WO2011005036A2 - Wind turbine device - Google Patents

Wind turbine device Download PDF

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Publication number
WO2011005036A2
WO2011005036A2 PCT/KR2010/004442 KR2010004442W WO2011005036A2 WO 2011005036 A2 WO2011005036 A2 WO 2011005036A2 KR 2010004442 W KR2010004442 W KR 2010004442W WO 2011005036 A2 WO2011005036 A2 WO 2011005036A2
Authority
WO
WIPO (PCT)
Prior art keywords
wind
housing
hole
vane
wing
Prior art date
Application number
PCT/KR2010/004442
Other languages
French (fr)
Korean (ko)
Other versions
WO2011005036A3 (en
Inventor
최혁선
Original Assignee
Choi Hyuck Sun
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Choi Hyuck Sun filed Critical Choi Hyuck Sun
Publication of WO2011005036A2 publication Critical patent/WO2011005036A2/en
Publication of WO2011005036A3 publication Critical patent/WO2011005036A3/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
    • F03DWIND MOTORS
    • F03D1/00Wind motors with rotation axis substantially parallel to the air flow entering the rotor 
    • F03D1/02Wind motors with rotation axis substantially parallel to the air flow entering the rotor  having a plurality of rotors
    • F03D1/025Wind motors with rotation axis substantially parallel to the air flow entering the rotor  having a plurality of rotors coaxially arranged
    • 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
    • F03DWIND MOTORS
    • F03D1/00Wind motors with rotation axis substantially parallel to the air flow entering the rotor 
    • F03D1/04Wind motors with rotation axis substantially parallel to the air flow entering the rotor  having stationary wind-guiding means, e.g. with shrouds or channels
    • 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
    • F03DWIND MOTORS
    • F03D3/00Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor 
    • F03D3/04Wind motors with rotation axis substantially perpendicular to the air flow entering the rotor  having stationary wind-guiding means, e.g. with shrouds or channels
    • 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
    • F03DWIND MOTORS
    • F03D5/00Other wind motors
    • F03D5/06Other wind motors the wind-engaging parts swinging to-and-fro and not rotating
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2240/00Components
    • F05B2240/10Stators
    • F05B2240/13Stators to collect or cause flow towards or away from turbines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2240/00Components
    • F05B2240/20Rotors
    • F05B2240/21Rotors for wind turbines
    • F05B2240/221Rotors for wind turbines with horizontal axis
    • F05B2240/2212Rotors for wind turbines with horizontal axis perpendicular to wind direction
    • 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
    • Y02E10/70Wind 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
    • Y02E10/70Wind energy
    • Y02E10/72Wind turbines with rotation axis in wind direction
    • 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
    • Y02E10/70Wind energy
    • Y02E10/74Wind turbines with rotation axis perpendicular to the wind direction

Definitions

  • the present invention relates to a wind turbine device, and more particularly, to a wind turbine device capable of recycling wind power so that it can be driven efficiently even where there is not much air volume.
  • Wind turbines installed in Korea need to have a structure that can perform a continuous and stable energy conversion irrespective of sudden changes in wind direction and wind volume because the wind direction and wind volume changes from region to region as described above.
  • the rotor blades can be rotated through the wind blowing from all directions, but there is a problem that stable operation is difficult because the turbine cannot be continuously rotated because there is no appropriate countermeasure for the amount of air being reduced. .
  • the present invention has been made to solve the above problems, it is possible to stably rotate the turbine even in a region where the air volume is not constant, and to provide a wind turbine device that can maximize the amount converted to available energy by reusing wind power
  • the purpose is.
  • the body is formed by stacking a plurality of disc members along the longitudinal direction of the rotation axis, the blade includes a plurality of blade pieces formed on the outer circumferential surface of each of the disc members, the blade pieces on the inflow direction of the wind
  • a first extension that protrudes radially from the front edge of the disc member and extends a predetermined length to the rear of the disc member, and extends to the rear edge of the disc member in a state of being bent at an angle from an end of the first extension portion; It includes a second extension, the first extension is preferably formed to extend from the end of the second extension of the wing piece provided in front.
  • the wind recycling means is installed in the housing, and further comprises a wind turbine recycling means formed to collect the wind passing through the vanes to move to the front end of the housing for reuse, the wind recycling means has one end at the rear end of the housing It is connected to the exhaust port formed to discharge the wind passing through the van, the other end is installed in the front end of the housing so that the wind can be discharged to the inlet port, and installed on one side of the flow tube is a certain level of pressure inside the flow tube When it is higher than the above, it may be provided with a pressure valve which discharges the air in a flow pipe to the exterior.
  • the rear of the housing may be further provided with a guide member for rotating the housing so that the front end portion of the housing in a direction corresponding to the wind direction in accordance with the wind direction, is installed around the inlet of the housing to guide the wind toward the inlet
  • the collecting means may include a frame and a curtain member that is installed to be expanded and contracted so that the collecting area can be adjusted to the frame.
  • the wind turbine device also includes a rotating shaft and a vane unit connected to the rotating shaft to rotate the rotating shaft through wind power, wherein the vane unit protrudes along the circumferential direction on a cylindrical member and an outer circumferential surface of the cylindrical member.
  • a plurality of resistance members having first and second through holes formed therein so that wind is introduced or discharged at both ends thereof, wherein the first through holes have a smaller diameter than the second through holes, and have a first through hole.
  • the sphere may be inserted through the second through hole of the adjacent resistance member so that the wind introduced through the second through hole moves through the inside of the resistance member.
  • the vane wheel unit is formed such that a plurality of mutually different diameters around the rotary shaft is coupled to the vane unit located on the rotary shaft or the inner side, wherein the vane wheel unit is any one of the resistance member through the first
  • the sphere is closed, and the cylindrical member at the position where the resistance member with the first through hole closed is formed, and an exhaust hole is formed so that air can flow into the cylindrical member. It is preferable to be formed to rotate by the wind introduced from the outer wing vehicle unit through the exhaust hole.
  • the wind turbine device according to the present invention can be continuously driven in a region where the wind volume is not sufficient, there is an advantage that can maximize the amount of available energy conversion through the wind.
  • FIG. 1 is a perspective view showing a first embodiment of a wind turbine device according to the present invention
  • FIG. 2 is a cross-sectional view of the wind turbine device of FIG.
  • Figure 3 is an exploded perspective view showing a van of the wind turbine of Figure 1
  • FIG. 4 is an exploded perspective view showing another embodiment of a vane
  • FIG. 5 is a perspective view showing a second embodiment of a wind turbine device
  • FIG. 6 is a sectional view showing a pressure valve unit in the second embodiment
  • FIG. 7 is a partial perspective view of the pressure valve unit of Figure 6,
  • FIG. 8 is a sectional view showing a third embodiment of a wind turbine device
  • FIG. 9 is a partial cutaway perspective view showing a fourth embodiment of a wind turbine device.
  • FIG. 10 is a cross-sectional view of the wind turbine device of FIG.
  • FIG. 11 is a sectional view showing a fifth embodiment of a wind turbine device
  • FIG. 12 is a sectional view showing a sixth embodiment of a wind turbine device
  • FIG. 13 is an enlarged front schematic view of main parts of the wind turbine shown in FIG. 12;
  • FIG. 14 is an enlarged view illustrating main parts of the wind turbine shown in FIG. 12;
  • 15 is a sectional view showing a seventh embodiment of a wind turbine device
  • 16 to 19 is a schematic view showing a variety of wind wings
  • first guide member 112 second guide member
  • wing piece 135 first extension part
  • first cylindrical member 431 second cylindrical member
  • FIG. 1 to 3 show a first embodiment of the wind turbine device 100 according to the present invention.
  • the wind turbine device 100 includes a housing 110, a support shaft 113 for supporting the housing 110, a rotating shaft 120 rotatably installed in the housing 110, The vane 130 coupled to the rotary shaft 120 to rotate the rotary shaft 120, the wind recycling means 150 for recycling the wind flow introduced into the housing 110, the direction of the housing 110 It includes a wind direction guide for matching the wind direction.
  • the housing 110 is cylindrical and has a predetermined installation space so that the rotation shaft 120 and the vane 130 can be installed therein.
  • the front of the housing 110 is opened so that the wind can be introduced into the inside, the front end of the housing 110 is provided with a first guide member 111 is formed so that the inner diameter is gradually increased as it protrudes from the housing 110 It is.
  • the front of the housing 110 is also provided with a conical second guide member 112, the wind is guided by the second guide member 112 toward the inner edge of the housing 110 to the interior of the housing 110 Inflow.
  • Support shaft 113 is to rotatably support the housing 110, the housing 110 is installed to extend in the horizontal direction, the support shaft 113 is installed to extend in the vertical direction from the ground.
  • the housing 110 is rotatably installed at the upper end of the support shaft 113, and rotates so that the front end of the housing 110 is located in a direction corresponding to the wind direction by the wind direction guide means described later.
  • the wind direction guide means is formed of a rudder 160 installed at the rear of the housing 110 by rotating the housing 110 such that the front end opening of the housing 110 is located in a direction corresponding to the wind direction as described above. .
  • the front of the housing 110 is always rotated by the rudder 160 to face the direction in which the wind blows, thereby maximizing the inflow of wind toward the front of the opened housing 110.
  • the wind power recycling means 150 is for recycling the wind introduced into the housing 110, the flow pipe 151 extending from the exhaust port formed in the rear end of the housing 110, and is installed in the flow pipe 151 And a pressure valve 152.
  • the flow pipe 151 extends from the exhaust port to the front end of the housing 110, and supplies air discharged from the exhaust port to the front end of the housing 110 again.
  • the pressure valve 152 is installed on the pipeline of the flow pipe 151. When the air pressure inside the housing 110 becomes excessively high due to the recycling of the air, the air flows through the pressure valve 152 to the front end of the housing 110. It is to be discharged directly to the outside of the housing 110 without being supplied to.
  • the pressure valve 152 may be composed of a pressure sensor and a switch for opening and closing the outlet by the pressure sensor to open when the user exceeds a predetermined pressure value, otherwise the switch for opening and closing the outlet is rotatably installed.
  • the torsion spring may be provided on the rotation shaft of the switch to maintain the switch in the closed state.
  • the magnitude of the pressure for discharging air from the pressure valve 152 may be adjusted according to the magnitude of the elastic force of the torsion spring.
  • the rotation shaft 120 extends along the longitudinal direction of the housing 110 and is installed to be rotatable within the housing 110.
  • the rotating shaft 120 is installed to be rotatable so as to extend along the longitudinal direction of the housing 110, although not shown, a generator for generating power using the rotational force of the rotating shaft 120 on one side of the rotating shaft 120 It may be installed, or the pulley or sprocket is installed on the rotating shaft 120 may be converted into available energy by transmitting the rotational force of the rotating shaft 120 through a belt or chain connection.
  • the vane 130 is installed in the housing 110 to convert the wind power of the incoming wind into available energy
  • the cylindrical body 131 and the body 131 is installed on the rotating shaft 120 It includes a blade 133 protruding to the outside.
  • the body 131 is formed by stacking disc-shaped disc members 132 to each other. As shown in FIG. 3, the disc member 132 is disc-shaped and a fastening hole is formed to be coupled to the rotation shaft 120 at the center thereof. It is.
  • the blade 133 is formed by connecting the blade pieces 134 provided on the respective disc members 132.
  • the wing piece 134 protrudes a predetermined length in a radial direction from the front edge of the disc member 132 in the direction in which the wind flows, and extends to the rear of the disc member 132.
  • a second extension part 136 extending from the end of the first extension part 135 to a rear edge of the disc member 132 in a bent angle.
  • Each of the wing pieces 134 includes a second extension part 136 and a first extension part of the wing piece 134 formed on the disc member 132 adjacent to the first and second extension parts 135 and 136 and 136, respectively.
  • the blade 133 formed by the connection of the blade pieces 134 has a bending section bent at a predetermined interval, the blade 133 in the process of the wind flows in progress The blade 133 and the disc member 132 are rotated by colliding with the bent surface of the blade.
  • the vane wheel 130 of the present embodiment has the wing pieces 140 installed on the outer circumferential surface of the disc member 132 are connected in a straight line from the front to the rear of the disc member 132, the predetermined direction based on the extension direction of the rotary shaft 120 It is formed to extend at an oblique angle.
  • Each wing piece 140 of the present embodiment is formed so that each end is spaced apart from the adjacent wing piece 140 so that the wind impinges on the side of each wing piece 140, the rotational force to the wing car 130 Will be applied.
  • the vanes 130 of the present embodiment are blades 133 formed on the outer circumferential surface of the cylindrical body 131 to convert the rotational force of the wind, the wind should blow through the blade 133 so that the second guide member 112 Wind is introduced into the housing 110 is guided to move through the edge side of the housing 110.
  • the second guide member 112 may be formed to expand or contract the outer diameter of the end portion according to the air volume.
  • the second guide member 112 has a plurality of support bars formed on the inner circumferential surface, such as an umbrella, and may move forward or backward along the central axis by an actuator on the central axis of the second guide member 112.
  • a movable body is provided, and when the movable body is connected to the support bars and moved forward, the outer diameter of the end portion of the second guide member 112 is expanded, and if the movable body moves backward, the second outer guide member 112 is folded and the end outer diameter is increased. Is reduced.
  • the outer diameter of the end of the second guide member 112 when the outer diameter of the end of the second guide member 112 is expanded, such as when the umbrella is unfolded or folded, the area of the inlet through which the wind is introduced into the housing 110 is narrowed, so that the wind speed is increased, and conversely, In many cases, sufficient wind speed can be obtained, so that the outer diameter of the open end of the second guide member 112 can be reduced.
  • FIG 5 shows a second embodiment of a wind turbine device 200.
  • Wind turbine device 200 of the present embodiment is installed so that the rotary shaft 220 installed in the interior of the housing 210 to extend in the vertical direction, the wind flowing into the upper end of the housing 210 than the inlet of the housing 210 It is formed to be guided to the housing 210 by the air collecting unit 240 having a relatively large diameter.
  • the wind collecting part 240 is rotatably installed in the housing 210 such that the inlet port through which the wind is introduced faces the wind blowing direction, and the inlet port is positioned at a position corresponding to the wind direction of the wind unit 240.
  • a rudder 250 is provided.
  • the rotating shaft 220 since the rotating shaft 220 is installed to extend in the vertical direction, the energy transmission process using the rotation of the rotating shaft 220 may be simplified.
  • the wind turbine apparatus 200 has an excessive amount of air flowing through the wind collecting unit 240, such as when a typhoon blows, and thus the pressure inside the housing 210 is increased. It may be further provided with a pressure valve unit 260 to prevent the high enough to disturb the safe operation.
  • the pressure valve unit 260 includes a plurality of rotation guide plates 261 rotatably installed around an axis of rotation extending in an up and down direction inside the housing 210, and a sprocket for rotating the rotation guide plates 262. 263, a chain 264, and a drive motor 265.
  • the rotation guide plate 261 guides the wind direction to be naturally changed from the horizontal direction to the vertical direction so that the wind flowing through the wind collecting part 240 can be easily introduced into the housing 210 extending in the vertical direction.
  • An air discharge hole 266 is formed at an upper side of the housing 210 to communicate with the outside, and an opening and closing plate 262 for opening and closing the air discharge hole 266 is vertically similar to the rotation guide plate 261. It is rotatably installed about the rotating shaft extended in the direction.
