG. 3, when the water level rises at low tide, the buoyancy plate 200 descends. When the buoyant plate 200 descends, the high-tension coupling bar 210a and the low-tension coupling bar 210b attached to the buoyant plate 200 also descend.
간조 결합바(210b)와 간조 결합부(510b)는 맞물려서 함께 하강한다. 간조 결합부(510b)의 일단은 제 1 간조 연결부(520b)와 연결되어 있다.The low-low coupling bar 210b and the low-pass coupling portion 510b are engaged and descended together. One end of the low-trough coupling portion 510b is connected to the first low-tension connection portion 520b.
제 1 간조 연결부(520b)의 일단은 제 1 간조 결합부(510b)와 연결되고 상판(400)에 설치된 간조 상판 도르래(430b) 및 간조 연결축(410b)에 결합된 간조 메인 휠(421b)을 순차적으로 통과하도록 연장되어 형성되며 타단이 간조 무게추(500b)와 결합된다.One end of the first low-temperature joint connection part 520b is connected to the first low-speed joint part 510b and is connected to the low-speed counterbalance sheave 430b provided on the upper panel 400 and the low-pass main wheel 421b coupled to the low- And the other end is joined to the low weight weight 500b.
간조 결합바(210b)와 맞물려 함께 하강하는 간조 결합부(510b)에 의해 간조 무게추(500b)가 인양되며, 이때, 만조 결합부(510a)는 만조 결합바(210a)가 상승할 때 맞물리지 않도록 설치되기 때문에 부력판(200)의 하강과 관계없이 제자리에 위치할 수 있다.The low lifting weight 500b is pulled up by the low tension joining portion 510b which is engaged with the low tension coupling bar 210b and descends together with the low lifting weight 510a. So that it can be positioned in place regardless of the descent of the buoyancy plate 200.
본 발명의 제 1 실시예에 따른 간만 발전기는 만조 연결 축(410a)에 개폐 가능하도록 설치된 만조 브레이크(411a)와 간조 연결 축(410b)에 개폐 가능하도록 설치된 간조 브레이크(411b)에 의해 만조 무게추(500a) 또는 간조 무게추(500b)의 낙하를 제어할 수 있는 것을 특징으로 한다.The tidal generator according to the first embodiment of the present invention is constructed in such a manner that the high tide brakes 411a and the low tide brakes 411a and 411b are opened and closed by the low tide connection shaft 410a and the low tide brakes 411b, The falling weight 500a or the low-weight weight 500b can be controlled.
만조 브레이크(411a)와 간조 브레이크(411b)는 항상 잠겨 있으며, 발전이 필요할 때만 만조 브레이크(411a)와 간조 브레이크(411b)를 선택적으로 풀어 만조 무게추(500a) 또는 간조 무게추(500b)의 자유 낙하 운동을 통해 발전할 수 있도록 한다.The high-speed brakes 411a and low-speed brakes 411b are always locked and the high-speed brakes 411a and low-speed brakes 411b are selectively released only when power generation is required, It is possible to develop through the dropping movement.
도 4 및 도 5를 참조하여 만조 무게추(500a)와 간조 무게추(500b)의 동작을 보다 자세히 설명하도록 한다.The operation of the high-tide weight 500a and low-tide weight 500b will be described in more detail with reference to FIGS. 4 and 5. FIG.
도 4는 본 발명의 제 1 실시예에 따른 간만 발전기의 만조 무게추 작동 예시도를 도시하고 있다. 밀물일 때 인양된 만조 무게추(500a)는 만조 브레이크(411a)가 항상 잠겨 있기 때문에 인양된 위치에 고정된다.4 is a diagram illustrating an example of operation of high tide weight of the tidal generator according to the first embodiment of the present invention. The lifted high-water weight 500a when tide is fixed in the raised position because the high-speed brake 411a is always locked.
썰물일 때 부력판(200)이 하강하더라도 만조 결합부(510a)는 만조 결합바(210a)와 맞물리지 않도록 설치되기 때문에 만조 무게추(500a)는 하강하지 않고 인양된 높이에 그대로 위치한다.Even if the buoyancy plate 200 descends at low tide, the high tide joint weight 510a is installed not to engage with the high tide joint bar 210a, so the high tide weight 500a does not descend but remains at the raised height.
발전이 필요할 때, 결합하고 있던 만조 결합부(510a)와 만조 결합바(210a)를 분리하고, 만조 브레이크(411a)를 풀면 만조 무게추(500a)가 자유 낙하한다. 만조 무게추(500a)가 자유 낙하하며 만조 연결 축(410a)에 결합된 만조 메인 휠(421a)을 회전시키고, 만조 연결 축(410a)에 결합된 만조 발전 클러치(414a)가 만조 메인 휠(421a)의 회전을 만조 발전기(412a)에 전달해서 발전이 이루어진다.When the power generation is required, the high-tension joining portion 510a and the high-tension joining bar 210a are separated from each other, and when the high-tension brake 411a is loosened, the high-tension weight 500a falls freely. The high mass weight 500a freely falls and rotates the high tide main wheel 421a coupled to the high tide connection shaft 410a and the high tide power generation clutch 414a coupled to the high tide connection shaft 410a rotates the high tide main wheel 421a To the high-tension generator 412a to generate electricity.
만조 연결 축(410a)의 회전에 의해 발전하는 구체적인 설명은 도 11을 참조하여 후술하도록 한다.A detailed description of the development by the rotation of the high-temperature connection shaft 410a will be given later with reference to Fig.
자유 낙하한 만조 무게추(500a)는 중간판(300)에 놓이며, 만조 결합부(510a)와 만조 결합바(210a)를 다시 결합해 밀물일 때 만조 무게추(500a)가 다시 인양될 수 있도록 한다.The freely weighted high weight 500a of the free fall is placed on the intermediate plate 300 and the high loom weight 510a and the high loom coupling bar 210a are combined again so that the high loom weight 500a can be lifted again .
도 5는 본 발명의 제 1 실시예에 따른 간만 발전기의 간조 무게추 작동 예시도를 도시하고 있다. 썰물일 때 인양된 간조 무게추(500b)는 간조 브레이크(411b)가 항상 잠겨 있기 때문에 인양된 위치에 고정된다.FIG. 5 is a diagram illustrating an example of operation of the low tide weight of the tidal generator according to the first embodiment of the present invention. The low-speed low-speed weight 500b at low tide is fixed in the raised position because the low-speed brake 411b is always locked.
밀물일 때 부력판(200)이 상승하더라도 간조 결합부(510b)는 간조 결합바(210b)와 맞물리지 않도록 설치되기 때문에 간조 무게추(500b)는 하강하지 않고 인양된 높이에 그대로 위치한다.Even if the buoyant plate 200 rises at the time of tide, the low-altitude coupling weight 510b is installed so as not to engage with the low-low coupling bar 210b, so that the low-tide weight 500b does not descend but remains at the raised height.
발전이 필요할 때, 결합하고 있던 간조 결합부(510b)와 간조 결합바(210b)를 분리하고, 간조 브레이크(411b)를 풀면 간조 무게추(500b)가 자유 낙하한다. 간조 무게추(500b)가 자유 낙하하며 간조 연결 축(410b)에 결합된 간조 메인 휠(421b)을 회전시키고, 간조 연결 축(410b)에 결합된 간조 발전 클러치(414b)가 간조 메인 휠(421b)의 회전을 간조 발전기(412b)에 전달해서 발전이 이루어진다.When the power generation is required, the low-tension joint weight 510b and the low-tension coupling bar 210b are separated and the low-tension weight 500b falls freely when the low-tension brake 411b is loosened. The low-tension weight 500b falls freely and the low-pass main wheel 421b coupled to the low-pass connecting shaft 410b is rotated and the low-speed main drive wheel 414b coupled to the low- To the low-stage generator 412b to generate power.
간조 연결 축(410b)의 회전에 의해 발전하는 구체적인 설명은 도 12를 참조하여 후술하도록 한다.A detailed description of the generation by the rotation of the low-water connection shaft 410b will be given later with reference to Fig.
자유 낙하한 간조 무게추(500b)는 중간판(300)에 놓이며, 간조 결합부(510b)와 간조 결합바(210b)를 다시 결합해 썰물일 때 간조 무게추(500b)가 다시 인양될 수 있도록 한다.The low weight low weight 500b of the low loom is placed on the intermediate plate 300 and the low loom weight 500b is lifted again when the low loom coupling bar 510b and the low loom coupling bar 210b are joined again .
<제 2 실시예>&Lt; Embodiment 2 >
도 6은 본 발명의 제 2 실시예에 따른 간만 발전기의 정면도를 도시하고 있다. 도 6에 도시된 바와 같이 본 발명의 제 2 실시예에 따른 간만 발전기는 해저에 고정된 기둥(100)에 상판(400), 중간판(300), 부력판(200)이 기둥(100) 상단으로부터 차례로 위치하고 있다.6 shows a front view of a tidal generator according to a second embodiment of the present invention. 6, in the tidal generator according to the second embodiment of the present invention, the upper plate 400, the intermediate plate 300, and the buoyant plate 200 are installed on the column 100 fixed to the seabed, Respectively.