  • Both the rotation guide plate 261 and the opening and closing plate 262 are rotatably coupled to the support member 267 extending to cross the inside of the housing 210, and at the bottom of the support member 267.
  • Sprockets 263 are provided on the respective rotation shafts. These sprockets 263 are connected by a chain 264.
  • a drive motor 265 is installed outside the housing 210, and the sprocket 263 installed on the drive shaft of the drive motor 265 is connected to the chain 264 so that the driving force of the drive motor 265 is the chain ( 264 and the sprockets 263 are transmitted to each axis of rotation.
  • a pressure sensor 268 for measuring the pressure inside the housing 210 is installed on one side of the housing 210, the drive motor when the pressure value periodically measured by the pressure sensor 268 exceeds the set value
  • the air discharge hole 266 is opened by driving the opening and closing plate 262 by driving 265.
  • the wind introduced through the wind collecting part 240 is able to lower the pressure inside the housing 210 because a part of the wind flows out through the air discharge hole 266.
  • the power transmission is made so that the rotation guide plate 261 and the opening and closing plate 262 is rotated by the sprocket 263 and the chain 264, but the power transmission method may be implemented in various forms in addition to this. Can be.
  • FIG. 8 shows a third embodiment of a wind turbine device 300.
  • the wind turbine device 300 of the present embodiment includes a housing 310 extending in a vertical direction, a rotating shaft 320 and a vane 330 installed inside the housing 310, and a housing 310. It is installed on the upper part of the wind collecting part 340 to collect the wind, and includes a wind recycling means 350.
  • the housing 310 and the rotating shaft 320 extend in the vertical direction, and the housing 310 has a wind collecting part 340 at the upper portion so that wind can pass from the upper portion to the lower portion. It is installed.
  • the flow pipe 351 extends from the bottom of the housing 310 to be connected with the top of the housing 310 to recycle the wind discharged from the bottom of the housing 310.
  • the flow pipe 351 is provided with a pressure valve 352 to prevent the pressure inside the flow pipe 351 is too high, the wind recycling means 350 of the present embodiment has the same function and configuration as the first embodiment Detailed description will be omitted.
  • the wind collecting part 340 is installed on the upper portion of the housing 310 to wind the wind to the housing 310.
  • the wind collecting part 340 of the present embodiment can wind all the wind blowing from all directions, guides the wind blowing from all directions by the wind direction guide member 341 formed in the shape of the upper and lower strait to the downdraft, the guided wind is Guided to the housing 310 to rotate the vane 330 in the interior of the housing 310.
  • the wind direction guide member 341 is gradually narrower from the top to the bottom, and extends to have a predetermined curvature.
  • the wind direction guide member 341 When the wind direction guide member 341 is formed in such a manner that the horizontal plane and the vertical plane cross each other, when the wind traveling direction is changed in the vertical direction, the wind is reduced after colliding with the vertical plane, but the wind power is reduced, Since the guide member 341 is extended to have a predetermined curvature, the wind moves along the outer and inner circumferential surfaces of the wind direction guide member 341, so that energy may be introduced into the housing 310 with minimal resistance. It can be minimized.
  • the wind collecting part 340 is provided with a plurality of intermediate plates 342 protruding in the radial direction from the center and extending in the vertical direction to increase the wind collecting efficiency of the wind moving in the horizontal direction.
  • intermediate plates 342 are shown to be spaced apart along the circumferential direction at equal intervals, but the number of installation of the intermediate plates 342 is not limited thereto.
  • the wind turbine device 300 of the present embodiment can be installed in an area where the wind direction changes from time to time because it can wind the wind in all directions irrespective of the wind direction.
  • the wind collecting part 340 is installed on the upper portion of the housing 310 to lower the wind to supply the housing 310.
  • the wind collecting part 340 is different from the housing 310. Is installed at the bottom of the), the wind collecting unit 340 may be formed to rotate the vanes 330 in the housing 310 by guiding the wind upwards.
  • vanes 330 of the second and third embodiments the vanes 330 shown in FIG. 3 or 4 may be applied, and a detailed description thereof will be omitted.
  • the wind turbine device 400 of the present embodiment includes a rotation shaft 410 extending in the vertical direction and first to third vane wheel units 420, 430, and 440 connected to the rotation shaft 410 to rotate the rotation shaft 410 through wind power. Equipped.
  • the first vane wheel unit 420 is coupled to the rotary shaft 410 to surround the rotary shaft 410, the second vane wheel unit 430 surrounds the first vane wheel unit 420 and the first vane wheel unit ( 420 is connected.
  • the third vane wheel unit 440 surrounds the second vane wheel unit 430 and is connected to the second vane wheel unit 430.
  • Each of the first to third vane wheel units 420, 430, and 440 includes first to third cylindrical members 421, 431, 441, and a resistance member 450 formed on an outer circumferential surface of the first to third cylindrical members 421, 431, 441.
  • the first cylindrical member 421 is formed to surround the rotary shaft 410, and is connected to the rotary shaft 410 to rotate integrally, the wind flows into any one or both of the upper and lower portions of the first cylindrical member Ventilation is provided for discharge to the outside.
  • the second cylindrical member 431 is connected to the first cylindrical member 421, and the third cylindrical member 441 is connected to the second cylindrical member 431. Therefore, the rotating shaft 410 and the first to third cylindrical members 421, 431, 441 are integrally rotated.
  • the resistance member 450 is formed on the outer circumferential surface of the first to third cylindrical members 421, 431, 441 as described above to convert the wind power into the rotational force of the first to third cylindrical members 421, 431, 441.
  • the resistance member 450 is installed on the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441 so as to be arranged in a plurality of spaced apart from each other in the circumferential direction, and the first and second through holes 451 and 452 are provided at one side and the other end, respectively.
  • the first through hole 451 is formed to have a smaller diameter than the second through hole 452.
  • the first through hole 451 extends into the adjacent resistance member 450 through the second through hole 452 of the adjacent resistance member 450.
  • any one of the resistance members 450 has a first through-hole 451 is closed, the cylindrical member provided with the resistance member 450 is closed the first through-hole 451 is exhausted through the inside ( 460 is formed.
  • the wind moving along the resistance member 450 of the third cylindrical member 441 flows into the third cylindrical member 441 through the exhaust hole 460, and then rotates the second cylindrical member 431.
  • the first cylindrical member 421 is introduced into the inside through the exhaust hole 460 formed in the second cylindrical member 431.
  • the wind turbine device 400 of the present embodiment is a guide frame 470 for guiding the wind to the second through-hole 452 to facilitate the flow of wind through the second through-hole 452 as shown in FIG. It may be further provided.
  • the guide frame 470 guides the direction of the wind so that the wind can be easily introduced into the second through-hole 452 of the resistance member 450 at the same time, and maintains the surrounding pressure of the vane unit. It is formed to be.
  • the guide frame 470 is formed to surround the third cylindrical member 441.
  • Both ends of the opening portion 471 are formed with wind collecting wings 473 extending in the radial direction to expand the wind collecting area, and the opening portion 471 has a plurality of inclined plates 474 in the third cylindrical member 441. It extends along the longitudinal direction of, and is installed to be spaced apart from each other by a predetermined interval along the circumferential direction.
  • the inclined plate 474 guides the direction so that the wind flowing through the opening 471 can be easily introduced into the second through hole 452 to induce smooth driving.
  • Only one exhaust hole 460 may be installed in each cylindrical member, and a plurality of exhaust holes 460 may be formed to be spaced apart from each other along the circumferential direction.
  • the guide frame 470 of this embodiment is also provided with a rudder 475 on one side, and is rotatably installed around the center of the first to third cylindrical members 421, 431, 441, and the opening 471 by the rudder 475. ) Is rotated to face the direction of the inflow of wind to maximize the wind collection effect.
  • the wind turbine device when the wind turbine device is small, the wind turbine device having the above-described structure is preferable.
  • the wind turbine device when the wind power is strong and the wind turbine device becomes large, the wind turbine device is easily broken or damaged due to the strong wind and the huge wind turbine device. Loss can occur. Therefore, when the place where strong wind generate
  • FIG. 11 is a sectional view showing a fifth embodiment of the wind turbine device.
  • the wind turbine device has a rotation shaft 410 extending in a vertical direction, and the first to third vane wheel units connected to the rotation shaft 410 to rotate the rotation shaft 410 through wind power. (420,430,440).
  • the first vane wheel unit 420 is coupled to the rotary shaft 410 to surround the rotary shaft 410, the second vane wheel unit 430 surrounds the first vane wheel unit 420, the first vane wheel unit 420 is connected.
  • the third vane wheel unit 440 surrounds the second vane wheel unit 430 and is connected to the second vane wheel unit 430.
  • the first to third vane wheel units 420, 430, and 440 include first to third cylindrical members 421, 431, 441 and wind vanes 477 formed on the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441, respectively.
  • the first cylindrical member 421 is formed to surround the rotary shaft 410, and is connected to the rotary shaft 410 to rotate integrally, any one or both of the upper and lower portions of the first cylindrical member Ventilation is provided so that the incoming wind can be discharged to the outside.
  • the second cylindrical member 431 is connected to the first cylindrical member 421, and the third cylindrical member 441 is connected to the second cylindrical member 431.
  • the wind wing 477 is formed on the outer circumferential surface of the first to third cylindrical members 421, 431, 441 as described above to convert the wind power into the rotational force of the first to third cylindrical members 421, 431, 441. Compared to the resistance member 450, it is preferable that the wind flowing in and hitting the one side g of the wind wing 477 does not interfere with the rotation of the wind wing 477.
  • the wind vanes 477 are installed on the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441 so that a plurality of the wind vanes are spaced apart from each other along the circumferential direction.
  • the first and second through holes 451 and 452 are respectively formed in the first through holes 451, and the first through holes 451 are smaller in diameter than the second through holes 452.
  • first through hole 451 extends into the adjacent wind wing 477 through the second through hole 452 of the adjacent wind wing 477.
  • the wind when wind is introduced from the outside through the second through hole 452, the wind is discharged through the first through hole 451, but the first through hole 451 is located inside the adjacent wind wing 477. It is not discharged to the outside and continuously moves along the wind wing 477.
  • Wind vanes 477 formed on the vane units 420, 430, and 440 are alternately repeated opening and closing of the first through holes 451, and wind vanes 477 in which the first through holes 451 are closed. ) Is provided with an exhaust hole 460 penetrating therein.
  • Wind moving along the wind blade 477 of the third cylindrical member 441 is introduced into the third cylindrical member 441 through the exhaust hole 460, and then the second cylindrical member 431 is opened. After rotating, and moving along the wind blade 477 of the second cylindrical member 431, the first cylindrical member 421 is introduced into the inside through the exhaust hole 460 formed in the second cylindrical member 431. ) Will rotate.
  • the first to third cylindrical members 421, 431, 441 are rotated in this way, thereby minimizing wind energy loss.
  • the wind turbine device of the present embodiment may further include a guide frame (not shown) for guiding the wind to the second through hole 452 to facilitate the flow of wind through the second through hole 452. .
  • the guide frame (not shown) guides the direction of the wind so that the wind can be easily introduced into the second through hole 452 of the wind wing 477 and at the same time, the pressure around the wing vehicle unit It is formed to maintain.
  • the guide frame (not shown) covers the upper side and the lower side of the vanes unit 420, 430, 440, the side is open so that the outside air can be introduced, a plurality of wind vane 476 is provided have.
  • One side surface of the guide frame (not shown) is provided with a plurality of inclined plate 474 for guiding the inflow direction of the wind so that the wind can easily move to the open one side of the wind wing 477.
  • the guide frame (not shown) is formed in the radial direction to extend the wind collecting area to extend the wind collecting area is formed, a plurality of inclined plate 474 to the open side of the wind wing (477) It extends along the longitudinal direction of the 3rd cylindrical member 441, and is installed so that mutually spaced apart may be mutually spaced along the circumferential direction.
  • the inclined plate 474 guides the direction so that the wind flowing through the open one side can be easily introduced into the second through hole 452 to induce smooth driving.
  • the plurality of exhaust holes 460 may be alternately installed in the cylindrical members and spaced apart from each other along the circumferential direction.
  • the imaginary line (e) and the wind wing 477 extending by connecting one intersection point (f) of the wind wing 477 mounted on the third vane unit 440 at the center of the rotation shaft 410.
  • the angle formed by one side line (g) is characterized in that it is 0 ° to 45 °, the angle that can cause the largest rotational force when the wind flowing from the outside hits the one side line (g) of the wind wing 477 Means.
  • extension line h of the wind collecting wing 476 passes one intersection point f of the wind wing 477 mounted on the third vane wheel unit 440, and the extension line h and the wind wing (
  • the angle formed by one side g of 477 is another right angle, which means an angle capable of obtaining a large rotational force.
  • Wind turbine device of the present embodiment is a sensor (not shown) for recognizing the direction of the wind direction by detecting the direction of the rudder (not shown) or the wind direction on one side guide of the wind turbine device of the present embodiment by the sensor (not shown)
  • a transmission device (not shown) for rotating the frame (not shown) may be installed, and the rudder sensor and the transmission device are the same as in the known art. Thus, by rotating to be located toward the inflow direction of the wind to maximize the wind effect.
  • 16 to 19 are schematic views showing various shapes of wind vanes. Referring to FIGS. 16 to 19, arrows indicate when the wind strikes the resistance member 450 or the wind vane 477 in the direction of the wind. 18 or 19 hitting at a right angle may cause a strong rotational force, and rather than FIG. 18, the resistance to the rotational force of the resistance member 450 or the wind wing 477 is reduced when the wind is hit after riding.
  • FIG. 12 is a sectional view showing a sixth embodiment of the wind turbine device
  • FIG. 13 is an enlarged front schematic view of main parts of the wind turbine device shown in FIG. 12
  • FIG. 14 is an enlarged view of the main parts of the wind turbine device shown in FIG. to be.
  • the configuration of the wind direction rotary hole 500 is further provided in the configuration described above with reference to FIG. 11, and the wind direction rotary hole 500 includes the inclined plate 474 and the wind collecting wing 476. It is coupled to the axis between the rotatable, anti-wind wind coupled to one side of the semi-circular wind direction rotating plate 530 equipped with a wind resistance plate 510 and the wind direction rotating plate 530 to rotate by the incoming wind It consists of a plate 520. Therefore, the wind flowing directly between the wind vane 476 and the wind passing between the inclined plate 474 hit the wind resistance plate 510 and the semi-circular wind direction rotating plate 530 in which the wind resistance plate 510 is mounted. While rotating, the combined rotating shaft 410 is rotated.
  • the anti-wind prevention plate 520 is a prevention plate for preventing the reverse wind to interfere with the rotation of the wind direction rotary hole (500).
  • the semi-circular wind direction rotating plate 530 is one side is open and the other side is a form, the configuration for minimizing the reverse wind to increase the rotational force and prevent rotation.
  • FIG. 15 is a cross-sectional view illustrating a seventh embodiment of a wind turbine device.
  • a plurality of wind vanes 477 are formed along the circumferential direction of the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441. It is installed to be spaced apart, the inlet groove 453 is formed at one end, the inlet groove 453, when the wind is introduced through the second through hole 452 from the outside the wind inlet groove 453 The wind vane 477 is hit through the wind wing 477 and the wind wing 477 is rotated by the wind hit and the wind is hit back to the wind through the exhaust hole 460 formed in the cylindrical member through the interior of the cylindrical member Flows into.