이때, 설명의 편의를 위해 기둥(100)을 기준으로 좌측은 만조 인양부라고 하며, 우측은 간조 인양부라고 하도록 한다.At this time, for the sake of convenience of description, the left side of the column 100 is referred to as a high-rise lifting portion, and the right side is referred to as a low-rise lifting portion.
상판(400)은 발전이 이루어지는 부분으로, 연결 축이 적어도 하나 이상 설치되어 있으며 연결 축에는 클러치, 브레이크, 발전기 등이 설치되어 있다. 연결 축에 관한 내용은 도 11 내지 13을 참조하여 후술하도록 한다.The upper plate 400 is a portion where power generation is performed, and at least one connection shaft is installed, and a clutch, a brake, a generator, and the like are installed in the connection shaft. The details of the connection axis will be described later with reference to Figs.
중간판(300)은 작업자가 발전기의 점검이 필요할 때, 작업을 수행하기 위해 설치되는 것으로 밀물이 들어와 부력판(200)이 최대로 상승했을 때 부력판(200)보다 1m ~ 2m 높게 설치되는 것이 바람직하다.The intermediate plate 300 is installed to perform an operation when a worker needs to check the generator. When the buoyant plate 200 rises to the maximum when tide comes in, the buoyancy plate 200 is installed at a height of 1 m to 2 m higher than the buoyancy plate 200 desirable.
또한, 만조 인양부 측의 중간판(300)에는 제 2 인양 도르래(320)가 설치되어 있는데, 이는 밀물이 들어올 때, 부력판(200)이 상승하며 만조 무게추(500a)가 인양되도록 하기 위한 것이다.The second lifting sheave 320 is installed on the intermediate plate 300 on the side of the lifting section to prevent the buoyancy plate 200 from rising and lifting the high lifting weight 500a will be.
아울러, 인양된 만조 무게추(500a) 또는 간조 무게추(500b)가 자유 낙하하며 발전을 끝냈을 때 중간판(300) 위에 놓이는 것이 바람직하다.In addition, it is preferable that the lifted high tide weight 500a or the low tide weight 500b falls free on the intermediate plate 300 when power generation is finished.
밀물일 때는 수위가 높아지기 때문에 부력판(200)이 수위에 의해 상승한다. 썰물일 때는 수위가 낮아지는데, 부력판(200)은 물에 뜰 수 있도록 무게가 가볍기 때문에 부력판(200)의 자중에 의한 하강이 느리거나 용이하지 않다.When the tide is high, the level of the buoyancy plate 200 increases due to the water level. Since the weight of the buoyancy plate 200 is light enough to float on the water, the descent due to the weight of the buoyancy plate 200 is slow or not easy.
이를 해결하기 위해, 상기 부력판(200)의 하단에 물이 저장될 수 있도록 저장조(220)가 형성되어 있다. 밀물일 때 저장조(220)에 물이 유입되며, 썰물일 때 저장조(220)에 저장된 물의 하중에 의해 부력판(200)이 용이하게 하강할 수 있다.To solve this problem, a reservoir 220 is formed so that water can be stored at the lower end of the buoyancy plate 200. Water flows into the storage tank 220 when the tide is tide, and the buoyancy plate 200 can be easily lowered by the load of the water stored in the storage tank 220 when the tide is low.
이때, 저장조(220)에는 하중을 주기 위한 내용물이 별도로 수용되어 있을 수도 있다.At this time, the reservoir 220 may be provided with contents for providing a load.
부력판(200)의 상단에는 만조 움직 기둥(230a)과 간조 움직 기둥(230b)이 기둥(100)의 길이 방향을 따라 연장되어 설치되어 있으며, 만조 움직 기둥(230a)은 만조 인양부, 간조 움직 기둥(230b)은 간조 인양부에 설치되는 것이 바람직하다.A high tide moving pillar 230a and a low tide moving pillar 230b are installed on the upper end of the buoyant plate 200 along the longitudinal direction of the column 100. The high tide moving pillar 230a is a high tide lifting part, It is preferable that the column 230b is installed in the low tide lifting portion.
이때, 만조 움직 기둥(230a)과 간조 움직 기둥(230b)의 높이는 같거나 다르게 설치될 수 있다.At this time, the height of the high tide moving column 230a and the height of the low tide moving column 230b may be the same or different.
만조 움직 기둥(230a)의 상단에는 만조 움직 기둥 도르래(231a)가 설치되어 있으며, 이는 제 2 만조 연결부(530a)와 결합하여 밀물일 때 만조 무게추(500a)를 인양할 수 있도록 한다.A high tide moving column sheave 231a is provided at the upper end of the high tide moving column 230a to be coupled with the second high tide connecting portion 530a to lift the tide weight 500a when tide is high.
간조 움직 기둥(230b)의 상단에는 간조 움직 기둥 도르래(231b)가 설치되어 있고, 간조 움직 기둥(230b)의 중단에는 간조 움직 기둥(230b)의 수직 방향에 선반이 형성되어 있고 선반에는 간조 움직 기둥 보조 도르래(232b)가 더 설치되어 있으며, 간조 움직 기둥 도르래(231b) 및 간조 움직 기둥 보조 도르래(232b)가 제 2 간조 결합부(530b)와 결합하여 썰물일 때 간조 무게추(500b)를 인양할 수 있도록 한다.A low tide moving column sheave 231b is provided at the upper end of the low tide moving column 230b and a shelf is formed in the vertical direction of the low tide moving column 230b at the end of the low tide moving column 230b, The secondary pulley 231b and the secondary pulley moving pulley auxiliary pulley 232b are engaged with the second low-speed pulley coupling portion 530b so that the low pulley weight pulley 500b can be lifted when the low-speed pulley pulley 231b and the low- .
본 발명의 제 2 실시예에 따른 간만 발전기의 만조 인양부와 간조 인양부의 동작을 도 7 및 도 8을 참조하여 보다 자세히 설명하도록 한다.The operation of the tidal lifting portion and the low tide lifting portion of the tidal generator according to the second embodiment of the present invention will be described in more detail with reference to Figs. 7 and 8. Fig.
도 7은 본 발명의 제 2 실시예에 따른 간만 발전기의 만조 인양부 작동 예시도를 도시하고 있다. 도 7에 도시된 바와 같이 밀물일 때 수위가 높아지면 부력판(200)이 상승한다. 부력판(200)의 상승에 의해 만조 움직 기둥(230a)과 간조 움직 기둥(230b)도 함께 상승한다. FIG. 7 illustrates an operation example of a tidal lifting portion of a tidal generator according to a second embodiment of the present invention. As shown in FIG. 7, when the water level becomes high when the tide is high, the buoyancy plate 200 rises. The elevation of the buoyancy plate 200 raises the high tide moving column 230a and the low tide moving column 230b together.
이때, 만조 움직 기둥(230a)의 상단에 형성된 만조 움직 기둥 도르래(231a)는 제 2 만조 연결부(530a)와 결합되어 이동한다.At this time, the high tide moving column sheave 231a formed at the upper end of the high tide moving column 230a moves in conjunction with the second high tide connecting portion 530a.
제 2 만조 연결부(530a)의 일측 끝단은 중간판(300) 또는 중간판(300)에 설치된 별도의 제 2 만조 연결부(530a) 수납부에 고정되어 있으며, 만조 움직 기둥 도르래(231a), 제 2 인양 도르래(320), 만조 상판 도르래(430a) 및 만조 메인 휠(421a)을 순차적으로 통과하도록 연장되어 형성되며 타측 끝단은 만조 무게추(500a)에 결합되도록 형성된다.One end of the second high tide connecting portion 530a is fixed to the second high tide connecting portion 530a accommodated in the middle plate 300 or the intermediate plate 300 and the high tide moving column sheaves 231a, The lifting pulley 320, the high-tension top pulley 430a, and the high-tension main wheel 421a, and the other end is formed to be coupled to the high-tension weight 500a.
따라서, 만조 움직 기둥(230a)이 상승하며 만조 움직 기둥 도르래(231a)와 제 2 만조 연결부(530a)와 결합하여 이동하기 때문에 만조 무게추(500a)가 인양된다.Therefore, the high tide moving column 230a rises and moves in combination with the high tide moving column sheave 231a and the second high tide connecting portion 530a, so that the high-tide weight 500a is lifted.
이때, 만조 움직 기둥 도르래(231a)은 별도의 잠금 장치에 의해 반시계 방향으로만 회전하도록 제어되고, 이로 인해 상기 제 2 만조 연결부(530a)가 당겨지며 상기 만조 무게추(500a)를 인양한다.At this time, the high tide moving column sheave 231a is controlled to rotate only in a counterclockwise direction by a separate locking device, so that the second high tide connecting portion 530a is pulled and lifts the high tide weight 500a.