  • Wind moving along the wind blade 477 of the third cylindrical member 441 is introduced into the third cylindrical member 441 through the exhaust hole 460, and then the second cylindrical member 431 is opened. After rotating, and moving along the wind blade 477 of the second cylindrical member 431, the first cylindrical member 421 is introduced into the inside through the exhaust hole 460 formed in the second cylindrical member 431. Rotated).
  • the first to third cylindrical members 421, 431, 441 are rotated in this way, thereby minimizing wind energy loss.

Abstract

The present invention relates to a wind turbine device which can reutilize wind power to be driven in a location with a small amount of wind. The wind turbine device according to the present invention comprises: a housing into which wind is introduced; a rotary shaft rotatably installed within the housing; and a blade wheel mounted on the rotary shaft. The blade wheel includes a cylindrical body coupled to the rotary shaft; and a blade radially protruding from an outer surface of the body to rotate the body and the rotary shaft by means of the wind introduced onto the blade. The wind turbine device according to the present invention is advantageous in that it can be continuously driven, even in a location with a small amount of wind, and it can maximize the amount of available energy converted from the forces of the wind.

Description

풍력터빈장치Wind turbine
본 발명은 풍력터빈장치에 관한 것으로서, 더욱 상세하게는 풍량이 많지 않은 곳에서도 효율적으로 구동할 수 있도록 풍력의 재활용이 가능한 풍력터빈장치에 관한 것이다.The present invention relates to a wind turbine device, and more particularly, to a wind turbine device capable of recycling wind power so that it can be driven efficiently even where there is not much air volume.
우리나라는 산지가 많고 해양에 인접한 지형을 갖추고 있으며 계절풍의 영향을 받는 주기적인 기후대에 놓여있으면서도 지역별로 풍향이 수시로 변화하는 편이기 때문에 풍력을 이용하는 터빈장치의 설치에 많은 제약이 있다.In Korea, there are many mountainous areas, the terrain adjacent to the ocean, and the wind direction changes from region to region while being in a periodic climate zone affected by the monsoon, there are many limitations in the installation of turbine devices using wind power.
따라서 현재에도 풍력을 이용한 터빈장치는 설치지역이 한정되어 있어 바람을 이용한 에너지활용면에서 많은 발전이 요구되고 있다.Therefore, even now, the turbine device using the wind power is limited in the installation area, many generations are required in terms of energy utilization using the wind.
우리나라에 시설되는 풍력발전기는 상술한 것처럼 지역별로 풍향과 풍량이 수시로 변화하기 때문에 풍향과 풍량의 급격한 변화에 무관하게 지속적이고 안정적인 에너지 변환을 수행할 수 있는 구조를 갖출 필요가 있다.Wind turbines installed in Korea need to have a structure that can perform a continuous and stable energy conversion irrespective of sudden changes in wind direction and wind volume because the wind direction and wind volume changes from region to region as described above.
그러나 현재까지 연구되었던 풍력발전장치의 대부분은 풍향이 일정한 지형에 적합한 수평축 터빈을 기본으로 풍향적응장치를 부가하는 방식을 취하고 있으며, 풍향적응방식의 터빈으로는 수직축 항력식이 있지만, 제작과 유지가 곤란한 긴 회전날개를 기본으로 하고 있기 때문에 설계가 어렵고 시설비용이 높아지는 문제점이 있다.However, most of the wind turbines that have been studied up to now have a method of adding a wind direction adaptor based on a horizontal axis turbine suitable for a constant wind direction. Although a wind turbine has a vertical drag formula, it is difficult to manufacture and maintain. Since it is based on a long rotary blade, there is a problem in that the design is difficult and the facility cost is high.
그리고 상기 수직축 항력식 터빈의 경우에는 사방에서 불어오는 바람을 통해 회전날개가 회전할 수 있기는 하지만 풍량이 적어지는 것에는 적절한 대응방안이 없어 지속적인 터빈의 회전이 불가능하여 안정적인 운전이 어렵다는 문제점이 있다.In the case of the vertical drag turbine, the rotor blades can be rotated through the wind blowing from all directions, but there is a problem that stable operation is difficult because the turbine cannot be continuously rotated because there is no appropriate countermeasure for the amount of air being reduced. .
본 발명은 상기 문제점을 해결하기 위해 창출된 것으로서, 풍량이 일정하지 않은 지역에서도 안정적으로 터빈을 회전시킬 수 있으며, 풍력을 재사용함으로써 가용에너지로 변환되는 양을 극대화할 수 있는 풍력터빈장치를 제공하는데 그 목적이 있다.The present invention has been made to solve the above problems, it is possible to stably rotate the turbine even in a region where the air volume is not constant, and to provide a wind turbine device that can maximize the amount converted to available energy by reusing wind power The purpose is.
상기 목적을 달성하기 위한 본 발명에 따른 풍력터빈장치는 바람이 유입되는 하우징과, 상기 하우징의 내부에 회전 가능하게 설치되는 회전축과, 상기 회전축에 설치되는 날개차를 구비하며, 상기 날개차는 상기 회전축과 결합된 원통형의 바디와, 상기 바디의 외주면에 방사상으로 돌출되어 유입되는 바람에 의해 상기 바디 및 회전축을 회전시키는 블레이드를 포함한다.Wind turbine apparatus according to the present invention for achieving the above object comprises a housing in which the wind is introduced, a rotating shaft rotatably installed in the interior of the housing, and a vane installed on the rotating shaft, the vane is the rotating shaft And a blade for rotating the body and the rotating shaft by wind, which is protruded radially on the outer circumferential surface of the body and coupled to the cylindrical body.
상기 바디는 복수개의 원판부재가 상기 회전축의 길이방향을 따라 상호 적층되어 형성되고, 상기 블레이드는 상기 각각의 원판부재의 외주면에 형성된 복수개의 날개편들을 포함하며, 상기 날개편은 바람의 유입방향 상에서 상기 원판부재의 전방 가장자리로부터 방사방으로 돌출되어 상기 원판부재의 후방으로 소정길이 연장되는 제1 연장부와, 상기 제1 연장부의 단부로부터 소정각도 절곡된 상태로 상기 원판부재의 후면 가장자리까지 연장되는 제2 연장부를 포함하고, 상기 제1 연장부는 전방에 설치된 날개편의 제2 연장부의 단부로부터 연장되도록 형성되는 것이 바람직하다.The body is formed by stacking a plurality of disc members along the longitudinal direction of the rotation axis, the blade includes a plurality of blade pieces formed on the outer circumferential surface of each of the disc members, the blade pieces on the inflow direction of the wind A first extension that protrudes radially from the front edge of the disc member and extends a predetermined length to the rear of the disc member, and extends to the rear edge of the disc member in a state of being bent at an angle from an end of the first extension portion; It includes a second extension, the first extension is preferably formed to extend from the end of the second extension of the wing piece provided in front.
그리고 상기 하우징에 설치되며, 상기 날개차를 통과한 바람을 포집하여 상기 하우징의 전단부로 이동시켜 재사용할 수 있도록 형성된 풍력재활용수단을 더 구비하며, 상기 풍력재활용수단은 일단이 상기 하우징의 후단에 상기 날개차를 통과한 바람이 배출되도록 형성된 배기구와 연결되어 있고, 타단이 상기 하우징의 전단에 유입구로 바람이 토출될 수 있도록 설치된 유동관과, 상기 유동관의 일측에 설치되어 상기 유동관 내부의 압력이 일정 수준 이상으로 높아지면 유동관 내부의 공기를 외부로 배출시키는 압력밸브를 구비할 수 있다.And it is installed in the housing, and further comprises a wind turbine recycling means formed to collect the wind passing through the vanes to move to the front end of the housing for reuse, the wind recycling means has one end at the rear end of the housing It is connected to the exhaust port formed to discharge the wind passing through the van, the other end is installed in the front end of the housing so that the wind can be discharged to the inlet port, and installed on one side of the flow tube is a certain level of pressure inside the flow tube When it is higher than the above, it may be provided with a pressure valve which discharges the air in a flow pipe to the exterior.
또한 상기 하우징의 후방에는 풍향에 따라 상기 하우징의 전단부가 풍향에 대응되는 방향으로 위치하도록 하우징을 회전시키는 가이드부재가 더 설치될 수 있으며, 상기 하우징의 유입구 주변에 설치되어 바람을 상기 유입구쪽으로 유도하는 집풍수단을 더 구비하되, 상기 집풍수단은 프레임과, 상기 프레임에 집풍 면적이 조절될 수 있도록 확장 및 축소 가능하게 설치되는 커튼부재를 포함할 수 있다.In addition, the rear of the housing may be further provided with a guide member for rotating the housing so that the front end portion of the housing in a direction corresponding to the wind direction in accordance with the wind direction, is installed around the inlet of the housing to guide the wind toward the inlet Further comprising a collecting means, the collecting means may include a frame and a curtain member that is installed to be expanded and contracted so that the collecting area can be adjusted to the frame.
풍력터빈장치는 또한 회전축과, 상기 회전축과 연결되어 풍력을 통해 상기 회전축을 회전시키는 날개차유닛을 구비하며, 상기 날개차유닛은 원통부재와, 상기 원통부재의 외주면에 원주방향을 따라 연장되도록 돌출 형성되어 있으며 양단에 바람이 유입 또는 배출될 수 있도록 제1, 제2 관통구가 형성된 복수개의 저항부재를 포함하되, 상기 제1 관통구는 상기 제2 관통구보다 상대적으로 직경이 작으며, 제1 관통구는 인접하는 저항부재의 제2 관통구를 통해 삽입되어 제2 관통구를 통해 유입된 바람이 상기 저항부재의 내부를 통해 이동하도록 형성될 수 있다.The wind turbine device also includes a rotating shaft and a vane unit connected to the rotating shaft to rotate the rotating shaft through wind power, wherein the vane unit protrudes along the circumferential direction on a cylindrical member and an outer circumferential surface of the cylindrical member. And a plurality of resistance members having first and second through holes formed therein so that wind is introduced or discharged at both ends thereof, wherein the first through holes have a smaller diameter than the second through holes, and have a first through hole. The sphere may be inserted through the second through hole of the adjacent resistance member so that the wind introduced through the second through hole moves through the inside of the resistance member.
이 경우 상기 날개차유닛은 상기 회전축을 중심으로 상호 직경이 다른 복수개가 상기 회전축 또는 내측에 위치한 날개차유닛과 결합되도록 형성되어 있으며, 상기 날개차유닛은 상기 저항부재들 중 어느 하나는 제1 관통구가 폐쇄되어 있으며, 제1 관통구가 폐쇄된 저항부재가 결합된 위치의 원통부재에는 내부로 관통되어 공기가 원통부재의 내측으로 유입될 수 있도록 배기홀이 형성되어 있으며, 내측 날개차유닛은 상기 배기홀을 통해 외측 날개차유닛으로부터 유입된 바람에 의해 회전하도록 형성되는 것이 바람직하다.In this case, the vane wheel unit is formed such that a plurality of mutually different diameters around the rotary shaft is coupled to the vane unit located on the rotary shaft or the inner side, wherein the vane wheel unit is any one of the resistance member through the first The sphere is closed, and the cylindrical member at the position where the resistance member with the first through hole closed is formed, and an exhaust hole is formed so that air can flow into the cylindrical member. It is preferable to be formed to rotate by the wind introduced from the outer wing vehicle unit through the exhaust hole.
본 발명에 따른 풍력터빈장치는 풍량이 충분하지 않은 지역에서도 지속적인 구동이 가능하며, 풍력을 통한 가용에너지 변환량을 극대화할 수 있는 이점이 있다.The wind turbine device according to the present invention can be continuously driven in a region where the wind volume is not sufficient, there is an advantage that can maximize the amount of available energy conversion through the wind.
도 1은 본 발명에 따른 풍력터빈장치의 제1 실시예를 도시한 사시도,1 is a perspective view showing a first embodiment of a wind turbine device according to the present invention;
도 2는 도 1의 풍력터빈장치의 단면도,2 is a cross-sectional view of the wind turbine device of FIG.
도 3은 도 1의 풍력터빈의 날개차를 도시한 분리사시도,Figure 3 is an exploded perspective view showing a van of the wind turbine of Figure 1,
도 4는 날개차의 다른 실시예를 도시한 분리사시도,4 is an exploded perspective view showing another embodiment of a vane,
도 5는 풍력터빈장치의 제2 실시예를 도시한 사시도,5 is a perspective view showing a second embodiment of a wind turbine device;
도 6은 제2 실시예에서 압력밸브유닛을 도시한 단면도,6 is a sectional view showing a pressure valve unit in the second embodiment,
도 7은 도 6의 압력밸브유닛을 도시한 부분발췌 사시도,Figure 7 is a partial perspective view of the pressure valve unit of Figure 6,
도 8은 풍력터빈장치의 제3 실시예를 도시한 단면도,8 is a sectional view showing a third embodiment of a wind turbine device;
도 9는 풍력터빈장치의 제4 실시예를 도시한 부분절단 사시도,9 is a partial cutaway perspective view showing a fourth embodiment of a wind turbine device;
도 10은 도 9의 풍력터빈장치의 단면도이다. 10 is a cross-sectional view of the wind turbine device of FIG.
도 11은 풍력터빈장치의 제5 실시예를 도시한 단면도11 is a sectional view showing a fifth embodiment of a wind turbine device;
도 12는 풍력터빈장치의 제6 실시예를 도시한 단면도12 is a sectional view showing a sixth embodiment of a wind turbine device;
도 13은 도 12에 도시한 풍력터빈장치의 요부 확대 정면개략도13 is an enlarged front schematic view of main parts of the wind turbine shown in FIG. 12;
도 14는 도 12에 도시한 풍력터빈장치의 요부확대도14 is an enlarged view illustrating main parts of the wind turbine shown in FIG. 12;
도 15는 풍력터빈장치의 제7 실시예를 도시한 단면도15 is a sectional view showing a seventh embodiment of a wind turbine device;
도 16 내지 도 19는 형태가 다양한 바람날개를 도시한 개략도16 to 19 is a schematic view showing a variety of wind wings
※도면의 주요부분에 대한 설명※ ※ Description of main parts of drawing ※
100, 200, 300, 400 : 풍력터빈장치 110, 210, 310 : 하우징100, 200, 300, 400: wind turbine device 110, 210, 310: housing
111 : 제1 가이드부재 112 : 제2 가이드부재111: first guide member 112: second guide member
113 : 지지축 120,220, 320, 410 : 회전축113: support shaft 120,220, 320, 410: rotation shaft
130, 330 : 날개차 131 : 바디130, 330: wing 131: body
132 : 원판부재 133 : 블레이드132: disc member 133: blade
134, 140 : 날개편 135 : 제1 연장부134 and 140: wing piece 135: first extension part
136 : 제2 연장부 150, 350 : 풍력재활용수단136: second extension portion 150, 350: wind power recycling means
151, 351 : 유동관 152, 352 : 압력밸브151, 351: flow pipe 152, 352: pressure valve
160 : 방향타 240, 340 : 집풍부160: rudder 240, 340: wind collector
250, 475 : 방향타 260 : 압력밸브유닛250, 475: rudder 260: pressure valve unit
261, 262 : 회전가이드판 263 : 스프로킷261, 262: rotation guide plate 263: sprocket
264 : 체인 265 : 구동모터264: chain 265: drive motor
266 : 공기배출홀 267 : 서포트부재266: air exhaust hole 267: support member
268 : 압력센서 341 : 풍향안내부재268 pressure sensor 341 wind direction guide member
342 : 중간판 420 : 제1 날개차유닛342: the middle plate 420: the first wing vehicle unit
430 : 제2 날개차유닛 440 : 제3 날개차유닛430: second vane unit 440: third vane unit
421 : 제1 원통부재 431 : 제2 원통부재421: first cylindrical member 431: second cylindrical member
441 : 제3 원통부재 450 : 저항부재441: third cylindrical member 450: resistance member
451 : 제1 관통구 452 : 제2 관통구451: first through hole 452: second through hole
453 : 유입홈 460 : 배기홀453: inlet groove 460: exhaust hole
470 : 가이드프레임 471, 571 : 개방부470: guide frame 471, 571: opening
472, 572 : 폐쇄부 473, 476 : 집풍날개472, 572: closed part 473, 476: wind blower
474 : 경사판 477 : 바람날개474: slope plate 477: wind wing
500 : 풍향회전구 510 : 바람저항판500: wind direction turning hole 510: wind resistance plate
520 : 역풍방지판 530 : 풍향회전판520: wind baffle plate 530: wind direction rotating plate
e : 가상선 f : 일측교점e: virtual line f: one-sided intersection
g : 일측선 h : 연장선g: one-sided line h: extension line
이하, 첨부된 도면을 참조하여 본 발명에 따른 풍력터빈장치를 더욱 상세하게 설명하면 다음과 같다.Hereinafter, with reference to the accompanying drawings will be described in more detail the wind turbine device according to the present invention.