만조 무게추(500a)의 인양이 끝나면 만조 움직 기둥 도르래(231a)의 잠금 장치는 푸는 것이 바람직하며, 만조 브레이크(411a)가 만조 무게추(500a)가 낙하하지 않도록 잡고 있기 때문에 만조 움직 기둥 도르래(231a)의 잠금 장치를 풀더라도 만조 무게추(500a)는 낙하하지 않는다.It is preferable that the lock device of the high tension moving column sheave 231a is released when the lifting of the high weight lifting weights 500a is completed and that the high lifting weight of the high lifting weight pulley 500a 231a, the high-tension weight 500a does not fall.
이때, 간조 움직 기둥(230b) 또한 부력판(200)의 상승에 의해 함께 상승하지만, 간조 움직 기둥(230b)의 상단에 형성된 간조 움직 기둥 도르래(231b)에는 만조 움직 기둥 도르래(231a)에 설치된 잠금 장치가 설치되어 있지 않기 때문에 간조 움직 기둥 도르래(231b)가 시계 방향으로 회전하며 중간판(300) 또는 중간판(300)에 설치된 별도의 수납부에 수용된 제 2 간조 연결부(530b)를 당기기 때문에 간조 무게추(500b에 결합된 제 2 간조 연결부(530b)는 간조 움직 기둥(230b)의 운동에 영향을 받지 않아 부력판(200)의 상승에 관계없이 제자리에 위치할 수 있다.At this time, the low-altitude moving column 230b also rises together with the rise of the buoyant plate 200, but the low-speed moving column sheave 231b formed at the upper end of the low-altitude moving column 230b is provided with the lock Since the low speed moving column sheave 231b rotates in the clockwise direction and pulls the second low-temperature connecting portion 530b accommodated in the intermediate plate 300 or the separate receiving portion provided in the intermediate plate 300, The second low-temperature connecting portion 530b coupled to the weight 500b is not affected by the motion of the low-altitude moving column 230b and can be held in place regardless of the rise of the buoyancy plate 200. [
아울러, 만조 움직 기둥 도르래(231a)에 별도로 설치되어 만조 움직 기둥 도르래(231a)의 회전 방향을 제어하는 잠금 장치는 만조 움직 기둥(230a)의 설치 위치에 따라 시계 방향 또는 반시계 방향으로 제어되도록 용이하게 변경할 수 있다.In addition, a locking device, which is installed separately in the high-tension moving column sheave 231a and controls the rotating direction of the high-tension moving column sheave 231a, is easily controlled in a clockwise or counterclockwise direction depending on the installation position of the high- .
도 8은 본 발명의 제 2 실시예에 따른 간만 발전기의 간조 인양부 작동 예시도를 도시하고 있다. 도 8에 도시된 바와 같이 썰물일 때 수위가 낮아지면 부력판(200)이 하강한다. 부력판(200)의 하강에 의해 만조 움직 기둥(230a)과 간조 움직 기둥(230b)도 함께 하강한다. FIG. 8 is a diagram illustrating an operation example of the low tide lifter of the tidal generator according to the second embodiment of the present invention. As shown in FIG. 8, when the water level becomes low at low tide, the buoyancy plate 200 descends. By the descent of the buoyancy plate 200, the high tide moving column 230a and the low tide moving column 230b also descend.
이때, 간조 움직 기둥(230b)의 상단에 형성된 간조 움직 기둥 도르래(231b)와 간조 움직 기둥(230b)의 중단에 형성된 간조 움직 기둥 보조 도르래(232b)에 제 2 간조 연결부(530b)가 결합되어 이동한다.At this time, the second low-temperature connecting section 530b is coupled to the low-speed moving column sheave 231b formed at the upper end of the low-speed moving column 230b and the low-speed moving column auxiliary pulley 232b formed at the stop of the low- do.
제 2 간조 연결부(530b)의 일측 끝단은 중간판(300) 또는 중간판(300)에 설치된 별도의 제 2 간조 연결부(530b) 수납부에 고정되어 있으며, 간조 움직 기둥 도르래(231b), 간조 움직 기둥 보조 도르래(232b), 간조 상판 도르래(430b) 및 간조 메인 휠(421b)을 순차적으로 통과하도록 연장되어 형성되며 타측 끝단은 간조 무게추(500b)에 결합되도록 형성된다.One end of the second low-frequency connection part 530b is fixed to the second low-temperature connection part 530b accommodated in the intermediate plate 300 or the intermediate plate 300. The low-speed moving column sheave 231b, A column auxiliary sheave 232b, a low-altitude upper plate sheave 430b, and a low-altitude main wheel 421b, and the other end thereof is formed to be coupled to the low-altitude weight 500b.
따라서, 간조 움직 기둥(230b)이 하강하며 간조 움직 기둥 도르래(231b), 간조 움직 기둥 보조 도르래(232b)와 제 2 간조 연결부(530b)가 결합하여 이동하기 때문에 간조 무게추(500b)가 인양된다.Therefore, the low-altitude moving column 230b descends, and the low-altitude weight column 500b is hoisted because the low-altitude moving column sheave 231b and the low-altitude moving column auxiliary pulley 232b and the second low-altitude connection portion 530b move together .
이때, 간조 움직 기둥 도르래(231b)는 별도의 잠금 장치에 의해 반시계 방향으로만 회전하도록 제어되고, 이로 인해 상기 제 2 간조 연결부(530b)가 당겨지며 상기 간조 무게추(500b)를 인양한다.At this time, the low tide moving column sheave 231b is controlled to rotate only in a counterclockwise direction by a separate locking device, so that the second low-temperature connecting portion 530b is pulled and lifts the low-speed weight 500b.
간조 무게추(500b)의 인양이 끝나면 간조 움직 기둥 도르래(231b)의 잠금 장치는 푸는 것이 바람직하며, 간조 브레이크(411b)가 간조 무게추(500b)가 낙하하지 않도록 잡고 있기 때문에 간조 움직 기둥 도르래(231b)의 잠금 장치를 풀더라도 간조 무게추(500b)는 낙하하지 않는다.It is preferable to release the locking device of the low-altitude moving column sheave 231b when the low-altitude weight 500b is hoisted, and since the low-altitude brakes 411b hold the low-altitude weight 500b so as not to fall, 231b unlocked, the low-lying weight weight 500b does not fall.
이때, 만조 움직 기둥(230a) 또한 부력판(200)의 하강에 의해 함께 하강하지만, 만조 움직 기둥 도르래(231a)에는 간조 움직 기둥 도르래(231b)에 설치된 잠금 장치가 설치되어 있지 않기 때문에 만조 움직 기둥 도르래(231a)가 시계 방향으로 회전하며 중간판(300) 또는 중간판(300)에 설치된 별도의 수납부에 수용된 제 2 만조 연결부(530a)를 당기기 때문에 만조 무게추(500a)에 결합된 제 2 만조 연결부(530a)는 만조 움직 기둥(230a)의 운동에 영향을 받지 않아 부력판(200)의 하강에 관계없이 제자리에 위치할 수 있다.At this time, the high-lift moving column 230a also descends due to the descent of the buoyant plate 200. However, since the high-speed moving column sheave 231a is not provided with the locking device provided on the low-speed moving column sheave 231b, The pulley 231a rotates in the clockwise direction and pulls the second high tide connecting portion 530a accommodated in the intermediate plate 300 or the separate receiving portion provided in the intermediate plate 300, The high-water connecting portion 530a is not affected by the movement of the high-speed moving column 230a and can be put in place regardless of the descent of the buoyant plate 200. [
아울러, 간조 움직 기둥 도르래(231b)에 별도로 설치되어 간조 움직 기둥 도르래(231b)의 회전 방향을 제어하는 잠금 장치는 간조 움직 기둥(230b)의 설치 위치에 따라 시계 방향 또는 반시계 방향으로 제어되도록 용이하게 변경할 수 있다.In addition, a locking device separately provided in the low-speed moving column sheave 231b for controlling the rotating direction of the low-speed moving column sheave 231b can be easily controlled in a clockwise or counterclockwise direction depending on the installation position of the low-speed moving column 230b .
또한, 밀물일 때 간조 움직 기둥 보조 도르래(232b)에 결합된 제 2 간조 연결부(530b)는 간조 움직 기둥(230a)이 상승함에 따라 제 2 간조 연결부(530b)가 제 2 간조 움직 기둥 보조 도르래(232b)와 팽팽하게 결합되지 않고 약간 처지게 되는데 이때 처진 제 2 간조 연결부(530b)는 중간판(300)에 설치된 별도의 수납부에 수용되도록 하는 것이 바람직하다.In the second tide connecting portion 530b coupled to the low tide moving column auxiliary sheave 232b when the tide is tide, the second low tide connecting portion 530b is connected to the second low tide moving column auxiliary pulley The second low-temperature connection part 530b may be accommodated in a separate receiving part provided in the intermediate plate 300. The second low-
썰물일 때도 마찬가지로 만조 움직 기둥 도르래(231a)에 결합된 제 2 만조 연결부(530a)는 만조 움직 기둥(230a)이 하강함에 따라 제 2 만조 연결부(530a)가 제 2 만조 움직 기둥 도르래(231a)와 팽팽하게 결합되지 않고 약간 처지게 되는데 이때 처진 제 2 만조 연결부(530a)는 중간판(300)에 설치된 별도의 수납부에 수용되도록 하는 것이 바람직하다.The second high tide connecting portion 530a coupled to the high tide moving column sheave 231a can be constructed so that the second high tide connecting portion 530a is moved to the second high tide moving column sheave 231a It is preferable that the second high-loose connecting portion 530a is accommodated in a separate receiving portion provided in the intermediate plate 300. [0052]
따라서, 제 1 만조 연결부(530a) 및 제 2 만조 연결부(530b)는 도 6 내지 도 8에 도시된 만큼의 길이만큼 형성되는 것이 아니라 더 길게 형성되어 중간판(300)에 놓여 있거나 중간판(300)에 설치된 수납부에 수용되어 있는 것이 바람직하다.6 to 8, the first and second high- loose connection portions 530a and 530b may be formed longer than the lengths of the intermediate plate 300, In the housing portion.