도 1 내지 도 3에는 본 발명에 따른 풍력터빈장치(100)의 제1 실시예가 도시되어 있다.1 to 3 show a first embodiment of the wind turbine device 100 according to the present invention.
도면을 참조하면, 풍력터빈장치(100)는 하우징(110)과, 하우징(110)을 지지하는 지지축(113)과, 하우징(110)의 내부에 회전 가능하게 설치되는 회전축(120)과, 상기 회전축(120)에 결합되어 회전축(120)을 회전시키는 날개차(130)와, 하우징(110)의 내부로 유입된 풍력을 재활용하기 위한 풍력재활용수단(150)과, 하우징(110)의 방향을 풍향과 일치시키기 위한 풍향가이드부를 포함한다.Referring to the drawings, the wind turbine device 100 includes a housing 110, a support shaft 113 for supporting the housing 110, a rotating shaft 120 rotatably installed in the housing 110, The vane 130 coupled to the rotary shaft 120 to rotate the rotary shaft 120, the wind recycling means 150 for recycling the wind flow introduced into the housing 110, the direction of the housing 110 It includes a wind direction guide for matching the wind direction.
하우징(110)은 원통형이며 내부에 회전축(120)과 날개차(130)가 설치될 수 있도록 소정의 설치공간을 갖는다. 하우징(110)의 전방은 내부로 바람이 유입될 수 있게 개구되어 있으며, 하우징(110)의 전단에는 하우징(110)으로부터 돌출될수록 내경이 점점 커지게 형성되어 있는 제1 가이드부재(111)가 설치되어 있다.The housing 110 is cylindrical and has a predetermined installation space so that the rotation shaft 120 and the vane 130 can be installed therein. The front of the housing 110 is opened so that the wind can be introduced into the inside, the front end of the housing 110 is provided with a first guide member 111 is formed so that the inner diameter is gradually increased as it protrudes from the housing 110 It is.
또한 하우징(110)의 전방에는 원뿔형상의 제2 가이드부재(112)도 설치되어 있으며, 제2 가이드부재(112)에 의해 바람은 하우징(110)의 내부 가장자리 측으로 가이드되어 하우징(110)의 내부로 유입된다.In addition, the front of the housing 110 is also provided with a conical second guide member 112, the wind is guided by the second guide member 112 toward the inner edge of the housing 110 to the interior of the housing 110 Inflow.
지지축(113)은 하우징(110)을 회전 가능하게 지지하는 것으로, 상기 하우징(110)은 수평방향으로 연장되게 설치되며, 지지축(113)은 지면으로부터 수직방향으로 연장되게 설치된다. 하우징(110)은 상기 지지축(113)의 상단에 회전 가능하게 설치되어 있으며, 후술하는 풍향가이드수단에 의해 풍향에 대응하는 방향으로 하우징(110)의 전단이 위치하도록 회전하게 된다. Support shaft 113 is to rotatably support the housing 110, the housing 110 is installed to extend in the horizontal direction, the support shaft 113 is installed to extend in the vertical direction from the ground. The housing 110 is rotatably installed at the upper end of the support shaft 113, and rotates so that the front end of the housing 110 is located in a direction corresponding to the wind direction by the wind direction guide means described later.
상기 풍향가이드수단은 상술한 바와 같이 하우징(110)의 전단 개구부가 풍향에 대응하는 방향으로 위치하도록 하우징(110)을 회전시키는 것으로 하우징(110)의 후방에 설치되는 방향타(160)로 형성되어 있다.The wind direction guide means is formed of a rudder 160 installed at the rear of the housing 110 by rotating the housing 110 such that the front end opening of the housing 110 is located in a direction corresponding to the wind direction as described above. .
상기 방향타(160)에 의해 하우징(110)의 전방은 항상 바람이 불어오는 방향을 향하도록 회전하며, 따라서 개부된 하우징(110)의 전방으로 바람의 유입량이 극대화된다.The front of the housing 110 is always rotated by the rudder 160 to face the direction in which the wind blows, thereby maximizing the inflow of wind toward the front of the opened housing 110.
상기 풍력재활용수단(150)은 하우징(110) 내부로 유입된 바람을 재활용 하기 위한 것으로서, 하우징(110)의 후단에 형성되어 있는 배기구로부터 연장되는 유동관(151)과, 유동관(151)에 설치되는 압력밸브(152)를 포함한다.The wind power recycling means 150 is for recycling the wind introduced into the housing 110, the flow pipe 151 extending from the exhaust port formed in the rear end of the housing 110, and is installed in the flow pipe 151 And a pressure valve 152.
유동관(151)은 상기 배기구로부터 하우징(110)의 전단까지 연장되어 있어서, 상기 배기구로부터 배출되는 공기를 다시 하우징(110)의 전단으로 공급한다.The flow pipe 151 extends from the exhaust port to the front end of the housing 110, and supplies air discharged from the exhaust port to the front end of the housing 110 again.
상기 유동관(151)의 관로상에는 압력밸브(152)가 설치되어 있는데, 공기의 재활용으로 인해 하우징(110) 내부의 공기압이 지나치게 높아지면 상기 압력밸브(152)를 통해서 공기가 하우징(110)의 전단으로 공급되지 않고 하우징(110)의 외부로 바로 배출되도록 한다.The pressure valve 152 is installed on the pipeline of the flow pipe 151. When the air pressure inside the housing 110 becomes excessively high due to the recycling of the air, the air flows through the pressure valve 152 to the front end of the housing 110. It is to be discharged directly to the outside of the housing 110 without being supplied to.
상기 압력밸브(152)는 사용자가 설정된 임의의 압력값을 초과하면 개방되도록 압력센서와, 압력센서에 의해 출구를 개폐하는 개폐기로 구성될 수 있으며, 이와는 달리 출구를 개폐하는 개폐기가 회동가능하게 설치되고 이 개폐기의 회동축에 개폐기가 출구를 폐쇄한 상태로 유지시키기 위한 토션스프링을 구비할 수도 있다.The pressure valve 152 may be composed of a pressure sensor and a switch for opening and closing the outlet by the pressure sensor to open when the user exceeds a predetermined pressure value, otherwise the switch for opening and closing the outlet is rotatably installed. The torsion spring may be provided on the rotation shaft of the switch to maintain the switch in the closed state.
이 경우 압력밸브(152)에서 공기를 배출시키는 압력의 크기는 토션스프링의 탄성력의 크기에 따라 조절될 수 있다.In this case, the magnitude of the pressure for discharging air from the pressure valve 152 may be adjusted according to the magnitude of the elastic force of the torsion spring.
상기 회전축(120)은 하우징(110)의 길이방향을 따라 연장되며 하우징(110)의 내부에서 자축회전 가능하게 설치되어 있다.The rotation shaft 120 extends along the longitudinal direction of the housing 110 and is installed to be rotatable within the housing 110.
상기 회전축(120)은 하우징(110)의 길이방향을 따라 연장되도록 회전 가능하게 설치되는데, 도시되지는 않았으나, 상기 회전축(120)의 일측에는 회전축(120)의 회전력을 이용해 발전(發電)하는 발전기가 설치될수도 있으며, 또는 회전축(120)에 풀리나 스프로킷이 설치되어 벨트나 체인연결을 통해 회전축(120)의 회전력을 전달해 가용에너지로 변환시킬 수도 있다.The rotating shaft 120 is installed to be rotatable so as to extend along the longitudinal direction of the housing 110, although not shown, a generator for generating power using the rotational force of the rotating shaft 120 on one side of the rotating shaft 120 It may be installed, or the pulley or sprocket is installed on the rotating shaft 120 may be converted into available energy by transmitting the rotational force of the rotating shaft 120 through a belt or chain connection.
그리고 상기 날개차(130)는 하우징(110)의 내부에 설치되어 유입되는 바람의 풍력을 가용에너지로 변환하기 위한 것으로, 상기 회전축(120)에 설치되는 원통형의 바디(131)와, 바디(131)의 외부로 돌출된 블레이드(133)를 포함한다.In addition, the vane 130 is installed in the housing 110 to convert the wind power of the incoming wind into available energy, the cylindrical body 131 and the body 131 is installed on the rotating shaft 120 It includes a blade 133 protruding to the outside.
바디(131)는 원판형상의 원판부재(132)들이 상호 적층 결합되어 형성된 것인데, 도 3에 도시된 바와 같이 원판부재(132)는 원판형이며 중앙에 회전축(120)과 결합되도록 체결홀이 형성되어 있다.The body 131 is formed by stacking disc-shaped disc members 132 to each other. As shown in FIG. 3, the disc member 132 is disc-shaped and a fastening hole is formed to be coupled to the rotation shaft 120 at the center thereof. It is.
블레이드(133)는 상기 각각의 원판부재(132)들에 마련된 날개편(134)들이 연결되어 형성된다.The blade 133 is formed by connecting the blade pieces 134 provided on the respective disc members 132.
날개편(134)은 바람이 유입되는 방향 상에서 원판부재(132)의 전방 가장자리로부터 방사상의 방향으로 소정길이 돌출되어 있으며, 원판부재(132)의 후방으로 연장된 제1 연장부(135)와, 상기 제1 연장부(135)의 단부로부터 소정각도 절곡된 상태로 원판부재(132)의 후면 가장자리까지 연장되는 제2 연장부(136)를 포함한다.The wing piece 134 protrudes a predetermined length in a radial direction from the front edge of the disc member 132 in the direction in which the wind flows, and extends to the rear of the disc member 132. And a second extension part 136 extending from the end of the first extension part 135 to a rear edge of the disc member 132 in a bent angle.
각각의 날개편(134)들은 제1, 제2 연장부(135,136)(136)가 각각 인접하는 원판부재(132)에 형성된 날개편(134)의 제2 연장부(136) 및 제1 연장부(135)와 연결되도록 형성되어 있어서, 날개편(134)들의 연결에 의해 형성되는 블레이드(133)는 소정간격으로 절곡된 절곡구간을 갖게되며, 바람이 유입되어 진행하는 과정에서 상기 블레이드(133)의 절곡면과 충돌함으로써 블레이드(133) 및 원판부재(132)를 회전시키게 된다.Each of the wing pieces 134 includes a second extension part 136 and a first extension part of the wing piece 134 formed on the disc member 132 adjacent to the first and second extension parts 135 and 136 and 136, respectively. Is formed to be connected to the 135, the blade 133 formed by the connection of the blade pieces 134 has a bending section bent at a predetermined interval, the blade 133 in the process of the wind flows in progress The blade 133 and the disc member 132 are rotated by colliding with the bent surface of the blade.
도 4에는 날개차(130)의 다른 실시예가 도시되어 있다.4 illustrates another embodiment of the vane 130.
본 실시예의 날개차(130)는 원판부재(132)의 외주면에 설치되는 날개편(140)들이 원판부재(132)의 전방으로부터 후방까지 직선으로 연결되되 회전축(120)의 연장방향을 기준으로 소정각도 경사지게 연장되도록 형성되어 있다.The vane wheel 130 of the present embodiment has the wing pieces 140 installed on the outer circumferential surface of the disc member 132 are connected in a straight line from the front to the rear of the disc member 132, the predetermined direction based on the extension direction of the rotary shaft 120 It is formed to extend at an oblique angle.
본 실시예의 각각의 날개편(140)은 각 단부가 인접하는 날개편(140)과 이격되게 형성되어 있어서 바람이 진행하면서 각각의 날개편(140)의 측면에 충돌하여 날개차(130)에 회전력을 인가하게 된다.Each wing piece 140 of the present embodiment is formed so that each end is spaced apart from the adjacent wing piece 140 so that the wind impinges on the side of each wing piece 140, the rotational force to the wing car 130 Will be applied.
본 실시예의 날개차(130)들은 원통형의 바디(131) 외주면에 형성된 블레이드(133)가 풍력을 회전력을 변환시키게 되며, 바람은 블레이드(133)를 통과하도록 불어야 하므로 상기 제2 가이드부재(112)에 의해 하우징(110)으로 유입되는 바람이 하우징(110)의 가장자리측을 통해 이동하도록 가이드된다.The vanes 130 of the present embodiment are blades 133 formed on the outer circumferential surface of the cylindrical body 131 to convert the rotational force of the wind, the wind should blow through the blade 133 so that the second guide member 112 Wind is introduced into the housing 110 is guided to move through the edge side of the housing 110.
상기 제2 가이드부재(112)는 도 2에 도시된 것처럼 풍량에 따라 단부의 외경이 확장되거나 축소되도록 형성될 수도 있다.As shown in FIG. 2, the second guide member 112 may be formed to expand or contract the outer diameter of the end portion according to the air volume.
도시되지는 않았으나, 제2 가이드부재(112)는 내주면에 우산살과 같이 다수의 지지살이 형성되어 있고, 제2 가이드부재(112)의 중심축에 액튜에이터에 의해 중심축을 따라 전진 또는 후진할 수 있는 이동체가 마련되어 있는데, 이 이동체가 상기 지지살들과 연결되어 전방으로 이동하면 제2 가이드부재(112)의 단부 외경이 확장되고, 반대로 후방으로 이동하면 제2 가이드부재(112)가 접혀져 단부 외경이 축소된다.Although not shown, the second guide member 112 has a plurality of support bars formed on the inner circumferential surface, such as an umbrella, and may move forward or backward along the central axis by an actuator on the central axis of the second guide member 112. A movable body is provided, and when the movable body is connected to the support bars and moved forward, the outer diameter of the end portion of the second guide member 112 is expanded, and if the movable body moves backward, the second outer guide member 112 is folded and the end outer diameter is increased. Is reduced.
즉, 우산이 펼쳐지거나 접히는 것과 같이 제2 가이드부재(112)의 단부의 외경이 확장되게 하면 바람이 하우징(110)의 내부로 유입되는 유입구의 면적이 좁아지게 되므로 풍속이 빨라지며, 반대로 풍량이 많을 때에는 충분한 풍속을 얻을 수 있으므로 제2 가이드부재(112)의 단부측 외경을 축소시켜 개방된 유입구의 면적을 확장시킬 수도 있다.That is, when the outer diameter of the end of the second guide member 112 is expanded, such as when the umbrella is unfolded or folded, the area of the inlet through which the wind is introduced into the housing 110 is narrowed, so that the wind speed is increased, and conversely, In many cases, sufficient wind speed can be obtained, so that the outer diameter of the open end of the second guide member 112 can be reduced.
도 5에는 풍력터빈장치(200)의 제2 실시예가 도시되어 있다.5 shows a second embodiment of a wind turbine device 200.
본 실시예의 풍력터빈장치(200)는 하우징(210)의 내부에 설치된 회전축(220)이 수직방향으로 연장되게 설치되어 있으며, 하우징(210)의 상단으로 유입되는 바람은 하우징(210)의 유입구보다 상대적으로 큰 직경을 갖는 집풍부(240)에 의해 하우징(210)으로 가이드되도록 형성되어 있다. Wind turbine device 200 of the present embodiment is installed so that the rotary shaft 220 installed in the interior of the housing 210 to extend in the vertical direction, the wind flowing into the upper end of the housing 210 than the inlet of the housing 210 It is formed to be guided to the housing 210 by the air collecting unit 240 having a relatively large diameter.
상기 집풍부(240)는 바람이 유입되는 유입구가 바람이 불어오는 방향을 향하도록 하우징(210)에 회전 가능하게 설치되고, 상기 집풍부(240)에는 유입구가 바람의 풍향과 대응하는 위치로 위치시키는 방향타(250)가 설치되어 있다.The wind collecting part 240 is rotatably installed in the housing 210 such that the inlet port through which the wind is introduced faces the wind blowing direction, and the inlet port is positioned at a position corresponding to the wind direction of the wind unit 240. A rudder 250 is provided.
본 실시예의 풍력터빈장치(200)는 회전축(220)이 수직방향으로 연장되어 설치되므로 회전축(220)의 회전을 이용한 에너지 전달 과정이 단순해질 수 있다.In the wind turbine device 200 of the present embodiment, since the rotating shaft 220 is installed to extend in the vertical direction, the energy transmission process using the rotation of the rotating shaft 220 may be simplified.
본 실시예의 풍력터빈장치(200)는 도 6 및 도 7에 도시된 것처럼, 태풍이 불 때와 같이 집풍부(240)를 통해 유입되는 풍량이 지나치게 많아져 하우징(210)의 내부에서의 압력이 안전운전을 방해할 정도로 높아지는 것을 방지하기 위한 압력밸브유닛(260)을 더 구비할 수도 있다.6 and 7, the wind turbine apparatus 200 according to the present embodiment has an excessive amount of air flowing through the wind collecting unit 240, such as when a typhoon blows, and thus the pressure inside the housing 210 is increased. It may be further provided with a pressure valve unit 260 to prevent the high enough to disturb the safe operation.
압력밸브유닛(260)은 하우징(210)의 내부 상측에 상하방향으로 연장되는 회전축을 중심으로 회전 가능하게 설치된 복수개의 회전가이드판(261)과, 이 회전가이드판(262)들을 회전시키기 위한 스프로킷(263)과 체인(264) 및 구동모터(265)를 포함한다.The pressure valve unit 260 includes a plurality of rotation guide plates 261 rotatably installed around an axis of rotation extending in an up and down direction inside the housing 210, and a sprocket for rotating the rotation guide plates 262. 263, a chain 264, and a drive motor 265.
상기 회전가이드판(261)은 집풍부(240)를 통해 유입되는 바람이 상하방향으로 연장된 하우징(210)에 용이하게 유입될 수 있도록 풍향이 수평방향에서 수직방향으로 자연스럽게 변경되게 가이드한다.The rotation guide plate 261 guides the wind direction to be naturally changed from the horizontal direction to the vertical direction so that the wind flowing through the wind collecting part 240 can be easily introduced into the housing 210 extending in the vertical direction.
하우징(210)의 상부 일측에는 외부와 연통되는 공기배출홀(266)이 형성되어 있으며, 이 공기배출홀(266)을 개폐하기 위한 개폐판(262)이 상기 회전가이드판(261)과 마찬가지로 수직방향으로 연장된 회전축을 중심으로 회전 가능하게 설치되어 있다.An air discharge hole 266 is formed at an upper side of the housing 210 to communicate with the outside, and an opening and closing plate 262 for opening and closing the air discharge hole 266 is vertically similar to the rotation guide plate 261. It is rotatably installed about the rotating shaft extended in the direction.
상기 회전가이드판(261)과 개폐판(262)은 모두 하우징(210)의 내부를 가로지르도록 연장된 서포트부재(267)에 회전축이 회전 가능하게 결합되어 있으며, 서포트부재(267)의 하부에서 각각의 회전축들에 스프로킷(263)들이 설치되어 있다. 그리고 이 스프로킷(263)들은 체인(264)에 의해 연결된다.Both the rotation guide plate 261 and the opening and closing plate 262 are rotatably coupled to the support member 267 extending to cross the inside of the housing 210, and at the bottom of the support member 267. Sprockets 263 are provided on the respective rotation shafts. These sprockets 263 are connected by a chain 264.
하우징(210)의 외부에는 구동모터(265)가 설치되어 있으며, 이 구동모터(265)의 구동축에 설치된 스프로킷(263)이 상기 체인(264)과 연결되어 구동모터(265)의 구동력이 체인(264)과 스프로킷(263)들에 의해 각 회전축으로 전달된다.A drive motor 265 is installed outside the housing 210, and the sprocket 263 installed on the drive shaft of the drive motor 265 is connected to the chain 264 so that the driving force of the drive motor 265 is the chain ( 264 and the sprockets 263 are transmitted to each axis of rotation.
그리고 상기 하우징(210)의 내부 일측에는 하우징(210) 내부의 압력을 측정하는 압력센서(268)가 설치되어 있어서, 압력센서(268)에서 주기적으로 측정되는 압력값이 설정된 값을 넘어서게 되면 구동모터(265)를 구동하여 개폐판(262)을 회전시킴으로써 공기배출홀(266)을 개방한다.And a pressure sensor 268 for measuring the pressure inside the housing 210 is installed on one side of the housing 210, the drive motor when the pressure value periodically measured by the pressure sensor 268 exceeds the set value The air discharge hole 266 is opened by driving the opening and closing plate 262 by driving 265.
따라서 집풍부(240)를 통해 유입된 바람은 공기배출홀(266)을 통해 일부가 외부로 빠져나가기 때문에 하우징(210) 내부의 압력을 낮출 수 있게 된다.Therefore, the wind introduced through the wind collecting part 240 is able to lower the pressure inside the housing 210 because a part of the wind flows out through the air discharge hole 266.
본 실시예에서는 상기 회전가이드판(261)과 개폐판(262)이 스프로킷(263)과 체인(264)에 의해 회전 구동이 이루어지도록 동력전달이 이루어지지만 동력 전달 방법은 이 외에도 다양한 형태로 구현될 수 있다.In this embodiment, the power transmission is made so that the rotation guide plate 261 and the opening and closing plate 262 is rotated by the sprocket 263 and the chain 264, but the power transmission method may be implemented in various forms in addition to this. Can be.
도 8에는 풍력터빈장치(300)의 제3 실시예가 도시되어 있다.8 shows a third embodiment of a wind turbine device 300.
도면을 참조하면, 본 실시예의 풍력터빈장치(300)는 수직방향으로 연장된 하우징(310)과, 이 하우징(310)의 내부에 설치되는 회전축(320) 및 날개차(330), 하우징(310)의 상부에 설치되어 바람을 집풍하는 집풍부(340)와, 풍력재활용수단(350)을 포함한다.Referring to the drawings, the wind turbine device 300 of the present embodiment includes a housing 310 extending in a vertical direction, a rotating shaft 320 and a vane 330 installed inside the housing 310, and a housing 310. It is installed on the upper part of the wind collecting part 340 to collect the wind, and includes a wind recycling means 350.
본 실시예의 풍력터빈장치(300)는 하우징(310)과 회전축(320)이 수직방향으로 연장되어 있으며, 하우징(310)은 상부로부터 하부로 바람이 통과할 수 있도록 상부에 집풍부(340)가 설치되어 있다.In the wind turbine device 300 of the present embodiment, the housing 310 and the rotating shaft 320 extend in the vertical direction, and the housing 310 has a wind collecting part 340 at the upper portion so that wind can pass from the upper portion to the lower portion. It is installed.
그리고 하우징(310)의 하단으로부터 배출되는 바람을 재활용하기 위해 유동관(351)이 하우징(310)의 하단으로부터 연장되어 하우징(310)의 상단과 연결된다. 상기 유동관(351)에는 유동관(351) 내부의 압력이 지나치게 높아지는 것을 방지하기 위한 압력밸브(352)가 마련되어 있으며, 본 실시예의 풍력재활용수단(350)은 제1 실시예와 기능 및 구성이 동일하므로 상세한 설명은 생략한다.In addition, the flow pipe 351 extends from the bottom of the housing 310 to be connected with the top of the housing 310 to recycle the wind discharged from the bottom of the housing 310. The flow pipe 351 is provided with a pressure valve 352 to prevent the pressure inside the flow pipe 351 is too high, the wind recycling means 350 of the present embodiment has the same function and configuration as the first embodiment Detailed description will be omitted.
집풍부(340)는 하우징(310)의 상부에 설치되어 하우징(310)으로 바람을 집풍하는 것이다.The wind collecting part 340 is installed on the upper portion of the housing 310 to wind the wind to the housing 310.
본 실시예의 집풍부(340)는 사방으로부터 불어오는 바람을 모두 집풍할 수 있는데, 상광하협 형상으로 형성된 풍향안내부재(341)에 의해 사방에서 불어오는 바람을 하강기류로 가이드하고, 가이드된 바람은 하우징(310)측으로 가이드되어 하우징(310)의 내부에서 날개차(330)를 회전시키게 된다.The wind collecting part 340 of the present embodiment can wind all the wind blowing from all directions, guides the wind blowing from all directions by the wind direction guide member 341 formed in the shape of the upper and lower strait to the downdraft, the guided wind is Guided to the housing 310 to rotate the vane 330 in the interior of the housing 310.
상기 풍향안내부재(341)는 상술한 것처럼 상부에서 하부로 갈수록 폭이 점점 좁아지며, 소정의 곡률을 갖도록 연장되어 있다.As described above, the wind direction guide member 341 is gradually narrower from the top to the bottom, and extends to have a predetermined curvature.
풍향안내부재(341)가 수평면과 수직면이 교차하는 형태로 형성될 때에는 바람의 진행방향이 수직방향으로 변경될 때, 바람이 수직면에 충돌한 뒤 하강하게 되므로 풍력이 감소되지만 본 실시예와 같이 풍향안내부재(341)가 소정의 곡률을 갖도록 연장되어 있어서 바람이 풍향안내부재(341)의 외주면과 내주면을 따라 이동하게 되므로 저항을 최소화한 상태로 하우징(310)으로 유입될 수 있으므로 손실되는 에너지를 최소화할 수 있다.When the wind direction guide member 341 is formed in such a manner that the horizontal plane and the vertical plane cross each other, when the wind traveling direction is changed in the vertical direction, the wind is reduced after colliding with the vertical plane, but the wind power is reduced, Since the guide member 341 is extended to have a predetermined curvature, the wind moves along the outer and inner circumferential surfaces of the wind direction guide member 341, so that energy may be introduced into the housing 310 with minimal resistance. It can be minimized.
그리고 집풍부(340)는 중앙으로부터 방사상의 방향으로 돌출되고 상하방향으로 연장된 다수의 중간판(342)이 마련되어 있어서 수평방향으로 이동하는 바람의 집풍효율을 높일 수 있도록 되어 있다.In addition, the wind collecting part 340 is provided with a plurality of intermediate plates 342 protruding in the radial direction from the center and extending in the vertical direction to increase the wind collecting efficiency of the wind moving in the horizontal direction.
본 실시예에서는 중간판 (342)이 네개가 등간격으로 원주방향을 따라 이격 형성되어 있는 것으로 도시되었으나, 중간판(342)의 설치 갯수는 이에 한정되지는 않는다.In the present embodiment, four intermediate plates 342 are shown to be spaced apart along the circumferential direction at equal intervals, but the number of installation of the intermediate plates 342 is not limited thereto.
본 실시예의 풍력터빈장치(300)는 풍향에 관계없이 모든방향의 바람을 집풍할 수 있기 때문에 풍향이 수시로 변화하는 지역에 설치될 수 있다.The wind turbine device 300 of the present embodiment can be installed in an area where the wind direction changes from time to time because it can wind the wind in all directions irrespective of the wind direction.
본 실시예의 풍력터빈장치(300)는 집풍부(340)가 하우징(310)의 상부에 설치되어 바람을 하강시켜 하우징(310)으로 공급하도록 되어 있으나, 이와는 달리 집풍부(340)가 하우징(310)의 하부에 설치되어 있고, 집풍부(340)는 바람을 상방으로 가이드하여 하우징(310) 내의 날개차(330)를 회전시키도록 형성될 수도 있다.In the wind turbine device 300 of the present embodiment, the wind collecting part 340 is installed on the upper portion of the housing 310 to lower the wind to supply the housing 310. However, the wind collecting part 340 is different from the housing 310. Is installed at the bottom of the), the wind collecting unit 340 may be formed to rotate the vanes 330 in the housing 310 by guiding the wind upwards.
제2, 제3 실시예의 날개차(330)는 도 3 또는 도 4에 도시된 날개차(330) 구조가 적용될 수 있으며, 그에 대한 상세한 설명은 생략한다.In the vanes 330 of the second and third embodiments, the vanes 330 shown in FIG. 3 or 4 may be applied, and a detailed description thereof will be omitted.
도 9 및 도 10에는 풍력터빈장치(400)의 제4 실시예가 도시되어 있다.9 and 10 show a fourth embodiment of the wind turbine device 400.
본 실시예의 풍력터빈장치(400)는 수직방향으로 연장된 회전축(410)과, 회전축(410)과 연결되어 풍력을 통해 회전축(410)을 회전시키는 제1 내지 제3 날개차유닛(420,430,440)을 구비한다.The wind turbine device 400 of the present embodiment includes a rotation shaft 410 extending in the vertical direction and first to third vane wheel units 420, 430, and 440 connected to the rotation shaft 410 to rotate the rotation shaft 410 through wind power. Equipped.
제1 날개차유닛(420)은 회전축(410)을 감싸도록 회전축(410)과 결합되어 있고, 제2 날개차유닛(430)은 제1 날개차유닛(420)을 감싸며 제1 날개차유닛(420)과 연결되어 있다. 그리고 제3 날개차유닛(440)은 제2 날개차유닛(430)을 감싸며 제2 날개차유닛(430)과 연결된다.The first vane wheel unit 420 is coupled to the rotary shaft 410 to surround the rotary shaft 410, the second vane wheel unit 430 surrounds the first vane wheel unit 420 and the first vane wheel unit ( 420 is connected. The third vane wheel unit 440 surrounds the second vane wheel unit 430 and is connected to the second vane wheel unit 430.