본 발명의 제 2 실시예에 따른 간만 발전기는 만조 연결 축(410a)에 개폐 가능하도록 설치된 만조 브레이크(411a)와 간조 연결 축(410b)에 개폐 가능하도록 설치된 간조 브레이크(411b)에 의해 만조 무게추(500a) 또는 간조 무게추(500b)의 낙하를 제어할 수 있는 것을 특징으로 한다.The tidal generator according to the second embodiment of the present invention is constructed in such a manner that the high tide brakes 411a and the low tide brakes 411a and 411b are opened and closed by the high tide connection shaft 410a and the low tide brakes 411b, The falling weight 500a or the low-weight weight 500b can be controlled.
만조 브레이크(411a)와 간조 브레이크(411b)는 항상 잠겨 있으며, 발전이 필요할 때만 만조 브레이크(411a)와 간조 브레이크(411b)를 선택적으로 풀어 만조 무게추(500a) 또는 간조 무게추(500b)의 자유 낙하 운동을 통해 발전할 수 있도록 한다.The high-speed brakes 411a and low-speed brakes 411b are always locked and the high-speed brakes 411a and low-speed brakes 411b are selectively released only when power generation is required, It is possible to develop through the dropping movement.
도 9는 본 발명의 제 2 실시예에 따른 간만 발전기의 만조 무게추 작동 예시도를 도시하고 있다. 도 9에 도시된 바와 같이 밀물일 때 인양된 만조 무게추(500a)는 만조 브레이크(411a)가 항상 잠겨 있기 때문에 인양된 위치에 고정된다.FIG. 9 is a view illustrating an example of operation of high tide weight of a tidal generator according to a second embodiment of the present invention. As shown in Fig. 9, the tall weight 500a lifted when tide is fixed at the raised position because the high-speed brake 411a is always locked.
발전이 필요할 때, 만조 브레이크(411a)를 풀면 만조 무게추(500a)가 자유 낙하한다. 만조 무게추(500a)가 자유 낙하하며 만조 연결 축(410a)에 결합된 만조 메인 휠(421a)을 회전시키고, 만조 연결 축(410a)에 결합된 만조 발전 클러치(414a)가 만조 메인 휠(421a)의 회전을 만조 발전기(412a)에 전달해서 발전이 이루어진다. When the power generation is required, the high-tension weight 500a drops freely when the high-speed brake 411a is released. The high mass weight 500a freely falls and rotates the high tide main wheel 421a coupled to the high tide connection shaft 410a and the high tide power generation clutch 414a coupled to the high tide connection shaft 410a rotates the high tide main wheel 421a To the high-tension generator 412a to generate electricity.
이때, 만조 움직 기둥 도르래(231a)의 회전 방향을 제어하는 별도의 잠금 장치는 풀린 상태이기 때문에 만조 움직 기둥 도르래(231a)가 시계 방향으로 회전하여 만조 무게추(500a)가 낙하할 수 있다. At this time, since the separate locking device for controlling the rotating direction of the high tide moving column sheave 231a is in the unlocked state, the high tide moving column sheave 231a rotates in the clockwise direction and the high tide weight 500a can drop.
만조 연결 축(410b)의 회전에 의해 발전하는 구체적인 설명은 도 11을 참조하여 후술하도록 한다.A detailed description of the development by the rotation of the high-speed connection shaft 410b will be given later with reference to Fig.
도 10은 본 발명의 제 2 실시예에 따른 간만 발전기의 간조 무게추 작동 예시도를 도시하고 있다. 도 10에 도시된 바와 같이 썰물일 때 인양된 간조 무게추(500b)는 간조 브레이크(411b)가 항상 잠겨 있기 때문에 인양된 위치에 고정된다.10 is a diagram illustrating an example of operation of the low tide weight of the tidal generator according to the second embodiment of the present invention. As shown in Fig. 10, the low-lying low-altitude weight 500b at low tide is fixed in the raised position because the low-tide brakes 411b are always locked.
발전이 필요할 때, 간조 브레이크(411b)를 풀면 간조 무게추(500b)가 자유 낙하한다. 간조 무게추(500b)가 자유 낙하하며 간조 연결 축(410b)에 결합된 간조 메인 휠(421b)을 회전시키고, 간조 연결 축(410b)에 결합된 간조 발전 클러치(414b)가 간조 메인 휠(421b)의 회전을 간조 발전기(412b)에 전달해서 발전이 이루어진다. When power generation is required, the low-tension low-speed weight 500b is released when the low-tension brake 411b is loosened. The low-tension weight 500b falls freely and the low-pass main wheel 421b coupled to the low-pass connecting shaft 410b is rotated and the low-speed main drive wheel 414b coupled to the low- To the low-stage generator 412b to generate power.
이때, 간조 움직 기둥 도르래(231b)의 회전 방향을 제어하는 별도의 잠금 장치는 풀린 상태이기 때문에 간조 움직 기둥 도르래(231b)가 시계 방향으로 회전하여 간조 무게추(500b)가 낙하할 수 있다. At this time, since the separate locking device for controlling the rotating direction of the low-speed moving column sheave 231b is in the unlocked state, the low-speed moving column sheave 231b rotates in the clockwise direction, so that the low-speed secondary weight 500b can fall.
간조 연결 축(410b)의 회전에 의해 발전하는 구체적인 설명은 도 12를 참조하여 후술하도록 한다.A detailed description of the generation by the rotation of the low-water connection shaft 410b will be given later with reference to Fig.
도 11은 본 발명의 일 실시예에 따른 간만 발전기의 만조 연결 축 확대 사시도를 도시하고 있다. 도 11에 도시된 바와 같이 상판(400)의 만조 연결 축(410a)에 만조 중심 축(420a), 만조 브레이크(411a), 만조 인양 클러치(413a), 만조 발전 클러치(414a) 및 만조 발전기(412a)가 끼움 결합되어 있으며, 만조 중심 축(420a)에는 만조 메인 휠(421a)이 끼움 결합되어 있다.FIG. 11 is an enlarged perspective view of a high-speed connection shaft of a tidal generator according to an embodiment of the present invention. A high-tension generator 411a, a high-tension generator clutch 414a, a high-tension generator clutch 414a, and a high-tension generator 412a are connected to a high-speed connecting shaft 410a of the upper plate 400, And a high-tension main wheel 421a is fitted in the high-tension center shaft 420a.
만조 인양 클러치(413a)는 만조 브레이크(411a)가 잠겨 있는 상태에서 만조 무게추(500a)를 인양하는 만조 인양 클러치(413a)로 구성된다. 만조 인양 클러치(413a)는 두 개의 클러치판으로 형성되며, 클러치판끼리 결합한 상태로 설치되는 것이 바람직하나 구성을 보여 주기 위해 분리된 모습으로 도시하고 있다. The high-rise lifting clutch 413a is constituted by a high-lift lifting clutch 413a lifting the high lifting weight 500a while the high-tension brake 411a is locked. The high-rise lifting clutch 413a is formed of two clutch plates, and is preferably installed in a state where the clutch plates are coupled to each other, but is shown as being separated to show the structure.
만조 발전 클러치(414a) 또한 두 개의 클러치판으로 형성되며, 하나는 만조 중심 축(420a)의 일단에 부착되고 하나는 만조 연결 축(410a)에 끼움 결합된 상태로 설치된다. 만조 무게추(500a)가 낙하하며 만조 메인 휠(421a)과 만조 중심 축(420a) 및 만조 연결 축(410a)이 회전하고, 이 회전에 의해 만조 발전 클러치(414a)로 형성되는 두 개의 클러치판이 결합하여 만조 발전기(412a)에 만조 연결 축(410a)의 회전 운동을 전달하여 만조 발전기(412a)가 발전한다.The high power generation clutch 414a is also formed of two clutch plates, one of which is attached to one end of the high center shaft 420a and the other is fitted to the high speed connection shaft 410a. The high weight weight 500a falls and the high clutch main shaft 421a and the high clutch center shaft 420a and the high clutch connecting shaft 410a are rotated and the two clutch plates formed by the high torque clutch 414a And transmits the rotational motion of the high-tension connecting shaft 410a to the high-tension generator 412a to generate the high-tension generator 412a.
밀물일 때 부력판(200)이 상승하면 만조 무게추(500a)가 인양된다. 만조 무게추(500a)는 만조 인양 클러치(413a)에 의해 인양되며, 만조 브레이크(411a)는 만조 무게추(500a)가 하강하지 않도록 하는 역할을 한다.When the buoyant plate 200 rises when the tide is tide, the tide weight 500a is salvaged. The high weight weight 500a is hoisted by the high lift clutch 413a and the high speed brake 411a prevents the high weight weight 500a from descending.
도 12은 본 발명의 일 실시예에 따른 간만 발전기의 간조 연결 축 확대 사시도를 도시하고 있다. 도 12에 도시된 바와 같이 상판(400)의 간조 연결 축(410b)에 간조 중심 축(420b), 간조 브레이크(411b), 간조 인양 클러치(413b), 간조 발전 클러치(414b) 및 간조 발전기(412b)가 끼움 결합되어 있으며, 간조 중심 축(420b)에는 간조 메인 휠(421b)이 끼움 결합되어 있다.FIG. 12 is an enlarged perspective view of a low-tide connection axis of a tidal generator according to an embodiment of the present invention. As shown in Fig. 12 The low-speed shaft 411b, the low-speed lifting clutch 413b, the low-speed generator clutch 414b and the low-speed generator 412b are fitted and connected to the low-speed connection shaft 410b of the upper plate 400, And a low tide main wheel 421b is fitted to the low tide center axis 420b.
간조 인양 클러치(413b)는 간조 브레이크(411b)가 잠겨 있는 상태에서 간조 무게추(500b)를 인양하는 간조 인양 클러치(413b)로 구성된다. 간조 인양 클러치(413b)는 두 개의 클러치판으로 형성되며, 클러치판끼리 결합한 상태로 설치되는 것이 바람직하나 구성을 보여 주기 위해 분리된 모습으로 도시하고 있다. The low-temperature relief clutch 413b is constituted by a low-temperature lifting clutch 413b lifting the low-speed weight 500b while the low-lift brake 411b is locked. The low-temperature relief clutch 413b is formed of two clutch plates, and is preferably installed in a state where the clutch plates are coupled to each other, but is shown as being separated to show the structure.
간조 발전 클러치(414b) 또한 두 개의 클러치판으로 형성되며, 하나는 간조 중심 축(420b)의 일단에 부착되고 하나는 간조 연결 축(410b)에 끼움 결합된 상태로 설치된다. 간조 무게추(500b)가 낙하하며 간조 메인 휠(421b)과 간조 중심 축(420b) 및 간조 연결 축(410b)이 회전하고, 이 회전에 의해 간조 발전 클러치(414b)로 형성되는 두 개의 클러치판이 결합하여 간조 발전기(412b)에 간조 연결 축(410b)의 회전 운동을 전달하여 간조 발전기(412b)가 발전한다.The low-temperature power generation clutch 414b is also formed of two clutch plates, one of which is attached to one end of the low-tension center shaft 420b and the other is fitted to the low-tension coupling shaft 410b. The low-tension weight 500b falls and the low-tension main shaft 421b and the low-tension center shaft 420b and the low-tension connection shaft 410b are rotated, and the two clutch plates formed by the low- And transmits the rotational motion of the low-stage connecting shaft 410b to the low-stage generator 412b to generate the low-stage generator 412b.
썰물일 때 부력판(200)이 하강하면 간조 무게추(500b)가 인양된다. 간조 무게추(500b)는 간조 인양 클러치(413b)에 의해 인양되며, 간조 브레이크(411b)는 간조 무게추(500b)가 하강하지 않도록 하는 역할을 한다.When the buoyant plate 200 descends at low tide, the low-altitude weight 500b is salvaged. The low-altitude weight 500b is lifted by the low-lift lifting clutch 413b, and the low-altitude brakes 411b serve to prevent the low-altitude weight 500b from descending.
도 13은 본 발명의 일 실시예의 변형예에 따른 간만 발전기의 연결 축 확대 사시도를 도시하고 있다. 도 13에 도시된 바와 같이 상판(400)에 설치되는 연결 축(600)이 도 11 및 도 12에 도시된 바와 같이 만조 연결 축(410a)과 간조 연결 축(410b)로 따로 형성되지 않고 하나의 연결 축(600)으로 형성될 수 있다. 13 is an enlarged perspective view of a connection shaft of a tantalum generator according to a modification of the embodiment of the present invention. As shown in FIG. 13, the connecting shaft 600 installed in the upper plate 400 is not separately formed as the high-tension connecting shaft 410a and the low-tension connecting shaft 410b as shown in FIGS. 11 and 12, And may be formed as a connection shaft 600.
연결 축(600)에는 발전기(700)가 끼움 결합되어 있으며, 제 1 발전 클러치(620), 제 1 메인 휠(680), 제 1 인양 클러치(640), 제 1 브레이크(660)가 만조 인양부에 포함되며 제 2 발전 클러치(630), 제 2 메인 휠(690), 제 2 인양 클러치(650), 제 2 브레이크(670)가 간조 인양부에 포함된다.The first generator clutch 620, the first main wheel 680, the first lifting clutch 640, and the first brake 660 are coupled to the connecting shaft 600 through the high- And the second power generation clutch 630, the second main wheel 690, the second lifting clutch 650, and the second brake 670 are included in the low-temperature lifting portion.
이때, 제 1 발전 클러치(620)는 만조 발전 클러치(414a), 제 2 발전 클러치(360)는 간조 발전 클러치(414b) 제 1 인양 클러치(640)는 만조 인양 클러치(413a), 제 2 인양 클러치(650)는 간조 인양 클러치(413b), 제 1 브레이크(660)는 만조 브레이크(411a), 제 2 브레이크(670)는 간조 브레이크(411b), 제 1 메인 휠(680)은 만조 메인 휠(421a), 제 2 메인 휠(690)은 간조 메인 휠(421b)과 동일한 역할을 한다.At this time, the first power generation clutch 620, the second power generation clutch 360, the low power generation clutch 414b, the first lift clutch 640, the high lift clutch 413a, The first brake 660 is a high-speed brake 411a, the second brake 670 is a low-speed brake 411b, the first main wheel 680 is a high-speed main wheel 421a , And the second main wheel 690 plays the same role as the low-pass main wheel 421b.
또한, 연결 축(600)은 충분히 길게 형성되어, 도 13에 도시된 바와 같이 하나의 만조 인양부, 간조 인양부에 해당하는 인양 클러치, 발전 클러치, 중심 축, 메인 휠, 브레이크가 복수 개 설치되어, 하나의 연결 축(600)이 복수 개의 만조 무게추(500a) 또는 간조 무게추(500b)를 인양할 수 있고, 복수 개의 만조 무게추(500a) 또는 간조 무게추(500b)의 낙하에 의해 발전할 수 있다. As shown in FIG. 13, the connection shaft 600 is formed to be long enough to be provided with a plurality of lifting clutches, a power generation clutch, a central shaft, a main wheel, and brakes corresponding to a single high lifting portion, a low lifting portion A single connecting shaft 600 can lift a plurality of high weight 500a or low 500b weight and a plurality of high weight 500a or low weight 500b, can do.
상기한 바와 같이 연결 축(600) 하나에 만조 인양부에 의해 동작하는 발전 수단과 간조 인양부에 의해 동작하는 발전 수단이 모두 설치되어 있을 경우, 연결 축(600)이 기둥(100)에 설치되어 본 발명의 간만 발전기를 정면에서 보았을 때, 제 1 메인 휠(680)과 제 2 메인 휠(690)이 상판(400)의 중앙에 위치하도록 설치되는 것이 바람직하다.As described above, when the power generating means operated by the high tide lifting portion and the power generating means operated by the low tide lifting portion are both provided on the connecting shaft 600, the connecting shaft 600 is installed on the column 100 When the tidal generator of the present invention is viewed from the front, it is preferable that the first main wheel 680 and the second main wheel 690 are installed at the center of the upper plate 400.
이때, 만조 상판 도르래(430a)와 간조 상판 도르래(430b)는 상판(400)의 양쪽 끝단 방향으로 더 이동하여 설치되는 것이 바람직하다.At this time, it is preferable that the high-altitude upper plate sheave 430a and the low-altitude upper plate sheave 430b are further moved toward both ends of the upper plate 400.
도 14는 본 발명의 일 실시예에 따른 간만 발전기의 연결부 확대 정면도를 도시하고 있다. 도 14에 도시된 바와 같이 본 발명의 간만 발전기의 제 1 만조 연결부(520a)는 도 14의 (a)에 도시된 바와 같이 사슬 체인 형태로 형성될 수 있으며, 도 14의 (b)에 도시된 바와 같이 밧줄(로프) 형태로 형성될 수 있으며, 강도가 높고 충분한 길이로 연장되어 형성될 수 있다면 간만 발전기의 제 1 만조 연결부(520a)에 적용될 수 있다.FIG. 14 is an enlarged front view of a connection portion of the tidal generator according to an embodiment of the present invention. As shown in FIG. 14, the first high-temperature joint 520a of the tidal generator of the present invention may be formed in the form of a chain chain as shown in FIG. 14 (a) And may be applied to the first high-temperature connection portion 520a of the tidal generator as long as the strength is high and can be formed to extend to a sufficient length.