제1 내지 제3 날개차유닛(420,430,440)은 각각 제1 내지 제3 원통부재(421,431,441)와, 제1 내지 제3 원통부재(421,431,441)의 외주면에 형성된 저항부재(450)를 구비한다.Each of the first to third vane wheel units 420, 430, and 440 includes first to third cylindrical members 421, 431, 441, and a resistance member 450 formed on an outer circumferential surface of the first to third cylindrical members 421, 431, 441.
제1 원통부재(421)는 회전축(410)을 감쌀 수 있도록 형성되어 있으며, 회전축(410)과 연결되어 일체로 회전하고, 제1 원통부재의 상부와 하부 중 어느 일측 또는 양측에는 유입된 바람이 외부로 배출될 수 있도록 통기공이 마련되어 있다. 제2 원통부재(431)는 제1 원통부재(421)와 연결되어 있고, 제3 원통부재(441)는 제2 원통부재(431)와 연결되어 있다. 따라서 회전축(410) 및 제1 내지 제3 원통부재(421,431,441)는 일체로 회전일 이루어지게 된다.The first cylindrical member 421 is formed to surround the rotary shaft 410, and is connected to the rotary shaft 410 to rotate integrally, the wind flows into any one or both of the upper and lower portions of the first cylindrical member Ventilation is provided for discharge to the outside. The second cylindrical member 431 is connected to the first cylindrical member 421, and the third cylindrical member 441 is connected to the second cylindrical member 431. Therefore, the rotating shaft 410 and the first to third cylindrical members 421, 431, 441 are integrally rotated.
상기 저항부재(450)는 상술한 것처럼 제1 내지 제3 원통부재(421,431,441)의 외주면에 형성되어 풍력을 제1 내지 제3 원통부재(421,431,441)의 회전력으로 변환하는 것이다.The resistance member 450 is formed on the outer circumferential surface of the first to third cylindrical members 421, 431, 441 as described above to convert the wind power into the rotational force of the first to third cylindrical members 421, 431, 441.
저항부재(450)는 제1 내지 제3 원통부재(421,431,441)의 외주면에 원주방향을 따라 복수개가 상호 이격 배열되도록 설치되어 있으며, 일측과 타측 단부에 각각 제1, 제2 관통구(451,452)가 형성되어 있는데, 제1 관통구(451)는 제2 관통구(452)보다 상대적으로 직경이 작게 형성되어 있다. 그리고 상기 제1 관통구(451)는 인접하는 저항부재(450)의 제2 관통구(452)를 통해 인접하는 저항부재(450)의 내부로 연장되어 있다.The resistance member 450 is installed on the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441 so as to be arranged in a plurality of spaced apart from each other in the circumferential direction, and the first and second through holes 451 and 452 are provided at one side and the other end, respectively. The first through hole 451 is formed to have a smaller diameter than the second through hole 452. The first through hole 451 extends into the adjacent resistance member 450 through the second through hole 452 of the adjacent resistance member 450.
따라서 외부로부터 제2 관통구(452)를 통해 바람이 유입되면 바람은 제1 관통구(451)를 통해 배출되나 제1 관통구(451)가 인접하는 저항부재(450)의 내부에 위치하므로 외부로 배출되지 못하고 저항부재(450)를 따라 지속적으로 이동하게 된다.Therefore, when wind is introduced from the outside through the second through hole 452, the wind is discharged through the first through hole 451, but the first through hole 451 is located inside the adjacent resistance member 450. It is not discharged to continue to move along the resistance member 450.
상기 저항부재(450)들 중 어느 하나는 제1 관통구(451)가 폐쇄되어 있으며, 제1 관통구(451)가 폐쇄된 저항부재(450)가 설치된 원통부재에는 내부로 관통되는 배기홀(460)이 형성되어 있다.Any one of the resistance members 450 has a first through-hole 451 is closed, the cylindrical member provided with the resistance member 450 is closed the first through-hole 451 is exhausted through the inside ( 460 is formed.
따라서 저항부재(450)의 내부를 통해 이동하는 바람은 상기 배기홀(460)을 통해 원통부재의 내부로 유입된다.Therefore, the wind moving through the interior of the resistance member 450 is introduced into the cylindrical member through the exhaust hole 460.
제3 원통부재(441)의 저항부재(450)를 따라 이동하는 바람은 배기홀(460)을 통해 제3 원통부재(441)의 내부로 유입된 뒤, 상기 제2 원통부재(431)를 회전시키게 되고, 제2 원통부재(431)의 저항부재(450)를 따라 이동한 후, 제2 원통부재(431)에 형성된 배기홀(460)을 통해 내부로 유입되어 제1 원통부재(421)를 회저시키게 된다.The wind moving along the resistance member 450 of the third cylindrical member 441 flows into the third cylindrical member 441 through the exhaust hole 460, and then rotates the second cylindrical member 431. After moving along the resistance member 450 of the second cylindrical member 431, the first cylindrical member 421 is introduced into the inside through the exhaust hole 460 formed in the second cylindrical member 431. To be recalled.
이렇게 제1 내지 제3 원통부재(421,431,441)를 모두 회전시키게 되므로 풍력의 에너지 손실을 최소화하게 된다.Since the first to third cylindrical members 421, 431, 441 are all rotated in this way, energy loss of wind power is minimized.
또한 본 실시예의 풍력터빈장치(400)는 도 10에 도시된 것처럼 제2 관통구(452)를 통해 바람이 유입되는 것이 용이하도록 제2 관통구(452)로 바람을 가이드하는 가이드프레임(470)을 더 구비할 수도 있다.In addition, the wind turbine device 400 of the present embodiment is a guide frame 470 for guiding the wind to the second through-hole 452 to facilitate the flow of wind through the second through-hole 452 as shown in FIG. It may be further provided.
가이드프레임(470)은 집풍이 용이하게 이루어짐과 동시에 저항부재(450)의 제2 관통구(452)로 바람이 용이하게 유입될 수 있도록 바람의 방향을 가이드하며, 날개차유닛의 주변 압력을 유지할 수 있게 형성되어 있다.The guide frame 470 guides the direction of the wind so that the wind can be easily introduced into the second through-hole 452 of the resistance member 450 at the same time, and maintains the surrounding pressure of the vane unit. It is formed to be.
도시된 것처럼 가이드프레임(470)은 제3 원통부재(441)를 감싸도록 형성되어 있는데, 저항부재(450)의 형성방향에 대응하여 바람이 유입되는 개방부(471)와, 바람의 유입이 차단되는 폐쇄부(472)를 같는다.As shown in the drawing, the guide frame 470 is formed to surround the third cylindrical member 441. The opening part 471 through which the wind flows in correspondence to the direction in which the resistance member 450 is formed, and the inflow of the wind is blocked. Is equal to the closed portion 472.
개방부(471)의 양 단부에는 방사상의 방향으로 연장되어 집풍면적을 확장시키는 집풍날개(473)가 형성되어 있고, 개방부(471)에는 다수개의 경사판(474)이 제3 원통부재(441)의 길이방향을 따라 연장되며, 원주방향을 따라 상호 소정간격 이격되도록 설치되어 있다.Both ends of the opening portion 471 are formed with wind collecting wings 473 extending in the radial direction to expand the wind collecting area, and the opening portion 471 has a plurality of inclined plates 474 in the third cylindrical member 441. It extends along the longitudinal direction of, and is installed to be spaced apart from each other by a predetermined interval along the circumferential direction.
상기 경사판(474)은 개방부(471)를 통해 유입되는 바람이 상기 제2 관통구(452)로 용이하게 유입될 수 있도록 방향을 가이드함으로써 원활한 구동이 이루어지도록 유도한다.The inclined plate 474 guides the direction so that the wind flowing through the opening 471 can be easily introduced into the second through hole 452 to induce smooth driving.
상기 배기홀(460)은 각각의 원통부재들에 하나만 설치될 수도 있으며, 원주방향을 따라 상호 이격되도록 복수개가 형성되어 있을 수도 있다.Only one exhaust hole 460 may be installed in each cylindrical member, and a plurality of exhaust holes 460 may be formed to be spaced apart from each other along the circumferential direction.
본 실시예의 가이드프레임(470)도 일측에 방향타(475)가 마련되어 있고 제1 내지 제3 원통부재(421,431,441)의 중심을 중심으로 회전 가능하게 설치되어 있어서, 방향타(475)에 의해 개방부(471)가 바람의 유입방향을 향해 위치하도록 회전함으로써 집풍 효과를 극대화하게 된다.The guide frame 470 of this embodiment is also provided with a rudder 475 on one side, and is rotatably installed around the center of the first to third cylindrical members 421, 431, 441, and the opening 471 by the rudder 475. ) Is rotated to face the direction of the inflow of wind to maximize the wind collection effect.
한편, 풍력터빈장치가 소형일 때는 상술한 바와 같은 구조의 풍력터빈장치가 바람직하나, 풍력이 강하고 풍력터빈장치가 대형화가 되면, 강한 풍력과 거대한 풍력터빈장치에 의해 풍력터빈장치가 쉽게 고장나거나 부서지는 경우가 발생하 수 있다. 따라서, 강한 풍력이 발생하는 장소나, 거대한 풍력터빈장치가 요구되는 경우에는 다음에 설명하는 풍력터빈장치의 구조가 바람직하다.On the other hand, when the wind turbine device is small, the wind turbine device having the above-described structure is preferable. However, when the wind power is strong and the wind turbine device becomes large, the wind turbine device is easily broken or damaged due to the strong wind and the huge wind turbine device. Loss can occur. Therefore, when the place where strong wind generate | occur | produces and when a huge wind turbine apparatus is required, the structure of the wind turbine apparatus demonstrated below is preferable.
도 11은 풍력터빈장치의 제5 실시예를 도시한 단면도이다.11 is a sectional view showing a fifth embodiment of the wind turbine device.
도 11을 참조하면, 본 실시예의 풍력터빈장치는 수직방향으로 연장된 회전축(410)과, 상기 회전축(410)과 연결되어 풍력을 통해 회전축(410)을 회전시키는 제1 내지 제3 날개차유닛(420,430,440)을 구비한다.Referring to FIG. 11, the wind turbine device according to the present embodiment has a rotation shaft 410 extending in a vertical direction, and the first to third vane wheel units connected to the rotation shaft 410 to rotate the rotation shaft 410 through wind power. (420,430,440).
상기 제1 날개차유닛(420)은 회전축(410)을 감싸도록 회전축(410)과 결합되어 있고, 제2 날개차유닛(430)은 제1 날개차유닛(420)을 감싸며 제1 날개차유닛(420)과 연결되어 있다. 또한, 상기 제3 날개차유닛(440)은 제2 날개차유닛(430)을 감싸며 제2 날개차유닛(430)과 연결된다.The first vane wheel unit 420 is coupled to the rotary shaft 410 to surround the rotary shaft 410, the second vane wheel unit 430 surrounds the first vane wheel unit 420, the first vane wheel unit 420 is connected. In addition, the third vane wheel unit 440 surrounds the second vane wheel unit 430 and is connected to the second vane wheel unit 430.
상기 제1 내지 제3 날개차유닛(420,430,440)은 각각 제1 내지 제3 원통부재(421,431,441)와, 상기 제1 내지 제3 원통부재(421,431,441)의 외주면에 형성된 바람날개(477)를 구비한다.The first to third vane wheel units 420, 430, and 440 include first to third cylindrical members 421, 431, 441 and wind vanes 477 formed on the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441, respectively.
상기 제1 원통부재(421)는 상기 회전축(410)을 감쌀 수 있도록 형성되어 있으며, 상기 회전축(410)과 연결되어 일체로 회전하고, 상기 제1 원통부재의 상부와 하부 중 어느 일측 또는 양측에는 유입된 바람이 외부로 배출될 수 있도록 통기공이 마련되어 있다. The first cylindrical member 421 is formed to surround the rotary shaft 410, and is connected to the rotary shaft 410 to rotate integrally, any one or both of the upper and lower portions of the first cylindrical member Ventilation is provided so that the incoming wind can be discharged to the outside.
또한, 상기 제2 원통부재(431)는 제1 원통부재(421)와 연결되어 있고, 제3 원통부재(441)는 제2 원통부재(431)와 연결되어 있다. In addition, the second cylindrical member 431 is connected to the first cylindrical member 421, and the third cylindrical member 441 is connected to the second cylindrical member 431.
따라서 상기 회전축(410) 및 제1 내지 제3 원통부재(421,431,441)는 일체로 회전이 이루어지게 된다.Therefore, the rotation shaft 410 and the first to third cylindrical members 421, 431, 441 are integrally rotated.
상기 바람날개(477)는 상술한 것처럼 상기 제1 내지 제3 원통부재(421,431,441)의 외주면에 형성되어 풍력을 제1 내지 제3 원통부재(421,431,441)의 회전력으로 변환하는 것이다. 상기 저항부재(450)에 비교하여 유입되어 부딪히고 상기 바람날개(477)의 일측선(g)을 넘어가는 바람이 바람날개(477)의 회전를 방해하지 않도록 유선형으로 제작함이 바람직하다.The wind wing 477 is formed on the outer circumferential surface of the first to third cylindrical members 421, 431, 441 as described above to convert the wind power into the rotational force of the first to third cylindrical members 421, 431, 441. Compared to the resistance member 450, it is preferable that the wind flowing in and hitting the one side g of the wind wing 477 does not interfere with the rotation of the wind wing 477.
또한, 도 14의 요부 확대부분을 참조하면, 상기 바람날개(477)는 제1 내지 제3 원통부재(421,431,441)의 외주면에 원주방향을 따라 복수개가 상호 이격 배열되도록 설치되어 있으며, 일측과 타측 단부에 각각 제1, 제2 관통구(451,452)가 형성되어 있는데, 제1 관통구(451)는 제2 관통구(452)보다 상대적으로 직경이 작게 형성되어 있다. In addition, referring to the enlarged main portion of FIG. 14, the wind vanes 477 are installed on the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441 so that a plurality of the wind vanes are spaced apart from each other along the circumferential direction. The first and second through holes 451 and 452 are respectively formed in the first through holes 451, and the first through holes 451 are smaller in diameter than the second through holes 452.
또한, 상기 제1 관통구(451)는 인접하는 바람날개(477)의 제2 관통구(452)를 통해 인접하는 바람날개(477)의 내부로 연장되어 있다.In addition, the first through hole 451 extends into the adjacent wind wing 477 through the second through hole 452 of the adjacent wind wing 477.
따라서 외부로부터 상기 제2 관통구(452)를 통해 바람이 유입되면 바람은 제1 관통구(451)를 통해 배출되나 제1 관통구(451)가 인접하는 바람날개(477)의 내부에 위치하므로 외부로 배출되지 못하고 바람날개(477)를 따라 지속적으로 이동하게 된다.Therefore, when wind is introduced from the outside through the second through hole 452, the wind is discharged through the first through hole 451, but the first through hole 451 is located inside the adjacent wind wing 477. It is not discharged to the outside and continuously moves along the wind wing 477.
상기 날개차유닛(420, 430, 440)에 형성된 바람날개(477)들은 교대로 제1 관통구(451)의 개폐가 반복되어 있으며, 상기 제1 관통구(451)가 폐쇄된 바람날개(477)가 설치된 원통부재에는 내부로 관통되는 배기홀(460)이 형성되어 있다. Wind vanes 477 formed on the vane units 420, 430, and 440 are alternately repeated opening and closing of the first through holes 451, and wind vanes 477 in which the first through holes 451 are closed. ) Is provided with an exhaust hole 460 penetrating therein.
따라서 바람날개(477)의 내부를 통해 이동하는 바람은 상기 배기홀(460)을 통해 원통부재의 내부로 유입된다.Therefore, the wind moving through the interior of the wind blade 477 is introduced into the cylindrical member through the exhaust hole 460.
상기 제3 원통부재(441)의 바람날개(477)를 따라 이동하는 바람은 배기홀(460)을 통해 제3 원통부재(441)의 내부로 유입된 뒤, 상기 제2 원통부재(431)를 회전시키게 되고, 상기 제2 원통부재(431)의 바람날개(477)를 따라 이동한 후, 제2 원통부재(431)에 형성된 배기홀(460)을 통해 내부로 유입되어 제1 원통부재(421)를 회전시게 된다.Wind moving along the wind blade 477 of the third cylindrical member 441 is introduced into the third cylindrical member 441 through the exhaust hole 460, and then the second cylindrical member 431 is opened. After rotating, and moving along the wind blade 477 of the second cylindrical member 431, the first cylindrical member 421 is introduced into the inside through the exhaust hole 460 formed in the second cylindrical member 431. ) Will rotate.
이렇게 제1 내지 제3 원통부재(421,431,441)를 모두 회전시키게 되므로 풍력에너지 손실을 최소화하게 된다.The first to third cylindrical members 421, 431, 441 are rotated in this way, thereby minimizing wind energy loss.
또한, 본 실시예의 풍력터빈장치는 상기 제2 관통구(452)를 통해 바람이 유입되는 것이 용이하도록 제2 관통구(452)로 바람을 가이드하는 가이드프레임(미도시)을 더 구비할 수도 있다.In addition, the wind turbine device of the present embodiment may further include a guide frame (not shown) for guiding the wind to the second through hole 452 to facilitate the flow of wind through the second through hole 452. .
상기 가이드프레임(미도시)은 집풍이 용이하게 이루어짐과 동시에 바람날개(477)의 제2 관통구(452)로 바람이 용이하게 유입될 수 있도록 바람의 방향을 가이드하며, 날개차유닛의 주변 압력을 유지할 수 있게 형성되어 있다.The guide frame (not shown) guides the direction of the wind so that the wind can be easily introduced into the second through hole 452 of the wind wing 477 and at the same time, the pressure around the wing vehicle unit It is formed to maintain.
상기 가이드프레임(미도시)은 날개차유닛(420, 430, 440)의 상측면과 하측면을 덮고, 측면은 외부공기가 유입될 수 있도록 개방되어 있으며, 다수개의 집풍날개(476)가 구비되어 있다.The guide frame (not shown) covers the upper side and the lower side of the vanes unit 420, 430, 440, the side is open so that the outside air can be introduced, a plurality of wind vane 476 is provided have.
상기 가이드프레임(미도시)의 일측면에는 상기 바람날개(477)의 개방된 일측으로 바람이 용이하게 이동할 수 있도록 바람의 유입방향을 가이드하는 다수의 경사판(474)이 설치된다.One side surface of the guide frame (not shown) is provided with a plurality of inclined plate 474 for guiding the inflow direction of the wind so that the wind can easily move to the open one side of the wind wing 477.
특히, 상기 가이드프레임(미도시)에는 방사상의 방향으로 연장되어 집풍면적을 확장시키는 집풍날개(476)가 형성되어 있고, 상기 바람날개(477)의 개방된 일측으로는 다수개의 경사판(474)이 제3 원통부재(441)의 길이방향을 따라 연장되며, 원주방향을 따라 상호 소정간격 이격되도록 설치되어 있다.In particular, the guide frame (not shown) is formed in the radial direction to extend the wind collecting area to extend the wind collecting area is formed, a plurality of inclined plate 474 to the open side of the wind wing (477) It extends along the longitudinal direction of the 3rd cylindrical member 441, and is installed so that mutually spaced apart may be mutually spaced along the circumferential direction.
상기 경사판(474)은 개방된 일측을 통해 유입되는 바람이 상기 제2 관통구(452)로 용이하게 유입될 수 있도록 방향을 가이드 함으로써 원활한 구동이 이루어지도록 유도한다.The inclined plate 474 guides the direction so that the wind flowing through the open one side can be easily introduced into the second through hole 452 to induce smooth driving.
상기 배기홀(460)은 원통부재들에 다수개가 교대로 설치될 수도 있으며, 원주방향을 따라 상호 이격되도록 형성된다.The plurality of exhaust holes 460 may be alternately installed in the cylindrical members and spaced apart from each other along the circumferential direction.
특히, 상기 회전축(410)의 중심에서 상기 제3 날개차유닛(440)에 장착된 바람날개(477)의 일측교점(f)을 연결하여 연장한 가상선(e)과 상기 바람날개(477)의 일측선(g)이 이루는 각도는 0°내지 45°이루는 것이 특징으로서, 외부로부터 유입되는 바람이 상기 바람날개(477)의 일측선(g)에 부딪힐 때 가장 큰 회전력을 일으킬 수 있는 각도를 의미한다.In particular, the imaginary line (e) and the wind wing 477 extending by connecting one intersection point (f) of the wind wing 477 mounted on the third vane unit 440 at the center of the rotation shaft 410. The angle formed by one side line (g) is characterized in that it is 0 ° to 45 °, the angle that can cause the largest rotational force when the wind flowing from the outside hits the one side line (g) of the wind wing 477 Means.
또한, 상기 집풍날개(476)의 연장선(h)은 상기 제3 날개차유닛(440)에 장착된 바람날개(477)의 일측교점(f)을 지나고, 상기 연장선(h)과 상기 바람날개(477)의 일측선(g)이 이루는 각도는 직각인 것이 또 하나의 특징으로서, 큰 회전력을 얻을 수 있는 각도를 의미한다.In addition, the extension line h of the wind collecting wing 476 passes one intersection point f of the wind wing 477 mounted on the third vane wheel unit 440, and the extension line h and the wind wing ( The angle formed by one side g of 477 is another right angle, which means an angle capable of obtaining a large rotational force.
본 실시예의 풍력터빈장치는 일측에 방향타(미도시)나 풍향의 방향을 인식하여 바람이 불어오는 방향을 인식하는 센서(미도시) 상기 센서(미도시)에 의해 본 실시예의 풍력터빈장치의 가이드프레임(미도시)을 회전시키는 전동장치(미도시)가 설치될 수 있으며, 이러한 방향타나 센서 및 전동장치는 극히 공지기술과 동일하다. 따라서, 바람의 유입방향을 향해 위치하도록 회전함으로써 집풍 효과를 극대화하게 된다.Wind turbine device of the present embodiment is a sensor (not shown) for recognizing the direction of the wind direction by detecting the direction of the rudder (not shown) or the wind direction on one side guide of the wind turbine device of the present embodiment by the sensor (not shown) A transmission device (not shown) for rotating the frame (not shown) may be installed, and the rudder sensor and the transmission device are the same as in the known art. Thus, by rotating to be located toward the inflow direction of the wind to maximize the wind effect.
도 16 내지 도 19는 형태가 다양한 바람날개를 도시한 개략도로서, 도 16 내지 도 19를 참조하면, 화살표는 바람의 방향으로서 바람이 저항부재(450)나 바람날개(477)에 부딪힐 때 도 18이나 도 19처럼 직각으로 부딪히는 것이 강한 회전력을 일으킬 수 있으며, 도 18 보다는 도 19는 바람이 부딪힌 후 타고 넘을 때 저항부재(450)나 바람날개(477)의 회전력에 대한 저항이 감소하게 된다.16 to 19 are schematic views showing various shapes of wind vanes. Referring to FIGS. 16 to 19, arrows indicate when the wind strikes the resistance member 450 or the wind vane 477 in the direction of the wind. 18 or 19 hitting at a right angle may cause a strong rotational force, and rather than FIG. 18, the resistance to the rotational force of the resistance member 450 or the wind wing 477 is reduced when the wind is hit after riding.
도 12는 풍력터빈장치의 제6 실시예를 도시한 단면도이고, 도 13은 도 12에 도시한 풍력터빈장치의 요부 확대 정면개략도이며, 도 14는 도 12에 도시한 풍력터빈장치의 요부확대도이다.FIG. 12 is a sectional view showing a sixth embodiment of the wind turbine device, FIG. 13 is an enlarged front schematic view of main parts of the wind turbine device shown in FIG. 12, and FIG. 14 is an enlarged view of the main parts of the wind turbine device shown in FIG. to be.
도 12 내지 도 14를 참조하면, 상기 도 11에서 상술한 구성에 풍향회전구(500)의 구성이 더 구비된 것으로서, 상기 풍향회전구(500)는 상기 경사판(474)과 집풍날개(476) 사이에는 축과 결합되어 회전가능하며, 유입되는 바람에 의해 회전할 수 있도록 바람저항판(510)이 장착된 반원형의 풍향회전판(530)과 상기 풍향회전판(530)의 일측단에 결합된 역풍방지판(520)으로 구성된다. 따라서, 집풍날개(476) 사이로 직접적으로 유입된 바람과 경사판(474) 사이를 통과한 바람은 바람저항판(510)에 부딪히고 상기 바람저항판(510)이 장착된 반원형의 풍향회전판(530)은 회전하면서, 결합된 회전축(410)을 회전시키게 된다.12 to 14, the configuration of the wind direction rotary hole 500 is further provided in the configuration described above with reference to FIG. 11, and the wind direction rotary hole 500 includes the inclined plate 474 and the wind collecting wing 476. It is coupled to the axis between the rotatable, anti-wind wind coupled to one side of the semi-circular wind direction rotating plate 530 equipped with a wind resistance plate 510 and the wind direction rotating plate 530 to rotate by the incoming wind It consists of a plate 520. Therefore, the wind flowing directly between the wind vane 476 and the wind passing between the inclined plate 474 hit the wind resistance plate 510 and the semi-circular wind direction rotating plate 530 in which the wind resistance plate 510 is mounted. While rotating, the combined rotating shaft 410 is rotated.
이때, 상기 역풍방지판(520)은 상기 풍향회전구(500)의 회전에 방해가 되는 역풍을 방지하기 위한 방지판이다.At this time, the anti-wind prevention plate 520 is a prevention plate for preventing the reverse wind to interfere with the rotation of the wind direction rotary hole (500).
특히, 도 13을 참조하면, 상기 반원형의 풍향회전판(530)은 일측이 개방되고 타측이 폐쇄된 형태로서, 회전력을 상승시키고 회전을 방해하는 역풍을 최소화하기 위한 구성이다.In particular, referring to Figure 13, the semi-circular wind direction rotating plate 530 is one side is open and the other side is a form, the configuration for minimizing the reverse wind to increase the rotational force and prevent rotation.
도 15는 풍력터빈장치의 제7 실시예를 도시한 단면도로서, 도 15를 참조하면, 상기 바람날개(477)는 제1 내지 제3 원통부재(421,431,441)의 외주면에 원주방향을 따라 복수개가 상호 이격 배열되도록 설치되어 있으며, 일측 단부에 유입홈(453)이 형성되어 있는데, 상기 유입홈(453)은 외부로부터 상기 제2 관통구(452)를 통해 바람이 유입되면 바람은 상기 유입홈(453)을 통해 유입되면서 상기 바람날개(477)에 부딪히게 되고 부딪힌 바람에 의해 상기 바람날개(477)는 회전력을 얻으며 또 부딪혀 되돌아가 바람은 원통부재에 형성된 배기홀(460)을 통해 원통부재의 내부로 유입된다.FIG. 15 is a cross-sectional view illustrating a seventh embodiment of a wind turbine device. Referring to FIG. 15, a plurality of wind vanes 477 are formed along the circumferential direction of the outer circumferential surfaces of the first to third cylindrical members 421, 431, 441. It is installed to be spaced apart, the inlet groove 453 is formed at one end, the inlet groove 453, when the wind is introduced through the second through hole 452 from the outside the wind inlet groove 453 The wind vane 477 is hit through the wind wing 477 and the wind wing 477 is rotated by the wind hit and the wind is hit back to the wind through the exhaust hole 460 formed in the cylindrical member through the interior of the cylindrical member Flows into.
상기 제3 원통부재(441)의 바람날개(477)를 따라 이동하는 바람은 배기홀(460)을 통해 제3 원통부재(441)의 내부로 유입된 뒤, 상기 제2 원통부재(431)를 회전시키게 되고, 상기 제2 원통부재(431)의 바람날개(477)를 따라 이동한 후, 제2 원통부재(431)에 형성된 배기홀(460)을 통해 내부로 유입되어 제1 원통부재(421)를 회전시키게 된다.Wind moving along the wind blade 477 of the third cylindrical member 441 is introduced into the third cylindrical member 441 through the exhaust hole 460, and then the second cylindrical member 431 is opened. After rotating, and moving along the wind blade 477 of the second cylindrical member 431, the first cylindrical member 421 is introduced into the inside through the exhaust hole 460 formed in the second cylindrical member 431. Rotated).
이렇게 제1 내지 제3 원통부재(421,431,441)를 모두 회전시키게 되므로 풍력에너지 손실을 최소화하게 된다.The first to third cylindrical members 421, 431, 441 are rotated in this way, thereby minimizing wind energy loss.
본 발명은 도면에 도시된 실시예를 참고로 설명되었으나 이는 예시적인 것에 불과하며, 본 기술 분야의 통상의 지식을 가진 사람이라면 이로부터 다양한 변형 및 균등한 타 실시예가 가능하다는 점을 이해할 것이다. 따라서, 본 발명의 진정한 기술적 보호 범위는 첨부된 등록 청구 범위의 기술적 사상에 의해 정해져야 할 것이다.Although the present invention has been described with reference to the embodiments shown in the drawings, this is merely exemplary, and it will be understood by those skilled in the art that various modifications and equivalent other embodiments are possible. Therefore, the true technical protection scope of the present invention will be defined by the technical spirit of the appended claims.

Claims (13)

  1. 바람이 유입되는 하우징과;A housing into which wind is introduced;
    상기 하우징의 내부에 회전 가능하게 설치되는 회전축과;A rotating shaft rotatably installed in the housing;
    상기 회전축에 설치되는 날개차;를 구비하며,A vane installed on the rotating shaft;
    상기 날개차는 상기 회전축과 결합된 원통형의 바디와, 상기 바디의 외주면에 방사상으로 돌출되어 유입되는 바람에 의해 상기 바디 및 회전축을 회전시키는 블레이드를 포함하는 것을 특징으로 하는 풍력터빈장치.The vane comprises a cylindrical body coupled to the rotating shaft, and a blade for rotating the body and the rotating shaft by the wind protruding radially to the outer peripheral surface of the body.