이는 제 1 만조 연결부(520a)뿐만 아니라 제 1 간조 연결부(520b), 제 2 만조 연결부(530a) 및 제 2 간조 연결부(530b) 또한 해당 분야의 통상의 기술자로부터 용이하게 선택되어 적용될 수 있다.The first low-temperature connection portion 520a, the second low-temperature connection portion 530a, and the second low-temperature connection portion 530b as well as the first high-temperature connection portion 520a can be easily selected and applied from the ordinary skilled in the art.
본 발명의 제 1 실시예 또는 제 2 실시예에 따른 간만 발전기는 달의 인력에 의해 조수 간만의 차가 발생하기기 때문에 달의 인력이 약한 날에는 조수 간만에 의한 수위차가 적기 때문에 만조 무게추(500a) 또는 간조 무게추(500b)가 인양된 높이가 발전에 이용되기엔 낮을 경우가 있을 수 있다.Since the tidal generator according to the first embodiment or the second embodiment of the present invention generates a difference only in the tide interval due to the attraction of the moon, the difference in level due to the tide interval is small on the day when the lunar attraction is weak, There may be a case where the height of the low weight 500b is too low to be used for power generation.
<제 3 실시예>&Lt; Third Embodiment >
현재 밀물이라고 가정했을 때, 만조 결합부(510a)가 만조 결합바(210a)와 맞물려 상승하며 상기 무게추(500a)를 끌어올린다.Assuming that the tide is presently present, the high tide joining portion 510a is engaged with the high tide joining bar 210a to raise the weight tile 500a.
이때, 만조 무게추(500a)가 인양된 높이가 발전에 이용하기에 낮은 높이라고 판단될 경우, 다시 밀물이 들어올 때, 중첩으로 끌어올려 처음 올린 높이보다 더 높이 올릴 수 있다.At this time, if the height of the high-water weight 500a is judged to be a low height to be used for power generation, when the tide comes in again, it can be raised to a level higher than the initial elevation.
썰물일 때, 부력판(200)이 하강하더라도 만조 결합부(510a)는 만조 결합바(210a)가 하강할 때 맞물리지 않기 때문에 부력판(200)이 인양된 무게추(500a)의 위치를 유지할 수 있으며, 다시 밀물일 때, 부력판(200)이 상승하고, 만조 결합바(210a)와 만조 결합부(510a)가 맞물리며 다시 상승하기 때문에 상기 기둥(100)의 높이가 충분히 높고 제 1 만조 연결부(520a)가 충분히 연장되어 형성된다면 만조 무게추(500a)를 원하는 높이까지 중첩해서 인양할 수 있다.When the buoyancy plate 200 is lowered at low tide, the buoyancy coupling portion 510a can not maintain the position of the lifted weight 500a because the buoyancy plate 200 is not engaged when the high-tension coupling bar 210a descends The height of the column 100 is sufficiently high and the height of the first loft connection part 210a is increased because the buoyancy plate 200 rises and the loft coupling bar 210a and the loft coupling part 510a are engaged with each other. 520a are sufficiently extended, the high weight 500a can be lifted up to a desired height.
상기한 바와 마찬가지로 썰물일 때 인양되는 간조 무게추(500b)도 이와 같은 방법으로 원하는 높이만큼 인양할 수 있다. As described above, the low-altitude weight 500b that is lifted when the tide is low can be lifted to a desired height by the same method.
<제 4 실시예><Fourth Embodiment>
현재 밀물이라고 가정했을 때, 만조 움직 기둥 도르래(231a)가 제 2 만조 연결부(530a)와 결합하여 상승하며 상기 만조 무게추(500a)를 끌어올린다.Assuming that the tide is currently tidal, the high tide moving column sheave 231a rises with the second high tide connecting portion 530a and raises the high tide weight 500a.
이때, 만조 무게추(500a)가 인양된 높이가 발전에 이용하기에 낮은 높이라고 판단될 경우, 다시 밀물이 들어올 때, 중첩으로 끌어올려 처음 올린 높이보다 더 높이 올릴 수 있다.At this time, if the height of the high-water weight 500a is judged to be a low height to be used for power generation, when the tide comes in again, it can be raised to a level higher than the initial elevation.
썰물일 때, 부력판(200)이 하강하더라도 만조 움직 기둥 도르래(231a)와 제 2 만조 연결부(530a)는 만조 무게추(500a)의 위치에 관여하지 않으며, 만조 브레이크(411a)에 의해 인양된 만조 무게추(500a)의 위치를 유지할 수 있다.Even when the buoyancy plate 200 descends, the high tide moving column sheave 231a and the second high tide connecting portion 530a do not participate in the position of the high tide weight 500a and are lifted up by the high tide brake 411a The position of the high-water weight 500a can be maintained.
다시 밀물일 때, 부력판(200)이 상승하고, 만조 움직 기둥 도르래(231a)와 만조 움직 기둥 도르래(231a)에 결합된 제 2 만조 연결부(530a)가 다시 상승하기 때문에 상기 기둥(100)과 상기 만조 움직 기둥(230a)의 높이가 충분히 높고 상기 제 2 만조 연결부(530a)가 충분히 연장되어 형성된다면 상기 만조 무게추(500a)를 원하는 높이까지 중첩해서 인양할 수 있다.The buoyancy plate 200 is lifted and the second high tide connecting portion 530a coupled to the high tide moving column shear 231a and the high tide moving column shear 231a rises again, If the height of the high tide moving pillar 230a is sufficiently high and the second high tide connecting portion 530a is sufficiently extended, the high tide weight 500a can be lifted up to a desired height.
상기한 바와 마찬가지로 썰물일 때 인양되는 상기 간조 무게추(500b)도 이와 같은 방법으로 원하는 높이만큼 인양할 수 있다.As described above, the low weight 500b lifted at the time of low tide can be lifted to a desired height by the same method.
본 발명의 상기한 실시 예에 한정하여 기술적 사상을 해석해서는 안 된다. 적용범위가 다양함은 물론이고, 청구범위에서 청구하는 본 발명의 요지를 벗어남이 없이 당업자의 수준에서 다양한 변형 실시가 가능하다. 따라서 이러한 개량 및 변경은 당업자에게 자명한 것인 한 본 발명의 보호범위에 속하게 된다.The technical idea should not be construed as being limited to the above-described embodiment of the present invention. It will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims. Accordingly, such modifications and changes are within the scope of protection of the present invention as long as it is obvious to those skilled in the art.
[부호의 설명][Description of Symbols]
100 기둥100 columns
200 부력판 200 buoyancy plate
210a 만조 결합바 210b 간조 결합바210a high-tension joint bar 210b low-speed joint bar
220 저장조220 storage tank
230a 만조 움직 기둥 230b 간조 움직 기둥230a High tide moving pillar 230b Low tide moving pillar
231a 만조 움직 기둥 도르래 231b 간조 움직 기둥 도르래231a High-speed moving pillar pulley 231b Low-speed moving pillar pulley
232b 간조 움직 기둥 보조 도르래232b low tide motion pole pulleys
300 중간판 300 intermediate plate
310 제 1 인양 도르래 320 제 2 인양 도르래310 First lifting pulley 320 Second lifting pulley
400 상판 400 top plate
410a 만조 연결 축 410b 간조 연결 축410a high tide connection axis 410b low tide connection axis
411a 만조 브레이크 411b 간조 브레이크411a high-speed brake 411b low-speed brake
412a 만조 발전기 412b 간조 발전기412a high-tension generator 412b low-tension generator
413a 만조 인양 클러치 413b 간조 인양 클러치413a High lift clutch 413b Low lift lift clutch
414a 만조 발전 클러치 414b 간조 발전 클러치 414a high-temperature generation clutch 414b low-temperature generation clutch
420a 만조 중심 축 420b 간조 중심 축420a High tide axis 420b Low tide axis
421a 만조 메인 휠 421b 간조 메인 휠421a high tide main wheel 421b low tide main wheel
430a 만조 상판 도르래 430b 간조 상판 도르래430a high roof pulley 430b low roof pulley
500a 만조 무게추 500b 간조 무게추500a high tide weight 500b low tide weight
510a 만조 결합부 510b 간조 결합부510a low-temperature joint portion 510b low-
520a 제 1 만조 연결부 520b 제 1 간조 연결부520a first high tide connection part 520b first low tide connection part
530a 제 2 만조 연결부 530b 제 2 간조 연결부530a Second high tide connection part 530b Second low tide connection part
600 연결 축600 connection axis
610 중심 축610 Center axis
620 제 1 발전 클러치 630 제 2 발전 클러치620 first power generation clutch 630 second power generation clutch
640 제 1 인양 클러치 650 제 2 인양 클러치640 First lift clutch 650 Second lift clutch
660 제 1 브레이크 670 제 2 브레이크660 first brake 670 second brake
680 제 1 메인 휠 690 제 2 메인 휠680 first main wheel 690 second main wheel
700 발전기700 generator

Claims (13)

  1. 하단이 해저에 고정되어 상단으로부터 차례로 상판(400), 중간판(300)이 부착되는 기둥(100);A column 100 on which the lower end is fixed to the seabed and on which the upper plate 400 and the intermediate plate 300 are sequentially attached from the upper side;
    상기 기둥(100)의 상단부에 부착되는 상판(400);An upper plate 400 attached to an upper end of the column 100;
    상기 상판(400)의 아래쪽에 위치하고, 상기 기둥(100)에 부착되는 중간판(300); An intermediate plate 300 located below the upper plate 400 and attached to the column 100;
    상기 중간판(300) 아래에 위치하며, 조수간만에 의한 수위차로 인해 상기 기둥(100)을 따라 상하 운동하는 부력판(200);A buoyancy plate 200 located below the intermediate plate 300 and moving up and down along the column 100 due to a difference in level due to the fresh water alone;
    도르래 구조를 이용하여 밀물일 때, 상기 부력판(200)의 상승에 의해 만조 무게추(500a)를 인양하는 만조 인양부; 및A high tide lifting portion for lifting the high tide weight 500a by the rise of the buoyant plate 200 when the tide is tide by using the pulley structure; And
    도르래 구조를 이용하여 썰물일 때, 상기 부력판(200)의 하강에 의해 간조 무게추(500b)를 인양하는 간조 인양부;A low-rising lifting section for lifting the low-lying weight 500b by descending the buoyant plate 200 when the low-tide structure is used;
    를 포함하는 간만 발전기.And a tidal generator.
  2. 제 1항에 있어서, 상기 만조 인양부는,[2] The apparatus of claim 1,
    상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 만조 결합바(210a),A high-altitude coupling bar 210a attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100,
    상기 중간판(300)에 고정된 제 1 인양 도르래(310),A first lifting sheave 310 fixed to the intermediate plate 300,
    상기 상판(400)에 설치된 만조 연결 축(410a),A high-speed connecting shaft 410a provided on the upper plate 400,
    상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 만조 연결 축(410a) 사이에 위치하는 만조 상판 도르래(430a),A high-altitude top plate pulley 430a attached to the top plate 400 and positioned between the column 100 and the high-tide connection shaft 410a,
    일측 끝단이 상기 만조 무게추(500a)에 연결되며, 상기 만조 연결 축(410a), 상기 만조 상판 도르래(430a) 및 상기 제 1 인양 도르래(310)를 순차적으로 통과하여 연장되는 제 1 만조 연결부(520a),And one end of which is connected to the high tide weight 500a and is connected to the first high tide connecting portion 410a, the high tide top sheath 430a and the first high tide connecting portion 520a),
    상기 제 1 만조 연결부(520a)의 타측 끝단에 연결되며, 상기 만조 결합바(210a)와 결합하는 만조 결합부(510a) 및A high-tension joint 510a connected to the other end of the first high-tension joint 520a and coupled with the high-strength joint bar 210a,
    상기 만조 연결 축(410a)에 연결되어 발전하는 만조 발전기(412a)A high-tension generator 412a connected to the high-tension connecting shaft 410a,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  3. 제 2항에 있어서, 상기 만조 연결 축(410a)은,[3] The apparatus of claim 2, wherein the high-
    상기 만조 연결 축(410a)에 끼움 결합하는 만조 중심 축(420a),A high-altitude center shaft 420a fitted to the high-temperature connection shaft 410a,
    상기 만조 중심 축(420a)에 끼움 결합하며, 상기 제 1 만조 연결부(520a)의 이동을 가이드하는 만조 메인 휠(421a) 및A high-tension main wheel 421a fitted to the high-tension central shaft 420a and guiding the movement of the first high-tension joint 520a,
    상기 만조 메인 휠(421a)의 회전을 제어하는 만조 브레이크(411a)A high-tension brake 411a for controlling the rotation of the high-tension main wheel 421a,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  4. 제 2항에 있어서, 상기 만조 결합부(510a)는, [3] The apparatus of claim 2, wherein the high-
    상기 부력판(200)이 상승할 때, 상기 만조 무게추(500a)를 인양할 수 있도록, 상기 만조 결합바(210a)와 맞물려서 상승하고, When the buoyant plate 200 rises, it is engaged with the high-tension joining bar 210a so as to raise the high weight weight 500a,
    상기 부력판(200)이 하강할 때는 만조 무게추(500a)의 이동에 관여하지 않도록 만조 결합바(210a)와 맞물리지 않도록 설치하는 것을 특징으로 하는 간만 발전기. Wherein when the buoyant plate (200) is lowered, it is not engaged with the high-tension coupling bar (210a) so as not to be involved in movement of the high weight weight (500a).
  5. 제 1항에 있어서, 상기 간조 인양부는,[2] The apparatus of claim 1, wherein the low-
    상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 간조 결합바(210b),A low noise coupling bar 210b attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100,
    상기 상판(400)에 설치된 간조 연결 축(410b),A low water connection axis 410b provided on the upper plate 400,
    상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 간조 연결 축(410b) 사이에 위치하는 간조 상판 도르래(430b),A low tide upper plate sheave 430b attached to the upper plate 400 and positioned between the column 100 and the low tide connection axis 410b,
    일측 끝단이 상기 간조 무게추(500b)에 연결되며, 상기 간조 연결 축(410b), 상기 간조 상판 도르래(430b)를 순차적으로 통과하여 연장되는 제 1 간조 연결부(520b),A first low-temperature connection part 520b connected to the low-weight weight 500b at one end and sequentially passing through the low-temperature connection shaft 410b and the low-temperature high-tension pulley 430b,
    상기 제 1 간조 연결부(520b)의 타측 끝단에 연결되며, 상기 간조 결합바(210b)와 결합하는 간조 결합부(510b) 및A low stream connection part 510b connected to the other end of the first low stream connection part 520b and coupled with the low stream connection bar 210b,
    상기 간조 연결 축(410b)에 연결되어 발전하는 간조 발전기(412b)A low-pressure generator 412b connected to the low-pressure connection shaft 410b,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  6. 제 5항에 있어서, 상기 간조 연결 축(410b)은,[6] The apparatus according to claim 5, wherein the low-
    상기 간조 연결 축(410b)에 끼움 결합하는 간조 중심 축(420b),A low-altitude center axis 420b fitted to the low-altitude connection axis 410b,
    상기 간조 중심 축(420b)에 끼움 결합하며, 상기 제 1 간조 연결부(520b)의 이동을 가이드하는 간조 메인 휠(421b) 및A low-pass main wheel 421b fitted to the low-altitude center axis 420b and guiding the movement of the first low-pass low-altitude link 520b,
    상기 간조 메인 휠(421b)의 회전을 제어하는 간조 브레이크(411b)A low-pass brake 411b for controlling the rotation of the low-pass main wheel 421b,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  7. 제 5항에 있어서, 상기 간조 결합부(510b)는, 6. The apparatus of claim 5, wherein the low-pass merge unit (510b)
    상기 부력판(200)이 하강할 때, 상기 간조 무게추(500b)를 인양할 수 있도록, 상기 간조 결합바(210b)와 맞물려서 하강하고, When the buoyant plate 200 descends, it is engaged with the low-tension coupling bar 210b so as to lift down the low-weight weight 500b,
    상기 부력판(200)이 상승할 때는 간조 무게추(500b)의 이동에 관여하지 않도록 간조 결합바(210b)와 맞물리지 않도록 설치하는 것을 특징으로 하는 간만 발전기. Wherein when the buoyant plate (200) is lifted up, the buoyant weight (500b) is not engaged with the low tension joint bar (210b) so as not to be involved in the movement of the low weight weight (500b).