  2. 제 1항에 있어서,The method of claim 1,
    상기 바디는 복수개의 원판부재가 상기 회전축의 길이방향을 따라 상호 적층되어 형성되고,The body is formed by stacking a plurality of disc members in the longitudinal direction of the rotation axis,
    상기 블레이드는 상기 각각의 원판부재의 외주면에 형성된 복수개의 날개편들을 포함하며,The blade includes a plurality of blade pieces formed on the outer circumferential surface of each disc member,
    상기 날개편은 바람의 유입방향 상에서 상기 원판부재의 전방 가장자리로부터 방사방으로 돌출되어 상기 원판부재의 후방으로 소정길이 연장되는 제1 연장부와, 상기 제1 연장부의 단부로부터 소정각도 절곡된 상태로 상기 원판부재의 후면 가장자리까지 연장되는 제2 연장부를 포함하고,The wing piece protrudes radially from the front edge of the disc member in the direction of the inflow of the wind and extends a predetermined length toward the rear of the disc member, and bent at a predetermined angle from an end of the first extension part. A second extension extending to the rear edge of the disc member,
    상기 제1 연장부는 전방에 설치된 날개편의 제2 연장부의 단부로부터 연장되도록 형성된 것을 특징으로 하는 풍력터빈장치.And the first extension part is formed to extend from an end portion of a second extension part of a wing piece provided at the front side.
  3. 제 1항에 있어서,The method of claim 1,
    상기 하우징에 설치되며, 상기 날개차를 통과한 바람을 포집하여 상기 하우징의 전단부로 이동시켜 재사용할 수 있도록 형성된 풍력재활용수단을 더 구비하며,It is installed on the housing, and further comprises a wind recycling means formed to collect the wind passing through the vanes to move to the front end of the housing for reuse,
    상기 풍력재활용수단은 일단이 상기 하우징의 후단에 상기 날개차를 통과한 바람이 배출되도록 형성된 배기구와 연결되어 있고, 타단이 상기 하우징의 전단에 유입구로 바람이 토출될 수 있도록 설치된 유동관과,The wind power recycling means is connected to an exhaust port formed so that one end of the wind passing through the vane at the rear end of the housing, the other end flow pipe is installed so that the wind is discharged to the inlet in front of the housing,
    상기 유동관의 일측에 설치되어 상기 유동관 내부의 압력이 일정 수준 이상으로 높아지면 유동관 내부의 공기를 외부로 배출시키는 압력밸브를 구비하는 것을 특징으로 하는 풍력터빈장치.The wind turbine device, characterized in that provided on one side of the flow pipe is provided with a pressure valve for discharging the air in the flow pipe to the outside when the pressure inside the flow pipe is higher than a predetermined level.
  4. 제 1항 또는 제 2항에 있어서,The method according to claim 1 or 2,
    상기 하우징의 후방에는 풍향에 따라 상기 하우징의 전단부가 풍향에 대응되는 방향으로 위치하도록 하우징을 회전시키는 가이드부재가 더 설치되는 것을 특징으로 하는 풍력터빈장치. And a guide member for rotating the housing such that the front end of the housing is positioned in a direction corresponding to the wind direction in the rear of the housing.
  5. 제 1항에 있어서,The method of claim 1,
    상기 하우징의 유입구 주변에 설치되어 바람을 상기 유입구쪽으로 유도하는 집풍수단을 더 구비하되,Is installed around the inlet of the housing further comprises a wind collecting means for guiding the wind toward the inlet,
    상기 집풍수단은 프레임과, 상기 프레임에 집풍 면적이 조절될 수 있도록 확장 및 축소 가능하게 설치되는 커튼부재를 포함하는 것을 특징으로 하는 풍력터빈장치.The wind collecting means is a wind turbine device, characterized in that it comprises a frame and a curtain member that is installed to expand and contract so that the wind collecting area can be adjusted to the frame.
  6. 제 1항에 있어서,The method of claim 1,
    상기 하우징의 유입구 주변에 설치되어 바람을 상기 유입구쪽으로 유도하는 집풍수단을 더 구비하되,Is installed around the inlet of the housing further comprises a wind collecting means for guiding the wind toward the inlet,
    상기 집풍수단은 상기 하우징의 유입구에 바람이 불어오는 방향을 향해 연장될수록 내경이 점점 커지도록 형성된 제1 가이드부재와,The wind collecting means may include a first guide member formed such that an inner diameter thereof gradually increases as it extends in a direction in which wind blows into the inlet of the housing;
    상기 하우징에 설치되어 유입구로 불어오는 바람을 하우징의 내부 가장자리측으로 안내하는 원뿔형의 제2 가이드부재를 포함하며,A second guide member having a conical shape installed in the housing and guiding wind blowing through the inlet toward the inner edge of the housing,
    상기 제2 가이드부재는 풍량에 따라 단부 외경이 확장 또는 축소되도록 형성된 것을 특징으로 하는 풍력터빈장치.The second guide member is a wind turbine device, characterized in that the end outer diameter is formed to be expanded or reduced in accordance with the amount of air.
  7. 제 1항에 있어서,The method of claim 1,
    상기 하우징은 상하방향으로 연장되게 설치되어 있으며, 상기 하우징의 상부에는 수평방향으로 유입되는 공기를 상기 하우징의 내부로 가이드하는 집풍부가 마련되어 있으며, The housing is installed to extend in the vertical direction, the upper portion of the housing is provided with a wind collecting part for guiding the air flowing in the horizontal direction into the housing,
    상기 집풍부의 내부에는 수평방향으로 유입된 바람이 상기 하우징을 따라 수직방향으로 원활하게 유입될 수 있도록 풍향을 가이드하는 회전가이드판을 포함하고, The wind collecting unit includes a rotation guide plate for guiding the wind direction so that the wind flowing in the horizontal direction can smoothly flow in the vertical direction along the housing,
    상기 집풍부의 일측에는 유입되는 풍량이 많아져 하우징의 입구측에서의 압력이 높아질 때, 공기를 외부로 배출시키는 압력밸브가 형성되어 있는 것을 특징으로 하는 풍력터빈장치.The wind turbine device, characterized in that a pressure valve for discharging the air to the outside when one side of the air collecting portion is increased in the amount of air flows in the inlet side of the housing is increased.
  8. 회전축과;A rotating shaft;
    상기 회전축과 연결되어 풍력을 통해 상기 회전축을 회전시키는 날개차유닛;을 구비하며,And a vane unit connected to the rotary shaft to rotate the rotary shaft through wind power.
    상기 날개차유닛은 원통부재와, 상기 원통부재의 외주면에 원주방향을 따라 연장되도록 돌출 형성되어 있으며 양단에 바람이 유입 또는 배출될 수 있도록 제1, 제2 관통구가 형성된 복수개의 저항부재를 포함하되,The vane unit includes a cylindrical member and a plurality of resistance members protruding from the outer circumferential surface of the cylindrical member so as to extend in the circumferential direction and having first and second through holes formed at both ends thereof to allow the wind to flow in or out. But
    상기 제1 관통구는 상기 제2 관통구보다 상대적으로 직경이 작으며, 제1 관통구는 인접하는 저항부재의 제2 관통구를 통해 삽입되어 제2 관통구를 통해 유입된 바람이 상기 저항부재의 내부를 통해 이동하도록 형성되어 있는 것을 특징으로 하는 풍력터빈장치.The first through hole is relatively smaller in diameter than the second through hole, and the first through hole is inserted through the second through hole of the adjacent resistance member, and the wind introduced through the second through hole causes the inside of the resistance member to pass through. Wind turbine device, characterized in that formed to move through.
  9. 제 8항에 있어서,The method of claim 8,
    상기 날개차유닛은 상기 회전축을 중심으로 상호 직경이 다른 복수개가 상기 회전축 또는 내측에 위치한 날개차유닛과 결합되도록 형성되어 있으며, The vane wheel unit is formed so as to be coupled to the vane wheel unit located on the inner or the rotational shaft a plurality of mutually different diameter around the rotational shaft,
    상기 날개차유닛은 상기 저항부재들 중 어느 하나는 제1 관통구가 폐쇄되어 있으며, 제1 관통구가 폐쇄된 저항부재가 결합된 위치의 원통부재에는 내부로 관통되어 공기가 원통부재의 내측으로 유입될 수 있도록 배기홀이 형성되어 있으며,In the vane unit, any one of the resistance members has a first through hole closed, and a cylindrical member in a position where the resistance member with the first through hole closed is coupled to the inside to allow air to flow into the cylinder member. The exhaust hole is formed to be introduced,
    내측 날개차유닛은 상기 배기홀을 통해 외측 날개차유닛으로부터 유입된 바람에 의해 회전하도록 형성된 것을 특징으로 하는 풍력터빈장치.The inner vane unit is a wind turbine device, characterized in that formed to rotate by the wind introduced from the outer vane unit through the exhaust hole.
  10. 제 9항에 있어서,The method of claim 9,
    상기 날개차유닛의 외부를 감싸고 일측에 외부공기가 유입될 수 있는 개방부와, 상기 개방부와 연결되며 상기 날개차유닛 주변의 공기압의 유지를 위해 폐쇄된 폐쇄부를 갖는 가이드프레임을 더 구비하고,It further includes a guide frame surrounding the outside of the vane unit and an opening portion through which outside air can be introduced, and a closing portion connected to the opening and closed to maintain the air pressure around the vane unit.
    상기 가이드프레임의 개방부에는 상기 저항부재의 개방된 일측으로 바람이 용이하게 이동할 수 있도록 바람의 유입방향을 가이드하는 경사판이 설치되어 있는 것을 특징으로 하는 풍력터빈장치.The wind turbine device, characterized in that the inclined plate to guide the inflow direction of the wind is installed in the open portion of the guide frame so that the wind can easily move to the open side of the resistance member.
  11. 회전축(410)과;A rotating shaft 410;
    상기 회전축(410)과 연결되어 풍력을 통해 상기 회전축(410)을 회전시키는 날개차유닛(420, 430, 440);을 구비하며,And a vane unit (420, 430, 440) connected to the rotating shaft (410) to rotate the rotating shaft (410) through wind power.
    상기 날개차유닛(420, 430, 440)은 원통부재(421, 431, 441)와, 상기 원통부재(421, 431, 441)의 외주면에 원주방향을 따라 연장되도록 돌출 형성되어 있으며 양단에 바람이 유입 또는 배출될 수 있도록 제1 관통구(451) 및 제2 관통구(452)가 형성된 복수개의 바람날개(477)를 포함하되, 상기 제1 관통구(451)는 상기 제2 관통구(452)보다 상대적으로 직경이 작으며, 제1 관통구(451)는 인접하는 바람날개(477)의 제2 관통구(452)를 통해 삽입되어 제2 관통구(452)를 통해 유입된 바람이 상기 바람날개(477)의 내부를 통해 이동하도록 형성되며, The vane units 420, 430, and 440 are formed to protrude in the circumferential direction on the cylindrical members 421, 431, and 441 and the outer circumferential surfaces of the cylindrical members 421, 431, and 441, and wind is provided at both ends thereof. It includes a plurality of wind wings 477 formed with a first through hole 451 and a second through hole 452 so that the first through hole 451, the first through hole 451 is the second through hole 452 Relatively smaller than the diameter, the first through hole 451 is inserted through the second through hole 452 of the adjacent wind wing 477 is the wind introduced through the second through hole 452 is It is formed to move through the inside of the wind wing 477,
    상기 날개차유닛(420, 430, 440)은 상기 회전축(410)을 중심으로 상호 직경이 다른 복수개가 상기 회전축(410) 또는 내측에 위치한 날개차유닛과 결합되도록 형성되어 있고, 상기 날개차유닛(420, 430, 440)에 형성된 바람날개(477)들은 교대로 제1 관통구(451)의 개폐가 반복되어 있으며, 제1 관통구(451)가 폐쇄된 바람날개(477)가 결합된 위치의 원통부재(421, 431, 441)에는 내부로 관통되어 공기가 원통부재(421, 431, 441)의 내측으로 유입될 수 있도록 배기홀(460)이 형성되어 있으며, 내측 날개차유닛은 상기 배기홀(460)을 통해 외측 날개차유닛으로부터 유입된 바람에 의해 회전하도록 형성되며, The vanes unit 420, 430, 440 is formed to be coupled to the vanes unit located in the rotation shaft 410 or inside the plurality of mutually different diameter around the rotation shaft 410, the vanes unit ( Wind wings 477 formed on the 420, 430, 440 are alternately repeated opening and closing of the first through hole 451, the position of the wind wing 477 is coupled to the first through hole 451 is closed The cylindrical members 421, 431, 441 have an exhaust hole 460 formed therein so that air can flow into the cylindrical members 421, 431, 441, and the inner vane unit is the exhaust hole. Is formed to rotate by the wind introduced from the outer wing car unit through 460,
    상기 날개차유닛(420, 430, 440)의 상측면과 하측면을 덮고, 측면은 외부공기가 유입될 수 있도록 개방되어 있으며, 다수개의 집풍날개(476)가 구비되어 있는 가이드프레임(478)과,The upper and lower surfaces of the vane units 420, 430, and 440 are covered, and the side surfaces of the vane units 420, 430, and 440 are open to allow external air to flow therein, and a guide frame 478 having a plurality of wind vanes 476. ,
    상기 가이드프레임(478)의 일측면에는 상기 바람날개(477)의 개방된 일측으로 바람이 용이하게 이동할 수 있도록 바람의 유입방향을 가이드하는 다수의 경사판(474)이 설치되며, One side of the guide frame 478 is provided with a plurality of inclined plate 474 for guiding the inflow direction of the wind so that the wind can easily move to the open one side of the wind wing 477,
    상기 경사판(474)과 집풍날개(476) 사이에는 회전축(410)과 결합되어 회전가능하며, 유입되는 바람에 의해 회전할 수 있도록 바람저항판(510)이 장착된 반원형의 풍향회전판(530)과 상기 풍향회전판(530)의 일측단에 결합된 역풍방지판(520)으로 구성된 풍향회전구(500)가 구비된 것을 특징으로 하는 풍력터빈장치 Between the inclined plate 474 and the wind collecting wing 476 is coupled to the rotating shaft 410 and rotatable, and a semi-circular wind direction rotating plate 530 equipped with a wind resistance plate 510 to rotate by the incoming wind and Wind turbine device, characterized in that the wind direction rotary hole 500 consisting of a back wind preventing plate 520 coupled to one side end of the wind direction rotating plate 530 is provided
  12. 제 11항에 있어서,The method of claim 11,
    상기 회전축(410)의 중심에서 상기 제3 날개차유닛(440)에 장착된 바람날개(477)의 일측교점(f)을 연결하여 연장한 가상선(e)과 상기 바람날개(477)의 일측선(g)이 이루는 각도는 0°내지 45°인 것을 특징으로 하는 풍력터빈장치One of the imaginary line e and the wind wing 477 that extend by connecting one side intersection point f of the wind wing 477 mounted on the third vane unit 440 at the center of the rotation shaft 410. Wind turbine device, characterized in that the angle formed by the side line (g) is 0 ° to 45 °
  13. 제 11항에 있어서,The method of claim 11,
    상기 집풍날개(476)의 연장선(h)은 상기 제3 날개차유닛(440)에 장착된 바람날개(477)의 일측교점(f)을 지나고, 상기 연장선(h)과 상기 바람날개(477)의 일측선(g)이 이루는 각도는 직각인 것을 특징으로 하는 풍력터빈장치The extension line h of the wind collecting wing 476 passes through one side intersection point f of the wind wing 477 mounted on the third vane wheel unit 440, and the extension line h and the wind wing 477. The angle formed by one side (g) of the wind turbine device, characterized in that the right angle
PCT/KR2010/004442 2009-07-08 2010-07-08 Wind turbine device WO2011005036A2 (en)

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