  8. 제 1항에 있어서, 상기 만조 인양부는,[2] The apparatus of claim 1,
    상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 만조 움직 기둥(230a),A high tide moving column 230a attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100,
    상기 만조 움직 기둥(230a)의 상단에 부착된 만조 움직 기둥 도르래(231a),A high tide moving column sheave 231a attached to the upper end of the high tide moving column 230a,
    상기 중간판(300)에 고정된 제 2 인양 도르래(320),A second lifting sheave 320 fixed to the intermediate plate 300,
    상기 상판(400)에 설치된 만조 연결 축(410a),A high-speed connecting shaft 410a provided on the upper plate 400,
    상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 만조 연결 축(410a) 사이에 위치하는 만조 상판 도르래(430a),A high-altitude top plate pulley 430a attached to the top plate 400 and positioned between the column 100 and the high-tide connection shaft 410a,
    일측 끝단이 상기 만조 무게추(500a)에 연결되며, 상기 만조 연결 축(410a), 상기 만조 상판 도르래(430a), 상기 제 2 인양 도르래(320) 및 상기 만조 움직 기둥 도르래(231a)를 순차적으로 통과하여 연장되며 타측 끝단이 상기 중간판(300)에 고정되는 제 2 만조 연결부(530a) 및One end of which is connected to the high tide weight 500a and the high tide connection shaft 410a, the high tide top pulley 430a, the second lifting sheave 320 and the high tide moving column sheave 231a are sequentially A second high-temperature connection portion 530a extending at the other end and fixed to the intermediate plate 300,
    상기 만조 연결 축(410a)에 연결되어 발전하는 만조 발전기(412a)A high-tension generator 412a connected to the high-tension connecting shaft 410a,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  9. 제 8항에 있어서, 상기 만조 연결 축(410a)은,[Claim 9] The method of claim 8, wherein the high-water connecting shaft (410a)
    상기 만조 연결 축(410a)에 끼움 결합하는 만조 중심 축(420a),A high-altitude center shaft 420a fitted to the high-temperature connection shaft 410a,
    상기 만조 중심 축(420a)에 끼움 결합하며, 상기 제 2 만조 연결부(530a)의 이동을 가이드하는 만조 메인 휠(421a) 및A high-tension main wheel 421a fitted to the high-tension central shaft 420a and guiding the movement of the second high-tension joint 530a,
    상기 만조 메인 휠(421a)의 회전을 제어하는 만조 브레이크(411a)A high-tension brake 411a for controlling the rotation of the high-tension main wheel 421a,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  10. 제 8항에 있어서, 상기 만조 움직 기둥 도르래(231a)는,The elevator according to claim 8, wherein the high-lift moving column sheave (231a)
    상기 부력판(200)이 상승할 때, 상기 만조 무게추(500a)를 인양할 수 있도록 상기 제 2 만조 연결부(530a)와 고정 결합되어 상승하고, When the buoyant plate 200 rises, it is fixedly coupled with the second high tide connecting portion 530a to lift the high tide weight 500a,
    상기 부력판(200)이 하강할 때는 만조 무게추(500a)의 이동에 관여하지 않도록 상기 만조 움직 기둥 도르래(231a)와 상기 제 2 만조 연결부(530a)의 고정 결합을 해제하는 것을 특징으로 하는 간만 발전기.And releases the fixed connection between the high tide moving column sheave 231a and the second high tide connecting portion 530a so as not to be involved in the movement of the high weight weight 500a when the buoyant plate 200 descends. generator.
  11. 제 1항에 있어서, 상기 간조 인양부는,[2] The apparatus of claim 1, wherein the low-
    상기 부력판(200) 상단에 부착되어 있으며, 상기 기둥(100) 방향으로 연장되는 간조 움직 기둥(230b),A low-altitude moving column 230b attached to the upper end of the buoyant plate 200 and extending in the direction of the column 100,
    상기 간조 움직 기둥(230b)의 상단에 부착된 간조 움직 기둥 도르래(231b),A low-speed moving column sheave 231b attached to the upper end of the low-speed moving column 230b,
    상기 간조 움직 기둥(230b)의 중단에 상기 간조 움직 기둥(230b)의 높이 방향에 수직 방향으로 형성되는 바에 고정 설치되는 간조 움직 기둥 보조 도르래(232b),A low-altitude movement column auxiliary pulley 232b fixedly installed in a vertical direction to the height direction of the low-altitude movement column 230b at the stop of the low-altitude movement column 230b,
    상기 상판(400)에 설치된 간조 연결 축(410b),A low water connection axis 410b provided on the upper plate 400,
    상기 상판(400)에 부착되어 있으며, 상기 기둥(100)과 상기 간조 연결 축(410b) 사이에 위치하는 간조 상판 도르래(430b),A low tide upper plate sheave 430b attached to the upper plate 400 and positioned between the column 100 and the low tide connection axis 410b,
    일측 끝단이 상기 간조 무게추(500b)에 연결되며, 상기 간조 연결 축(410b), 상기 간조 상판 도르래(430b), 상기 간조 움직 기둥 보조 도르래(232b) 및 상기 간조 움직 기둥 도르래(231b)를 순차적으로 통과하여 연장되며 타측 끝단이 상기 중간판(300)에 고정되는 제 2 간조 연결부(530b) 및One side end of which is connected to the low-speed weight 500b and the low-speed connection shaft 410b, the low-lying upper side pulley 430b, the low-speed moving column auxiliary pulley 232b and the low-speed moving column pulley 231b are sequentially And the other end of which is fixed to the intermediate plate 300, and a second low-
    상기 간조 연결 축(410b)에 연결되어 발전하는 간조 발전기(412b)A low-pressure generator 412b connected to the low-pressure connection shaft 410b,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  12. 제 11항에 있어서, 상기 간조 연결 축(410b)은,12. The apparatus according to claim 11, wherein the low-frequency connection axis (410b)
    상기 간조 연결 축(410b)에 끼움 결합하는 간조 중심 축(420b),A low-altitude center axis 420b fitted to the low-altitude connection axis 410b,
    상기 간조 중심 축(420b)에 끼움 결합하며, 상기 제 2 간조 연결부(530b)의 이동을 가이드하는 간조 메인 휠(421b) 및A low-pass main wheel 421b that is fitted to the low-altitude center axis 420b and guides the movement of the second low-altitude link portion 530b,
    상기 간조 메인 휠(421b)의 회전을 제어하는 간조 브레이크(411b)A low-pass brake 411b for controlling the rotation of the low-pass main wheel 421b,
    를 포함하는 것을 특징으로 하는 간만 발전기.Wherein the tidal generator comprises:
  13. 제 11항에 있어서, 상기 간조 움직 기둥 도르래(231b)는,The elevator according to claim 11, wherein the low-speed moving column sheave (231b)
    상기 부력판(200)이 상승할 때, 상기 간조 무게추(500b)를 인양할 수 있도록 상기 제 2 간조 연결부(530b)와 고정 결합되어 상승하고, When the buoyant plate 200 is lifted up, it is fixedly coupled with the second low-temperature connection part 530b so as to raise the low-weight weight 500b,
    상기 부력판(200)이 하강할 때는 간조 무게추(500b)의 이동에 관여하지 않도록 상기 간조 움직 기둥 도르래(231b)와 상기 제 2 간조 연결부(530b)의 고정 결합을 해제하는 것을 특징으로 하는 간만 발전기.When the buoyant plate 200 is lowered, the fixing operation of the low-speed moving column sheave 231b and the second low-temperature connecting section 530b is released so as not to be involved in the movement of the low-speed weight 500b. generator.
PCT/KR2018/010124 2017-09-01 2018-08-31 Tidal generator WO2019045511A1 (en)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
KR10-2017-0111615 2017-09-01
KR20170111615 2017-09-01
KR10-2018-0102847 2018-08-30
KR1020180102847A KR102093265B1 (en) 2017-09-01 2018-08-30 Tidal generator that generates into buoyancy board movement through tidal tide difference

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Cited By (2)

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Publication number Priority date Publication date Assignee Title
CN112523925A (en) * 2020-11-25 2021-03-19 奥尔森(镇江)电气机械有限公司 Novel tidal power generation device
CN113669192A (en) * 2021-09-06 2021-11-19 哈尔滨工业大学 Ocean buoyancy energy storage system

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Publication number Priority date Publication date Assignee Title
KR20000058521A (en) * 2000-06-09 2000-10-05 김정호 tidal power generation
JP2009127439A (en) * 2007-11-20 2009-06-11 Dai Electronics:Kk Load driving method using tidal energy, and device
KR20090076534A (en) * 2008-01-09 2009-07-13 이병철 A generator with buoyancy
KR20100063277A (en) * 2008-12-03 2010-06-11 현대중공업 주식회사 Self-buoyant water mill sliding along the water mill shaft with buoyant can for current energy power generation
KR20150096570A (en) * 2014-02-14 2015-08-25 금오공과대학교 산학협력단 Tidal buoyancy gravity power plant and method of development

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KR20000058521A (en) * 2000-06-09 2000-10-05 김정호 tidal power generation
JP2009127439A (en) * 2007-11-20 2009-06-11 Dai Electronics:Kk Load driving method using tidal energy, and device
KR20090076534A (en) * 2008-01-09 2009-07-13 이병철 A generator with buoyancy
KR20100063277A (en) * 2008-12-03 2010-06-11 현대중공업 주식회사 Self-buoyant water mill sliding along the water mill shaft with buoyant can for current energy power generation
KR20150096570A (en) * 2014-02-14 2015-08-25 금오공과대학교 산학협력단 Tidal buoyancy gravity power plant and method of development

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112523925A (en) * 2020-11-25 2021-03-19 奥尔森(镇江)电气机械有限公司 Novel tidal power generation device
CN113669192A (en) * 2021-09-06 2021-11-19 哈尔滨工业大学 Ocean buoyancy energy storage system
CN113669192B (en) * 2021-09-06 2022-06-28 哈尔滨工业大学 Ocean buoyancy energy storage system

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